System and method for determining the cross-sectional area of fluid pathways in anatomical structures
A 3-D modeling system calculates the minimum cross-sectional area of the neo-LVOT to accurately select and place an artificial mitral valve, addressing the challenge of LVOT obstruction and ensuring adequate blood flow during TMVR, thereby reducing complications.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2026-04-10
AI Technical Summary
Determining the cross-sectional area of the left ventricular outflow tract (LVOT) is challenging due to the heart's complex three-dimensional shape, leading to inaccurate estimation of potential obstruction by an artificial mitral valve during transcatheter mitral valve replacement (TMVR), which can result in inadequate blood flow and complications.
A method and system for determining the minimum cross-sectional area of the neo-LVOT by generating a 3-D model of the heart, positioning an artificial mitral valve, and calculating multiple cross-sectional areas using a computer device to ensure adequate blood flow, allowing for precise selection and placement of the artificial mitral valve.
Accurately calculates the minimum area of the neo-LVOT, reducing the risk of complications by ensuring appropriate artificial mitral valve selection and placement, maintaining sufficient blood flow, and advancing medical technology with efficient computing.
Smart Images

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Abstract
Description
Technical Field
[0005] , , , , ,
[0004]
[0001] 〔Cross - Reference to Related Applications〕 This application claims the priority of U.S. Provisional Patent Application No. 62 / 841,651, filed on May 1, 2019. The content of each application is hereby incorporated by reference in its entirety into this specification.
[0002] This application relates to the determination of cross - sectional areas in a patient's anatomical structure. In some aspects, the application specifically relates to determining the cross - sectional area (e.g., minimum, maximum, average, etc.) in a volume corresponding to the flow path of anatomical structures such as valves, arteries, veins, tubes, airways, etc.
Background Art
[0003] The human heart is a complex organ with many moving parts that are important for the proper functioning of the heart in order to circulate blood throughout the body. The human heart is generally composed of four hollow chambers: the right atrium, the right ventricle, the left atrium, and the left ventricle. One of the keys to the proper functioning of the heart is the regulation of blood flow through these chambers. The regulation of blood flow through and between these chambers is accomplished by valves. For example, there is an atrioventricular opening between the right atrium and the right ventricle.
[0004] The tricuspid valve is located at its atrioventricular opening and moves blood from the right atrium to the right ventricle. The tricuspid valve opens when the blood pressure on the atrial side is greater than the blood pressure on the ventricular side. When the tricuspid valve opens, blood flows from the right atrium into the right ventricle. When the blood pressure on the right ventricle side increases, the tricuspid valve closes. When the tricuspid valve closes, blood does not flow back in the other direction.
[0005] In a healthy heart, blood flow is also regulated between the left atrium and left ventricle. When the left atrium is filled with blood and the blood pressure in the left atrium rises to a level higher than that in the left ventricle, the mitral valve allows blood to flow from the left atrium to the left ventricle. When the mitral valve is open, blood flows downward from the left atrium to the left ventricle, and in the left ventricle, the blood is pushed to the rest of the body as part of the larger circulatory process. When a healthy mitral valve closes, blood flow between the two chambers stops, and this blockage prevents the backflow of blood.
[0006] Unfortunately, the mitral valve doesn't always function properly. When the mitral valve malfunctions, it can lead to serious health problems. One such malfunction is mitral regurgitation ("MR"). Mitral regurgitation is a condition in which the mitral valve does not close properly when the left ventricle contracts. This causes blood that has entered the left ventricle from the left atrium to flow back into the left atrium.
[0007] Mitral valve regurgitation can be treated surgically. One surgical option involves mitral valve replacement, where the mitral valve is replaced with an artificial mitral valve, such as a bioprosthesis or an artificial replacement. Another surgical option is mitral valve repair. Mitral valve repair is generally considered preferable to mitral valve replacement due to its less invasive nature, although both options require cardiac incision. Since many candidates for mitral valve replacement and repair are not good candidates to withstand the stress of cardiac incision, research is progressing in the field of transcatheter mitral valve replacement (TMVR). Using TMVR, an artificial mitral valve can be introduced using a catheter-based system. The catheter-based system eliminates the need for cardiac incision surgery.
