US20140063220A1 - Method and Device for Ordering a Custom Orthopedic Device - Google Patents

Method and Device for Ordering a Custom Orthopedic Device Download PDF

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Publication number
US20140063220A1
US20140063220A1 US14/011,300 US201314011300A US2014063220A1 US 20140063220 A1 US20140063220 A1 US 20140063220A1 US 201314011300 A US201314011300 A US 201314011300A US 2014063220 A1 US2014063220 A1 US 2014063220A1
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Prior art keywords
limb
guideline
image
joint
depth
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US14/011,300
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Jason Robert TAYLOR
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Ossur hf
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Ossur hf
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Priority to US14/011,300 priority Critical patent/US20140063220A1/en
Assigned to OSSUR HF reassignment OSSUR HF ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: TAYLOR, JASON ROBERT
Publication of US20140063220A1 publication Critical patent/US20140063220A1/en
Priority to US16/287,154 priority patent/US10779961B2/en
Priority to US17/178,643 priority patent/US11241319B2/en
Abandoned legal-status Critical Current

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F2/00Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
    • A61F2/50Prostheses not implantable in the body
    • A61F2/5044Designing or manufacturing processes
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F5/00Orthopaedic methods or devices for non-surgical treatment of bones or joints; Nursing devices; Anti-rape devices
    • A61F5/01Orthopaedic devices, e.g. splints, casts or braces
    • A61F5/0102Orthopaedic devices, e.g. splints, casts or braces specially adapted for correcting deformities of the limbs or for supporting them; Ortheses, e.g. with articulations
    • A61F5/0104Orthopaedic devices, e.g. splints, casts or braces specially adapted for correcting deformities of the limbs or for supporting them; Ortheses, e.g. with articulations without articulation
    • A61F5/0106Orthopaedic devices, e.g. splints, casts or braces specially adapted for correcting deformities of the limbs or for supporting them; Ortheses, e.g. with articulations without articulation for the knees
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F5/00Orthopaedic methods or devices for non-surgical treatment of bones or joints; Nursing devices; Anti-rape devices
    • A61F5/01Orthopaedic devices, e.g. splints, casts or braces
    • A61F5/0102Orthopaedic devices, e.g. splints, casts or braces specially adapted for correcting deformities of the limbs or for supporting them; Ortheses, e.g. with articulations
    • A61F5/0123Orthopaedic devices, e.g. splints, casts or braces specially adapted for correcting deformities of the limbs or for supporting them; Ortheses, e.g. with articulations for the knees

