CA2572272C - Efficient evaluation of queries using translation - Google Patents

Efficient evaluation of queries using translation Download PDF

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CA2572272C
CA2572272C CA2572272A CA2572272A CA2572272C CA 2572272 C CA2572272 C CA 2572272C CA 2572272 A CA2572272 A CA 2572272A CA 2572272 A CA2572272 A CA 2572272A CA 2572272 C CA2572272 C CA 2572272C
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abstract syntax
sql
xquery
processors
generating
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CA2572272A1 (en
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Zhen Hua Liu
Muralidhar Krishnaprasad
Anand Manikutty
James Warner
Hui X. Zhang
Vikas Arora
Susan M. Kotsovolos
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Oracle International Corp
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Oracle International Corp
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F16/00Information retrieval; Database structures therefor; File system structures therefor
    • G06F16/80Information retrieval; Database structures therefor; File system structures therefor of semi-structured data, e.g. markup language structured data such as SGML, XML or HTML
    • G06F16/83Querying
    • G06F16/835Query processing
    • G06F16/8358Query translation
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F16/00Information retrieval; Database structures therefor; File system structures therefor
    • G06F16/80Information retrieval; Database structures therefor; File system structures therefor of semi-structured data, e.g. markup language structured data such as SGML, XML or HTML
    • G06F16/84Mapping; Conversion
    • G06F16/86Mapping to a database

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  • Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Databases & Information Systems (AREA)
  • Data Mining & Analysis (AREA)
  • Physics & Mathematics (AREA)
  • General Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Information Retrieval, Db Structures And Fs Structures Therefor (AREA)

Abstract

Techniques are provided for processing a query including receiving the query, where the query specifies certain operations; determining that the query includes a first portion in a first query language and a second portion in a second query language; generating a first in-memory representation for the first portion; generating a second in-memory representation for the second portion; generating a third in-memory representation of the query based on the first in-memory representation and the second in-memory representation; and performing the certain operations based on the third in-memory representation.

Description

EFFICIENT EVALUATION OF QUERIES USING TRANSLATION

FIELD OF THE INVENTION

[00011 The present invention relates to query processing. The invention relates more specifically to efficient evaluation of queries using translation.

BACKGROUND OF THE INVENTION

[00021 The approaches described in this section could be pursued, but are not necessarily approaches that have been previously conceived or pursued. Therefore, unless otherwise indicated herein, the approaches described in this section are not prior art to the claims in this application and are not admitted to be prior art by inclusion in this section.

[00031 Relational database management systems (RDBMSs) store information in tables, where each piece of data is stored at a particular row and column. Information in a given row generally is associated with a particular object, and information in a given column generally relates to a particular category of information. For example, each row of a table may correspond to a particular employee, and the various columns of the table may correspond to employee names, employee social security numbers, and employee salaries.
[00041 A user retrieves information from and makes updates to a database by interacting with a database application. The user's actions are converted into a query by the database application. The database application submits the query to a database server.
The database server responds to the query by accessing the tables specified in the query to determine which information stored in the tables satisfies the query. The information that satisfies the query is retrieved by the database server and transmitted to the database application.
Alternatively, a user may request information directly from the database server by constructing and submitting a query directly to the database server using a command line or graphical interface.

[0005] Queries submitted to the database server must conform to the syntactical rules of a particular query language. One popular query language, known as the Structured Query Language (SQL), provides users a variety of ways to specify information to be retrieved.
Another query language based on the Extensible Markup Language (XML) is XML
Query Language (XQuery). XML Query language may have multiple syntactic representations. For instance, one of them is a human-readable version and another is an XML
representation (XQueryX). XQuery is described in "XQuery 1.0: An XML Query Language." W3C
Working Draft July 23, 2004 at www.w3.org/TR/xquely. XQueryX is described in "XML
.Syntax for XQuery 1.0 (XQueryX)." W3C Working Draft 19 December 2003 at www.w3.org/TR/xqueryx. Another related technology, XPath, is described in "XML
Path Language (XPath) 2Ø" W3C Working Draft 12 November 2003 at www.w3.org/TR/xpath20. XQuery and XQueryX may use XPath for path traversal.

[0006] To implement XQuery support in RDBMSs, one approach, referred as coprocessor approach, is to embed a general purpose XQuery processor inside an RDBMS
engine and have the XQuery processor execute XQuery on behalf of the RDBMS SQL
processor. The coprocessor approach has the SQL processor treat the XQuery coprocessor as a black box. During the execution of the SQL statement, the SQL processor handles the XQuery portion of the query by passing the text of the XQuery portion of the query, and the necessary XML values, as input to the XQuery processor. The XQuery processor then returns the results of processing the XQuery portion of the query to the SQL
processor and the SQL processor performs any other appropriate operations specified by the query.
[00071 The coprocessor approach has numerous problems. First, the XQuery processor is not aware of any of the underlying techniques for storing XML data.
Therefore, the XQuery processor needs fully materialized XML as input. Consequently, the XML
input needed by the XQuery processor must be constructed or materialized by the RDBMS. Often the XML input needed for the XQuery is stored in the database and may be "shredded" into one or component XML elements, and those XML elements may be stored in one or more relational or object relational tables. Under these conditions, the process of materializing the XML data is time and resource consuming, and therefore makes the coprocessor approach inefficient.

[00081 A second problem with the coprocessor approach is that the XQuery portion of an incoming query cannot be optimized with the SQL portion of the incoming query (and vice-versa). Specifically, the XQuery processor is not able to optimize the SQL
portion of the query; and the SQL processor is not able to optimize the XQuery portion of the query.
Therefore, the SQL and XQuery parts of the query are separately optimized (if at all), which is suboptimal. In addition, the underlying storage of the data needed in the XQuery portion of the query will be stored in a form other than XML (such as being shredded into multiple XMLType columns). Since the XQuery processor is not aware of the form in which the underlying data is stored, the XQuery processor is not able to optimize execution of the XQuery operations based on storage information.

[00091 A third problem with the coprocessor approach occurs when an XQuery processor is invoked multiple times, where the output of a first XQuery becomes the input to a second XQuery in the original query. For example, in the case where the output of a first XQuery must be passed as input to a second XQuery, the output of the first XQuery must be generated as XML. This dictates that the XQuery processor, after determining the result of 50277-2763 (01D-2004-089-01-ITT) the first XQuery, must materialize the result as XML in an XML document and send the XML document to the SQL processor. The SQL processor then passes the XML
document back to the XQuery processor along with the second XQuery. The XQuery processor will then retrieve and process the second XQuery with the XML document. This constitutes numerous wasted communication and computational steps and wasted bandwidth.

[0010] Therefore, there is clearly a need for techniques that overcome the shortfalls of the co-processor approach described above.

SUMMARY OF THE INVENTION

[0010A] In one aspect the invention comprises a method of processing a query comprising receiving the query, wherein the query specifies operations, determining that the query comprises a Structured Query Language (SQL) portion that specifies first one or more of the operations in SQL query language and a markup language portion that specifies second one or more of the operations in a markup query language, wherein the markup query language is one of XQuery query language and XQueryX query language, wherein, within the query, the markup language portion is embedded into the SQL
portion, generating a first in-memory representation for the SQL portion, generating a second in-memory representation for the markup language portion, generating a third in-memory representation of the query based on the first in-memory representation and the second in-memory representation, wherein the third in-memory representation specifies all of the operations, and performing the operations based on the third in-memory representation. The first in-memory representation and the third in-memory representation are formatted in a 50277-2763 (01D-2004-089-01-ITT) first abstract syntax and the second in-memory representation is formatted in a second abstract syntax. The step of generating the third in-memory representation comprises generating a fourth in-memory representation in the first abstract syntax based on the second in-memory representation and generating the third in-memory representation based on the first in-memory representation and the fourth in-memory representation. The first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax. The markup language portion comprises a user-defined XQuery function in the second abstract syntax. The step of generating the fourth in-memory representation comprises generating a user-defined PL/SQL function in the first abstract syntax based on the user-defined XQuery function in the second abstract syntax.

[00108] In another aspect of the invention, the second in-memory representation comprises one or more in-memory representations of query elements in the second abstract syntax, and generating the fourth in-memory representation comprises determining a second set of one or more equivalent in-memory representations of query elements in the first abstract syntax for the one or more in-memory representations of query elements in the second abstract syntax and generating the fourth in-memory representation in the first abstract syntax based on the second set of one or more equivalent in-memory representations of query elements in the first abstract syntax. Each in-memory representation of query elements in the one or more in-memory representations of query elements in the second abstract syntax may correspond to one or more in-memory representation of query elements in the second set of one or more equivalent in-memory representations of query elements in the first abstract syntax.

[0010C] In another aspect of the invention, one or more of the first in-memory 50277-2763 (01D-2004-089-01-ITT) representation, the second in-memory representation, and the third in-memory representation are represented in memory as abstract syntax trees.

[0010D] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery aggregation in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL subquery in the first abstract syntax to compute the aggregation, said SQL
subquery being generated based on the XQuery aggregation in the second abstract syntax.

[0010E] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises a literal expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL
literal in the first abstract syntax based on the literal expression in the second abstract syntax.

[0010F] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery cast expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating one of an SQL cast function and an SQL convert function in the first abstract syntax based on the XQuery cast expression in the second abstract syntax.

[0010G] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises a set expressions in the second abstract syntax and wherein the 50277-2763 (01 D-2004-089-01-ITT) step of generating the fourth in-memory representation comprises generating one of an SQL
UNION, an SQL MINUS, and an SQL INTERSECT in the first abstract syntax based on the set expressions in the second abstract syntax.

[0010H] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery arithmetic expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL arithmetic expression in the first abstract syntax based on the XQuery arithmetic expression in the second abstract syntax.

[00101] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery comparison in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL comparison in the first abstract syntax based on the XQuery comparison in the second abstract syntax.

[0010J] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery FLWOR order by clause in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL order by clause in the first abstract syntax based on the XQuery FLWOR
order by clause in the second abstract syntax.

[0010K] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup 50277-2763 (01 D-2004-089-01-ITT) language portion comprises an XML logical expressions in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL logical expressions element in the first abstract syntax based on the XML
logical expressions in the second abstract syntax.

10010L] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XML FLWOR expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL select expressions element in the first abstract syntax based on the XML
FLWOR
expression in the second abstract syntax.

[0010M] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XML Path expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL path expression in the first abstract syntax based on the XML Path expression in the second abstract syntax.

[0010N] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax, wherein the markup language portion comprises an XML if-then-else expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL case--when expression in the first abstract syntax based on the XML if-then-else expression in the second abstract syntax.

1001001 n another aspect, the first abstract syntax is an SQL-related abstract syntax 50277-2763 (01 D-2004-089-01-ITT) and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XML quantified expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL Exists expression in the first abstract syntax based on the XML quantified expression in the second abstract syntax.

[0010P] In another aspect the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax, wherein the markup language portion comprises an SQL/XML construction expression in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL construction expression in the first abstract syntax based on the SQL/XML construction expression in the second abstract syntax.

10010Q] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax, wherein the markup language portion comprises an XML operator in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL
operator in the first abstract syntax based on the XML operator in the second abstract syntax.

[0010R] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery sequence type operation in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL type operation in the first abstract syntax based on the XQuery sequence type operation in the second abstract syntax.

50277-2763 (01 D-2004-089-01-ITT) [0010S] In another aspect, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery type constructor in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL scalar constructor in the first abstract syntax based on the XQuery type constructor in the second abstract syntax.

[0010T] In another aspect, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery validate operation in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating one of an SQL/XML IsValid operation and an SQL/XML Validate operation in the first abstract syntax based on the XQuery validate operation in the second abstract syntax.

[0010U] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax; wherein the markup language portion comprises a polymorphic XQuery arithmetic operator in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating one of a polymorphic SQL arithmetic operator in the first abstract syntax based on the polymorphic XQuery arithmetic operator in the second abstract syntax.
[001OV] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax; wherein the markup language portion comprises a polymorphic XQuery comparison operator in the second abstract syntax; and wherein the step of generating the fourth in-memory representation 50277-2763 (01D-2004-089-01-ITT) comprises generating one of a polymorphic SQL value comparison operator in the first abstract syntax based on the polymorphic XQuery comparison operator in the second abstract syntax.

[0010W] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery function call in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an SQL function call in the first abstract syntax based on the XQuery function call in the second abstract syntax.

[0010X] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an external XQuery function in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating an external SQL function in the first abstract syntax based on the external XQuery function in the second abstract syntax.

[0010Y] In another aspect, the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax wherein the markup language portion comprises an XQuery module in the second abstract syntax and wherein the step of generating the fourth in-memory representation comprises generating a PL/SQL
package in the first abstract syntax based on the XQuery module in the second abstract syntax.

[001OZ] In another aspect, the invention comprises a method of processing a query, 50277-2763 (01D-2004-084-01-ITT) comprising receiving the query, wherein the query specifies operations, determining that the query comprises a first portion that specifies first one or more of the operations in a first query language and a second portion that specifies second one or more of the operations in a second query language, generating a first in-memory representation for the first portion, generating a second in-memory representation for the second portion, wherein the second in-memory representation represents at least one query element, supported by the second query language, that is not understood by a query processor for the first query language.
Prior to performing any of the operations, there is generated a third in-memory representation of the query based on the first in-memory representation and a fourth in-memory representation, wherein the third in-memory representation specifies all of the operations. Generating the third in-memory representation comprises generating the fourth in-memory representation based on the second in-memory representation, wherein the fourth in-memory representation represents only query elements that are supported by the first query language and understood by a query processor for the first query language and performing the operations based on the third in-memory representation. The first in-memory representation and the third in-memory representation are formatted in an Structure query language (SQL) related abstract syntax or SQL-related abstract syntax and the second in-memory representation is formatted in an XQuery-related abstract syntax, and wherein the fourth in-memory representation is formatted in the SQL-related abstract syntax. The second portion comprises at least one of an XQuery aggregation in the XQuery-related abstract syntax;
a set expression in the XQuery-related abstract syntax;

50277-2763 (01D-2004-089-01-ITT) an XQuery FLWOR order by clause in the XQuery-related abstract syntax;
an XML if-then-else expression in the XQuery-related abstract syntax; or an XML quantified expression in the XQuery-related abstract syntax.

[0010AA] In another aspect, the second portion comprises the XQuery aggregation in the XQuery-related abstract syntax and the step of generating the fourth in-memory representation comprises generating an SQL subquery in the SQL-related abstract syntax to compute the XQuery aggregation, said SQL subquery being generated based on the XQuery aggregation in the XQuery-related abstract syntax.

[OO10AB] In another aspect, the second portion comprises the set expression in the XQuery-related abstract syntax and the step of generating the fourth in-memory representation comprises generating one of an SQL UNION, an SQL MINUS, and an SQL
INTERSECT in the SQL-related abstract syntax based on the set expressions in the XQuery-related abstract syntax.

[OO10AC] In another aspect, the second portion comprises the XQuery FLWOR
order by clause in the XQuery-related abstract syntax and the step of generating the fourth in-memory representation comprises generating an SQL order by clause in the SQL-related abstract syntax based on the XQuery FLWOR order by clause in the XQuery-related abstract syntax.

[0010ADI In another aspect, the second markup language portion comprises the XML
if-then-else expression in the XQuery-related abstract syntax and the step of generating the 50277-2763 (01 D-2004-089-01-ITT) fourth in-memory representation comprises generating an SQL case-when expression in the SQL-related abstract syntax based on the XML if-then-else expression in the XQuery-related abstract syntax.

[0010AEJ In another aspect, the second portion comprises the XML quantified expression in the XQuery-related abstract syntax and the step of generating the fourth in-memory representation comprises generating an SQL Exists expression in the SQL-related abstract syntax based on the XML quantified expression in the XQuery-related abstract syntax.