[0008] For example, an artificial mitral valve may be placed inside the beating heart via a catheter at the base of the heart through a tube inserted through a small incision in the patient's chest. The physician uses the tube to position the artificial mitral valve, placing it on top of the heart's existing mitral valve. Using catheter-based infusion techniques minimizes physical trauma associated with open cardiac surgery and may allow more patients to be effectively treated for mitral regurgitation.
[0009] Artificial mitral valves for TMVR are being developed in different shapes and sizes. Therefore, conventionally, before surgery, clinicians need to determine which model and size of artificial mitral valve is most suitable for the patient and how the artificial mitral valve should be positioned in the patient's heart.
[0010] One possible complication is that the artificial mitral valve may partially block the left ventricular outflow tract (LVOT), making it difficult for blood to flow away from the heart towards the aorta. However, because the heart has a complex three-dimensional shape, determining the LVOT and the extent of any possible occlusion of the LVOT is not a simple task. [Overview of the Initiative]
[0011] A particular embodiment provides a method for determining information regarding multiple cross-sectional areas of passages in an anatomical structure for fluid flow. The method includes the steps of: obtaining a three-dimensional ("3-D") model of the passage; placing at least a portion of a depiction of an artificial organ onto the 3-D model of the passage; determining a starting plane that intersects at least one point on the surface of the depiction of the artificial organ, at least one point in the volume defined by the passage, and at least one point on the surface of the passage; generating a plurality of cross-sectional planes based on rotating the starting plane one or more times around one or more axes; calculating a plurality of cross-sectional areas corresponding to the plurality of cross-sectional planes, each of which is calculated as the difference between a first cross-sectional area which is the intersection of the volume and the corresponding cross-sectional plane, and a second cross-sectional area which is the intersection of at least a portion of the depiction of the artificial organ and the corresponding cross-sectional plane; determining one of the maximum or minimum cross-sectional areas among the plurality of cross-sectional areas; comparing one of the maximum or minimum cross-sectional areas with a threshold; and selectively changing the artificial organ corresponding to the depiction of the artificial organ based on the comparison.
[0012] A particular embodiment provides a non-temporary, computer-readable medium on which computer-executable instructions are stored, which, when executed by the processor of a computer device, causes the computer device to perform the method described above.
[0013] A particular embodiment provides a computer device comprising memory and a processor configured to perform the method described above. [Brief explanation of the drawing]
[0014] [Figure 1] This shows the left side of a digital 2D or 3D model of the heart. [Figure 2] This is a functional configuration diagram of one embodiment of a computer environment suitable for carrying out the various embodiments disclosed herein. [Figure 3]This is a high-level system diagram of a computer system that can be used according to one or more embodiments. [Figure 4] A flowchart illustrating the procedure for determining the minimum cross-sectional area of a volume according to a specific embodiment is shown. [Figure 4A] A flowchart illustrating the procedure for determining the minimum cross-sectional area of a volume according to a specific embodiment is shown. [Figure 5A] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5B] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5C] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5D] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5E] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5F] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5G] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 5H] This diagram shows a 3D model of a heart, illustrating an example of a heart structure with an artificial mitral valve included in the 3D model. [Figure 6] This flowchart shows the procedure for generating multiple cross-sections according to a specific embodiment. [Modes for carrying out the invention]
[0015] As described above, the artificial mitral valve can cause obstruction of the LVOT. Thereby, it reduces the blood flow exiting the heart towards the aorta. For example, by introducing an artificial mitral valve such as used in TMVR, the original size and shape of the LVOT may be changed to a modified LVOT called neo-LVOT. The neo-LVOT may have a reduced volume compared to the original LVOT due to the protrusion of the artificial mitral valve into the LVOT. Furthermore, the cross-sectional area of the neo-LVOT may be reduced compared to the cross-sectional area of the LVOT. The area of the neo-LVOT used herein may also be referred to as the cross-sectional area of the neo-LVOT.
[0016] Since the minimum cross-sectional area acts as a bottleneck for the blood flow through the volume, the amount of blood flow through a volume (e.g., valve, vein, artery, LVOT, neo-LVOT, etc.) may be directly related to the minimum cross-sectional area through which the blood flows within the volume. Thus, the blood flow through the neo-LVOT may be directly related to the minimum area of the neo-LVOT of the LVOT.