Definitions

  • the present disclosure relates to a method and device for ordering a custom orthopedic device including providing security provisions, receiving measurement information, capturing an image of the appropriate portion of the limb, and submitting ordering requests.
  • a clinician may provide a patient with a custom fitted orthopedic device adapted to the specific anatomical dimensions of the individual patient.
  • a common orthopedic device for customization is a knee brace.
  • a patient will typically obtain a customized brace through a clinician having the expertise to assure that the orthopedic device fits the patient properly.
  • a clinician can prepare the brace himself, or order a custom orthopedic device remotely through the mail or by submitting an order over mail, phone, fax or the Internet.
  • the clinician typically provides the manufacturer or seller (“provider”) with an image of a portion of the limb including the joint and measurements of the limb around the joint.
  • the custom orthopedic brace is produced based on the submitted image of the limb and measurements.
  • the provider may require the image of the limb be captured at a certain orientation, angle, height, and distance relative to the limb to ensure that the captured image accurately portrays the dimensions and proportions of the limb.
  • Appropriate tags, reference indicia and reference markings of anatomy are often placed on the limb to identify the patient, the limb, and any other necessary information if the photo is misplaced from an order form.
  • the photographer Using a conventional camera, the photographer must estimate or otherwise measure the specified distance between the camera and the limb, the specified portion of the limb to capture in the image, and the appropriate orientation of the camera relative to the limb. Since the conventional camera does not provide feedback about the angle or orientation at which the camera is held, it is difficult for the photographer to determine whether the image of the limb being captured meets the requirements of the manufacturer or seller without additional aids.
  • the patient may need to use different devices to complete the entire ordering process. If the image of the limb is captured with a conventional digital camera, the image must then be transferred to a computer before the order and image can be uploaded over the Internet to the server of the manufacturer or seller.
  • the features of the disclosure provide a solution to the need to reduce image and limb misalignment and improve the ease of capturing an image of the limb and of ordering a custom orthopedic device without multiple forms.
  • the method includes aligning a viewfinder image displayed on a screen and generated by an image sensor of a portable device with at least one predetermined portion of a limb including a joint.
  • the method involves capturing and storing at least one image of the portion of the limb using the image sensor of the portable device based on at least one guideline.
  • the at least one captured image is associated with measurements of the limb, and patient information entered into the portable device.
  • the order is transmitted to the provider and contains the at least one captured image, the measurements of the limb, and the patient information from the portable device.
  • the at least one guideline may be a depth of field guideline, a horizontal orientation guideline, a vertical orientation guideline, a tilt guideline, or a limb alignment guideline.
  • the at least one image of the limb may satisfy the depth of field guideline, the horizontal or the vertical orientation guideline, the tilt angle guideline, and the limb alignment guideline.
  • the limb alignment guideline is a depth of field guideline overlaid on the viewfinder image.
  • the depth of field guideline may be a reference frame for a first distance above a joint, a second distance below a joint, and a centering of the limb and joint in the captured image.
  • the first and second distances are the same and referenced from a knee axis line.
  • the distances above and below the joint may be aligned with the depth of field guideline in the viewfinder image before capturing the image.
  • the portable device enables image capture.
  • the method may also include calibrating the image sensor of the portable device.
  • the method may include executing an ordering application, determining whether the ordering application has been previously executed.
  • the image sensor may be calibrated upon the determination that the ordering application has not been previously executed.
  • the image of the limb enables capture upon the determination that the ordering application has been previously executed.
  • the method may include reviewing the captured image of the limb and selecting a custom orthopedic device configuration.
  • the step of reviewing the captured image of the limb includes viewing the captured image with an overlaid depth of field guideline to confirm the captured portion of the limb satisfies the overlaid depth of field guideline.
  • the method may also include entering basic patient information into the portable device including measurements of the limb at various locations on the limb.
  • the captured image may be overlaid with the basic patient information.
  • the overlaid captured image may be stored in the portable device.
  • the method can involve configuring the custom orthopedic device, reviewing the order, and storing the order in a memory of the portable device. At least one previous order may be stored in the memory of the portable device.
  • the order may be transmitted as an e-mail containing the patient information and the saved, captured image of the limb.
  • the device includes an image sensor configured to capture an image, a display, a gyroscope and/or accelerometer, a communication interface, a processor, and a memory.
  • the processor is configured to enable capturing an image of a portion of a limb including a joint using the image sensor based on at least one guideline, and the image of the limb satisfies the at least one guideline.
  • the gyroscope and/or accelerometer is configured to provide orientation data to the processor.
  • the communication interface is configured to transmit an order containing the captured image and patient information from the apparatus over a network to a provider.
  • the at least one guideline is at least one of a depth of field guideline, a horizontal orientation guideline, a vertical orientation guideline, a tilt guideline, or a limb alignment guideline.
  • the method may include a login page requiring clinician and patient input.
  • the user Upon entry of the information on the login page, the user is directed to an order configuration home screen or page. From the home screen, the user may select many pages for making the customized order. The user may first select the image capture and input measurements, followed by entering patient information, orthopedic device (brace) configuration, and any other order information.
  • the user is not limited to a sequence of page use, other than upon entry of all data fields and appropriate image capture, the order is sent to the provider.
  • the limb alignment guideline is a depth of field guideline overlaid on a viewfinder image.
  • the depth of field guideline is a reference frame for a first distance above a joint, a second distance below a joint, and a centering of the limb and joint in the captured image.
  • the processor is configured to provide an indication of the orientation of the device on the display.
  • the processor is configured to calibrate the image sensor by setting the image sensor to a first resolution and a first zoom level. At least one image of anatomical landmarks or markings on the limb is captured. A three-dimensional model of the limb is generated from the markings along with circumferential measurements.
  • FIG. 1 is an overview of the steps in an embodiment of the custom orthopedic device ordering method.
  • FIG. 2 shows a portrait orientation of a device for ordering the custom orthopedic device with respect to three axes.
  • FIG. 3 is an example of the indication provided to the user of the preferred orientation of the device.
  • FIG. 4 shows the device having a viewfinder image overlaid with a depth of field guideline.
  • FIG. 5 is an example of the captured image stored with an identification label.
  • FIG. 6 illustrates is a flowchart of an embodiment of the custom orthopedic device ordering method using a three-dimensional model of the limb.
  • the embodiments of the method 2 and device 4 disclosed enable the user to easily capture accurate images of the limb and complete the ordering process on a single device.
  • the method 2 may be implemented in an application executed on a portable device.
  • the application guides the user through the ordering and image capturing process.
  • Such a device and process reduces misalignment issues while integrating picture capturing and ordering into a single device.
  • the device used to capture the image and order the custom orthopedic brace may be any device having a display and an image sensor such as a mobile phone (iPhone®, Android® phone, Blackberry®, Windows® phone, etc.), a tablet (iPad®, Android® tablet, Windows® tablet etc.), a personal digital assistant (PDA), a computer, or any other portable device.
  • a mobile phone iPhone®, Android® phone, Blackberry®, Windows® phone, etc.
  • a tablet iPad®, Android® tablet, Windows® tablet etc.
  • PDA personal digital assistant
  • the preferred device 4 has an image sensor, a display, a processor, a gyroscope and/or accelerometer, memory, and a communication interface to allow communication of the order directly from the device over a network to a server of the manufacturer or seller.
  • FIG. 1 is an overview of an embodiment of a method 2 for ordering a custom orthopedic device.
  • the application is launched, and the application displays a login screen.
  • the user logs into an account or creates a new account using a keypad or similar on the device.
  • the login page may include an option for an embedded tutorial including a visual step-by-step discussion stored on the device or available to the device through streaming.
  • the tutorial may provide guidance on patient positioning, making anatomical landmarks on the limb, and taking circumferential measurements.
  • the application determines whether the current session is the first use of the device 4 to order the custom orthopedic device. In one embodiment, if the current session is the first use, the application calibrates a camera of the device at 300 . During calibration 300 , the application automatically sets the camera to specific settings such as a specific resolution, zoom, and color setting.
  • the calibration 300 of the camera may be omitted.
  • the preferred camera settings are in text within the application, and the calibration is manually performed by the user by adjusting the settings of the camera.
  • the preferred camera settings may be displayed during the image capturing process and during a review of the captured image.
  • the preferred camera settings can also be displayed and included in a “help” section of the application.
  • the application enables capture of an image using guidelines and a specific alignment or orientation at step 400 .
  • the captured image is reviewed by the user to determine whether the captured image meets the specified alignment.
  • patient information is entered, and a brace configuration is selected at 700 .
  • the user is prompted to review the order at 800 before the order is saved on the device and transmitted over a network to a server of the custom orthopedic device manufacturer or seller at 900 .
  • the capturing of the image of the limb at step 400 is described in more detail regarding FIGS. 2-4 .
  • the application ensures the device 4 is properly aligned with the limb.
  • the joint is preferably centered in the image, and the image is captured from a point at the same height as the joint with the plane of the image being parallel to the limb or a vertical axis while the device 4 is in a portrait or landscape orientation.
  • a longitudinal axis 6 of the device would be parallel to the horizontal axis when in a landscape orientation or to the vertical axis when in a portrait orientation.
  • the application uses the gyroscope and/or accelerometer of the device 4 to determine whether the orientation of the device 4 is within a certain degree range whether the longitudinal axis 6 of the device 4 is within five degrees of the horizontal axis or within five degrees of the vertical axis.
  • the application provides a visual indication 8 on a display 18 of the device 4 whether the device 4 is properly oriented and allows the user to adjust the device 4 until the orientation requirements are met.
  • FIG. 3 shows the device in a portrait orientation 10 followed by a landscape orientation 12 and an unacceptable tilted orientation 14 .
  • the display will indicate by highlighting the landscape or portrait orientation in FIG. 3 . If the device is not within five degrees of the vertical axis or the device is otherwise rotated about the vertical or horizontal axes, the cross-out symbol will flash to indicate to the user that adjustment of the device is tilted and adjustment is required.
  • the display shows the viewfinder image and enables capture of an image.
  • the display 18 of the device 4 becomes the viewfinder for the camera and a depth of field guideline 16 is overlaid on the viewfinder image.
  • the depth of field guideline 16 provides the user with assistance in centering the joint in the photo and capturing the appropriate portion of the joint.
  • the limb Before capturing the image of the limb, the limb may be measured and marked at multiple points to indicate specific distances above and below the joint, to aid in alignment with the depth of field guideline, and to provide reference points for circumference measurements of the limb.
  • the markings may be at specific points or at regular intervals along and around the limb.
  • FIG. 4 shows an example of the depth of field guideline 16 on the display 18 of the device 4 to assist the user in capturing the appropriate portion of the limb.