10010AFJ In another aspect, the invention comprises a computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method aspects of the invention identified above.

The foregoing was intended as a summary only and of only some of the aspects of the invention. It was not intended to define the limits or requirements of the invention. Other aspects of the invention will be appreciated by reference to the detailed description of the preferred embodiments.

50277-2763 (01D-2004-089-01-ITT) BRIEF DESCRIPTION OF THE DRAWINGS

100111 The present invention is illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings and in which like reference numerals refer to similar elements and in which:

[00121 FIG. 1 is a block diagram that depicts a system for efficient evaluation of queries using translation.

100131 FIG. 2 is a flow diagram that depicts a process for efficient evaluation of queries using translation.

100141 FIG. 3 is a block diagram that illustrates a computer system upon which an embodiment of the invention may be implemented.

DETAILED DESCRIPTION

[00151 Techniques for efficient evaluation of queries using translation are described. In the following description, for the purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the present invention.
It will be apparent, however, that the present invention may be practiced without these specific details.

In other instances, well-known structures and devices are shown in block diagram form in order to avoid unnecessarily obscuring the present invention.

1.0 INTRODUCTION

[0016] The techniques described herein are in no way limited to any particular embodiment or aspect of the embodiment. One example embodiment of the techniques described herein is a database server that accepts queries in SQL, XQuery, and XQueryX.
This embodiment is described for illustrative purposes only.

[0017] When the database server receives a query, it determines whether any portion of the query is in a query language other than SQL (e.g. XQuery or XQueryX). For each such portion, the database server parses the portion and compiles the portion into an abstract syntax tree (AST) in an abstract syntax related to the non-SQL query language.
Such ASTs are referred to herein as "non-SQL ASTs" or as AST related to particular query languages, such as XQuery ASTs. The non-SQL AST is then converted into an AST in an abstract syntax related to SQL. Such ASTs are referred to herein as "SQL ASTs." This is repeated for each portion of the query that is in a non-SQL query language (e.g. XQuery or XQueryX). Each portion of the query in the SQL is also compiled into an SQL
AST. The database server then combines all of the ASTs corresponding to each portion of the query.
This combined AST can then be optimized and executed or stored for later execution.
[0018] The techniques described herein apply, at least, to queries that have one or more portions of the query in one or more declarative query languages. Declarative query languages allow one to specify information to be retrieved from a data source without needing to specify how the information is to be retrieved.

2.0 XML DATABASE OPERATIONS

[0019] Some RDBMSs and object-relational database systems (ORDBMS) support "XML" or "XMLType" as a native datatype. Using XMLType, users can store XML
documents in databases via the use of XML tables or XMLType columns of tables.
Furthermore, users can convert their relational data into XMLType views via the use of SQL/XML publishing functions, such as XMLElement, XMLConcat, etc. XQuery can be used in SQL through a function such as XMLQuery, which enables queries on XMLType values. The XMLTable function enables one to convert XML values (possibly from one or more XMLType columns, or values returned from an XQuery) into a virtual relational table.
Consider an example where a table called "purchaseOrder" is an XMLType table with each row storing a purchaseOrder XML document instance. Each XML document instance has contents similar to the following:

<PurchaseOrder>
<ShippingAddress>345, 35 Ave, Berkeley, CA 94613<ShippingAddress>
<items>
<lineitem> <name>XQuery Book</name> <price>46</price> </lineitem>
<lineitem> <name>SQL/XML Guide</name> <price> 78</price> <lineitem>
</items>
</PurchaseOrder>
[0020] The following SQL statement, with XQuery embedded in the XMLQuery function, finds the ShippingAddress of all the purchaseOrder XML document instances which have a purchase item whose price is greater than forty-five:

select xmlquery(for $i in /PurchaseOrder where $i/items/lineitem/price > 45 return $i/ShippingAddress 'passing value(p) returning content) from purchaserOrder p;

[0021] Here is an example of converting the XML document instance into relational tables via XMLTable construct:

select xt.name, xt.price from purchaseOrder p, xmltable(`/PurchaseOrder/items/lineitem' passing value(p) columns name varchar2(20) path `name', price number path price) xt;
3.0 SYSTEM OVERVIEW

[0022] FIG. 1 is a block diagram that depicts a system for efficient evaluation of queries using translation.

[0023] The system illustrated in FIG. 1 includes a database server 150. The database server 150 is a logical machine. The database server 150 includes a non-SQL
parser unit 110a, an SQL parser unit 110b, a compiler unit 120, a translator unit 130, and a further query processing unit 140. Each of the units 110a, 110b, 120, 130, and 140 may be a logical machine. Each logical machine may run on separate physical computing machines or may be running on the same physical computing machine as one or more of the other logical machines. Various embodiments of computers and other physical and logical machines are described in detail below in the section entitled Hardware Overview. In one embodiment, each of the units 110-140 are software units running on one or more processors on one or more computers, and those one or more processors on one or more computers make up the database server 150. The database server 150 may include other software units not described herein. The units 110-140 may all be part of the same software program or may be part of separate software programs. That is, a single software program may perform the functionality of two or more of the units 110-140. Alternatively, a first software program may perform some of the functions for a particular unit 110-140 and a second software program may perform other functions for the particular unit 110-140.

[0024] The non-SQL parser unit 110a takes a non-SQL query, or portion of a query, as input and converts it to a second representation (such as SQL). For example, the non-SQL
parser unit 11 Oa may be an XQuery parser unit 11 Oa that takes as input an XQuery query and converts it into an XQueryX representation. The compiler unit 120 takes a query as input and produces an in-memory representation of the query. For example, the compiler unit 120 may take as input an XQueryX query and compile that into an XQuery AST. In one embodiment, the compiler unit may take as input queries in more than one query language, and queries of each query language are compiled into different formats of in-memory representation. For example, an SQL query may be compiled into an SQL AST, whereas an XQueryX query may be compiled into an XQuery AST. Alternatively, queries in one or more different query languages may be compiled into similar or the same format of in-memory representation. In alternative embodiments, there are separate parser units 110a and 110b and compiler unit 120 for each query language. For example, there maybe an XQuery parser unit 110a and an SQL parser unit 110b.

[0025] The translator unit 130 converts among the various formats of in-memory representations. For example, the translator unit 130 may convert an XQuery AST into an equivalent SQL AST, or vice-versa.

[0026] The further query processing unit 140 takes an in-memory representation as input and provides query optimization, storage, and / or, execution of the query based on the in-memory representation of the query. The further query processing unit 140 may also perform the step of combining one or more in-memory representations of queries or parts of a query and performing query optimization, storage, and / or execution of the query or queries based on the combined in-memory representations.

[0027] The database server 150 is communicatively coupled to a database 160.
The database 160 may be a relational database, an object-oriented database, a file, a repository, or any form of structured data stored on a machine-readable medium. The database server 150 may perform (e.g. using the further query processing unit 140) certain operations required by the query against the database 160 based on the in-memory representations produced by the compiler unit 120, translator unit 130, or further query processing unit 140.
In various embodiments, coupling is accomplished by optical, infrared, or radio signal transmission, direct cabling, wireless networking, local area networks (LANs), wide area networks (WANs), wireless local area networks (WLANs), the Internet, or any appropriate communication mechanism.

4.0 FUNCTIONAL OVERVIEW

[0028] FIG. 2 is a flow diagram that depicts a process for efficient evaluation of queries using translation.

[0029] In step 205, a query is received. The query may be in any appropriate format.
For example, the query may be in SQL, XQuery, or XQueryX. The query may also utilize a language for addressing parts of a markup language document, such as XPath.
The query may contain one or more "portions". Each of the portions may be in the different formats than each of the other portions. For example, in the context of FIG. 1, the database server 150 may receive a query that contains both SQL and XQuery portions:

select xmlquery(for $i in /PurchaseOrder where $i/items/lineitem/price > 45 return $i/ShippingAddress' passing value(p) returning content) from purchaserOrder p;

where the outer portion of the query is in SQL and the portion of the query inside the xmlquery(...) is in XQuery. The query may also be in a single format.

[0030] In step 207, the query is processed in order to detect whether there are portions of the query in one or more query languages. Once the portions of the query are detected in step 207, then checks are performed to determine whether the query contains XQuery (step 210) or SQL (step 230). In other embodiments, other checks would be performed to determine whether the query contained statements in other particular query languages (e.g.

XQueryX) and steps similar to those for XQuery (steps 210-225) or SQL (steps 230-245) would be performed for queries in each of those other query languages.

[0031] In step 210, a check is performed to determine whether the query contains XQuery. Detecting that a query contains operations to be performed in XQuery may include searching for and finding an XQuery indicator or function call. For example, the non-SQL
parser unit 110a may parse the query and detect an XMLQuery function and thereby determine that the query contained within the parentheses is in XQuery format.
In various embodiments, step 210 also includes determining whether the query contains XQueryX or XPath and the subsequent steps 220-225 are performed on any XQueryX or XPath queries or subqueries that are found.

[0032] If the query contains no XQuery, then step 242 is performed. Step 242 is described below. Alternatively, if the query does not contain XQuery or SQL
statements and, moreover, contains only elements that are not recognizable by the database server 150, then a message may be sent to the query submitter or a system administrator indicating that the format of the query is not recognizable.

[0033] If the query does contain XQuery, then the XQuery portion of the query is parsed and compiled into an XQuery AST in step 220. The XQuery portion of the query may be parsed using any appropriate parser. The parsed XQuery is then compiled into an in-memory representation of the XQuery. The in-memory representation of the XQuery portion of the query is formatted in a way that is compatible with the later steps. The techniques described herein are not limited to any particular in-memory representation. The examples herein will use an abstract syntax tree. ASTs capture the semantic meanings of queries while removing syntactic details.

[0034] The AST for the portion of the query in XQuery will be in a particular abstract syntax related to XQuery. In step 225, the XQuery AST for the XQuery portion of the query is converted into an equivalent SQL AST in a particular abstract syntax related to SQL. Each term in the AST is converted in turn. In one embodiment, the elements at the "leaves" or deepest level of the AST are converted from the XQuery-related abstract syntax to the SQL-related abstract syntax. Then the nodes on the next lowest level are converted. The "higher"
levels of the AST are processed one level at a time and from the bottom up.
Alternatively, one or more of the leaves of the AST are converted and the parent nodes of these leaves are converted once all of their child nodes in the AST are converted. Details of what XQuery statements are converted to which SQL statements are given in the section entitled XQuery Translation and in `706. Once the XQuery AST has been converted into an equivalent SQL
AST, then the equivalent SQL AST may later be combined with any other SQL ASTs in step 245 (described below).

[0035] After step 225 is performed, then, in step 242, a check is performed to determine whether any other portions of the query need to be processed. If there are more portions of the query to process, then step 207 is performed. Alternatively, if there are more portions of the query to process, steps 210 or 230 maybe performed. If there are no more portions of the query to process, then step 245 is performed. In general, any portion of the original query that is in a language supported by the database server 150 maybe processed.
For example, if a query has a first XQuery portion, a second XQuery portion, and an SQL
portion, then steps 210-225 are be performed for each of the first XQuery portion and the second XQuery portions and steps 230-240 are performed for the SQL portion of the query. The compiled portions of the query are then combined (described below with respect to steps 245-255).

[00361 In step 230, a check is performed to determine whether the query contains SQL.
For example, the SQL parser unit 11 Ob may parse the query (in step 207) and detect an SQL
portion of the query and thereby determine that the query contains SQL (in step 230). If the query does not contain SQL, then step 242 is performed. Step 242 is described above. If the query does contain SQL, then in step 240, the SQL portions of the query are parsed and compiled into an SQL AST. Various embodiments of parsing and compiling queries in XQuery are given above in relation to step 220. Techniques for parsing and compiling queries in SQL (or any query language) are similar to those described for XQuery but may use an SQL parser and SQL syntax rules for the parsing. The resulting in-memory representation, such as an SQL AST, contains the semantics of the SQL portion of the query in an abstract syntax related to SQL.

[00371 After step 240 is performed, then, in step 242, a check is performed to determine whether any other portions of the query need to be processed. Once any XQuery portions of the query have been parsed, compiled, and converted to an SQL AST and any SQL
portions of the query have been parsed and compiled into an SQL AST, then the ASTs representing the different portions of the query maybe combined in step 245. Combining the ASTs may comprise forming a new AST for the query and pointing to or copying the ASTs representing the different portions of the query. Alternatively, one or more of the ASTs representing the different portions of the query may point to or incorporate one or more of the other ASTs representing the different portions of the query. The combined AST is in an SQL-related abstract syntax and represents the entire query. For example, in the context of FIG. 1, the further query processing unit 140 combines the ASTs produced in steps 225 and 240.

[00381 In step 250, the combined AST is used as a basis for optimization of the query.
Since the entire query is represented in a single abstract syntax, any appropriate single-abstract-syntax optimization technique maybe used to optimize the query. In step 255 the optimized query is executed or stored for later execution.

[0039] Various embodiments of the techniques described herein enable a query that contains subqueries in multiple query languages to be stored or executed based on an AST in a single abstract syntax. One of the benefits of embodiments of these techniques is that, since the AST that represents the query is in a single abstract syntax, the entire query may be optimized as if it were originally written in a single query language.

[0040] Various embodiments of the techniques described herein enable a query to arrive in a first query language (e.g. XQuery) and for the query to be processed and translated into an equivalent form of a second query language (e.g. SQL). This may be beneficial when the processing or optimization techniques available for the second query language are in some way preferable to those of the first query language. For example, consider a system that does not have XQuery optimizers, but does have SQL query optimizers. Using the techniques described herein, if a query arrives in the XQuery format, the query may be processed and an SQL AST may be generated. The SQL AST may then be optimized using SQL query optimizers. The optimized, equivalent query (as represented by the optimized, SQL AST) may then be executed in place of the original XQuery, thereby saving query processing time.
[0041] In the examples discussed herein, the database server 150 receives the non-SQL
query or portions of a query and converts them to SQL. The techniques described herein, however, are not limited to such embodiments. For example, in other embodiments, a middle-tier server that acts as middleware between a database application and a database server 150 may perform the conversions as described herein. The converted SQL
query would then be sent to and executed on the database server 150.

[0042] The techniques described herein are presented in terms of a conversion from one abstract syntax to another. In other embodiments of the techniques described herein, the portion of a query in a first syntax (e.g. XQuery) maybe converted to a second syntax (e.g.
SQL), before it is compiled into an abstract syntax.
5.0 XQUERY TRANSLATION

[0043] As noted above, the techniques described herein provide for converting an AST in one abstract syntax into an AST of another abstract syntax. Below is a description of the conversion between XQuery ASTs and SQL ASTs.

5.1. TRANSLATION OF EXPRESSIONS

[0044] XQuery expressions are rewritten to their equivalent SQL expressions.
For instance a literal in XQuery gets mapped to a string or numeric literal (OPNTSTR) in SQL.
The following table lists the mapping of general expressions in to their SQL
equivalents.
Section 5.2 describes the mapping of individual XQuery operators and functions to SQL
operators.

5.1.1. EFFECTIVE BOOLEAN VALUE

[0045] The effective Boolean value (EFB) of a sequence is computed implicitly during processing of the following types of expressions:

= Logical expressions (and, or) = The fn:not function = The WHERE clause of a FLWOR expression = Certain types of predicates, such as a[b]
= Conditional expressions (if) = Quantified expressions (some, every) [0046] The effective Boolean value returns "false" in the following cases.
Otherwise it returns "true".