[0017] Sufficient blood flow through the neo-LVOT is extremely important to ensure the viability of the patient after insertion of the artificial mitral valve. Without sufficient blood flow, the patient may develop complications and even die. Thus, a sound calculation of the simulated neo-LVOT area helps to reduce the chance of complications in mitral valve replacement by facilitating the indication of the blood flow through the neo-LVOT prior to mitral valve replacement.
[0018] In certain embodiments of the present specification, a human such as a clinician, engineer, or expert may use a computer device or the computer device itself may automatically (e.g., iteratively) position one or more different 3-D digital models of an artificial mitral valve within a 3-D digital model of a patient's anatomical structure at one or more different positions. Alternatively, a human such as a clinician, engineer, or expert may load one or more treatment plans. Each treatment plan includes a 3-D digital model of an artificial mitral valve at a specific position in a 3-D digital model of a patient's anatomical structure. According to the embodiments described herein, the computer device may determine the minimum area of the neo-LVOT at each position of each artificial mitral valve. Then, a human or the computer device may automatically select an appropriate artificial mitral valve design and / or position that provides sufficient blood flow through the neo-LVOT (e.g., maximum blood flow, minimum percentage of blood flow compared to the original LVOT, etc.) based on the minimum area of the neo-LVOT determined at each position of each artificial mitral valve.
[0019] Thus, certain embodiments of the present specification provide a system and method for determining the minimum area of the neo-LVOT. Further, certain embodiments of the present specification provide a system and method for selecting an appropriate artificial mitral valve design and / or position based on the determined minimum area of the neo-LVOT. Certain embodiments provide automatically generating a custom artificial mitral valve design based on an analysis of the area of the neo-LVOT. Certain embodiments provide automatically adapting the design of an artificial mitral valve (e.g., adjusting the shape, fixing the system, position, location covering the organ, etc.) based on an analysis of the area of the neo-LVOT (e.g., starting from a standard design and iteratively changing the design according to specific constraints).
[0020] While this specification describes specific embodiments relating to determining the minimum area of a neo-LVOT, it should be noted that the techniques described herein can be used to determine information regarding the cross-sectional area of any suitable volume, in particular information regarding anatomical passages for blood flow, air circulation, etc. As an example, the techniques described herein may be used to determine the minimum cross-sectional area of a volume, the maximum cross-sectional area of a volume, the average cross-sectional area of a volume, and so on.
[0021] Such techniques may also be used to check for occlusion of other passages after the placement of other prostheses, and to look for leaks adjacent to organs (e.g., valves, left atrial appendage (LAA) occlusion, stent grafts for aortic aneurysms, cerebral aneurysm organs, etc.). Such techniques may also be used for non-hemodynamic applications, such as considering airflow when planning pulmonary interventions. For example, this technique may be used for the airway, the treatment of airway diseases, and the replacement of prostheses in the airway (e.g., stents, grafts, valves, drug delivery systems). Such techniques may also be used to find the minimum A2 distance of neo-LVOT (e.g., the distance between the A2 portion of the anterior leaflet of the mitral valve and the septum).
[0022] Figure 1 shows the left side of a digital 2-D or 3-D model of the heart 100. In particular, the aorta 105, left ventricle 107, and left atrium 109 of the heart 100 are shown. The placement of the artificial mitral valve 111 at the actual mitral valve location of the heart 100 between the left atrium 109 and the left ventricle 107 is also shown. Note that in certain embodiments, the artificial mitral valve 111 is a depiction of the artificial mitral valve 111, such as a shape corresponding to the approximate dimensions of the artificial mitral valve 111 (e.g., cylindrical) or the same shape as the artificial mitral valve 111. Placing the mitral valve 111 within the heart 100 along the anatomical structures of the aorta 105 and left ventricle 107 clearly shows the contour of the neo-LVOT. Traditionally, the minimum area of a neo-LVOT is roughly estimated visually using a 2D centerline method, which begins with drawing a spline 113 (e.g., a 2D spline) along an estimated centerline of the original LVOT volume on one or more 2D images. Drawing the spline 113 is done manually by a person and is prone to errors due to inaccurate estimation of the centerline. Next, a person may select and draw a plane 115 that intersects the bottom of the mitral valve 111 and is perpendicular to the spline 113. The person may manually select the position of the plane 115 to a position that visually appears to be a small cross-section. The distance from the mitral valve 111 to the inner wall of the left ventricle 107 and / or aorta 105 along the plane 115 is then calculated and used as an estimate of the minimum area of the neo-LVOT.