  • the portions 25 , 27 of the leg about 15 cm above and below a knee axis 23 should be captured in the image for a custom knee brace.
  • a hash mark 17 is provided at the center of the viewfinder image 20 to assist the user in aligning the joint with the center of the image.
  • An upper guideline 19 is at the top of the viewfinder image 20 indicating that the distance of about 15 cm above the joint is aligned with the upper guideline 19 .
  • a lower guideline 21 indicates the distance of about 15 cm below the joint is aligned with the lower guideline 21 in the image.
  • the guideline 16 inclusive of mark and guidelines 17 , 19 , 21 may include a vertical line 29 on the center of the image to align with the center of the limb. While the depth of field guideline 16 for the knee defines a portion of the knee about 15 cm above and below the knee, the depth of field guideline 16 may define a portion of the limb any distance above and below a certain point.
  • markings may first be placed on the limb indicating specific locations on the limb.
  • An anatomical landmark or marking is placed at the point on the limb about 15 cm below the joint and about 15 cm above the joint which corresponds to the depth of field guidelines. Therefore, the photographer need only align the markings with the upper and lower guidelines and align the center hash mark over the center of the joint.
  • the method may require a delay before the image is taken to assure stable and clear focus.
  • the method Upon alignment with the field guideline, the method requires a steady position before taking the image.
  • a signal may be released, such as a green dot, to prompt the user to capture the image by pressing a button on the device.
  • the clinician first identifies the medial joint space and marks it appropriately. The clinician then measures approximately 2 cm above the medial joint space and draws a line across the knee, from medial to lateral sides, to define the knee axis line. The clinician then identifies and marks the lateral joint space. The clinician then may measure and mark points both 7.5 cm and 15 cm above and below the knee axis line. The clinician marks the tibial peak below the 15 cm mark and the tibial peak above the 7.5 cm mark, and connects the two with a line.
  • the application may directly enable the capture of the image instead of checking the device orientation before enabling the display 18 to function as the viewfinder of the camera.
  • the application may provide on-screen guides as to the current orientation of the device relative to the preferred orientation regarding each of the axes next to or over the viewfinder image.
  • the application assists and guides the user in capturing the optimal image of the limb for a custom orthopedic device.
  • the orientation of the device 4 Through immediate on-screen guidance as to the orientation of the device 4 , the user can easily and quickly adjust the angle, orientation, and alignment of the device to obtain a well aligned and consistent photograph of the limb. The possibility of misalignment between the image capturing device and the limb is therefore greatly reduced.
  • the clinician takes both an anterior view of the limb with the markings, and a lateral view of the limb.
  • the depth of field guideline may vary according to the orientation of the limb, which is selected on the device by the clinician.
  • the method may include image capture from any number sides of a patient's limb, including anterior, posterior, lateral and medial views and angles.
  • the user is prompted to review the captured image.
  • the captured image with the overlaid guidelines 16 is shown, and the user determines whether the correct portion of the limb is captured within the image and whether the limb is centered within the image. If the limb and the device 4 were not aligned when the image was captured, a new image may be taken. If a new image is captured, the application returns to step 400 to guide the user through the correct orientation and framing of the limb in the image.
  • the user is prompted to enter measurements of the limb.
  • the measurements of the limb may include the medial-lateral (M-L) width measurement of the limb and the circumference of the limb at various points above and below the joint.
  • a measuring device such as a caliper or measuring tape may obtain the measurements of the limb.
  • the captured image 22 is stored with an identification label 24 .
  • the identification label 24 may be text overlaid on the captured image 22 .
  • FIG. 5 is an example of a saved image overlaid with an identification label 24 .
  • the information label 24 may include data such as the patient's name, date of the photograph, and the M-L measurement along one side of the image.
  • the image with overlaid information is stored in the memory of the device.
  • the image may be password protected or encrypted in the memory to protect the patient's privacy.
  • the system may include a tilt indicator 31 arranged to allow the clinician to correctly orient the camera position.
  • the tilt indicator 31 relies on a determination by the device to measure whether the angle or orientation of the device is proper to assure a successful captured image.
  • the tilt indicator will display a red color when the device is not in the proper orientation to capture the image, and a green color when the device is in a proper orientation.
  • additional patient information is entered to fill out the order form.
  • the patient information may include the name of the user, the prescriber of the orthopedic device, and the diagnosis or symptoms of the user with identification of the problem joint.
  • the application can create a partial order on the device in encrypted XML format including the captured photo and patient information.
  • Other security measures may protect the patient's data under HIPAA regulations.
  • the user or patient selects the appropriate orthopedic device configuration such as the orthopedic device model and color.
  • the application guides the user through the different orthopedic devices and provides the user with options based on the selected orthopedic device.
  • the partial order is saved.
  • the user can enter a menu listing all orders saved on the device or continue to a review of the order.
  • the list also indicates the status of the order such as whether the order has been transmitted to the maker or seller. If the user selects a link for an order not yet transmitted, the user is prompted to review the order.
  • the order is displayed for review.
  • the saved image and the collected information are displayed.
  • the user can edit portions of the order with the changes made during the review being saved with the order.
  • the user can also enter the clinician information and payment and shipping information. The user then may save the order or transmitting the order.
  • the order is saved and/or transmitted to the server of the custom orthopedic device provider.
  • the application sends the order in an e-mail and automatically populates the fields of the e-mail based on the data in the saved order.
  • the patient information, brace information, and clinician or user information are inserted into the body of the e-mail while the saved image associated with the order is automatically attached to or inserted into the e-mail.
  • the device can send the order directly to a server of the seller through a network.
  • the application and/or the server may display or send a notification to the user to confirm the order.
  • the embodiments described relate to a method and device for ordering a custom orthopedic device which can be accomplished with a single image
  • the method and device are used with or within a custom orthopedic device production method and system which produces the custom orthopedic device based on a three-dimensional model of the limb generated from a plurality of captured images.
  • markers or reference points are placed on the limb and are subsequently captured in the image.
  • the markers or reference points assist in determining the dimensions of the limb from the image by providing information related to the surface of the limb.
  • a sock or sleeve having markings may be worn on the limb or the limb may be marked at particular intervals. Markings can be contrasting colored markings in many shapes such as a circular shape, a rectangular shape, a triangular shape, or any combination and are preferably the same size.
  • the distribution and density of the markings over the surface of the sock, sleeve, or limb varies depending on the type of limb and the desired three-dimensional modeling resolution.
  • markings or a higher density of markings in a certain area produces a more accurate three-dimensional model of the limb since more reference points would be provided in the captured image.
  • the markings may be concentrated in areas where there are more variations in the continuity of the limb surface such as around the joint area. Additional references may be added to the limb or the sock. In ordering a custom knee brace, additional markings or references are added to indicate the center of the knee, the angle of the tibia, and the locations of the condyles.
  • FIG. 6 shows an image capturing process 402 and a review stage 502 in an embodiment of the method for ordering a custom orthopedic device where a three-dimensional image of the limb is captured.
  • This embodiment follows the same steps as the embodiment in FIG. 1 and differs in the specific steps taken to capture the image at 400 and in the image displayed during the review stage 500 of the embodiment of FIG. 1 .
  • the ordering process continues with the remaining general ordering steps 600 , 700 , 800 , and 900 as described with respect to FIG. 1 .
  • the user is prompted to select whether to use a three-dimensional model. If the user does not select the three-dimensional model, the method continues as described regarding FIGS. 1-5 . If the user uses the three-dimensional option, the image capturing process 402 as shown in FIG. 6 and review process 502 are used.
  • markings or reference points are added to the limb in the manner described.
  • the photographer captures at least two images of the limb at various angles or views.
  • at least four individual images are captured of the limb with each image capturing a different angle or view of the limb such that the entire circumference of the appropriate portion of the limb is captured within the plurality of images.
  • the application may instruct the user to capture a certain number of images of the limb from different angles, orientations, heights, or different portions of the limb.
  • the application may use continuous image capturing where the application automatically captures images at different intervals such that the photographer need only move the device and indicate when images of all views or sides of the limb have been captured.
  • the application can guide the photographer in capturing the appropriate angles or views of the limb with the appropriate alignment of the limb in the image using accelerometer and/or gyroscope data from the device using the guidelines described. Depending on the depth of field of the images, the application can determine the appropriate number of images, angles, or views needed to generate an accurate three-dimensional model of the limb.
  • the application analyzes and processes the plurality of captured images to stitch the images together and form a continuous view of the limb.
  • the application can perform the stitching of the images together automatically or with user assistance.
  • the stitching of the images can also be performed while the images are being captured or with the plurality of individual separately captured images.
  • the application generates a three-dimensional model of the limb using the markings on the sock, sleeve, or limb.
  • the model may be a computer-aided design (CAD) point cloud surface where the markings shown in the captured images translate into points in the point could surface.
  • the application preferably generates a 360° view of the limb.
  • the application prompts the user to review the generated three-dimensional model to ensure that the three-dimensional model accurately depicts the surface shape of the corresponding portion of the limb at 502 .
  • the user can rotate and zoom into the model to view all sides of and different levels of detail of the limb. The user is given the option of approving the generated model or re-capturing the limb to generate a more accurate model.
  • the order can include the plurality of images and/or the three-dimensional model of the limb.
  • modules are defined here as an isolatable element that performs a defined function and has a defined interface to other elements.
  • the modules described in this disclosure may be implemented in hardware, a combination of hardware and software, firmware, or a combination, all of which are behaviorally equivalent. Modules may be implemented using computer hardware in combination with software routine(s) written in a computer language (such as C, C++, Fortran, Java, Basic, Matlab or the like). It may be possible to implement modules using physical hardware that incorporates discrete or programmable analog and/or digital hardware.
  • programmable hardware examples include: computers, microcontrollers, microprocessors, application-specific integrated circuits (ASICs); field programmable gate arrays (FPGAs); and complex programmable logic devices (CPLDs).
  • Computers, microcontrollers and microprocessors are programmed using languages such as assembly, C, C++ or the like.
  • the application may be software embodied on a computer readable medium which when executed by a processor of a computer performs a sequence of steps.
  • a computer readable medium may be a floppy disk, a flexible disk, a hard disk, magnetic tape, or any other magnetic medium, a CD-ROM, any other optical medium, a RAM, a ROM, or any other medium from which a computer can read.
  • Various forms of computer readable media may carry one or more sequences of one or more instructions to a processor for execution.
  • the software may be transmitted over a wired or wireless network to the device.