= An empty sequence = The Boolean value false = A zero-length value of type xs:string or xdt:untypedAtomic = A numeric value that is equal to zero = The xs:double or xs:float value NaN
[0047] Example rule: To map EFB( expr) to SQL, the following rules are applied:
i) Translate expr to its SQL equivalent.
ii) If the static type of expr indicates that the quantifier is 1 (i.e.
singleton expr) then i. If the type is Boolean and the SQL type is also Boolean (i.e. it is mapped to one of the logical operators), then nothing to do ii. If the type is Boolean and SQL type is number, then add IS NOT
NULL (case <expr> when 1 then 1 else null) iii. If the type is numeric then add IS NOT NULL (case <expr> when 0 then 0 when NaN then 0 else 1) iv. If the type is any other scalar, then add IS NOT NULL( expr) iii) If the static type of expr indicates that the quantifier is * or + then i. If the type is number or Boolean - convert the collection to a subquery and add the following subquery expression on top - EXISTS(select from (select count(*) cnt, sum(value(p))sm from table(xmisequence(<expr>)) x where (x.cnt = 1 and x.sm = 1) or (x.cnt > 1)) ii. For all other types map it to IS NOT NULL (<expr>) in case the <expr> is a non-subquery operand or to EXISTS( <expr>) if expr is an SQL subquery.

5.1.2. ATOMIZATION OF VALUES

[0048] Atomization and conversion to scalar values are required in a number of places.
Atomization is determined by the static type analysis. In XQuery this is represented using the fn:data() function.

[0049] The result of fn:data() is the sequence of atomic values produced by applying the following rules to each item in the input sequence:

= If the item is an atomic value, it is returned.
= If the item is a node, its typed value is returned.
[0050] Atomization is used in processing the following types of expressions:
= Arithmetic expressions = Comparison expressions = Function calls and returns = Cast expressions = Computed element and attribute constructors.
[0051] When rewriting atomization, if the underlying SQL object is an XMLType (or node) an OPTXT2SQLT operator is used to convert the node value to the equivalent SQL
type.

[0052] Example rule: Whenever atomization is required and the underlying SQL
object's type is not scalar, add the OPTXT2SQLT operator with the desired type.

takes the input XML and the SQL type to convert the result to and atomizes the value to the result.

5.1.3. LITERAL EXPRESSIONS

[0053] Literal Expressions in XQuery are translated to SQL literals. Boolean are mapped as numbers 0 & 1. For example, the expression "1" is mapped to STRTCONS with value "1". Numeric literals are mapped to SQL literals of type NUMBER and string literals are mapped to SQL literals with type VARCHAR2.

[0054] Example rule: Map XQuery literals to SQL literals with the appropriate type information. In case of a string literal, if it is > 4K, then map to a set of concat operations with an empty_clob in the beginning.

Big_String_Literal -> empty_clob() 11 4kliteral l 11 4kliteral2 ... 11 literaln OPTTCA(OPTTCA(OPTTCA(OPTECLOB, literal1), literal2), ... literaln) 5.1.4. BUILT-IN TYPE CONSTRUCTOR, CAST EXPRESSIONS

[0055] The XQuery CAST and type constructors are mapped to SQL TO_CHAR, TO NUMBER and XMLCast. XMLCast is used for casting explicitly to user-defined simple types (e.g. hatsize) and for converting simple scalar types to XML values (for passing into functions etc..).

[00561 The following table explains the mapping of XML datatypes to their SQL
equivalents. The constructor column is used to check the validity of the value (e.g. byte may be < 127 and greater than -128). The constructor may not be needed if the static type indicates that the expression is of the right type (or a subtype). Constant folding may be performed to eliminate the constructor.

[00571 Example rule: Check datatype to which to cast. If the input is a constant, then check the bounds and raise an error if appropriate. Else if it is a numeric datatype add the TO NUMBER and the bounds check. If it is a date type, convert it to the TIMESTAMP TZ
with the appropriate format.

XML Datatype SQL Data Type Example SQL conversion xs:integer NUMBER TO NUMBER(<ex r>) xs:positiveInteger NUMBER OPTXMLCNV(TO_NUMBER( <expr>),QMTXT_POSITIVEINT
EGER) xs:negativelnteger NUMBER OPTXMLCNV(TO_NUMBER( <expr>),QMTXT NEGATIVEIN
TEGER) xs:nonPositivelnteger NUMBER OPTXMLCNV(TO_NUMBER( <expr>),QMTXT_NONPOSITIV
EINTEGER) xs:nonNegativelnteger NUMBER OPTXMLCNV(TO_NUMBER( <expr>),QMTXT_NONNEGATI
VEINTEGER
xs:int NUMBER OPTXMLCNV(TO_NUMBER( <ex r>),QMTXT INT) xs:short NUMBER OPTXMLCNV(TO_NUMBER( <ex r>),QMTXT SHORT) xs:double BINARY DOUBLE TO BINARY DOUBLE <ex r>
xs:float BINARY FLOAT TO BINARY FLOAR <ex r>
xs:byte NUMBER OPTXMLCNV(TO_NUMBER( <ex r>),QMTXT BYTE) xs:string VARCHAR2/ TO_CHAR(<expr>) CLOG
xs:unsignedByte NUMBER OPTXMLCNV(TO_NUMBER( <expr>),QMTXT_UNSIGNEDBY
TE) xs:unsignedShort NUMBER OPTXMLCNV(TO_NUMBER( <ex r> ,QMTXT UNSIGNEDSH

ORT) xs:unsignedInt NUMBER OPTXMLCNV(TO NUMBER( <expr>),QMTXT_UNSIGNEDIN
T) xs:long NUMBER OPTXMLCNV(TO_NUMBER( <expr> ,QMTXT LONG
xs:unsignedLong NUMBER OPTXMLCNV(TO_NUMBER( <expr>),QMTXT_UNSIGNEDLO
NG) xs:decimal NUMBER TO NUMBER(<ex r>) xs:Boolean NUMBER Case <expr> when null then 0 when 0 then 0 when NaN then 0 else 1 xs:base64Binary RAW/BLOB OPTXMLCNV(<expr>, xs:hexBinary RAW/BLOB OPTXMLCNV(<expr>, MTXT HEXBINARY
xs:dateTime TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT DATETIMETZ
xs:time TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT TIMETZ
xs:date TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT DATETZ
xs:gday TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT GDAYTZ) xs:gMonth TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT GMONTHTZ
xs:GYearMonth TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT GYEARMONTHTZ) xs:GMonthDay TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT GMONTHDAYTZ) xs:gYear TIMESTAMP_TZ OPTXMLCNV(<expr>, QMTXT GYEARTZ
5.1.5. SEQUENCE CONSTRUCTORS

[0058] XMLConcat() is used for concatenating sequences. However, XML
constructors are needed for converting scalar values to XMLType. For example, the sequence constructor (1, 2, 3) is mapped to XMLConcat( XMLCast(1), XMLCast(2), XMLCast(3)).

[0059] Example rule: Iterate over all the input of the sequence constructor.
For each expression, convert it into its SQL equivalent. If the result type is a simple scalar, add an XMLCast operand on top of it. Create an XMLConcat() to concatenate the result into a single XMLType.

5.1.6. RANGE EXPRESSION

[0060] Range expressions may be handled by using an operator OPTXNRNGO. See the range operator in operator listing. This range operator returns an XMLType containing a list of integers.

[0061] Example rule: Map to the OPTXNRNG operator.

5.1.7. SET EXPRESSIONS (UNION, INTERSECT, MINUS, EXCEPT) [0062] Set operations are transformed to value operation in case of unions on values. If XMLType(Seq) may be mappable to SQL UNION, INTERSECT, MINUS, and / or EXCEPT constructs, and doing so may eliminate duplicates among nodes.

[0063] Example rule: Map the set expressions to the SQL UNION, INTERSECT, MINUS, and EXCEPT constructs. The order/map method is used on the XMLType to perform node level operations.

5.1.8. ARITHMETIC EXPRESSIONS

[0064] Static typing ensures that input may be numerical values or atomization and type casts are added. The translation simply converts it to the SQL arithmetic expression.

[0065] Example rule: Convert the XQuery arithmetic expression to its SQL
equivalent.
See operators table for detailed mapping of the various operators.

5.1.9. VALUE COMPARISON EXPRESSIONS

[0066] Static typing ensures that input may be scalar values or atomization and type casts are added. The translation simply converts it to the SQL comparison expression.

[0067] Example rule: Convert the XQuery comparison expression to its SQL
equivalent.
See operators table for detailed mapping of the various operators.

5.1.10. GENERAL COMPARISON EXPRESSIONS

[0068] Static typechecking may convert any general comparison expression to a value comparison if possible. If both sides are non collection values and the types are compatible they are converted to value comparison. For example, the expression, $po/PoNo = 21 may be converted to $po/PoNo eq 21 if the type quantifier of $po/PoNo is not a collection (*, +
etc.).

[0069] If the static type information for both the sides are known compatible scalar types (e.g. integer *) they are mapped to EXISTS subqueries. For example, $po//Lineltems = 21 may get mapped to EXISTS(select * from TABLE(XMLSEQUENCE( <xpath-conv-for $po//Lineltems>) ) x where value(x) = 21).

[0070] If the static type is unknown (untypedAtomic *) then the equivalent general comparison operator is used.

[0071] Example rule: Given exprl GCOMP expr2, check the compatibility of the static types of the two expressions.

= If the type of both sides is untypedAtomic, they are both converted to a VARCHAR2 type.
= If one side is untypedAtomic and the other is a numeric value, then the untypedAtomic value is converted to the BINARY DOUBLE.
[0072] Now check the quantifier for the type (e.g. quantifier (integer *) is *). For example:

= If the quantifier for both sides is a singleton (empty or ?) then map the GCOMP to the SQL value comparison operator.
= If exprl quantifier type is a collection (* or +) and expr2 quantifier is a singleton then map to EXISTS( select null from TABLE(XMLSEQUENCE( exprl ) x Where value(x) VCOMP expr2) (VCOMP is the value comparison equivalent) e.g. $po//LineItemNo < 20 becomes (assuming the static type of $po//LineItemNo is integer*) EXISTS( select null from TABLE(XMLSEQUENCE( $po//LineItemNo) x Where value(x) < 20 ) = If expr2 quantifier type is a collection (* or +) and exprl quantifier is a singleton then map to EXISTS( select null from TABLE(XMLSEQUENCE( expr2 ) x Where exprl VCOMP value(x)) (VCOMP is the value comparison equivalent) e.g. 20 < $po//LineItemNo becomes (assuming the static type of $po//LineItemNo is integer*) EXISTS( select null from TABLE(XMLSEQUENCE( $po//LineItemNo ) x Where 20 < value(x) ) = If both expressions are collections then map the expression to EXISTS( select null from TABLE(XMLSEQUENCE( exprl ) x Where EXISTS (select null from TABLE(XMLSEQUENCE( expr2 )y Where value(x) VCOMP value(y)) ) e.g. $po1//LineItemNo < $po2//LineItemNo becomes EXISTS( select null from TABLE(XMLSEQUENCE( $pol//LineItemNo ) x Where EXISTS (select null from TABLE(XMLSEQUENCE( $po2//LineItemNo ) y Where value(x) < value(y)) ) 5.1.11. NODE COMPARISON EXPRESSIONS

[0073] Node comparisons are handled by using the order method on XMLType. They are mapped to the SQL value comparison operators.

[0074] Example rule: Map to the SQL value comparison operators as described herein.
5.1.12. ORDER COMPARISON EXPRESSIONS

[0075] Order comparison expressions are used in the FLWOR order by clause.
These are mapped to the SQL order by clause.

[0076] Example rule: Map Order comparison expressions to SQL order by clause expressions.

5.1.13. LOGICAL EXPRESSIONS (AND, OR, NOT) [0077] XML logical expressions are mapped to SQL logical expressions. SQL has valued logic, but empty sequences are mapped to NULL and this works for non-constraint operations. Constraints may be an important issue, since a NULL value from a constraint is treated as matching the constraint.

[0078] Example rule: Map logical expressions to SQL logical expressions (AND, OR). In case when the logical expression appears as a top-level expression (outside of the WHERE
clause or IF clause) then add a CASE Expression to the result. E.g. if the query is the expressions "a < 20 and b > 30", map it to CASE WHEN (a < 20 and b > 30) then 1 else 0.
5.1.14. FLWOR EXPRESSION

[0079] FLWOR expressions are mapped to SQL select expressions. The LET clauses are mapped as common sub expressions in the SQL query. The RHS of the for-clause is mapped to the f oin-clause, the where-clause is mapped to the SQL where-clause and the return-clause is mapped to the SQL select-clause. If node identities are to be preserved in the query, then the query block is marked as NO MERGE.

for <var> in <rhs-exprl>, <var2> in <rhs-expr2>
where <cond-expression>
order by <ol>, <o2>.. <on>
return <ret-expr>

is mapped to select /*+ NO MERGE */ XMLAGG( <sql-ret-expr>
from TABLE(XMLSEQUENCE( <sql-rhs-exprl> ) as "varl"
TABLE(XMLSEQUEATCE( <sql-rhs-expr2> ) as "var2"
where <sql-cond>
order by <sql-ol>, <sql-o2>, .. <sql-on>

[00801 Example 1: Simple FLWOR clause for $1 in (1, 2, 3) where $i > 1 return $i+ 2 is mapped to select xmlagg(XMLCast(XMLCast(value("$i") as number) + 1 as xml)) from table(xmisequence( xmlconcat ( cast (1 as xmltype(sequence)), cast (2 as xmltype(sequence)), cast (3 as xinltype(sequence)))) returning sequence) as where XMLCast(value("$i") as number) > 1;

[00811 Example 2. FLWOR clause with XPath expressions:
for $1 in doc("foo.xml")/PurchaseOrder where $i/PoNo = 21 return <A>{$i}</A>
becomes select xmlagg (XMLElement ("A" , value ("$i")) ) from table(xmisequence( extract ( select extract(Res,'/Contents/*') from resource view where equals_path(res,'/foo.xml') = 1), `/PurchaseOrder'))) "$i"
where XMLCast( OPTXA (value("$i", `/PoNo') as number) = 21 5.1.14.1. LET CLAUSE HANDLING

[00821 A LET clause expression is inlined into the query expression (and marked as common subexpression) if node identities need not be preserved. Otherwise a subquery is created with the LET clause expressions as it's select list. The subquery is marked as non-mergeable to prevent view merging.

[00831 Example with node identities preserved:

for $i in doc("foo.xml")/PurchaseOrder//LineItems let $j := doc("baditems.xml")//BadItems where $i/ItemNo eq $j/ItemNo return ($i, $j/BadItem) becomes select x mlagg (xmlconcat ("$1" , OPTXA'IG ("$j " , ' /BadItem')) ) from (select /*+ NO MERGE */ value("$I") as "$I", (select XMLAgg (OPTXATG (value (x) ) from table(xmisequence( extract ( select extract(Res,'/Contents/*') from resource view where equals ath(res,'/baditems.xml') = 1), `BadItems'))) "x"
as õ$j if from table (xmisequence( OPTXATG
OPTXATG ( select extract(Res,'/Contents/*') from resource view where equals path(res,'/foo.xml') = 1), `/PurchaseOrder'), `//LineItems))) "$i"

where exists( select null from table(xmisequence( OPTXATG("$j",'/ItemNo'))) x where XMLCast(OPTXATG("$I",'/ItemNo')as number) _ XMLCast(x as number));

[00841 Example without preservation of node identities: If node identity preservation is not critical, then the LET clause may be inlined into the expression itself directly. This optimization may be done either by requiring the user to have a pragma specifying that node identities are not essential. This may be also be done implicitly be examining the globally to determine whether any node related operations are used in the query.

for $i in doc("foo.xml")/PurchaseOrder//LineItems let $j := doc("baditems.xml")//BadItems where $i/ItemNo eq $j/ItemNo return $i becomes select xmlagg(value("$i") from table (xmisequence (OPTXATG
OPTXATG
select extract(Res,'/Contents/*') from resource view where equals_path(res,'/foo.xml') = 1), `/PurchaseOrder'), `//LineItems))) "$i"
where exists( select null from table(xmisequence( OPTXATG( (select XMLAgg(OPTXATG(value(x)) from table (xmisequence extract (select extract(Res,'/Contents/*') from resource view where equals_path(res,'/baditems.xml') = 1), `//BadItems'))) "$j"

where XMLCast(OPTXATG("$i",'/ItemNo') as number) =
XMLCast(OPTXATG("$j",'/ItemNo') as number));

[0085] Example technique: Since preventing view merging may adversely affect query performance, the WHERE clause for the FLWOR expression is first searched to see if it includes any of the LET variable. If not, then the LET clause may be evaluated as a result of the FLWOR clause (along with the return).