[0023] Such estimates of the minimum area of neo-LVOT are coarse, and estimates for the same heart 100 with the same artificial mitral valve 111 positioned in the same location vary considerably depending on the person making the estimate. In particular, estimates of the minimum area of neo-LVOT may be inaccurate, which could lead to inappropriate selection and placement of the artificial mitral valve 111 in the patient's heart, potentially resulting in complications or even death.
[0024] Unlike conventional methods, the systems and methods described herein provide a sound and accurate determination of the minimum area of the neo-LVOT. Such systems and methods advance the field of medical and healthcare technology by efficiently and accurately calculating the minimum area of the neo-LVOT so that an appropriate artificial mitral valve can be selected and placed within the patient's anatomical structure while maintaining adequate blood flow through the neo-LVOT. Such technologies advance the field of medical and healthcare technology by reducing the chance of patient complications due to inappropriate neo-LVOT calculation and artificial mitral valve placement and design. Such technologies further advance the capabilities of the computer equipment used to calculate the minimum area of the neo-LVOT by providing an efficient and defined computer system that efficiently finds the minimum cross-sectional area within the volume using reduced computing cycles compared to other more complex technologies.
[0025] The systems and methods described herein may be performed in a computer environment comprising one or more computer devices configured to provide various functions. Figure 2 shows one embodiment of a computer environment 200 suitable for carrying out a particular embodiment described herein. The computer environment 200 may include a network 202. The network 202 can take various forms. For example, the network 202 may be a local area network installed in an operating room. In one embodiment, the network 202 may be a wide area network such as the Internet. In another embodiment, the network 202 may be a combination of a local area network and a wide area network. Typically, the network enables secure communication and shared data between various computer devices. Among these computer devices are client devices 204. The client device 204 may be a typical personal computer device running a ready-made operating system such as Windows®, Mac OS®, Linux®, Chrome OS®, or some other operating system. The client device 204 may have installed application software to enable it to interact with various other modules and other software stored on devices within the computer environment 200 via the network 202. This application software may employ a web browser approach to access the remote application service. Alternatively, the application software may be a client application installed on the operating system of the client device 204. The client device 204 may also employ a dedicated computer approach, particularly one designed for medical imaging work, or more specifically, a computer designed for determining the area of the neo-LVOT.The client device 204 may further be configured to communicate via the network 202 and may also be a mobile device or tablet computer configured to run one or more software modules to enable the user to perform the various methods described herein.
[0026] The computer environment 200 may further include an image data storage device 206. Typically, the image data storage device 206 employs a large database scheme designed to store image files taken by the scanning device 222. These images may be DICOM images or other types of images. The image data storage device 206 may be part of the scanning device 222 or part of the client computer device 204. The image data storage device 206 may also be in a standalone database scheme, such as a server-based system like a PACS system, which has dedicated storage optimized for medical image data. The computer environment 200 may also include a scanning device 222. The scanning device 222 may typically be a medical imaging device that scans a patient to generate images of the patient's anatomical structure. In the computer environment 200 shown in Figure 2, the scanning device 222 may be a CT scanner or an MRI device. However, those skilled in the art will understand that other scanning techniques may be implemented to provide imaging data that can be used to generate a three-dimensional anatomical model.
[0027] As described in detail below, the scanning device 222 may be configured to generate cross-sectional images of the patient's heart. These images may be stored in the image data storage device 206 and used to generate a three-dimensional model of the heart. For this purpose, the computer environment 200 may also include an image processing module 208. The image processing module 208 may employ computer software, hardware, or a combination of both to retrieve medical image data from the image data storage device 206 and generate a three-dimensional model using the stack of 2-D image data. The image processing module 208 may be commercially available image processing software for three-dimensional design and modeling, such as Materialise NV's Mimics® application. However, other image processing software may be used. In one embodiment, the image processing module 208 may be provided via a web-based network application accessed by a computer on a network (e.g., a client device 204). Alternatively, the image processing module 208 may be a software application installed directly on the client device 204, or a software application that accesses the image data storage device 206 via the network 202. Generally, the image processing module 208 may be any combination of software and / or hardware located within the computer environment 200 that provides image processing capabilities for image data stored in the image data storage device 206.