Abstract

A method and device for digital measuring and ordering a custom orthopedic device includes an interactive method intended to assist clinicians select, measure and submit precise specifications for patients requiring custom orthopedic devices. The method includes a plurality of menus permitting the clinician to input specifications and submit orders electronically with the specifications and other data packaged together. The method and device include visualization indications to appropriately ensure image capture of a limb from various angles, including posterior, anterior, lateral and medial angles.

Description

    FIELD OF THE DISCLOSURE
  • The present disclosure relates to a method and device for ordering a custom orthopedic device including providing security provisions, receiving measurement information, capturing an image of the appropriate portion of the limb, and submitting ordering requests.
  • BACKGROUND
  • To provide customized support for a joint, a clinician may provide a patient with a custom fitted orthopedic device adapted to the specific anatomical dimensions of the individual patient. A common orthopedic device for customization is a knee brace. A patient will typically obtain a customized brace through a clinician having the expertise to assure that the orthopedic device fits the patient properly.
  • A clinician can prepare the brace himself, or order a custom orthopedic device remotely through the mail or by submitting an order over mail, phone, fax or the Internet. During the ordering process, the clinician typically provides the manufacturer or seller (“provider”) with an image of a portion of the limb including the joint and measurements of the limb around the joint. The custom orthopedic brace is produced based on the submitted image of the limb and measurements. The provider may require the image of the limb be captured at a certain orientation, angle, height, and distance relative to the limb to ensure that the captured image accurately portrays the dimensions and proportions of the limb. Appropriate tags, reference indicia and reference markings of anatomy are often placed on the limb to identify the patient, the limb, and any other necessary information if the photo is misplaced from an order form.
  • It is undesirable for the picture to be taken when the camera is at an angle relative to the limb (angle normal to the line of progression of the limb) or when the limb is not aligned with the center of the image since such an image would inaccurately portray the dimensions and proportions of the limb. Producing a custom orthopedic brace based on such a misaligned image results in a poorly fitting brace. Likewise, poor resolution or lack of indicia applied on the limb may impede the producer in fully understanding the contours of the patient's limb.
  • Using a conventional camera, the photographer must estimate or otherwise measure the specified distance between the camera and the limb, the specified portion of the limb to capture in the image, and the appropriate orientation of the camera relative to the limb. Since the conventional camera does not provide feedback about the angle or orientation at which the camera is held, it is difficult for the photographer to determine whether the image of the limb being captured meets the requirements of the manufacturer or seller without additional aids.
  • The patient may need to use different devices to complete the entire ordering process. If the image of the limb is captured with a conventional digital camera, the image must then be transferred to a computer before the order and image can be uploaded over the Internet to the server of the manufacturer or seller.
  • While providing a photo is useful in understanding the patient's anatomy, dimensional measurements are likewise required. Various forms are required for completion by the clinician to determine measurement data and patient personal information. Other forms require the clinician to indicate brace models, features, accessories, colors, etc. From the requirement for forms and a photo, the ordering process both complicated and risks a mismatch of documents for the order.
  • The features of the disclosure provide a solution to the need to reduce image and limb misalignment and improve the ease of capturing an image of the limb and of ordering a custom orthopedic device without multiple forms.
  • SUMMARY
  • According to a method for ordering a custom orthopedic device for a joint, the method includes aligning a viewfinder image displayed on a screen and generated by an image sensor of a portable device with at least one predetermined portion of a limb including a joint. The method involves capturing and storing at least one image of the portion of the limb using the image sensor of the portable device based on at least one guideline. The at least one captured image is associated with measurements of the limb, and patient information entered into the portable device. The order is transmitted to the provider and contains the at least one captured image, the measurements of the limb, and the patient information from the portable device. The at least one guideline may be a depth of field guideline, a horizontal orientation guideline, a vertical orientation guideline, a tilt guideline, or a limb alignment guideline.
  • The at least one image of the limb may satisfy the depth of field guideline, the horizontal or the vertical orientation guideline, the tilt angle guideline, and the limb alignment guideline. The limb alignment guideline is a depth of field guideline overlaid on the viewfinder image. The depth of field guideline may be a reference frame for a first distance above a joint, a second distance below a joint, and a centering of the limb and joint in the captured image.
  • According to a variation, the first and second distances are the same and referenced from a knee axis line. The distances above and below the joint may be aligned with the depth of field guideline in the viewfinder image before capturing the image.
  • Once the orientation of the portable device relative to the limb satisfies the horizontal angle guideline or vertical angle guideline and the tilt angle guideline, the portable device enables image capture. The method may also include calibrating the image sensor of the portable device.
  • The method may include executing an ordering application, determining whether the ordering application has been previously executed. The image sensor may be calibrated upon the determination that the ordering application has not been previously executed. The image of the limb enables capture upon the determination that the ordering application has been previously executed.
  • The method may include reviewing the captured image of the limb and selecting a custom orthopedic device configuration. The step of reviewing the captured image of the limb includes viewing the captured image with an overlaid depth of field guideline to confirm the captured portion of the limb satisfies the overlaid depth of field guideline. The method may also include entering basic patient information into the portable device including measurements of the limb at various locations on the limb. The captured image may be overlaid with the basic patient information. The overlaid captured image may be stored in the portable device.
  • The method can involve configuring the custom orthopedic device, reviewing the order, and storing the order in a memory of the portable device. At least one previous order may be stored in the memory of the portable device. The order may be transmitted as an e-mail containing the patient information and the saved, captured image of the limb.
  • In an embodiment of the device, the device includes an image sensor configured to capture an image, a display, a gyroscope and/or accelerometer, a communication interface, a processor, and a memory. The processor is configured to enable capturing an image of a portion of a limb including a joint using the image sensor based on at least one guideline, and the image of the limb satisfies the at least one guideline. The gyroscope and/or accelerometer is configured to provide orientation data to the processor. The communication interface is configured to transmit an order containing the captured image and patient information from the apparatus over a network to a provider. The at least one guideline is at least one of a depth of field guideline, a horizontal orientation guideline, a vertical orientation guideline, a tilt guideline, or a limb alignment guideline.
  • The method may include a login page requiring clinician and patient input. Upon entry of the information on the login page, the user is directed to an order configuration home screen or page. From the home screen, the user may select many pages for making the customized order. The user may first select the image capture and input measurements, followed by entering patient information, orthopedic device (brace) configuration, and any other order information. The user is not limited to a sequence of page use, other than upon entry of all data fields and appropriate image capture, the order is sent to the provider.
  • The limb alignment guideline is a depth of field guideline overlaid on a viewfinder image. The depth of field guideline is a reference frame for a first distance above a joint, a second distance below a joint, and a centering of the limb and joint in the captured image. The processor is configured to provide an indication of the orientation of the device on the display. The processor is configured to calibrate the image sensor by setting the image sensor to a first resolution and a first zoom level. At least one image of anatomical landmarks or markings on the limb is captured. A three-dimensional model of the limb is generated from the markings along with circumferential measurements.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The device and method for ordering a custom orthopedic device is described with reference to the accompanying drawings which show preferred embodiments according to the device described herein. It will be noted that the device as disclosed in the accompanying drawings is illustrated by way of example only. The various elements and combinations of elements described below and illustrated in the drawings can be arranged and organized differently to result in embodiments which are still within the spirit and scope of the device described herein.
  • FIG. 1 is an overview of the steps in an embodiment of the custom orthopedic device ordering method.
  • FIG. 2 shows a portrait orientation of a device for ordering the custom orthopedic device with respect to three axes.
  • FIG. 3 is an example of the indication provided to the user of the preferred orientation of the device.
  • FIG. 4 shows the device having a viewfinder image overlaid with a depth of field guideline.
  • FIG. 5 is an example of the captured image stored with an identification label.
  • FIG. 6 illustrates is a flowchart of an embodiment of the custom orthopedic device ordering method using a three-dimensional model of the limb.
  • DETAILED DESCRIPTION OF VARIOUS EMBODIMENTS
  • A better understanding of different embodiments of the disclosure may be had from the following description read with the accompanying drawings in which like reference characters refer to like elements.
  • While the disclosure is susceptible to various modifications and alternative constructions, certain illustrative embodiments are in the drawings and are described below. It should be understood, however, there is no intention to limit the disclosure to the specific embodiments disclosed, but on the contrary, the intention covers all modifications, alternative constructions, combinations, and equivalents falling within the spirit and scope of the disclosure.
  • It will be understood that unless a term is expressly defined in this disclosure to possess a described meaning, there is no intent to limit the meaning of such term, either expressly or indirectly, beyond its plain or ordinary meaning.
  • Any element in a claim that does not explicitly state “means for” performing a specified function, or “step for” performing a specific function is not to be interpreted as a “means” or “step” clause as specified in 35 U.S.C. §112, paragraph 6.
  • The embodiments of the method 2 and device 4 disclosed enable the user to easily capture accurate images of the limb and complete the ordering process on a single device. The method 2 may be implemented in an application executed on a portable device. The application guides the user through the ordering and image capturing process. Such a device and process reduces misalignment issues while integrating picture capturing and ordering into a single device.
  • The device used to capture the image and order the custom orthopedic brace may be any device having a display and an image sensor such as a mobile phone (iPhone®, Android® phone, Blackberry®, Windows® phone, etc.), a tablet (iPad®, Android® tablet, Windows® tablet etc.), a personal digital assistant (PDA), a computer, or any other portable device.
  • The preferred device 4 has an image sensor, a display, a processor, a gyroscope and/or accelerometer, memory, and a communication interface to allow communication of the order directly from the device over a network to a server of the manufacturer or seller.
  • FIG. 1 is an overview of an embodiment of a method 2 for ordering a custom orthopedic device. After the user selects the ordering application, the application is launched, and the application displays a login screen. At step 100, the user logs into an account or creates a new account using a keypad or similar on the device. The login page may include an option for an embedded tutorial including a visual step-by-step discussion stored on the device or available to the device through streaming. The tutorial may provide guidance on patient positioning, making anatomical landmarks on the limb, and taking circumferential measurements.
  • At step 200, the application determines whether the current session is the first use of the device 4 to order the custom orthopedic device. In one embodiment, if the current session is the first use, the application calibrates a camera of the device at 300. During calibration 300, the application automatically sets the camera to specific settings such as a specific resolution, zoom, and color setting.
  • Alternatively, the calibration 300 of the camera may be omitted. In this embodiment, the preferred camera settings are in text within the application, and the calibration is manually performed by the user by adjusting the settings of the camera. The preferred camera settings may be displayed during the image capturing process and during a review of the captured image. The preferred camera settings can also be displayed and included in a “help” section of the application.
  • If the current session is not the first use or calibration of the camera is unnecessary, the application enables capture of an image using guidelines and a specific alignment or orientation at step 400. In step 500, the captured image is reviewed by the user to determine whether the captured image meets the specified alignment. At step 600, patient information is entered, and a brace configuration is selected at 700. The user is prompted to review the order at 800 before the order is saved on the device and transmitted over a network to a server of the custom orthopedic device manufacturer or seller at 900.
  • The capturing of the image of the limb at step 400 is described in more detail regarding FIGS. 2-4. Before the application enables capturing of an image, the application ensures the device 4 is properly aligned with the limb. To produce a properly aligned image of the limb, the joint is preferably centered in the image, and the image is captured from a point at the same height as the joint with the plane of the image being parallel to the limb or a vertical axis while the device 4 is in a portrait or landscape orientation. Where the horizontal axis is parallel to the x-axis, the y-axis represents depth, and the vertical axis is parallel to the z-axis, a longitudinal axis 6 of the device would be parallel to the horizontal axis when in a landscape orientation or to the vertical axis when in a portrait orientation.
  • In determining whether the device 4 is in an acceptable portrait or landscape orientation, the application uses the gyroscope and/or accelerometer of the device 4 to determine whether the orientation of the device 4 is within a certain degree range whether the longitudinal axis 6 of the device 4 is within five degrees of the horizontal axis or within five degrees of the vertical axis.
  • The application provides a visual indication 8 on a display 18 of the device 4 whether the device 4 is properly oriented and allows the user to adjust the device 4 until the orientation requirements are met.
  • FIG. 3 shows the device in a portrait orientation 10 followed by a landscape orientation 12 and an unacceptable tilted orientation 14. When the device is within the five degrees of the landscape or portrait orientation, the display will indicate by highlighting the landscape or portrait orientation in FIG. 3. If the device is not within five degrees of the vertical axis or the device is otherwise rotated about the vertical or horizontal axes, the cross-out symbol will flash to indicate to the user that adjustment of the device is tilted and adjustment is required.