[0086] For example in the following query, for $i in doc("foo.xml")/PurchaseOrder//LineItems let $j := count(doc("baditems.xnl")//BadItems[ItemNo =
$i/ItemNo]) where $i/ItemNo > 200 return $j $j is often used in the return clause and not in the WHERE clause - so that the WHERE
clause may be evaluated before the LET clause. This query is equivalent to for $j in for $i in doc("foo.xml")/PurchaseOrder//LineItems where $i/ItemNo > 200 return count (doc ("baditems .xnl.") //BadItems [ItemNo = $i/ItemNo]
return $j [0087] Example rules: Normalize Type declarations: If the FOR or LET clause involves any type declaration, check the static type of the expression corresponding to the clause. If it is the same or a subtype of the declared type then ignore the type declaration. If it is a supertype of the declared type, then add a TREAT expression on the expression and map it to SQL. Otherwise raise an error. For <var> <type> := <expr> is normalized to for <var>
TREAT<expr> as <type> and then mapped to SQL.

[0088] Convert all expressions in the FOR, WHERE, LET and RETURN clauses to their SQL equivalent. Map the FOR clause expressions to SQL FROM clauses (joins). If node identity need not be preserved, then inline the LET clause expression wherever it is referenced. For example:

For <varl> in <exprl>, <var2> in <expr2>

let <var3> in <expr3>
where <cond-referencing-var3>, return <expr4>

is mapped to select xmlagg(<expr4>) /* inline var3 references with expr3 */
from table(xmlsequence( <exprl> ) as "varl"
table (xmisequence ( <expr2>) as "var2" , ...
where <cond-referencing-var3> /* inline var3 references with expr3 */

[00891 Otherwise, if node identity is to be preserved, examine the LET clauses in the FLWOR expression to determine if they may be evaluated before the WHERE
clause, by checking whether the variables defined in the LET clauses are used in the WHERE clause.
Add a NO_MERGE hint on the inner query block to indicate that view merging should not happen.

[00901 If the LET clause needs to be evaluated before the WHERE clause, map the LET
clause expression as a select list subquery and map the WHERE clause to the SQL WHERE
clause of the outer query block. For example:

For <varl> in <exprl>, <var2> in <expr2>
let <var3> in <expr3>
where <cond-referencing-var3>
return <expr4>

is mapped to select xmlagg( <expr4>
from (select /*+ NO MERGE */
value("varl") as "varl", value("var2") as "var2", <expr3> as "var3"
from table(xmisequence( <exprl> ) as "varl"
table (xmisequence( <expr2>) as "var2",...
where <cond-referencing-var3>

[00911 If the LET clause need NOT be evaluated before the WHERE clause, map the LET clause expression as a select list subquery, but map the WHERE clause to the SQL
WHERE clause of the inner query block. For example:

For <varl> in <exprl>, <var2> in <expr2>

let <var3> in <expr3>
where <cond-not-referencing-var3>
return <expr4-refecencing-var3>

is mapped to select xmlagg(<expr4-referencing-var3>
from (select /*+ NO MERGE */
value ("van") as "varl", value("var2") as "var2", <expr3> as "var3"
from table (xnl.sequence ( <exprl> as "varl"
table (milsequence ( <expr2>) as "var2",...
where <cond-referencing-var3>

5.1.15. PATH EXPRESSIONS

[0092] Path expressions are mapped to SQL expressions. An operator OPTXATG is used to extract out individual nodes in the path expression. It represents a single step traversal.
Static typechecking is used to optimize some of the path expression conversion.

5.1.15.1. PATH STEPS WITH NAME TEST

[0093] This represents the standard XPath 1.0 path expressions. Simple path traversals with name tests are rewritten to the OPTXATG operator. Static type checking is used to figure out the type and cardinality of the various steps. This is later used for translation.
Predicates are mapped to relational WHERE clauses after normalization. General comparisons involving collection elements are mapped to subqueries involving value comparisons. If there is no static type checking information available, then each step is assumed to produce an untypedAny.

[0094] OPTXATGs are further optimized (or collapsed) based on the input arguments.
For example:

$i/PurchaseOrder/PoNo is mapped to OPTXATG(OPTXATG($i, `PurchaseOrder'), `PoNo').

[0095] OPTXATGs are further optimized (or collapsed) based on the input arguments.
For example the expression, (<A><B>33</B></A>)/A/B
is mapped to OPTXATG(OPTXATG(XMLElement("A", XMLElement(`B",33)), `A'), `B') [0096] The XATG that extracts A and the XMLElement() creating A are collapsed and the result is XMLElement("B", 333) which corresponds to the result <B>33<IB>.

[0097] In a second example, path predicates are mapped to relational predicates:
$i/PurchaseOrder/PoNo eq 21 gets mapped to XMLCast( OPTXATG( OPTXATG ( $i , `PurchaseOrder'), `PoNo') as number) = 21 [0098] The previous mapping is only valid if during static type checking the type of PoNo is an atomic value that may be cast to a number. If there is no schema information available, then the static type information may only yield the fact that PoNo is of xs:anyType. The XMLCast in this case may perform atomization of the values and raise error if the input (PoNo) is not a single atomic value or element castable to a number.

[0099] If the general comparison operator (=) was used and the type information is not known, then it has to be treated as a collection comparison. In this case, the path predicate is rewritten to a TABLE subquery using the value comparison. For example:
$i/PurchaseOrder/PoNo = 21 gets mapped to EXISTS( select null from table (xmisequence(OPTXATG( OPIXAIG ( $i `PurchaseOrder'), `PoNo')))) x where XMLCast ( value (x) as number) = 21 [0100] A path expression that involves predicates in the path step itself is also handled in a similar fashion. For example:

$i/PurchaseOrder[PoNo eq 21]
gets mapped to select OPTXATG( $i, `PurchaseOrder') from dual where XMLCast( OPTXATG( OPTXATG ( $i , `PurchaseOrder'), `PoNo') as number) = 21 and in the case of general comparison with no schema inputs, $i/PurchaseOrder[PoNo = 21]

gets mapped to select XNLAGG (value (v) ) from table(xmilsequence(OPTXATG($I, `PurchaseOrder')) v where exists( select null from table (xmisequence (OPTXATG ( value ($v) , `PoNo'))) x where XME Cast (value (x) as number) = 21) ;

5.1.15.2. PATH STEPS WITH KIND TEST

[0101] Kind test involve checking the type of the node (e.g. text(), processing-instruction() etc.). XQuery adds more sets of type check such as the name and schema type of the node. For example, $i/element(foo, bar) indicates that the child element named foo of type bar needs to be extracted. The OPTXATG operator is enhanced to take in a node type in addition to the node name for extraction.

5.1.15.3. PATH STEPS WITH FILTER EXPRESSIONS

[0102] Filter expressions are handled by normalizing the path expression and pushing the path expression into the context node. For example, $i/PurchaseOrder/(for $j in LineItems return count($j/Orders) may be normalized into (for $j in $i/PurchaseOrder/LineItems return count($j/Orders)).

[01031 Example rule: For each step of the path expression map it to an SQL
operator as follows:

a) If the step is a name test, then map it to the OPTXATG operator. <expr>
<step>
<QName-or-wildcard> maps to OPTXATG(<expr>, <step>, <localname>, <namespace>) b) If the step is a kind test, then map it to the OPTXATG operator with type information <expr> <step> <type> is mapped to OPTXATG( <expr> , <step>, <type> ) c) If the step is a filter step, then normalize the expression as follows -<expr>
<step> <filterexpr> is normalized to (for $m in <expr> return <filterexpr>
with the context node in the filter expr changed to $m. This is then rewritten to SQL.
[01041 For example, $i/PurchaseOrder/(for $j in Lineltems return count($j/Orders)) is nornialized into for $m in $i/PurchaseOrder return (for $j in $m/LineItems return count($j/Orders)) and then mapped to SQL.

[01051 For predicates in the path expression, the static type of the expression containing the predicate may be checked as followed:

a) If the static type indicates that the expression results in a collection (quantifier =
or +), then create a subquery with the expression and map the predicate to the WHERE clause.
b) Else if the static type indicates that the expression results in a singleton node, map to a 5.1.16. CONDITIONAL EXPRESSIONS

[01061 If-then-else expressions are mapped to the SQL CASE WHEN Expressions.
[01071 Example rule: Given if <exprl > then <expr2> else <expr3>. Add the effective Boolean value operator to exprl if necessary (as determined by the static type checking), and map the expression to CASE WHEN <exprl > then <expr2> else <expr3>.

5.1.17. QUANTIFIED EXPRESSIONS

[01081 Quantified expressions may be mapped into SQL EXISTS clauses. For example to find all purchaseorders where at least one of the lineitem number is present in the bad items list, for $I in ora:view("po TAB")//PurchaseOrder where some $j in $i//LTneItem satisfies for $k in ora:view("bad items") where $k//ItemNo =
$j/ItemNo return $k, where "ora:viewQ" is an XQuery function that returns the data from a relation table in XML
form, may be mapped to select value("$I") from `Apo TAB" "$I"
where exists( select( select "$k"
from (select value(p) AA$k" from "bad items" p) where OPTXATG("$k",'//ItemNo') _ OPTXATG("$j",'/ItemNo') from select value("$j") as "$j"
from table(xmisequence(OPTXATG(value("$I"), A//LineItem'))) %A$jif 5.1.18. DIRECT ELEMENT CONSTRUCTOR EXPRESSION

[01091 Element constructors are mapped to XMLElement() operator. Attributes inside the element are mapped to the XMLAttributes() clause in the XMLElement( operator.
[01101 Example, <A> { "21" } </A> is mapped to XMLelement(NAME "A", 121') and <A b="21">22</A> is mapped to XMLElement(NAME "A", XMLAttributes(21 as "b"), '22') [01111 Example rule: Map any element constructor to XMLElement() using XMLAttributes() for attribute construction.

5.1.19. COMPUTED ELEMENT CONSTRUCTOR EXPRESSION

[01121 Computed element constructor is also mapped to XMLElement(). Any computed attribute constructor that is a child of the element constructor is optimized and mapped to the XMLAttributes( clause. The XMLElement() operator is relaxed to allow dynamic element names. The operator may also be modified to make free standing attribute children to become the element's attributes.

element {"a" } { "21" }
is mapped to XMLElement(NAME EXPR `a', 121') and element {"a" } {
Attribute b { "21" }
} {22}

is mapped to XMLElement(NAME EXPR `a', XMLAttributes(121' as "a"), 122') [01131 Example rule: Map any computed element constructor to XMLElement() and map child attribute constructors to XMLAttribute().

5.1.20. COMPUTED ATTRIBUTE CONSTRUCTOR EXPRESSION

[01141 Attribute constructors are handled by allowing the XMLAttribute() as a top level SQL function.

Attribute "a" { "21" } </A>
is mapped to XMLAttribute(21 as "a") [01151 Example rule: Map Attribute constructors to XMLAttribute.

5.1.21. OTHER XML CONSTRUCTION EXPRESSIONS

[0116] Example rule: The XML constructors are mapped to the equivalent SQL/XML
standard functions.

XMLComment OPTXMLCOM
XMLProcessin Instruction OPTXMLPI
CDataSection OPTXMLCDATA
ComputedElemConstructor OPTXMLELEM
Com utedAttributeConstructor OPTXMLATTR
ComputedDocumentConstructor OPTXMLROOT
Com utedTextConstructor OPTXMLTXT

5.1.22. TYPESWITCH EXPRESSION

[0117] Typeswitch expressions are similar to if-then-else except that they switch on the type of the input. The typechecking may be performed using an SQL operator OPTXTYPCHK that checks the XQuery type of the input returning 1 if the type matches. If the static type information of the expression is known the typeswitch may be optimized away completely. The OPTXTYPCHK operator may be optimized away for most of the cases where the static type check information may optimize the type checking.

[0118] Example rule: Map Typeswitch to Case expression and use the OPTXTYPCHK
to check the type of the input. Given typeswitch <expr>
case <varl> as <typel> return <exprl>
case <var2> as <type2> return <expr2>
default <exprn>

[0119] Check the static type of <expr>. Let this be etype. Now for each Case expression match the etype with the type-i in the Case expression. If the two types are the same or etype is a subtype of type-i, then optimize the typeswtich expression away and return the SQL
equivalent of expr-i. If type-i is a subtype of etype then map the entire typeswitch expression to the SQL expression of the form Case when OPTXTYPCHK(<expr>, <typel>) = 1 then <exprl>

When OPTXTYPCHK(<expr>, <type2>) = 1 then <expr2>

else <exprn>

[0120] If no type-i is in the type hierarchy of etype then return the SQL
equivalent of the default expression exprn.

5.1.23. INSTANCEOF EXPRESSION

[0121] InstanceOf expression may be evaluated using the OPTXTYPCHK operator and may be optimized using the static type of the input expression.

[0122] Example rule: Given <exprl > instanceOf <typel >. Check if the static type of <exprl> is the same or a subtype of <typel>. If so, then remove the expression. If the static type is a supertype of typel then map to OPTXTYPCHK( <exp 1 >, <typel > ).
Else it is an error.

5.1.24. CASTABLE EXPRESSION

[0123] Castable expressions are used to check if the input is castable to the given form.
They may be mapped to SQL using an OPTCASTABLE operator that may be used to determine if the expression is castable to the other type. Note that this expression may be removed if the static type of the input is the same or a subtype of the input.

[0124] Example rule: Map <expr> castable as <type> is mapped to OPTXTYPCHK(<expr>, <type>) 5.1.25. TREAT EXPRESSION

[0125] Treat expressions are mapped to Case expressions.

[0126] Example rule: Map treat <expr> as <type> to CASE WHEN OPTXTYPCHK( <expr>, <type>) = 1 then <expr> else error() end.

5.1.26. VALIDATE EXPRESSION

[0127] Validate expressions are mapped to the XMLValidate() function. The XMLValidate() is an SQL operator that takes in a schema type (local or global) and returns the validated XML value back or an error.

[0128] Example rule: Map validate <type> <expr> to XMLValidate(<expr>, <type>) [0129] Validate expressions may also be mapped to an XMLIsValid() function.
5.1.27. AGGREGATE EXPRESSION

[0130] XQuery allows aggregates to be present anywhere in the query. This is not directly supported by SQL. For example, the following XQuery returns all purchaseorders that have more than 21 lineitems in them.

for $i in doc("Pa.xml") where count($i/PurchaseOrder/LineItems) > 21 return $i [0131] Aggregates are rewritten using a subquery to compute the aggregate.
select x.res from (select res from resource view where equals ath(res,'Po.xml') = 1)-x where -select count(value(z)) from table(xmisequence(OPTXATG(OPTXATG(x.res ,`PurchaseOrder'), `LineItems'))) z ) > 21;
[0132] Example rule: When mapping Functions & Operators (F&O) to SQL
expressions, if the F&O is an aggregate then map it to an SQL Subquery. Map agg-func (<expr>) to (select sql-agg-func(value(p)) from table(xmisequence(<expr>)) p) .

5.1.28. POLYMORPHIC OPERATOR

[0133] Since XQuery allows overloading of arithmetic and comparison function to handle a variety of datatypes, the mapping to an SQL operator may vary depending on the run-time input types of the operands. XQuery operators utilizing such overloading are called "polymorphic operators."