  • Once the orientation requirements are met, the display shows the viewfinder image and enables capture of an image. The display 18 of the device 4 becomes the viewfinder for the camera and a depth of field guideline 16 is overlaid on the viewfinder image. The depth of field guideline 16 provides the user with assistance in centering the joint in the photo and capturing the appropriate portion of the joint. Before capturing the image of the limb, the limb may be measured and marked at multiple points to indicate specific distances above and below the joint, to aid in alignment with the depth of field guideline, and to provide reference points for circumference measurements of the limb. The markings may be at specific points or at regular intervals along and around the limb.
  • FIG. 4 shows an example of the depth of field guideline 16 on the display 18 of the device 4 to assist the user in capturing the appropriate portion of the limb. The portions 25, 27 of the leg about 15 cm above and below a knee axis 23 should be captured in the image for a custom knee brace. A hash mark 17 is provided at the center of the viewfinder image 20 to assist the user in aligning the joint with the center of the image. An upper guideline 19 is at the top of the viewfinder image 20 indicating that the distance of about 15 cm above the joint is aligned with the upper guideline 19. Similarly, a lower guideline 21 indicates the distance of about 15 cm below the joint is aligned with the lower guideline 21 in the image. The guideline 16, inclusive of mark and guidelines 17, 19, 21 may include a vertical line 29 on the center of the image to align with the center of the limb. While the depth of field guideline 16 for the knee defines a portion of the knee about 15 cm above and below the knee, the depth of field guideline 16 may define a portion of the limb any distance above and below a certain point.
  • To aid the user in correctly framing the limb in the picture, markings may first be placed on the limb indicating specific locations on the limb. An anatomical landmark or marking is placed at the point on the limb about 15 cm below the joint and about 15 cm above the joint which corresponds to the depth of field guidelines. Therefore, the photographer need only align the markings with the upper and lower guidelines and align the center hash mark over the center of the joint.
  • The method may require a delay before the image is taken to assure stable and clear focus. Upon alignment with the field guideline, the method requires a steady position before taking the image. A signal may be released, such as a green dot, to prompt the user to capture the image by pressing a button on the device.
  • In a variation, the clinician first identifies the medial joint space and marks it appropriately. The clinician then measures approximately 2 cm above the medial joint space and draws a line across the knee, from medial to lateral sides, to define the knee axis line. The clinician then identifies and marks the lateral joint space. The clinician then may measure and mark points both 7.5 cm and 15 cm above and below the knee axis line. The clinician marks the tibial peak below the 15 cm mark and the tibial peak above the 7.5 cm mark, and connects the two with a line.
  • Alternatively, the application may directly enable the capture of the image instead of checking the device orientation before enabling the display 18 to function as the viewfinder of the camera. The application may provide on-screen guides as to the current orientation of the device relative to the preferred orientation regarding each of the axes next to or over the viewfinder image.
  • In this manner, the application assists and guides the user in capturing the optimal image of the limb for a custom orthopedic device. Through immediate on-screen guidance as to the orientation of the device 4, the user can easily and quickly adjust the angle, orientation, and alignment of the device to obtain a well aligned and consistent photograph of the limb. The possibility of misalignment between the image capturing device and the limb is therefore greatly reduced.
  • According to a variation, the clinician takes both an anterior view of the limb with the markings, and a lateral view of the limb. In both instances, the depth of field guideline may vary according to the orientation of the limb, which is selected on the device by the clinician. The method may include image capture from any number sides of a patient's limb, including anterior, posterior, lateral and medial views and angles.
  • Once an image is captured, the user is prompted to review the captured image. During the review of the captured photograph at step 500, the captured image with the overlaid guidelines 16 is shown, and the user determines whether the correct portion of the limb is captured within the image and whether the limb is centered within the image. If the limb and the device 4 were not aligned when the image was captured, a new image may be taken. If a new image is captured, the application returns to step 400 to guide the user through the correct orientation and framing of the limb in the image. Once the photograph is confirmed, the user is prompted to enter measurements of the limb. The measurements of the limb may include the medial-lateral (M-L) width measurement of the limb and the circumference of the limb at various points above and below the joint. A measuring device such as a caliper or measuring tape may obtain the measurements of the limb.
  • To associate the captured image 22 with the patient, the captured image 22 is stored with an identification label 24. The identification label 24 may be text overlaid on the captured image 22. FIG. 5 is an example of a saved image overlaid with an identification label 24. The information label 24 may include data such as the patient's name, date of the photograph, and the M-L measurement along one side of the image. The image with overlaid information is stored in the memory of the device. The image may be password protected or encrypted in the memory to protect the patient's privacy.
  • As shown in FIG. 5, the system may include a tilt indicator 31 arranged to allow the clinician to correctly orient the camera position. The tilt indicator 31 relies on a determination by the device to measure whether the angle or orientation of the device is proper to assure a successful captured image. In a preferred embodiment, the tilt indicator will display a red color when the device is not in the proper orientation to capture the image, and a green color when the device is in a proper orientation.
  • At 600, additional patient information is entered to fill out the order form. The patient information may include the name of the user, the prescriber of the orthopedic device, and the diagnosis or symptoms of the user with identification of the problem joint. After the patient information is entered, the application can create a partial order on the device in encrypted XML format including the captured photo and patient information. Other security measures may protect the patient's data under HIPAA regulations.
  • At step 700, the user or patient selects the appropriate orthopedic device configuration such as the orthopedic device model and color. The application guides the user through the different orthopedic devices and provides the user with options based on the selected orthopedic device. After selection and configuration of the orthopedic device, the partial order is saved. The user can enter a menu listing all orders saved on the device or continue to a review of the order. The list also indicates the status of the order such as whether the order has been transmitted to the maker or seller. If the user selects a link for an order not yet transmitted, the user is prompted to review the order.
  • At step 800, the order is displayed for review. The saved image and the collected information are displayed. The user can edit portions of the order with the changes made during the review being saved with the order. The user can also enter the clinician information and payment and shipping information. The user then may save the order or transmitting the order.
  • At step 900, the order is saved and/or transmitted to the server of the custom orthopedic device provider. The application sends the order in an e-mail and automatically populates the fields of the e-mail based on the data in the saved order. The patient information, brace information, and clinician or user information are inserted into the body of the e-mail while the saved image associated with the order is automatically attached to or inserted into the e-mail. When the user elects to send the e-mail containing the order information, the device can send the order directly to a server of the seller through a network. The application and/or the server may display or send a notification to the user to confirm the order.
  • While the embodiments described relate to a method and device for ordering a custom orthopedic device which can be accomplished with a single image, in another embodiment the method and device are used with or within a custom orthopedic device production method and system which produces the custom orthopedic device based on a three-dimensional model of the limb generated from a plurality of captured images.
  • To generate a three-dimensional model, markers or reference points are placed on the limb and are subsequently captured in the image. The markers or reference points assist in determining the dimensions of the limb from the image by providing information related to the surface of the limb. To place the markers or reference points on the limb, a sock or sleeve having markings may be worn on the limb or the limb may be marked at particular intervals. Markings can be contrasting colored markings in many shapes such as a circular shape, a rectangular shape, a triangular shape, or any combination and are preferably the same size. The distribution and density of the markings over the surface of the sock, sleeve, or limb varies depending on the type of limb and the desired three-dimensional modeling resolution.
  • Providing more markings or a higher density of markings in a certain area produces a more accurate three-dimensional model of the limb since more reference points would be provided in the captured image. The markings may be concentrated in areas where there are more variations in the continuity of the limb surface such as around the joint area. Additional references may be added to the limb or the sock. In ordering a custom knee brace, additional markings or references are added to indicate the center of the knee, the angle of the tibia, and the locations of the condyles.
  • FIG. 6 shows an image capturing process 402 and a review stage 502 in an embodiment of the method for ordering a custom orthopedic device where a three-dimensional image of the limb is captured. This embodiment follows the same steps as the embodiment in FIG. 1 and differs in the specific steps taken to capture the image at 400 and in the image displayed during the review stage 500 of the embodiment of FIG. 1. After the three-dimensional model specific steps of 402 and 502, the ordering process continues with the remaining general ordering steps 600, 700, 800, and 900 as described with respect to FIG. 1.
  • Once the ordering application is executed and before the image capturing step 400, the user is prompted to select whether to use a three-dimensional model. If the user does not select the three-dimensional model, the method continues as described regarding FIGS. 1-5. If the user uses the three-dimensional option, the image capturing process 402 as shown in FIG. 6 and review process 502 are used.
  • Before beginning the image capturing process 402, markings or reference points are added to the limb in the manner described. In the image capturing process 402 starting with step 404, the photographer captures at least two images of the limb at various angles or views. Preferably, at least four individual images are captured of the limb with each image capturing a different angle or view of the limb such that the entire circumference of the appropriate portion of the limb is captured within the plurality of images. The application may instruct the user to capture a certain number of images of the limb from different angles, orientations, heights, or different portions of the limb.
  • Alternatively, the application may use continuous image capturing where the application automatically captures images at different intervals such that the photographer need only move the device and indicate when images of all views or sides of the limb have been captured.
  • During the image capturing process 402, the application can guide the photographer in capturing the appropriate angles or views of the limb with the appropriate alignment of the limb in the image using accelerometer and/or gyroscope data from the device using the guidelines described. Depending on the depth of field of the images, the application can determine the appropriate number of images, angles, or views needed to generate an accurate three-dimensional model of the limb.
  • At step 406, the application analyzes and processes the plurality of captured images to stitch the images together and form a continuous view of the limb. The application can perform the stitching of the images together automatically or with user assistance. The stitching of the images can also be performed while the images are being captured or with the plurality of individual separately captured images.
  • At 408, from the stitched image, the application generates a three-dimensional model of the limb using the markings on the sock, sleeve, or limb. The model may be a computer-aided design (CAD) point cloud surface where the markings shown in the captured images translate into points in the point could surface. The application preferably generates a 360° view of the limb.
  • Once the image capturing process 402 is completed, the application prompts the user to review the generated three-dimensional model to ensure that the three-dimensional model accurately depicts the surface shape of the corresponding portion of the limb at 502. During review of the three-dimensional model, the user can rotate and zoom into the model to view all sides of and different levels of detail of the limb. The user is given the option of approving the generated model or re-capturing the limb to generate a more accurate model.
  • If the user performs the image capturing process 402 again, the current generated model may be saved for comparison with later models during the review stage. If the user approves of the generated model, the application continues with the general ordering process stages 600-900 as described regarding FIG. 1. For the order review at 800 and transmission and saving of the order 900, the order can include the plurality of images and/or the three-dimensional model of the limb.
  • Many of the elements described in the disclosed embodiments may be implemented as modules. A module is defined here as an isolatable element that performs a defined function and has a defined interface to other elements. The modules described in this disclosure may be implemented in hardware, a combination of hardware and software, firmware, or a combination, all of which are behaviorally equivalent. Modules may be implemented using computer hardware in combination with software routine(s) written in a computer language (such as C, C++, Fortran, Java, Basic, Matlab or the like). It may be possible to implement modules using physical hardware that incorporates discrete or programmable analog and/or digital hardware. Examples of programmable hardware include: computers, microcontrollers, microprocessors, application-specific integrated circuits (ASICs); field programmable gate arrays (FPGAs); and complex programmable logic devices (CPLDs). Computers, microcontrollers and microprocessors are programmed using languages such as assembly, C, C++ or the like. Finally, the above mentioned technologies may be used in combination to achieve the result of a functional module.
  • The application may be software embodied on a computer readable medium which when executed by a processor of a computer performs a sequence of steps. A computer readable medium may be a floppy disk, a flexible disk, a hard disk, magnetic tape, or any other magnetic medium, a CD-ROM, any other optical medium, a RAM, a ROM, or any other medium from which a computer can read. Various forms of computer readable media may carry one or more sequences of one or more instructions to a processor for execution. The software may be transmitted over a wired or wireless network to the device.
  • While the foregoing steps embodiments have been described and shown, alternatives and modifications of these embodiments, such as those suggested by others, may be made to fall within the scope of the invention. A preferred order for the steps in the method of ordering the custom orthopedic device has been described. It is noted that the order of the steps in the method may be rearranged.

Claims (20)

1. A method of ordering a custom orthopedic device for a joint, comprising the steps of:
aligning a viewfinder image displayed on a screen and generated by an image sensor of a portable device with at least one predetermined portion of a limb including a joint;
capturing and storing at least one image of the portion of the limb using the image sensor of the portable device based on at least one guideline;
associating the at least one captured image with measurements of the limb, and patient information entered into the portable device; and
transmitting an order containing the at least one captured image, the measurements of the limb, and the patient information from the portable device to a provider;
wherein the at least one guideline is at least one of a depth of field guideline, a horizontal orientation guideline, a vertical orientation guideline, a tilt guideline, or a limb alignment guideline.
2. The method according to claim 1, wherein the at least one image of the limb satisfies the depth of field guideline, the horizontal or the vertical orientation guideline, the tilt angle guideline, and the limb alignment guideline.
3. The method according to claim 1, wherein the limb alignment guideline is a depth of field guideline overlaid on the viewfinder image, the depth of field guideline being a reference frame for a first distance above a joint, a second distance below a joint, and a centering of the limb and joint in the captured image.
4. The method according to claim 3, wherein the first and second distances are the same and referenced from a knee axis line.
5. The method according to claim 3, further comprising the step of:
aligning the distances above and below the joint with the depth of field guideline shown in the viewfinder image before capturing the image.
6. The method according to claim 1, wherein once the orientation of the portable device relative to the limb satisfies the horizontal angle guideline or vertical angle guideline and the tilt angle guideline, the portable device enables image capture.
7. The method according to claim 1, further comprising the step of:
calibrating the image sensor of the portable device.
8. The method according to claim 1, further comprising the step of:
executing an ordering application;
determining whether the ordering application has been previously executed;
upon the determination that the ordering application has not been previously executed, calibrating the image sensor of the portable device; and
upon the determination that the ordering application has been previously executed, enabling capture of the image of the limb.
9. The method according to claim 1, further comprising the steps of:
reviewing the captured image of the limb; and
selecting a custom orthopedic device configuration.
10. The method according to claim 9, wherein the step of reviewing the captured image of the limb, comprises the steps of:
viewing the captured image with an overlaid depth of field guideline to confirm the captured portion of the limb satisfies the overlaid depth of field guideline;
entering basic patient information into the portable device, wherein the basic patient information includes measurements of the limb at various locations on the limb;
overlaying the captured image with the basic patient information; and
storing the overlaid captured image in the portable device.
11. The method according to claim 1, further comprising the steps of:
configuring the custom orthopedic device;
reviewing the order; and
storing the order in a memory of the portable device.
12. The method according to claim 11, wherein at least one previous order is stored in the memory of the portable device.
13. The method according to claim 1, wherein the order is transmitted as an e-mail containing the patient information and the saved, captured image of the limb.
14. The method according to claim 1, wherein the joint is a knee joint and the orthopedic device is a knee brace.
15. A device for ordering a custom orthopedic device, comprising:
an image sensor, the image sensor configured to capture an image;
a display;
a gyroscope and/or accelerometer;
a communication interface;
a processor; and
a memory;
wherein the processor is configured to enable capturing an image of a portion of a limb including a joint using the image sensor based on at least one guideline, wherein the image of the limb satisfies the at least one guideline;
wherein the gyroscope and/or accelerometer is configured to provide orientation data to the processor;
wherein the communication interface is configured to transmit an order containing the captured image and patient information from the apparatus over a network to a provider; and
wherein the at least one guideline is at least one of a depth of field guideline, a horizontal orientation guideline, a vertical orientation guideline, a tilt guideline, or a limb alignment guideline.
16. The device according to claim 15, wherein the limb alignment guideline is a depth of field guideline overlaid on a viewfinder image, the depth of field guideline being a reference frame for a first distance above a joint, a second distance below a joint, and a centering of the limb and joint in the captured image.
17. The device according to claim 16, wherein the processor is configured to provide an indication of the orientation of the device on the display.
18. The device according to claim 15, wherein the processor is configured to calibrate the image sensor by setting the image sensor to a first resolution and a first zoom level.
19. The method according to claim 1, wherein at least one image of markings or reference points on the limb is captured.
20. The method according to claim 19, further comprising: generating a three-dimensional model of the limb from the markings.
US14/011,300 2012-08-29 2013-08-27 Method and Device for Ordering a Custom Orthopedic Device Abandoned US20140063220A1 (en)

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US16/287,154 US10779961B2 (en) 2012-08-29 2019-02-27 Method and device for ordering a custom orthopedic device
US17/178,643 US11241319B2 (en) 2012-08-29 2021-02-18 Method and device for ordering a custom orthopedic device

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US17/178,643 Continuation US11241319B2 (en) 2012-08-29 2021-02-18 Method and device for ordering a custom orthopedic device

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Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140354784A1 (en) * 2013-06-04 2014-12-04 Samsung Electronics Co., Ltd. Shooting method for three dimensional modeling and electronic device supporting the same
US20150257678A1 (en) * 2012-10-04 2015-09-17 Townsend Industries, Inc. d/b/a Townsend Design Method of preparing an image for use in production of a knee brace and a tibial contour gauge and an image alignmetn guide for use in said method
CN105902271A (en) * 2016-04-08 2016-08-31 爱乔(上海)医疗科技有限公司 Lower limb side force line measurement device and method
WO2018005730A1 (en) 2016-06-29 2018-01-04 Vision Quest Industries Incorporated Dba Vq Orthocare Measurement and ordering system for orthotic devices
WO2018130691A1 (en) 2017-01-13 2018-07-19 Adapttech Limited Fitting system
US10082384B1 (en) 2015-09-10 2018-09-25 Stryker European Holdings I, Llc Systems and methods for detecting fixation frame parameters
EP3513770A4 (en) * 2016-09-14 2020-09-23 Cyberdyne Inc. Device for producing knee joint correction tool, method for producing knee joint correction tool, device for assisting knee joint treatment, and method for assissting knee joint treatment
US10842653B2 (en) 2007-09-19 2020-11-24 Ability Dynamics, Llc Vacuum system for a prosthetic foot
DE102019122374A1 (en) * 2019-08-20 2021-02-25 Ottobock Se & Co. Kgaa Method for producing a prosthesis socket
US11129548B2 (en) * 2014-04-09 2021-09-28 Scholl's Wellness Company Llc Method, apparatus, and computer readable medium for generating a set of recommended orthotic products

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11051967B2 (en) * 2016-10-07 2021-07-06 Df2, Llc Functional fracture brace for femur fractures