[0134] For example, consider, the following XQuery expression:
declare $b xs:boolean external;

(if ($b) then 3.3 else xs:date("2001-08-25") ) +

(if ($b) then 44 else xdt:yearMonthDuration("P5YOM") [0135] Depending on the value at run time for the external variable $b, the addition in XQuery can be translated to decimal addition (in this case, it adds decimal value 3.3 and 44) or can be translated to date addition with yearMonthDuration (in this case, it adds five years and zero months to the date '2001-08-25' which yields the date '2006-08-25').

[0136] Therefore, the determination as to whether this expression is mapped to the SQL
decimal operator or SQL date addition operator may only be made at run time.
To support this, the techniques described herein map arithmetic expressions, whose input data type is polymorphic as determined from static type check, into polymorphic SQL
arithmetic operators. A polymorphic SQL arithmetic operator can dispatch to the appropriate SQL
arithmetic operator at run time depending on the run time input types.

[0137] Similar translations are used for polymorphic XQuery comparison functions as well. Polymorphic XQuery comparison functions are mapped to polymorphic SQL
value comparison operators.

[0138] As noted above, it may be beneficial to use polymorphic operator translation if the input types may vary during XQuery compile time. Furthermore, non-polymorphic XQuery expressions, such as 3.3 + 44, may still be directly translated it into non-polymorphic SQL
expressions, e.g. using SQL decimal addition operators, instead of the polymorphic SQL
operators.

5.1.29. XQUERY USER-DEFINED AND EXTERNAL FUNCTIONS

[0139] XQuery supports user-defined functions written in XQuery and external functions whose implementation is outside of the XQuery environment. For example, the body of a function may be written in a programming language such as the Java programming language.
[0140] User-defined XQuery functions may be translated into Oracle PL/SQL
(Procedural Language/Structured Query Language) functions. This may be performed by translating the body of a user-defined XQuery function from an XQuery expression into a PL/SQL expression. Additionally, an invocation of an XQuery function may be translated into an invocation of a PL/SQL function in SQL.

[0141] The techniques described herein also support external user-defined functions in XQuery. For example, if the body of a function is written in the Java programming language, then the function may be mapped to an equivalent external user-defined function using an SQL external user-defined function written in the target language (for example, a Java user-defined SQL function). Therefore, an external user-defined function in XQuery, implemented in Java, C, PL/SQL, or any other appropriate language, may be translated into a user-defined PL/SQL function, written in Java, C, PL/SQL, or any other appropriate language supported by the SQL system.

5.1.30. XQUERY MODULE

[0142] XQuery supports modules. XQuery modules are fragments of XQuery code that can be independently created and imported or loaded into an XQuery processor.
XQuery modules may be translated into Oracle PL/SQL packages that may be independently created and loaded into the database server.

5.2. MAPPING OF FUNCTIONS & OPERATORS

[01431 The following table illustrates the mapping of XQuery operators and standard functions (F&O) to existing or new SQL operators.

XQuery Operator SQL mapping Optimized Notes Empty sequence returns empty sequence.
NULL on NULL is ok for these cases, And OPTAND since the WHERE clause may not be satisfied.
Or OPTOR -same Optimization in case when General Comparison may be normalized to value comparison. May be translated to polymorphic SQL operator. Maybe translated to SQL exists subquery with value comparisons as illustrated in section 5.1.10 > OPTXGT OPTTGT General Comparison Expression.
< OPTXLT OPTTLT -same->= OPTXGE OPTTGE -same-<= OPTXLE OPTTLE -same-OPTXEQ OPTTEQ -same-OPTXNE OPTTNE -same-Also add ERROR_ON_NULL(LHS) in case the left hand side (LHS) is NULLABLE (e.g. optional element/attribute) $i/b < 20 is mapped to i.b < 20 and error_on_null(i.b) OPTTLT if i.b is mapped to a nullable value.
Empty sequence returns empty sequence.
NULL on NULL is ok for these cases, since the WHERE clause may not be satisfied. May be translated to polymorphic OPTTGT SQL operator.
eq OPTTEQ -same-ne OPTTNE -same-le OPTTLE -same-ge OPTTGE -same-node is OPTTEQ Node operation >> OPTTGT -same-, << OPTTLT

range OPTXNRNG Ran e o erator If adding map or order method on XMLType(Seq), then may reuse the regular union, OPTXUJ OPTTUN UNION/INTERSECT etc.

intersect OPTXINTR OPTTIS -same-except OPTXEXC OPTTMI -same-Add TONUMBERO on non-char inputs.
May be translated to polymorphic SQL
+ OPTTAD operator.
OPTTSU -same-mult OPTTMU -same--same- -INF, +INF are handled by binary_float operators.
May cast LHS or RHS to binary_float or binary_double if the XMLSchema datatype is div OPTTDI float/double.
OPTTTR, idiv OPTTDI truncate div returns integer division unary + - Ignored unary - OPTTNG
or the divisor is positive or negative zero (0), or both, the result is NaN -mod OPTTMO Return 0 if the divisor is 0.
cast functions See Datat e Mapping Node Functions fn:nodenam e OPTXNNAME XPath operators fn: strip OPTXSTRING String conversion This is an SQL operator which does fn:data OPTXT2SQLT atomization.
fn:base-uri OPTXBURI
Special Function to access document URI for fn:document docs. Either part of the XMLType or translate -un OPTXDOCURI it to access the ANY PATH of resource view Error Functions dbms_xquery.rai fn:error seError dbms_Xquery.tra fn:trace() ceo Math functions fn:abs OPTTAB
fn:ceiling OPTTCE
fn:floor OPTTFL
May add 0.5 and use floor: May normalize in round OPTTFL(a+0.5) XQuery to be xf:floor a+0.5 round-half- OPTXFLHE

to-even String functions fn:codepoint s-to-string - NLS input needed fn: string-to-code oint - NLS input needed May be equivalent to having in SQL as case lhs < rhs then -1 else case when lhs = rhs then fn:com are - 0 else 1.
May map to multiple OPTTCA (SQL takes fn:concat OPTTCA only 2 args) fn:string- May do with concat operators, but empty join OPTXSJOIN OPTTCO sequence needs to be taken into account.
OPTFL(x+0.5), fn:substring OPTTSS Add ROUND to all input args fn: string-length OPTTLN
fn:normalize -space OPTXSOPR String op erations (normalize space) fn:normalize -unicode OPTXSOPR NLS support fn:upper-case OPTTUP
fn:lower-case OPTTLO
fn:translate OPTTRA
fn:escape-uri OPTXSOPR String function (Escape URI
Substring functions Issue with NULL - XQuery says contains( () , fn:contains OPTTFN "" is true ; Collation support (NLS) needed fn:starts- OPTTSS, Substring with position = 1; collation support with OPTFL x+0.5 needed OPTTSS, Substring with position = LENGTH(arg);
fn:ends-with OPTFL x+0.5 collation support needed fi:substring- OPTTSS, OPTTSS(expr,1, OPTTFN(expr)); collation before OPTTFN support needed fn:substring- OPTTSS, OPTTSS(expr,OPTTFN(expr)); collation after OPTTFN support needed String pattern match s flag matches n option; x option needs to be fn:matches OPTRXLIKE su orted in OPTRXLIKE

SQL replacement string uses number whereas XQuery uses $number to refer to fn:re lace OPTRXRPL subexpressions.
fn:tokenize OPTXSTKN
Boolean Operations fn:true fn:false fn:NOT
Date operations fn:get-years-from-yearMonthD
uration OPTXTRCT
fn:get-months-from-yearMonthD
uration OPTXTRCT
fn: get-days-from-dayTimeDur ation OPTXTRCT
fn:get-hours-from-dayTimeDur ation OPTXTRCT
fn: get-minutes-from-dayTimeDur ation OPTXTRCT
fn:get-seconds-from-dayTimeDur ation OPTXTRCT
fn:get-year-from-dateTime OPTXTRCT
fn: get-month-from-dateTime OPTXTRCT

fn:get-day-from-dateTime OPTXTRCT
fn: get-hours-from-dateTime OPTXTRCT
fn:get-minutes-from-dateTime OPTXTRCT
fn:get-seconds-from-dateTime OPTXTRCT
fn:get-timezone-from-dateTime OPTXTRCT Get only TZ Hour fn:get-year-from-date OPTXTRCT
fn:get-months-from-date OPTXTRCT
fn: get-day-from-date OPTXTRCT
fn:get-timezone-from-date OPTXTRCT Get only TZ Hour fn: get-hour-from-time OPTXTRCT
fn:get-minutes-from-time OPTXTRCT
fn:get-seconds-from-time OPTXTRCT
fn:get-timezone-from-time OPTXTRCT Get only TZ Hour fn:adjust-dateTime- Need a wrapper. May be implemented with to-timezone OPTADD existing functions fn:adjust- Oracle doesn't have date+timezone, only date-to- timestamp+timezone, timezone OPTADD date->timestamp, the time portion is midnight fn:adjust-time-to-timezone OPTADD

fn: subtract-dateTimes-yielding-yearMonthD
uration OPTTSU
fn:subtract-dateTimes-yielding-dayTimeDur ation OPTTSU
QNames fn:resolve-name OPTXQNM Qname functions fn: expanded -name OPTXQNM
fn: get-local-name-from-QName OPTXQNM
fin:get-namespace-uri-from-QName OPTXQNM
fn:get-namepace-uri-for-refix OPTXQNM
fin: get-in-scope-refixes OPTXQNM
fn:resolve-uri OPTXURI
functions on nodes fn:name OPTXNODE Node operators fn:local-name OPTXNODE
fn:namespac e-uri OPTXNODE
fn:number OPTXT2SQLT
fn:lang OPTXNODE
fn:root OPTXNODE
Sequence operations Check sequence cardinality. If static typing fn:zero-or- may find that the occurance is zero or one, one OPTXSOPR ignored then this function is ignored.
fn:one-or- OPTXSOPR ignored Check sequence cardinality. If static typing more may find that the occurance is one or one, then this function is ignored.
Check sequence cardinality. If static typing h:exactly- may find that the occurance is exactly once, one OPTXSOPR _ignored then this function is ignored.
fn:boolean OPTXGEB i ored Com utes effective Boolean value fn:concatena to OPTXMLCONC XMLConcat may be reused fn:index-of OPTXSINDX
fn:empty IS NULL Translated to a NOT NULL on the sequence This may be translated into the EXISTS
subquery when operating on a query EXISTS, NOT expression or translated to a IS NOT NULL
fn:exists NULL on a variable.
fn:distinct- This may be optimized into a select values OPTXSDIST DISTINCT subquery in certain cases.
fn:insert-before OPTXSOPR Sequence operation (Insert before) fn:remove OPTXSOPR Sequence o eration (remove) fn:reverse OPTXSOPR Sequence operation (reverse) fn:subseque nce OPTXSOPR Sequence operation (subsequence) fn:unordered ignored Used by translation component equals fn:deep- May be done using XMLType map method equal OPTXDEEP functions.
aggregate functions fn:count OPTTCO
fn:av OPTTAV Need support for collations fn:max OPTTMX -same-fn:min OPTTMN -same-fn:sum OPTTSUM -same-sequence generators fn:id OPTXNODE
fn:idref OPTXNODE
Translated to (select xmlagg(res) from resource-view where equals_path(res,<arg>) fn:doc = 1) Translated to (select xmlagg(res) from resource view where fn:collection under ath res,<ar > =1 Context positions fn: position fn:last fn:current-dateTime STRTCTS
fn:current-date STRTCTS
fn:current-time STRTCTS
fn:default-collation fn:implicit-timezone OPTSESTZ
Oracle provided functions Translated to (select xmlagg(xmlelement("ROW", xmlforest(col1, col2...) from <table-name>) in case of relational tables and no xmlelement("ROW") ora:view for XMLType tables.
ora:contains OPTXMLCONT
ora:s rt OPTSQR

[0144] The following SQL operators are also provided to perform XQuery related operations: OPTXTYPCHK performs type checking on the input so that it conforms to the given XQuery type (e.g. xs:integer). OPTXATG performs an XPath extraction operation.
OPTXT2SQLT is used for casting XML type to SQL (XMLCast (xmltype expr as sgltype).
OPTSQL2XMLT is used for casting SQL types to XML (XMLCast ( sql-expr as xml-type)).
5.3. EXPRESSION MAPPING EXAMPLES

[0145] Some of the common expressions and their mapping are explained with examples in this section.

[0146] For example, Repository Queries (doc):

for $i in doc("/public/purchaseorder.mi1") where $i/Purchaseorder/@Id eq 2001 return <PO pono={$i/PurchaseOrder/@Id}/>
which is rewritten to select XMLAgg(XMLElement("PO", XMLAttributes( XMECast (OPTXAIG( OPTXATG("$i".res,'/Purchaseorder'),'/@Id') as number) as "pono"))) from (select res from resource view where equals_path(res,'/public/purchaseorder.xml') where XMLCast(OPTXATG("$i".res,'/PurchaseOrder/@Id') as number) _ 2001;

gets rewritten to select XMLAgg(XMLElement("PO", XMLAttributes( XMLCast(OPTXATG(OPI'XATG(res,'/PurchaseOrder'), `@Id') as number) as "pono"))) from resource view where equals path(res,'/public/purchaseorder.xml') = 1 and XMLCast(OPTXATG(res,'/PurchaseOrder/@Id') as number) = 2001;
[0147] For example, Repository (Collection):

for $i in collection("/public") where $i/Purchase0rder/@Id gt 2001 return <PO pono={$i/PurchaseOrder/@Id}/>
becomes select XMLAgg(XMLElement("PO", XMLAttributes( XMLCast(OPTXATG("$i".xmlv,'/PurchaseOrder/@Id') as number) as "pono"))) from table (mnlsequence (select XMLAgg (res) as xnly from resource view where under_path(res,'/public') = 1) "$i"
where XMLCast(OPTXATG("$i".xmlv,'/PurchaseOrder/@Id') as number) > 2001)) ;

[0148] For example, SQL Table Queries:
for $emp in ora:view("EMP"), $dept ( where$emp/ROW/DEPPTNO=D$dept/ROW/DEPTNO
return ($emp/ROW/ENAME, $dept/ROW/DNAME) becomes select XMLAgg( XMLConcat(XMLCast(OPTXATG("$emp".xmlv,'/ROW/ENAME') as number), XMLCast (OPTXATG ("$dept" . xml.v, ' /ROW/DNAME') as number))) from (select XMLElement("ROW",XMLForest(empno, ename, sal, deptno)) as x mly from emp ) "$emp", (select XMLElement("ROW",XMLForest(deptno, dname) as xmlv from dept) "$dept"

where XME Cast (OPTXATG ("$emp" . xnl.v, ' /ROW/DEPTNO') as number) _ XMLCast(OPTXATG("$dept".xrnlv,'/ROW/DEPTNO) as number);
which gets rewritten into select XMLAgg(XMLconcat(e.ename, d.dname)) from emp e, dept d where e.deptno =d.deptno;
6.0 EXAMPLE ALTERNATIVES

[0149] In the embodiments described herein, XQuery and XQueryX were presented as examples of query languages for querying XML language sources and SQL was presented as an example of a query language for querying relational databases. The techniques are in no way limited to those query languages. Any other query language may be used.

[0150] The techniques described herein present unique solutions for efficient evaluation of queries using translation. The techniques, however, are not limited to queries made on markup languages data sources. In other embodiments, any query language may be used.
Queries in the query language may then be parsed and compiled into first form of in-memory representation. The first form of in-memory representation may then be converted into a second form of in-memory representation and processed further as described above.