Citations (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040032595A1 (en) * 2000-10-07 2004-02-19 Robert Massen Arrangement and method for producing photogrammetric image records
US20040088584A1 (en) * 2002-10-21 2004-05-06 Yair Shachar Method and system for providing security data to security stations
US20050256392A1 (en) * 2004-05-12 2005-11-17 Yvedt Matory Systems and methods for remote body imaging evaluation
US20060100832A1 (en) * 2004-11-08 2006-05-11 Bowman Gerald D Method a designing, engineering modeling and manufacturing orthotics and prosthetics integrating algorithm generated predictions
US20070083384A1 (en) * 2005-09-28 2007-04-12 Right-Fit Education Llc Method and system for posture awareness training
US7298890B2 (en) * 2001-03-18 2007-11-20 Corpus.E Ag Method and arrangement for the photographically detecting the spatial form of an object
US20080124064A1 (en) * 2006-11-24 2008-05-29 Sony Ericsson Mobile Communications Ab Image alignment system
US7489813B2 (en) * 2001-11-21 2009-02-10 Corpus.E Ag Method and system for detecting the three-dimensional shape of an object
US20100268138A1 (en) * 2008-11-09 2010-10-21 Scott Summit Custom braces, casts and devices having limited flexibility and methods for designing and fabricating
US20110092804A1 (en) * 2006-02-27 2011-04-21 Biomet Manufacturing Corp. Patient-Specific Pre-Operative Planning
US20110149094A1 (en) * 2009-12-22 2011-06-23 Apple Inc. Image capture device having tilt and/or perspective correction
US20110166435A1 (en) * 2008-09-17 2011-07-07 Inertial Orthopaedic Navigation Solutions Pty Ltd. Surgical orientation system and associated method
US20110248987A1 (en) * 2010-04-08 2011-10-13 Disney Enterprises, Inc. Interactive three dimensional displays on handheld devices
US20120098992A1 (en) * 2010-10-26 2012-04-26 Canon Kabushiki Kaisha Imaging apparatus
US20120165648A1 (en) * 2010-12-27 2012-06-28 Joseph Ralph Ferrantelli Mobile postural screening method and system
US20120235993A1 (en) * 2009-11-13 2012-09-20 Han-Joon Kim Display Orientation Adjustment Device And Adjustment Program For Medical Three-Dimensional Image
US20130301901A1 (en) * 2012-05-14 2013-11-14 Gauss Surgical System and method for estimating a quantity of a blood component in a fluid canister
US20140300722A1 (en) * 2011-10-19 2014-10-09 The Regents Of The University Of California Image-based measurement tools
US8988503B2 (en) * 2007-07-11 2015-03-24 Corpus.E Ag Sensing apparatus and method for detecting a three-dimensional physical shape of a body
US9149224B1 (en) * 2011-10-17 2015-10-06 Massachusetts Institute Of Technology System and method for measuring skin movement and strain and related techniques
US20170281009A1 (en) * 2011-10-17 2017-10-05 Massachusetts Institute Of Technology Digital image correlation for measuring skin strain and deformation

Family Cites Families (79)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US399167A (en) 1889-03-05 Micrometer caliper-square
US1007229A (en) 1910-10-12 1911-10-31 Marius Nielsen Gage.
US1294723A (en) 1918-08-30 1919-02-18 Thomas Swinburne Combination transfer caliper-arm.
US1621526A (en) 1923-09-14 1927-03-22 Culell John Caliper
US2318864A (en) 1940-02-17 1943-05-11 Thomas E Jackson Medical wood splint
US2980110A (en) 1955-02-28 1961-04-18 Richard S Brumfield Surgical splint and bandage
US3008239A (en) 1960-05-16 1961-11-14 Karl O Lange Constant pressure calipers
US3140546A (en) 1962-07-05 1964-07-14 Lloyd Cleveland Bartlett Skin fold caliper
US4008523A (en) 1972-02-28 1977-02-22 Optograms, Inc. Digital electro-optical micrometer and gages
GB1454913A (en) 1974-02-26 1976-11-10 Blatchford & Sons Ltd Artificial limbs
US4315372A (en) 1980-04-17 1982-02-16 Fitness Motivation Institute Of America Caliper for applying constant pressure to an object being measured
AU599915B2 (en) 1985-08-09 1990-08-02 Hartwell Medical Technologies BV A splint device
US4807605A (en) 1986-12-16 1989-02-28 Mattingly Leslie G Halo traction brace
US4827916A (en) 1987-07-20 1989-05-09 Ghenz Kosova Vent for use in an orthopedic cast
US5038795A (en) 1987-08-05 1991-08-13 Roush Elsie S Muscle tonometer apparatus and method
US4843720A (en) 1988-06-06 1989-07-04 Kim Daniel S Y Dental measuring instrument
US5344390A (en) 1992-09-16 1994-09-06 Motloch & Peterson Body-worn orthopedic device that includes individual connected modules
US5443510A (en) 1993-04-06 1995-08-22 Zimmer, Inc. Porous coated implant and method of making same
US5857987A (en) 1993-05-21 1999-01-12 Habermeyer; Peter Device for the ensheathing fixation of extremities and extremity regions
US5741215A (en) 1993-09-10 1998-04-21 The University Of Queensland Stereolithographic anatomical modelling process
BE1008372A3 (en) 1994-04-19 1996-04-02 Materialise Nv METHOD FOR MANUFACTURING A perfected MEDICAL MODEL BASED ON DIGITAL IMAGE INFORMATION OF A BODY.
DE4417872A1 (en) * 1994-05-22 1995-11-23 Robert Prof Dr Ing Massen Optical digitization of body parts
US5662594A (en) 1995-06-09 1997-09-02 Rosenblatt; Marc Dynamic exoskeletal orthosis
US6236743B1 (en) 1995-09-15 2001-05-22 Greg Pratt Three-dimensional digitizing system and method
US5888216A (en) 1996-03-18 1999-03-30 Haberman; Louis J. Prosthesis liner for below-knee amputees
US7618451B2 (en) 2001-05-25 2009-11-17 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools facilitating increased accuracy, speed and simplicity in performing total and partial joint arthroplasty
DE69722961T2 (en) 1997-01-08 2004-05-13 Clynch Technologies, Inc., Calgary METHOD FOR PRODUCING INDIVIDUALLY ADAPTED MEDICAL DEVICES
US5880964A (en) 1997-01-31 1999-03-09 Prosthetic Design, Inc. Method for fabricating a cosmetic cover for a prosthetic limb
US20010002232A1 (en) 1999-03-16 2001-05-31 Daniel David Young Method and system for forming custom shoe insoles
US6613006B1 (en) 1999-08-19 2003-09-02 Richard E. Asherman Orthopedic cast and method of making the same
IT248598Y1 (en) 1999-09-10 2003-02-06 Spidi Sport Srl SHIELD FOR BACK PROTECTION.
US6540708B1 (en) 2000-02-18 2003-04-01 Sheldon Manspeizer Polycentric joint for internal and external knee brace
WO2001082829A2 (en) 2000-05-03 2001-11-08 Flock Stephen T Prosthesis and method of making
JP3751540B2 (en) 2000-07-26 2006-03-01 株式会社ミツトヨ Measuring instrument
AU2001288377A1 (en) 2000-08-31 2002-03-13 Richard Dean Lowe Limb stabilizer
US20040133431A1 (en) 2001-01-31 2004-07-08 Toma Udiljak Integrated internet-based orthotic shoe insole marketing and production system
US6613716B2 (en) 2001-02-13 2003-09-02 Miami Wabash Paper Llc Thermal print paper and process
US6508776B2 (en) 2001-05-02 2003-01-21 La Pointique International Ltd. Compression brace structure and material
US6597965B2 (en) 2001-05-11 2003-07-22 Prosthetics Research Specialists, Inc. Method for making a prosthetic component cosmetic cover
US20020194023A1 (en) * 2001-06-14 2002-12-19 Turley Troy A. Online fracture management system and associated method
US6629598B2 (en) 2001-08-10 2003-10-07 Vinod K. Narula Flexible ribbed splint system
US6671539B2 (en) 2001-10-03 2003-12-30 Board Of Regents University Of Texas System Method and apparatus for fabricating orthognathic surgical splints
KR100446555B1 (en) 2001-12-28 2004-09-04 주식회사 티엔알메디텍 Splint combined use cast absence for bone fracture fixing
US20040019266A1 (en) 2002-07-29 2004-01-29 Omnisonics Medical Technologies, Inc. Apparatus and method for radiopaque coating for an ultrasonic medical device
US20050004472A1 (en) 2002-08-17 2005-01-06 Greg Pratt Medical socket contour scanning system
US20050043835A1 (en) 2002-09-30 2005-02-24 Medical Modeling Llc Method for design and production of custom-fit prosthesis
US6968246B2 (en) 2002-10-04 2005-11-22 Fourroux Orthotics & Prosthetics, Inc. Method for automated design of orthotic and prosthetic devices
US20070016323A1 (en) 2002-12-17 2007-01-18 Scott Fried Splint and or Method of Making Same
US20050015172A1 (en) 2002-12-17 2005-01-20 Scott Fried Method of providing centralized splint production
US6725118B1 (en) 2002-12-17 2004-04-20 Scott Fried Method of providing centralized splint production
US20040162511A1 (en) 2003-02-13 2004-08-19 Alessandro Barberio Surgical cast venting device with padding
US7242798B2 (en) 2003-03-10 2007-07-10 Cranial Technologies, Inc. Automatic selection of cranial remodeling device configuration
US7127101B2 (en) 2003-03-10 2006-10-24 Cranul Technologies, Inc. Automatic selection of cranial remodeling device trim lines
US20040260402A1 (en) 2003-06-20 2004-12-23 Baldini Steven E. Method of manufacturing a socket portion of a prosthetic limb
US20050044740A1 (en) 2003-08-25 2005-03-03 Hansen Andrew H. Fractional measuring caliper
US20050061332A1 (en) 2003-09-23 2005-03-24 Greenawalt Kent S. Method and apparatus for scanning feet for the purpose of manufacturing orthotics and other footwear
US7210926B2 (en) 2003-11-10 2007-05-01 General Electric Company Formable sheets for medical applications and methods of manufacture thereof
US7340316B2 (en) 2004-06-28 2008-03-04 Hanger Orthopedic Group, Inc. System and method for producing medical devices
US7896827B2 (en) 2004-12-22 2011-03-01 Ossur Hf Knee brace and method for securing the same
US20060161267A1 (en) 2005-01-14 2006-07-20 Clausen Arinbjorn V Method and apparatus for applying mirror-printed film to a prosthetic or orthotic device and device having the same
US20070133850A1 (en) 2005-12-08 2007-06-14 Ebi, L.P. System for making a medical device
US7661170B2 (en) 2006-01-03 2010-02-16 D2 Investments, Llc Systems and methods for providing a customized lower extremity product
US8114041B2 (en) 2006-03-22 2012-02-14 Ossur Hf Orthopedic brace
WO2008029404A2 (en) 2006-09-07 2008-03-13 Koala Health Accessories Ltd. Pelvic anchor brace
US20080120756A1 (en) 2006-11-28 2008-05-29 Ringstar, Inc. Protective Article
US8059917B2 (en) 2007-04-30 2011-11-15 Texas Instruments Incorporated 3-D modeling
US20080294083A1 (en) 2007-05-21 2008-11-27 Julia Chang Orthopedic device
US8303527B2 (en) 2007-06-20 2012-11-06 Exos Corporation Orthopedic system for immobilizing and supporting body parts
US8357111B2 (en) 2007-09-30 2013-01-22 Depuy Products, Inc. Method and system for designing patient-specific orthopaedic surgical instruments
US7797072B2 (en) 2007-10-05 2010-09-14 Bespoke Innovations, Inc. Prosthetic limb with replaceable fairing
US7735237B1 (en) 2008-05-30 2010-06-15 C.M. Engineering, Llc Versatile caliper mounting and measurement accessory
WO2010006081A1 (en) 2008-07-08 2010-01-14 Chiaro Technologies, Inc. Multiple channel locating
WO2010054341A1 (en) 2008-11-09 2010-05-14 Bespoke Innovations, Inc. Custom braces, casts and devices and methods for designing and fabricating
US8622946B2 (en) 2008-12-02 2014-01-07 Ossur Hf Ankle brace
US20100228646A1 (en) 2009-03-05 2010-09-09 Robert Eric Heidel Integration of scanner/sensor apparatuses, web-based interfaces, and pull-supply chain management into product, clothing, apparel, shoe, and/or accessory markets
US8274507B2 (en) 2009-07-02 2012-09-25 Robert Bosch Gmbh Method and apparatus for obtaining 3-dimensional data with a portable device
US20110056004A1 (en) 2009-09-09 2011-03-10 XO Athletic Co. Protective anatomical pads and methods of making
PT105187B (en) 2010-07-02 2013-10-02 Univ Do Porto DEVICE FOR MEASURING THE THICKNESS SKIN THICKNESS
US8739428B2 (en) 2012-07-03 2014-06-03 Mitutoyo Corporation Constant force spring actuator for a handheld micrometer