[0151] The techniques described herein provide that the various formats of queries are first parsed and compiled into ASTs or other in-memory representations. These in-memory representations are then converted to a particular abstract syntax. In other embodiments, the elements of a query in a first syntax (e.g. XQuery) are parsed, compiled, and immediately converted to the particular format element-by-element. In the embodiment, there may not necessarily exist, at any particular time, an in-memory representation of the entire portion of the query in the first format.
7.0 HARDWARE OVERVIEW

[0152] FIG. 3 is a block diagram that illustrates a computer system 300 upon which an embodiment of the invention maybe implemented. Computer system 300 includes a bus 302 or other communication mechanism for communicating information, and a processor 304 coupled with bus 302 for processing information. Computer system 300 also includes a main memory 306, such as a random access memory (RAM) or other dynamic storage device, coupled to bus 302 for storing information and instructions to be executed by processor 304.
Main memory 306 also may be used for storing temporary variables or other intermediate information during execution of instructions to be executed by processor 304.
Computer system 300 further includes a read only memory (ROM) 308 or other static storage device coupled to bus 302 for storing static information and instructions for processor 304. A
storage device 310, such as a magnetic disk or optical disk, is provided and coupled to bus 302 for storing information and instructions.

[0153] Computer system 300 may be coupled via bus 302 to a display 312, such as a cathode ray tube (CRT), for displaying information to a computer user. An input device 314, including alphanumeric and other keys, is coupled to bus 302 for communicating information and command selections to processor 304. Another type of user input device is cursor control 316, such as a mouse, a trackball, or cursor direction keys for communicating direction information and command selections to processor 304 and for controlling cursor movement on display 312. This input device typically has two degrees of freedom in two axes, a first axis (e.g., x) and a second axis (e.g., y), that allows the device to specify positions in a plane.

[0154] The invention is related to the use of computer system 300 for implementing the techniques described herein. According to one embodiment of the invention, those techniques are performed by computer system 300 in response to processor 304 executing one or more sequences of one or more instructions contained in main memory 306. Such instructions may be read into main memory 306 from another machine-readable medium, such as storage device 310. Execution of the sequences of instructions contained in main memory 306 causes processor 304 to perform the process steps described herein.
In alternative embodiments, hard-wired circuitry may be used in place of or in combination with software instructions to implement the invention. Thus, embodiments of the invention are not limited to any specific combination of hardware circuitry and software.

[0155] The term "machine-readable medium" as used herein refers to any medium that participates in providing instructions to processor 304 for execution. Such a medium may take many forms, including but not limited to, non-volatile media, volatile media, and transmission media. Non-volatile media includes, for example, optical or magnetic disks, such as storage device 310. Volatile media includes dynamic memory, such as main memory 306. Transmission media includes coaxial cables, copper wire and fiber optics, including the wires that comprise bus 302. Transmission media can also take the form of acoustic or light waves, such as those generated during radio-wave and infrared data communications.

[0156] Common forms of machine-readable media include, for example, a floppy disk, a flexible disk, hard disk, magnetic tape, or any other magnetic medium, a CD-ROM, any other optical medium, punchcards, papertape, any other physical medium with patterns of holes, a RAM, a PROM, and EPROM, a FLASH-EPROM, any other memory chip or cartridge, a carrier wave as described hereinafter, or any other medium from which a computer can read.
[0157] Various forms of machine-readable media may be involved in carrying one or more sequences of one or more instructions to processor 304 for execution. For example, the instructions may initially be carried on a magnetic disk of a remote computer.
The remote computer can load the instructions into its dynamic memory and send the instructions over a telephone line using a modem. A modem local to computer system 300 can receive the data on the telephone line and use an infrared transmitter to convert the data to an infrared signal.
An infrared detector can receive the data carried in the infrared signal and appropriate circuitry can place the data on bus 302. Bus 302 carries the data to main memory 306, from which processor 304 retrieves and executes the instructions. The instructions received by main memory 306 may optionally be stored on storage device 310 either before or after execution by processor 304.

[0158] Computer system 300 also includes a communication interface 318 coupled to bus 302. Communication interface 318 provides a two-way data communication coupling to a network link 320 that is connected to a local network 322. For example, communication interface 318 may be an integrated services digital network (ISDN) card or a modem to provide a data communication connection to a corresponding type of telephone line. As another example, communication interface 318 may be a local area network (LAN) card to provide a data communication connection to a compatible LAN. Wireless links may also be implemented. In any such implementation, communication interface 318 sends and receives electrical, electromagnetic or optical signals that carry digital data streams representing various types of information.

[0159] Network link 320 typically provides data communication through one or more networks to other data devices. For example, network link 320 may provide a connection through local network 322 to a host computer 324 or to data equipment operated by an Internet Service Provider (ISP) 326. ISP 326 in turn provides data communication services through the world wide packet data communication network now commonly referred to as the "Internet" 328. Local network 322 and Internet 328 both use electrical, electromagnetic or optical signals that carry digital data streams. The signals through the various networks and the signals on network link 320 and through communication interface 318, which carry the digital data to and from computer system 300, are exemplary forms of carrier waves transporting the information.

[0160] Computer system 300 can send messages and receive data, including program code, through the network(s), network link 320 and communication interface 318. In the Internet example, a server 330 might transmit a requested code for an application program through Internet 328, ISP 326, local network 322 and communication interface 318.

[0161] The received code may be executed by processor 304 as it is received, and/or stored in storage device 310, or other non-volatile storage for later execution. In this manner, computer system 300 may obtain application code in the form of a carrier wave.

[0162] In the foregoing specification, embodiments of the invention have been described with reference to numerous specific details that may vary from implementation to implementation. Thus, the sole and exclusive indicator of what is the invention, and is intended by the applicants to be the invention, is the set of claims that issue from this application, in the specific form in which such claims issue, including any subsequent correction. Any definitions expressly set forth herein for terms contained in such claims shall govern the meaning of such terms as used in the claims. Hence, no limitation, element, property, feature, advantage or attribute that is not expressly recited in a claim should limit the scope of such claim in any way. The specification and drawings are, accordingly, to be regarded in an illustrative rather than a restrictive sense.

Claims (64)

1. A method of processing a query, comprising:

receiving the query, wherein the query specifies operations;

determining that the query comprises a Structured Query Language (SQL) portion that specifies first one or more of said operations in SQL query language and a markup language portion that specifies second one or more of said operations in a markup query language;

wherein the markup query language is one of XQuery query language and XQueryX query language;

wherein, within the query, the markup language portion is embedded into the SQL
portion;

generating a first in-memory representation for the SQL portion;

generating a second in-memory representation for the markup language portion;

generating a third in-memory representation of the query based on the first in-memory representation and the second in-memory representation, wherein the third in-memory representation specifies all of said operations; and performing said operations based on the third in-memory representation;

wherein the first in-memory representation and the third in-memory representation are formatted in a first abstract syntax and the second in-memory representation is formatted in a second abstract syntax, and wherein the step of generating the third in-memory representation comprises:

generating a fourth in-memory representation in the first abstract syntax based on the second in-memory representation; and generating the third in-memory representation based on the first in-memory representation and the fourth in-memory representation;

wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax; and wherein the markup language portion comprises a user-defined XQuery function in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating a user-defined PL/SQL
function in the first abstract syntax based on the user-defined XQuery function in the second abstract syntax.
2. The method of claim 1 wherein the second in-memory representation comprises one or more in-memory representations of query elements in the second abstract syntax, and wherein generating the fourth in-memory representation comprises:

determining a second set of one or more equivalent in-memory representations of query elements in the first abstract syntax for the one or more in-memory representations of query elements in the second abstract syntax; and generating the fourth in-memory representation in the first abstract syntax based on the second set of one or more equivalent in-memory representations of query elements in the first abstract syntax.
3. The method of claim 2, wherein each in-memory representation of query elements in the one or more in-memory representations of query elements in the second abstract syntax corresponds to one or more in-memory representation of query elements in the second set of one or more equivalent in-memory representations of query elements in the first abstract syntax.
4. The method of claim 1, wherein one or more of the first in-memory representation, the second in-memory representation, and the third in-memory representation are represented in memory as abstract syntax trees.
5. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery aggregation in the second abstract syntax;
and wherein the step of generating the fourth in-memory representation comprises generating an SQL subquery in the first abstract syntax to compute the aggregation, said SQL subquery being generated based on the XQuery aggregation in the second abstract syntax.
6. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises a literal expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL literal in the first abstract syntax based on the literal expression in the second abstract syntax.
7. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery cast expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating one of an SQL cast function and an SQL convert function in the first abstract syntax based on the XQuery cast expression in the second abstract syntax.
8. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises a set expressions in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating one of an SQL UNION, an SQL MINUS, and an SQL INTERSECT in the first abstract syntax based on the set expressions in the second abstract syntax.
9. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery arithmetic expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL arithmetic expression in the first abstract syntax based on the XQuery arithmetic expression in the second abstract syntax.
10. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery comparison in the second abstract syntax;
and wherein the step of generating the fourth in-memory representation comprises generating an SQL comparison in the first abstract syntax based on the XQuery comparison in the second abstract syntax.
11. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery FLWOR order by clause in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL order by clause in the first abstract syntax based on the XQuery FLWOR order by clause in the second abstract syntax.
12. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XML logical expressions in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL logical expressions element in the first abstract syntax based on the XML logical expressions in the second abstract syntax.
13. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XML FLWOR expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL select expressions element in the first abstract syntax based on the XML FLWOR expression in the second abstract syntax.
14. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XML Path expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL path expression in the first abstract syntax based on the XML Path expression in the second abstract syntax.
15. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XML if-then-else expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL case--when expression in the first abstract syntax based on the XML if-then-else expression in the second abstract syntax.
16. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XML quantified expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL Exists expression in the first abstract syntax based on the XML
quantified expression in the second abstract syntax.
17. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an SQL/XML construction expression in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL construction expression in the first abstract syntax based on the SQL/XML construction expression in the second abstract syntax.
18. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XML operator in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL operator in the first abstract syntax based on the XML operator in the second abstract syntax.
19. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery sequence type operation in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL type operation in the first abstract syntax based on the XQuery sequence type operation in the second abstract syntax.
20. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery type constructor in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL scalar constructor in the first abstract syntax based on the XQuery type constructor in the second abstract syntax.
21. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery validate operation in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating one of an SQL/XML IsValid operation and an SQL/XML Validate operation in the first abstract syntax based on the XQuery validate operation in the second abstract syntax.
22. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises a polymorphic XQuery arithmetic operator in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating one of a polymorphic SQL arithmetic operator in the first abstract syntax based on the polymorphic XQuery arithmetic operator in the second abstract syntax.
23. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises a polymorphic XQuery comparison operator in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating one of a polymorphic SQL value comparison operator in the first abstract syntax based on the polymorphic XQuery comparison operator in the second abstract syntax.
24. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery function call in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an SQL function call in the first abstract syntax based on the XQuery function call in the second abstract syntax.
25. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an external XQuery function in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating an external SQL function in the first abstract syntax based on the external XQuery function in the second abstract syntax.
26. The method of claim 1, wherein the first abstract syntax is an SQL-related abstract syntax and the second abstract syntax is an XQuery-related abstract syntax;
wherein the markup language portion comprises an XQuery module in the second abstract syntax; and wherein the step of generating the fourth in-memory representation comprises generating a PL/SQL package in the first abstract syntax based on the XQuery module in the second abstract syntax.
27. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 1.
28. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 2.
29. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 3.
30. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 4.
31. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 5.
32. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 6.
33. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 7.
34. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 8.
35. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 9.
36. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 10.
37. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 11.
38. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 12.
39. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 13.
40. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 14.
41. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 15.
42. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 16.
43. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 17.
44. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 18.
45. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 19.
46. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 20.
47. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 21.
48. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 22.
49. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 23.
50. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 24.
51. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 25.
52. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, causes the one or more processors to perform the method recited in claim 26.
53. A method of processing a query, comprising:

receiving the query, wherein the query specifies operations;

determining that the query comprises a first portion that specifies first one or more of the operations in a first query language and a second portion that specifies second one or more of the operations in a second query language;

generating a first in-memory representation for the first portion;

generating a second in-memory representation for the second portion, wherein the second in-memory representation represents at least one query element, supported by the second query language, that is not understood by a query processor for the first query language;

prior to performing any of the operations, generating a third in-memory representation of the query based on the first in-memory representation and a fourth in-memory representation, wherein the third in-memory representation specifies all of the operations, and wherein generating the third in-memory representation comprises:

generating the fourth in-memory representation based on the second in-memory representation, wherein the fourth in-memory representation represents only query elements that are supported by the first query language and understood by a query processor for the first query language; and performing the operations based on the third in-memory representation;

wherein the first in-memory representation and the third in-memory representation are formatted in an Structure query language (SQL) related abstract syntax or SQL-related abstract syntax and the second in-memory representation is formatted in an XQuery-related abstract syntax, and wherein the fourth in-memory representation is formatted in the SQL-related abstract syntax;

wherein the second portion comprises at least one of:

an XQuery aggregation in the XQuery-related abstract syntax;
a set expression in the XQuery-related abstract syntax;

an XQuery FLWOR order by clause in the XQuery-related abstract syntax;
an XML if-then-else expression in the XQuery-related abstract syntax; or an XML quantified expression in the XQuery-related abstract syntax.
54. The method of claim 53, wherein:

the second portion comprises the XQuery aggregation in the XQuery-related abstract syntax; and the step of generating the fourth in-memory representation comprises generating an SQL subquery in the SQL-related abstract syntax to compute the XQuery aggregation, said SQL subquery being generated based on the XQuery aggregation in the XQuery-related abstract syntax.
55. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, cause the one or more processors to perform the method recited in claim 54.
56. The method of claim 53, wherein:

the second portion comprises the set expression in the XQuery-related abstract syntax; and the step of generating the fourth in-memory representation comprises generating one of an SQL UNION, an SQL MINUS, and an SQL INTERSECT in the SQL-related abstract syntax based on the set expressions in the XQuery-related abstract syntax.
57. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, cause the one or more processors to perform the method recited in claim 56.
58. The method of claim 53, wherein:

the second portion comprises the XQuery FLWOR order by clause in the XQuery-related abstract syntax; and the step of generating the fourth in-memory representation comprises generating an SQL order by clause in the SQL-related abstract syntax based on the XQuery FLWOR order by clause in the XQuery-related abstract syntax.
59. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, cause the one or more processors to perform the method recited in claim 58.
60. The method of claim 53, wherein:

the second markup language portion comprises the XML if-then-else expression in the XQuery-related abstract syntax; and the step of generating the fourth in-memory representation comprises generating an SQL case-when expression in the SQL-related abstract syntax based on the XML if-then-else expression in the XQuery-related abstract syntax.
61. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, cause the one or more processors to perform the method recited in claim 60.
62. The method of claim 53, wherein:

the second portion comprises the XML quantified expression in the XQuery-related abstract syntax; and the step of generating the fourth in-memory representation comprises generating an SQL Exists expression in the SQL-related abstract syntax based on the XML
quantified expression in the XQuery-related abstract syntax.
63. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, cause the one or more processors to perform the method recited in claim 62.
64. A computer-readable storage medium storing one or more sequences of instructions which, when executed by one or more processors, cause the one or more processors to perform the method recited in claim 53.
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Families Citing this family (49)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7814047B2 (en) * 2003-08-25 2010-10-12 Oracle International Corporation Direct loading of semistructured data
US7490093B2 (en) 2003-08-25 2009-02-10 Oracle International Corporation Generating a schema-specific load structure to load data into a relational database based on determining whether the schema-specific load structure already exists
US7747580B2 (en) * 2003-08-25 2010-06-29 Oracle International Corporation Direct loading of opaque types
US7779397B2 (en) * 2005-08-29 2010-08-17 Microsoft Corporation Data interfaces
US7519606B2 (en) * 2006-01-31 2009-04-14 International Business Machines Corporation Schema mapping specification framework
US20070244865A1 (en) * 2006-04-17 2007-10-18 International Business Machines Corporation Method and system for data retrieval using a product information search engine
US7853573B2 (en) * 2006-05-03 2010-12-14 Oracle International Corporation Efficient replication of XML data in a relational database management system
US7801856B2 (en) * 2006-08-09 2010-09-21 Oracle International Corporation Using XML for flexible replication of complex types
US8255790B2 (en) * 2006-09-08 2012-08-28 Microsoft Corporation XML based form modification with import/export capability
KR100961444B1 (en) * 2007-04-23 2010-06-09 한국전자통신연구원 Method and apparatus for retrieving multimedia contents
US8126841B2 (en) * 2008-02-20 2012-02-28 International Business Machines Corporation Storage and retrieval of variable data
US20090248715A1 (en) * 2008-03-31 2009-10-01 Microsoft Corporation Optimizing hierarchical attributes for olap navigation
EP2151772A1 (en) * 2008-08-01 2010-02-10 Simba Technologies Inc. Method and system for using queries for multidimensional databases with databases of other types
US8209664B2 (en) * 2009-03-18 2012-06-26 Microsoft Corporation High level programming extensions for distributed data parallel processing
US8140558B2 (en) * 2009-05-22 2012-03-20 International Business Machines Corporation Generating structured query language/extensible markup language (SQL/XML) statements
EP2460078A4 (en) * 2009-07-28 2014-10-29 Oricane Ab Method for managing multi-layered data structures in a pipelined memory architecture
US8417714B2 (en) * 2010-01-22 2013-04-09 Oracle International Corporation Techniques for fast and scalable XML generation and aggregation over binary XML
US9009137B2 (en) * 2010-03-12 2015-04-14 Microsoft Technology Licensing, Llc Query model over information as a networked service
US8655894B2 (en) * 2010-04-26 2014-02-18 Nokia Corporation Method and apparatus for index generation and use
CN102262631B (en) * 2010-05-31 2014-03-26 国际商业机器公司 Method and system for evaluating data
GB2500537A (en) * 2010-12-03 2013-09-25 Titus Inc Method and system of hierarchical metadata management and application
US20120246609A1 (en) 2011-03-24 2012-09-27 International Business Machines Corporation Automatic generation of user stories for software products via a product content space
US9396284B2 (en) * 2011-05-18 2016-07-19 Oracle International Corporation Method and system for implementing efficient updatable relational views over XML data
US9081645B2 (en) 2013-01-15 2015-07-14 International Business Machines Corporation Software product licensing based on a content space
US9063809B2 (en) * 2013-01-15 2015-06-23 International Business Machines Corporation Content space environment representation
US9396342B2 (en) 2013-01-15 2016-07-19 International Business Machines Corporation Role based authorization based on product content space
US9111040B2 (en) 2013-01-15 2015-08-18 International Business Machines Corporation Integration of a software content space with test planning and test case generation
US9659053B2 (en) 2013-01-15 2017-05-23 International Business Machines Corporation Graphical user interface streamlining implementing a content space
US9141379B2 (en) 2013-01-15 2015-09-22 International Business Machines Corporation Automated code coverage measurement and tracking per user story and requirement
US9218161B2 (en) 2013-01-15 2015-12-22 International Business Machines Corporation Embedding a software content space for run-time implementation
US9069647B2 (en) 2013-01-15 2015-06-30 International Business Machines Corporation Logging and profiling content space data and coverage metric self-reporting
US9087155B2 (en) 2013-01-15 2015-07-21 International Business Machines Corporation Automated data collection, computation and reporting of content space coverage metrics for software products
US9075544B2 (en) 2013-01-15 2015-07-07 International Business Machines Corporation Integration and user story generation and requirements management
US10339572B2 (en) * 2014-01-31 2019-07-02 Oath Inc. Tracking user interaction with a stream of content
US9959255B2 (en) 2014-01-31 2018-05-01 Yahoo Holdings, Inc. Dynamic streaming content provided by server and client-side tracking application
US9779069B2 (en) * 2014-01-31 2017-10-03 Yahoo Holdings, Inc. Model traversing based compressed serialization of user interaction data and communication from a client-side application
CA3184338A1 (en) 2014-09-03 2016-03-10 Ab Initio Technology Llc Managing computations for hierarchical entities
US11657056B2 (en) 2016-09-15 2023-05-23 Oracle International Corporation Data serialization in a distributed event processing system
US10732796B2 (en) 2017-03-29 2020-08-04 Microsoft Technology Licensing, Llc Control of displayed activity information using navigational mnemonics
US10671245B2 (en) 2017-03-29 2020-06-02 Microsoft Technology Licensing, Llc Collection and control of user activity set data and activity set user interface
US10853220B2 (en) 2017-04-12 2020-12-01 Microsoft Technology Licensing, Llc Determining user engagement with software applications
US10693748B2 (en) 2017-04-12 2020-06-23 Microsoft Technology Licensing, Llc Activity feed service
US20190050378A1 (en) * 2017-08-11 2019-02-14 Microsoft Technology Licensing, Llc Serializable and serialized interaction representations
US11580088B2 (en) 2017-08-11 2023-02-14 Microsoft Technology Licensing, Llc Creation, management, and transfer of interaction representation sets
US11416478B2 (en) * 2019-01-08 2022-08-16 Live Earth, LLC Data structure and format for efficient storage or transmission of objects
CN112668287A (en) * 2019-09-30 2021-04-16 北京国双科技有限公司 Data table determination method, system and device
CN112035831A (en) * 2020-08-14 2020-12-04 深信服科技股份有限公司 Data processing method, device, server and storage medium
CN112433787A (en) * 2020-11-09 2021-03-02 北京达佳互联信息技术有限公司 Target object serialization method and device, electronic device and storage medium
CN113518094B (en) * 2021-09-14 2021-12-28 深圳市普渡科技有限公司 Data processing method, device, robot and storage medium