Patent Citations (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040032595A1 (en) * 2000-10-07 2004-02-19 Robert Massen Arrangement and method for producing photogrammetric image records
US7298890B2 (en) * 2001-03-18 2007-11-20 Corpus.E Ag Method and arrangement for the photographically detecting the spatial form of an object
US7489813B2 (en) * 2001-11-21 2009-02-10 Corpus.E Ag Method and system for detecting the three-dimensional shape of an object
US20040088584A1 (en) * 2002-10-21 2004-05-06 Yair Shachar Method and system for providing security data to security stations
US20050256392A1 (en) * 2004-05-12 2005-11-17 Yvedt Matory Systems and methods for remote body imaging evaluation
US20060100832A1 (en) * 2004-11-08 2006-05-11 Bowman Gerald D Method a designing, engineering modeling and manufacturing orthotics and prosthetics integrating algorithm generated predictions
US20070083384A1 (en) * 2005-09-28 2007-04-12 Right-Fit Education Llc Method and system for posture awareness training
US20110092804A1 (en) * 2006-02-27 2011-04-21 Biomet Manufacturing Corp. Patient-Specific Pre-Operative Planning
US20080124064A1 (en) * 2006-11-24 2008-05-29 Sony Ericsson Mobile Communications Ab Image alignment system
US8988503B2 (en) * 2007-07-11 2015-03-24 Corpus.E Ag Sensing apparatus and method for detecting a three-dimensional physical shape of a body
US20110166435A1 (en) * 2008-09-17 2011-07-07 Inertial Orthopaedic Navigation Solutions Pty Ltd. Surgical orientation system and associated method
US20100268138A1 (en) * 2008-11-09 2010-10-21 Scott Summit Custom braces, casts and devices having limited flexibility and methods for designing and fabricating
US20120235993A1 (en) * 2009-11-13 2012-09-20 Han-Joon Kim Display Orientation Adjustment Device And Adjustment Program For Medical Three-Dimensional Image
US20110149094A1 (en) * 2009-12-22 2011-06-23 Apple Inc. Image capture device having tilt and/or perspective correction
US20110248987A1 (en) * 2010-04-08 2011-10-13 Disney Enterprises, Inc. Interactive three dimensional displays on handheld devices
US8581905B2 (en) * 2010-04-08 2013-11-12 Disney Enterprises, Inc. Interactive three dimensional displays on handheld devices
US20120098992A1 (en) * 2010-10-26 2012-04-26 Canon Kabushiki Kaisha Imaging apparatus
US20120165648A1 (en) * 2010-12-27 2012-06-28 Joseph Ralph Ferrantelli Mobile postural screening method and system
US9149224B1 (en) * 2011-10-17 2015-10-06 Massachusetts Institute Of Technology System and method for measuring skin movement and strain and related techniques
US20160317079A1 (en) * 2011-10-17 2016-11-03 Massachusetts Institute Of Technology System And Method For Measuring Skin Movement And Strain And Related Techniques
US20170281009A1 (en) * 2011-10-17 2017-10-05 Massachusetts Institute Of Technology Digital image correlation for measuring skin strain and deformation
US20140300722A1 (en) * 2011-10-19 2014-10-09 The Regents Of The University Of California Image-based measurement tools
US20130301901A1 (en) * 2012-05-14 2013-11-14 Gauss Surgical System and method for estimating a quantity of a blood component in a fluid canister

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10842653B2 (en) 2007-09-19 2020-11-24 Ability Dynamics, Llc Vacuum system for a prosthetic foot
US9924891B2 (en) * 2012-10-04 2018-03-27 Townsend Industries, Inc. Method of preparing an image for use in production of a knee brace and a tibial contour gauge and an image alignment guide for use in said method
US20150257678A1 (en) * 2012-10-04 2015-09-17 Townsend Industries, Inc. d/b/a Townsend Design Method of preparing an image for use in production of a knee brace and a tibial contour gauge and an image alignmetn guide for use in said method
US9921054B2 (en) * 2013-06-04 2018-03-20 Samsung Electronics Co., Ltd. Shooting method for three dimensional modeling and electronic device supporting the same
US20140354784A1 (en) * 2013-06-04 2014-12-04 Samsung Electronics Co., Ltd. Shooting method for three dimensional modeling and electronic device supporting the same
US11129548B2 (en) * 2014-04-09 2021-09-28 Scholl's Wellness Company Llc Method, apparatus, and computer readable medium for generating a set of recommended orthotic products
US10082384B1 (en) 2015-09-10 2018-09-25 Stryker European Holdings I, Llc Systems and methods for detecting fixation frame parameters
CN105902271A (en) * 2016-04-08 2016-08-31 爱乔(上海)医疗科技有限公司 Lower limb side force line measurement device and method
WO2018005730A1 (en) 2016-06-29 2018-01-04 Vision Quest Industries Incorporated Dba Vq Orthocare Measurement and ordering system for orthotic devices
AU2017290128B2 (en) * 2016-06-29 2022-08-11 Vision Quest Industries Incorporated Dba Vq Orthocare Measurement and ordering system for orthotic devices
CN109414221A (en) * 2016-06-29 2019-03-01 视觉探索工业股份有限公司 Measurement and custom-built system for apparatus for correcting
EP3478172A4 (en) * 2016-06-29 2020-02-26 Vision Quest Industries Incorporated Dba VQ Orthocare Measurement and ordering system for orthotic devices
EP3513770A4 (en) * 2016-09-14 2020-09-23 Cyberdyne Inc. Device for producing knee joint correction tool, method for producing knee joint correction tool, device for assisting knee joint treatment, and method for assissting knee joint treatment
WO2018130694A2 (en) 2017-01-13 2018-07-19 Adapttech Limited Bio-sensor
WO2018130691A1 (en) 2017-01-13 2018-07-19 Adapttech Limited Fitting system
DE102019122374B4 (en) * 2019-08-20 2021-05-06 Ottobock Se & Co. Kgaa Method for producing a prosthesis socket
DE102019122374A1 (en) * 2019-08-20 2021-02-25 Ottobock Se & Co. Kgaa Method for producing a prosthesis socket

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