Family Cites Families (194)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US508032A (en) * 1893-11-07 Box-making machine
US4439837A (en) * 1981-06-16 1984-03-27 Ncr Corporation Non-volatile memory system for intelligent terminals
US4536873A (en) * 1984-03-19 1985-08-20 Honeywell Inc. Data transmission system
US5088032A (en) 1988-01-29 1992-02-11 Cisco Systems, Inc. Method and apparatus for routing communications among computer networks
US8700458B2 (en) * 1989-05-01 2014-04-15 Catalina Marketing Corporation System, method, and database for processing transactions
US5257365A (en) 1990-03-16 1993-10-26 Powers Frederick A Database system with multi-dimensional summary search tree nodes for reducing the necessity to access records
US5295261A (en) 1990-07-27 1994-03-15 Pacific Bell Corporation Hybrid database structure linking navigational fields having a hierarchial database structure to informational fields having a relational database structure
JPH0667951A (en) 1992-05-20 1994-03-11 Nec Corp Database management system
US5467471A (en) 1993-03-10 1995-11-14 Bader; David A. Maintaining databases by means of hierarchical genealogical table
US5630125A (en) 1994-05-23 1997-05-13 Zellweger; Paul Method and apparatus for information management using an open hierarchical data structure
US5956715A (en) 1994-12-13 1999-09-21 Microsoft Corporation Method and system for controlling user access to a resource in a networked computing environment
CA2167790A1 (en) 1995-01-23 1996-07-24 Donald S. Maier Relational database system and method with high data availability during table data restructuring
US5590324A (en) * 1995-02-07 1996-12-31 International Business Machines Corporation Optimization of SQL queries using universal quantifiers, set intersection, and max/min aggregation in the presence of nullable columns
US5724577A (en) 1995-06-07 1998-03-03 Lockheed Martin Corporation Method for operating a computer which searches a relational database organizer using a hierarchical database outline
US5960194A (en) 1995-09-11 1999-09-28 International Business Machines Corporation Method for generating a multi-tiered index for partitioned data
US5734887A (en) 1995-09-29 1998-03-31 International Business Machines Corporation Method and apparatus for logical data access to a physical relational database
US5893109A (en) 1996-03-15 1999-04-06 Inso Providence Corporation Generation of chunks of a long document for an electronic book system
US5913214A (en) * 1996-05-30 1999-06-15 Massachusetts Inst Technology Data extraction from world wide web pages
US5893104A (en) 1996-07-09 1999-04-06 Oracle Corporation Method and system for processing queries in a database system using index structures that are not native to the database system
US6208993B1 (en) 1996-07-26 2001-03-27 Ori Software Development Ltd. Method for organizing directories
US5878410A (en) * 1996-09-13 1999-03-02 Microsoft Corporation File system sort order indexes
US5987506A (en) 1996-11-22 1999-11-16 Mangosoft Corporation Remote access and geographically distributed computers in a globally addressable storage environment
US5878415A (en) 1997-03-20 1999-03-02 Novell, Inc. Controlling access to objects in a hierarchical database
US5905982A (en) * 1997-04-04 1999-05-18 International Business Machines Corporation Handling null values in SQL queries over object-oriented data
US5983215A (en) 1997-05-08 1999-11-09 The Trustees Of Columbia University In The City Of New York System and method for performing joins and self-joins in a database system
JP3777025B2 (en) 1997-08-20 2006-05-24 インターナショナル・ビジネス・マシーンズ・コーポレーション System resource display device and method thereof
GB2329044B (en) 1997-09-05 2002-10-09 Ibm Data retrieval system
US6141655A (en) 1997-09-23 2000-10-31 At&T Corp Method and apparatus for optimizing and structuring data by designing a cube forest data structure for hierarchically split cube forest template
US5974407A (en) 1997-09-29 1999-10-26 Sacks; Jerome E. Method and apparatus for implementing a hierarchical database management system (HDBMS) using a relational database management system (RDBMS) as the implementing apparatus
US6038563A (en) 1997-10-31 2000-03-14 Sun Microsystems, Inc. System and method for restricting database access to managed object information using a permissions table that specifies access rights corresponding to user access rights to the managed objects
US5999941A (en) 1997-11-25 1999-12-07 Micron Electronics, Inc. Database access using active server pages
US6012067A (en) 1998-03-02 2000-01-04 Sarkar; Shyam Sundar Method and apparatus for storing and manipulating objects in a plurality of relational data managers on the web
US6356920B1 (en) 1998-03-09 2002-03-12 X-Aware, Inc Dynamic, hierarchical data exchange system
US6799298B2 (en) * 1998-03-11 2004-09-28 Overture Services, Inc. Technique for locating an item of interest within a stored representation of data
JPH11296541A (en) 1998-04-14 1999-10-29 Fujitsu Ltd Structured data management system, and computer-readable recording medium recorded with structured data managing program
US6915307B1 (en) 1998-04-15 2005-07-05 Inktomi Corporation High performance object cache
US6240407B1 (en) 1998-04-29 2001-05-29 International Business Machines Corp. Method and apparatus for creating an index in a database system
US6772350B1 (en) 1998-05-15 2004-08-03 E.Piphany, Inc. System and method for controlling access to resources in a distributed environment
US6108698A (en) 1998-07-29 2000-08-22 Xerox Corporation Node-link data defining a graph and a tree within the graph
US6654761B2 (en) 1998-07-29 2003-11-25 Inxight Software, Inc. Controlling which part of data defining a node-link structure is in memory
US6263332B1 (en) 1998-08-14 2001-07-17 Vignette Corporation System and method for query processing of structured documents
US6487546B1 (en) 1998-08-27 2002-11-26 Oracle Corporation Apparatus and method for aggregate indexes
US6269380B1 (en) 1998-08-31 2001-07-31 Xerox Corporation Property based mechanism for flexibility supporting front-end and back-end components having different communication protocols
US6253195B1 (en) * 1998-09-21 2001-06-26 Microsoft Corporation Optimized query tree
US6718322B1 (en) 1998-10-02 2004-04-06 Ncr Corporation SQL-based analytic algorithm for rule induction
US6366934B1 (en) 1998-10-08 2002-04-02 International Business Machines Corporation Method and apparatus for querying structured documents using a database extender
US6584459B1 (en) 1998-10-08 2003-06-24 International Business Machines Corporation Database extender for storing, querying, and retrieving structured documents
US6279007B1 (en) 1998-11-30 2001-08-21 Microsoft Corporation Architecture for managing query friendly hierarchical values
US6918082B1 (en) * 1998-12-17 2005-07-12 Jeffrey M. Gross Electronic document proofing system
US6516327B1 (en) * 1998-12-24 2003-02-04 International Business Machines Corporation System and method for synchronizing data in multiple databases
US6370537B1 (en) 1999-01-14 2002-04-09 Altoweb, Inc. System and method for the manipulation and display of structured data
US6154741A (en) 1999-01-29 2000-11-28 Feldman; Daniel J. Entitlement management and access control system
US6427123B1 (en) 1999-02-18 2002-07-30 Oracle Corporation Hierarchical indexing for accessing hierarchically organized information in a relational system
US7366708B2 (en) * 1999-02-18 2008-04-29 Oracle Corporation Mechanism to efficiently index structured data that provides hierarchical access in a relational database system
US6584458B1 (en) 1999-02-19 2003-06-24 Novell, Inc. Method and apparatuses for creating a full text index accommodating child words
US6341289B1 (en) 1999-05-06 2002-01-22 International Business Machines Corporation Object identity and partitioning for user defined extents
US6343287B1 (en) 1999-05-19 2002-01-29 Sun Microsystems, Inc. External data store link for a profile service
US20020124100A1 (en) 1999-05-20 2002-09-05 Jeffrey B Adams Method and apparatus for access to, and delivery of, multimedia information
US6496842B1 (en) 1999-05-28 2002-12-17 Survol Interactive Technologies Navigating heirarchically organized information
US6470344B1 (en) 1999-05-29 2002-10-22 Oracle Corporation Buffering a hierarchical index of multi-dimensional data
US7472349B1 (en) 1999-06-01 2008-12-30 Oracle International Corporation Dynamic services infrastructure for allowing programmatic access to internet and other resources
US6574655B1 (en) 1999-06-29 2003-06-03 Thomson Licensing Sa Associative management of multimedia assets and associated resources using multi-domain agent-based communication between heterogeneous peers
US6199195B1 (en) 1999-07-08 2001-03-06 Science Application International Corporation Automatically generated objects within extensible object frameworks and links to enterprise resources
US6754661B1 (en) 1999-07-13 2004-06-22 Microsoft Corporation Hierarchical storage systems for holding evidentiary objects and methods of creating and operating upon hierarchical storage systems
US7181438B1 (en) * 1999-07-21 2007-02-20 Alberti Anemometer, Llc Database access system
US6438562B1 (en) 1999-08-24 2002-08-20 Oracle Corporation Parallel index maintenance
US6665684B2 (en) 1999-09-27 2003-12-16 Oracle International Corporation Partition pruning with composite partitioning
US7134072B1 (en) 1999-10-13 2006-11-07 Microsoft Corporation Methods and systems for processing XML documents
US6826727B1 (en) 1999-11-24 2004-11-30 Bitstream Inc. Apparatus, methods, programming for automatically laying out documents
US6721727B2 (en) 1999-12-02 2004-04-13 International Business Machines Corporation XML documents stored as column data
US20020116371A1 (en) 1999-12-06 2002-08-22 David Dodds System and method for the storage, indexing and retrieval of XML documents using relation databases
US6418448B1 (en) 1999-12-06 2002-07-09 Shyam Sundar Sarkar Method and apparatus for processing markup language specifications for data and metadata used inside multiple related internet documents to navigate, query and manipulate information from a plurality of object relational databases over the web
US6662342B1 (en) 1999-12-13 2003-12-09 International Business Machines Corporation Method, system, and program for providing access to objects in a document
US6721723B1 (en) 1999-12-23 2004-04-13 1St Desk Systems, Inc. Streaming metatree data structure for indexing information in a data base
US6510434B1 (en) * 1999-12-29 2003-01-21 Bellsouth Intellectual Property Corporation System and method for retrieving information from a database using an index of XML tags and metafiles
US6643652B2 (en) * 2000-01-14 2003-11-04 Saba Software, Inc. Method and apparatus for managing data exchange among systems in a network
US6721747B2 (en) * 2000-01-14 2004-04-13 Saba Software, Inc. Method and apparatus for an information server
US6604100B1 (en) 2000-02-09 2003-08-05 At&T Corp. Method for converting relational data into a structured document
US6785673B1 (en) 2000-02-09 2004-08-31 At&T Corp. Method for converting relational data into XML
US20010047372A1 (en) 2000-02-11 2001-11-29 Alexander Gorelik Nested relational data model
US7072896B2 (en) 2000-02-16 2006-07-04 Verizon Laboratories Inc. System and method for automatic loading of an XML document defined by a document-type definition into a relational database including the generation of a relational schema therefor
US7031956B1 (en) * 2000-02-16 2006-04-18 Verizon Laboratories Inc. System and method for synchronizing and/or updating an existing relational database with supplemental XML data
CA2400442A1 (en) * 2000-02-25 2001-08-30 Yet Mui Method for enterprise workforce planning
US6449620B1 (en) 2000-03-02 2002-09-10 Nimble Technology, Inc. Method and apparatus for generating information pages using semi-structured data stored in a structured manner
US20020056025A1 (en) 2000-11-07 2002-05-09 Qiu Chaoxin C. Systems and methods for management of memory
JP2001265609A (en) * 2000-03-16 2001-09-28 Omron Corp Arithmetic processor
US7213017B2 (en) * 2000-03-17 2007-05-01 Microsoft Corporation Systems and methods for transforming query results into hierarchical information
US6934712B2 (en) * 2000-03-21 2005-08-23 International Business Machines Corporation Tagging XML query results over relational DBMSs
US6782380B1 (en) * 2000-04-14 2004-08-24 David Victor Thede Method and system for indexing and searching contents of extensible mark-up language (XML) documents
US20030167456A1 (en) * 2000-04-17 2003-09-04 Vinay Sabharwal Architecture for building scalable object oriented web database applications
US20030158897A1 (en) 2000-05-09 2003-08-21 Viryanet Ltd. Networked platform for creating and supporting communities
US6845507B2 (en) 2000-05-18 2005-01-18 Ss & C Technologies, Inc. Method and system for straight through processing
US6915304B2 (en) 2000-05-23 2005-07-05 Kenneth A. Krupa System and method for converting an XML data structure into a relational database
US7043472B2 (en) * 2000-06-05 2006-05-09 International Business Machines Corporation File system with access and retrieval of XML documents
US6684204B1 (en) * 2000-06-19 2004-01-27 International Business Machines Corporation Method for conducting a search on a network which includes documents having a plurality of tags
US20020029229A1 (en) 2000-06-30 2002-03-07 Jakopac David E. Systems and methods for data compression
US7024413B2 (en) * 2000-07-26 2006-04-04 International Business Machines Corporation Method of externalizing legacy database in ASN.1-formatted data into XML format
US6704024B2 (en) 2000-08-07 2004-03-09 Zframe, Inc. Visual content browsing using rasterized representations
WO2002013528A2 (en) 2000-08-08 2002-02-14 Replaytv, Inc. Method and system for remote television replay control
US6708186B1 (en) 2000-08-14 2004-03-16 Oracle International Corporation Aggregating and manipulating dictionary metadata in a database system
US6675230B1 (en) 2000-08-22 2004-01-06 International Business Machines Corporation Method, system, and program for embedding a user interface object in another user interface object
US6654734B1 (en) * 2000-08-30 2003-11-25 International Business Machines Corporation System and method for query processing and optimization for XML repositories
US20020054090A1 (en) * 2000-09-01 2002-05-09 Silva Juliana Freire Method and apparatus for creating and providing personalized access to web content and services from terminals having diverse capabilities
US7752214B2 (en) 2000-09-01 2010-07-06 Op40, Inc. Extended environment data structure for distributed digital assets over a multi-tier computer network
US6871204B2 (en) 2000-09-07 2005-03-22 Oracle International Corporation Apparatus and method for mapping relational data and metadata to XML
US6801224B1 (en) 2000-09-14 2004-10-05 International Business Machines Corporation Method, system, and program for generating a graphical user interface window for an application program
US7143339B2 (en) * 2000-09-20 2006-11-28 Sap Aktiengesellschaft Method and apparatus for dynamically formatting and displaying tabular data in real time
WO2002046916A2 (en) 2000-10-20 2002-06-13 Polexis, Inc. Extensible information system (xis)
US6785718B2 (en) 2000-10-23 2004-08-31 Schneider Logistics, Inc. Method and system for interfacing with a shipping service
US20030105732A1 (en) 2000-11-17 2003-06-05 Kagalwala Raxit A. Database schema for structure query language (SQL) server
US20020087596A1 (en) 2000-12-29 2002-07-04 Steve Lewontin Compact tree representation of markup languages
US7917888B2 (en) 2001-01-22 2011-03-29 Symbol Technologies, Inc. System and method for building multi-modal and multi-channel applications
US7162467B2 (en) * 2001-02-22 2007-01-09 Greenplum, Inc. Systems and methods for managing distributed database resources
US6804677B2 (en) 2001-02-26 2004-10-12 Ori Software Development Ltd. Encoding semi-structured data for efficient search and browsing
GB2409078B (en) 2001-02-26 2005-09-07 Ori Software Dev Ltd Encoding semi-structured data for efficient search and browsing
US6542911B2 (en) 2001-03-01 2003-04-01 Sun Microsystems, Inc. Method and apparatus for freeing memory from an extensible markup language document object model tree active in an application cache
US6964025B2 (en) 2001-03-20 2005-11-08 Microsoft Corporation Auto thumbnail gallery
JP4529063B2 (en) 2001-03-30 2010-08-25 ルネサスエレクトロニクス株式会社 System simulator, simulation method, and simulation program
US6778977B1 (en) 2001-04-19 2004-08-17 Microsoft Corporation Method and system for creating a database table index using multiple processors
US6968334B2 (en) 2001-05-15 2005-11-22 Nokia Corporation Method and business process to maintain privacy in distributed recommendation systems
US7028028B1 (en) * 2001-05-17 2006-04-11 Enosys Markets,Inc. System for querying markup language data stored in a relational database according to markup language schema
EP1430420A2 (en) * 2001-05-31 2004-06-23 Lixto Software GmbH Visual and interactive wrapper generation, automated information extraction from web pages, and translation into xml
US7043716B2 (en) * 2001-06-13 2006-05-09 Arius Software Corporation System and method for multiple level architecture by use of abstract application notation
EA008675B1 (en) * 2001-06-22 2007-06-29 Нервана, Инк. System and method for knowledge retrieval, management, delivery and presentation
US6886046B2 (en) * 2001-06-26 2005-04-26 Citrix Systems, Inc. Methods and apparatus for extendible information aggregation and presentation
US7197764B2 (en) 2001-06-29 2007-03-27 Bea Systems Inc. System for and methods of administration of access control to numerous resources and objects
US6920461B2 (en) 2001-07-10 2005-07-19 Microsoft Corp. Application program interface for network software platform
US6795821B2 (en) 2001-07-17 2004-09-21 Trendium, Inc. Database systems, methods and computer program products including primary key and super key indexes for use with partitioned tables
US6725212B2 (en) 2001-08-31 2004-04-20 International Business Machines Corporation Platform-independent method and system for graphically presenting the evaluation of a query in a database management system
AU2002334721B2 (en) 2001-09-28 2008-10-23 Oracle International Corporation An index structure to access hierarchical data in a relational database system
US6836857B2 (en) 2001-10-18 2004-12-28 Sun Microsystems, Inc. Mechanism for debugging a computer process
US6928449B2 (en) 2001-10-18 2005-08-09 Sun Microsystems, Inc. Mechanism for facilitating backtracking
US7487168B2 (en) 2001-11-01 2009-02-03 Microsoft Corporation System and method for loading hierarchical data into relational database systems
US6826568B2 (en) 2001-12-20 2004-11-30 Microsoft Corporation Methods and system for model matching
US7523127B2 (en) * 2002-01-14 2009-04-21 Testout Corporation System and method for a hierarchical database management system for educational training and competency testing simulations
US6732222B1 (en) 2002-02-01 2004-05-04 Silicon Motion, Inc. Method for performing flash memory file management
US9374451B2 (en) 2002-02-04 2016-06-21 Nokia Technologies Oy System and method for multimodal short-cuts to digital services
US7127700B2 (en) 2002-03-14 2006-10-24 Openwave Systems Inc. Method and apparatus for developing web services using standard logical interfaces to support multiple markup languages
CA2382712A1 (en) * 2002-04-19 2003-10-19 Ibm Canada Limited-Ibm Canada Limitee Detection and prevention of writing conflicts within nested query statements
US6918067B2 (en) 2002-04-30 2005-07-12 International Business Machines Corporation Detecting network instability
KR100484138B1 (en) * 2002-05-08 2005-04-18 삼성전자주식회사 XML indexing method for regular path expression queries in relational database and data structure thereof.
US7076766B2 (en) 2002-06-03 2006-07-11 Steve Wirts Software application development methods and framework
AUPS300402A0 (en) * 2002-06-17 2002-07-11 Canon Kabushiki Kaisha Indexing and querying structured documents
US7574652B2 (en) * 2002-06-20 2009-08-11 Canon Kabushiki Kaisha Methods for interactively defining transforms and for generating queries by manipulating existing query data
US6917935B2 (en) * 2002-06-26 2005-07-12 Microsoft Corporation Manipulating schematized data in a database
US8374966B1 (en) 2002-08-01 2013-02-12 Oracle International Corporation In memory streaming with disk backup and recovery of messages captured from a database redo stream
US7570943B2 (en) 2002-08-29 2009-08-04 Nokia Corporation System and method for providing context sensitive recommendations to digital services
US7120645B2 (en) 2002-09-27 2006-10-10 Oracle International Corporation Techniques for rewriting XML queries directed to relational database constructs
US7171407B2 (en) * 2002-10-03 2007-01-30 International Business Machines Corporation Method for streaming XPath processing with forward and backward axes
US7308474B2 (en) 2002-11-06 2007-12-11 Oracle International Corporation Techniques for scalably accessing data in an arbitrarily large document by a device with limited resources
US7124137B2 (en) * 2002-12-19 2006-10-17 International Business Machines Corporation Method, system, and program for optimizing processing of nested functions
US20040143581A1 (en) * 2003-01-15 2004-07-22 Bohannon Philip L. Cost-based storage of extensible markup language (XML) data
US20040148278A1 (en) * 2003-01-22 2004-07-29 Amir Milo System and method for providing content warehouse
US7490097B2 (en) * 2003-02-20 2009-02-10 Microsoft Corporation Semi-structured data storage schema selection
US7062507B2 (en) * 2003-02-24 2006-06-13 The Boeing Company Indexing profile for efficient and scalable XML based publish and subscribe system
US7020666B2 (en) 2003-03-07 2006-03-28 Microsoft Corporation System and method for unknown type serialization
US20040193575A1 (en) * 2003-03-25 2004-09-30 Chia-Hsun Chen Path expressions and SQL select statement in object oriented language
US7392239B2 (en) * 2003-04-14 2008-06-24 International Business Machines Corporation System and method for querying XML streams
US7181680B2 (en) * 2003-04-30 2007-02-20 Oracle International Corporation Method and mechanism for processing queries for XML documents using an index
US6836778B2 (en) 2003-05-01 2004-12-28 Oracle International Corporation Techniques for changing XML content in a relational database
US7103611B2 (en) 2003-05-01 2006-09-05 Oracle International Corporation Techniques for retaining hierarchical information in mapping between XML documents and relational data
US7051042B2 (en) * 2003-05-01 2006-05-23 Oracle International Corporation Techniques for transferring a serialized image of XML data
US7634480B2 (en) 2003-05-08 2009-12-15 Microsoft Corporation Declarative rules for metadirectory
US20040230667A1 (en) 2003-05-12 2004-11-18 Wookey Michael J. Loosely coupled intellectual capital processing engine
US7194733B2 (en) 2003-06-11 2007-03-20 Microsoft Corporation Transformation of an asynchronous transactional messaging language into a web services compatible language
US7383255B2 (en) * 2003-06-23 2008-06-03 Microsoft Corporation Common query runtime system and application programming interface
US7519577B2 (en) * 2003-06-23 2009-04-14 Microsoft Corporation Query intermediate language method and system
US7146352B2 (en) * 2003-06-23 2006-12-05 Microsoft Corporation Query optimizer system and method
US7143078B2 (en) * 2003-06-27 2006-11-28 Microsoft Corporation System and method for managed database query pre-optimization
US20050010896A1 (en) 2003-07-07 2005-01-13 International Business Machines Corporation Universal format transformation between relational database management systems and extensible markup language using XML relational transformation
US7814047B2 (en) 2003-08-25 2010-10-12 Oracle International Corporation Direct loading of semistructured data
US7747580B2 (en) 2003-08-25 2010-06-29 Oracle International Corporation Direct loading of opaque types
US8150818B2 (en) 2003-08-25 2012-04-03 International Business Machines Corporation Method and system for storing structured documents in their native format in a database
US7634498B2 (en) * 2003-10-24 2009-12-15 Microsoft Corporation Indexing XML datatype content system and method
US7315852B2 (en) * 2003-10-31 2008-01-01 International Business Machines Corporation XPath containment for index and materialized view matching
US7512615B2 (en) * 2003-11-07 2009-03-31 International Business Machines Corporation Single pass workload directed clustering of XML documents
US7287023B2 (en) * 2003-11-26 2007-10-23 International Business Machines Corporation Index structure for supporting structural XML queries
US8949220B2 (en) 2003-12-19 2015-02-03 Oracle International Corporation Techniques for managing XML data associated with multiple execution units
US7290012B2 (en) * 2004-01-16 2007-10-30 International Business Machines Corporation Apparatus, system, and method for passing data between an extensible markup language document and a hierarchical database
JP4227033B2 (en) * 2004-01-20 2009-02-18 富士通株式会社 Database integrated reference device, database integrated reference method, and database integrated reference program
US7386541B2 (en) * 2004-03-18 2008-06-10 Microsoft Corporation System and method for compiling an extensible markup language based query
US7499915B2 (en) 2004-04-09 2009-03-03 Oracle International Corporation Index for accessing XML data
US7440954B2 (en) 2004-04-09 2008-10-21 Oracle International Corporation Index maintenance for operations involving indexed XML data
US7398265B2 (en) 2004-04-09 2008-07-08 Oracle International Corporation Efficient query processing of XML data using XML index
US7603347B2 (en) * 2004-04-09 2009-10-13 Oracle International Corporation Mechanism for efficiently evaluating operator trees
US7509631B2 (en) * 2004-05-21 2009-03-24 Bea Systems, Inc. Systems and methods for implementing a computer language type system
US20050289175A1 (en) 2004-06-23 2005-12-29 Oracle International Corporation Providing XML node identity based operations in a value based SQL system
US7516121B2 (en) * 2004-06-23 2009-04-07 Oracle International Corporation Efficient evaluation of queries using translation
US20050289138A1 (en) * 2004-06-25 2005-12-29 Cheng Alex T Aggregate indexing of structured and unstructured marked-up content
US7668806B2 (en) 2004-08-05 2010-02-23 Oracle International Corporation Processing queries against one or more markup language sources
US7685137B2 (en) 2004-08-06 2010-03-23 Oracle International Corporation Technique of using XMLType tree as the type infrastructure for XML
US7853961B2 (en) * 2005-02-28 2010-12-14 Microsoft Corporation Platform for data services across disparate application frameworks
US8346737B2 (en) 2005-03-21 2013-01-01 Oracle International Corporation Encoding of hierarchically organized data for efficient storage and processing
US8463801B2 (en) * 2005-04-04 2013-06-11 Oracle International Corporation Effectively and efficiently supporting XML sequence type and XQuery sequence natively in a SQL system

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