[0028] The computer environment may also include a three-dimensional measurement and analysis module 220 ("3-D Measurement and Analysis Module"). The 3-D Measurement and Analysis Module 220 may be complementary and / or integrated software with the image processing module 208. The 3-D Measurement and Analysis Module may be an application configured to determine the minimum area of the neo-LVOT. As will be described in more detail below, the 3-D Measurement and Analysis Module 220 is used to determine the precise measurement of various aspects of the patient's anatomical structure and the simulated positioning of the artificial mitral valve in order to determine the minimum area of the neo-LVOT. Similar to the image processing module 208, the 3-D Measurement and Analysis Module 220 may be a network-based application accessed via a web browser by one or more client devices 204. Alternatively, it may be an intrinsic application installed on the operating system of a computer, such as the client device 204. In yet another embodiment, the 3-D Measurement and Analysis Module 220 may be a network application implemented and run on a client / server. In certain embodiments, the 3-D measurement and analysis module 220 may operate on a three-dimensional model generated by the image processing module 208. Alternatively or additionally, the 3-D measurement and analysis module 220 may operate on image data, such as from the image data storage device 206. Performing measurements on image data allows, in certain embodiments, to eliminate the step of generating a three-dimensional model. However, performing measurements on a three-dimensional model can produce more accurate results because features such as the centerline and cross-section of the lumen can be determined more precisely, and the harmful effects of noise or other artifacts in the image data can be reduced.
[0029] Various embodiments of the present invention may be carried out using general-purpose and / or dedicated-purpose computer devices. Referring here to Figure 3, one embodiment of a computer device 300 suitable for carrying out various embodiments is shown. The computer system 300 may generally employ a form of computer hardware configured to perform specific processing and instructions according to various aspects of one or more embodiments described herein. The computer hardware may be a single computer or multiple computers configured to cooperate. The computer device 300 includes a processor 303. The processor 303 may be one or more standard personal computer processors, such as those designed and / or supplied by Intel, Advanced Micro Devices, Apple, or ARM. The processor 303 may be a more specialized processor, specifically designed for image processing and / or analysis. The computer device 300 may also include a display device 304. The display device 304 may be a standard computer monitor, such as a well-known LCD monitor. The display device 304 may also employ a form of display device integrated into the body of the computer device, such as those included in an all-in-one computer device or a tablet computer.
[0030] The computer device 300 may also include an input / output device 306. These may include standard peripherals such as a keyboard, mouse, printer, and other I / O software and hardware. The computer device 300 may further include a memory 308. The memory 308 can employ various methods. For example, the memory 308 may include a volatile memory 310. The volatile memory 310 may be some form of random access memory and may generally be configured to load executable software modules into the memory. As a result, the software modules may be executed by the processor 303 in a manner well known in the art. The software modules may be stored in a non-volatile memory 313. The non-volatile memory 313 may be a hard disk drive, flash memory, solid-state hard drive, or some other form of non-volatile memory. The non-volatile memory 313 may also be used to store non-executable data such as database files.
[0031] The computer device 300 may also include a network interface 314. The network interface may employ a network interface card and a communication software driver and / or firmware configured to provide the system 300 with access to a network (e.g., the Internet). The network interface card 314 may be configured to access various different types of networks, as described above in relation to Figure 2. For example, the network interface card 314 may be configured to access a private network that is not publicly accessible. The network interface card 314 may also be configured to access a wireless network using wireless data transfer technology such as EVDO, WiMAX, or LTE networks. Although a single network interface 314 is shown in Figure 3, multiple network interface cards 314 may exist to access different types of networks. Furthermore, a single network interface card 314 may be configured to enable access to multiple different types of networks.
[0032] Typically, the computer environment 200 shown in Figure 2 may generally include one, several, or many different types of computer devices 300 that cooperate to perform the various embodiments described below. For example, the image data storage device 206 may be part of a server-based system such as a PACS system and may be accessible to the image processing module 208 and / or the 3-D measurement and analysis module 220 via a network interface 314. Those skilled in the art will readily understand that various different types of computer devices and network configurations can be implemented to perform the systems and methods of the present invention disclosed herein.
[0033] Figures 4 and 4A show flowcharts illustrating procedure 400 for determining the minimum area of the neo-LVOT according to a particular embodiment. Note that in a particular embodiment, procedure 400 is a procedure performed on a computer. Furthermore, certain blocks may be performed automatically, manually, or partially manually and partially automatically by a user of the computer device, or based on input from a user of the computer device. Furthermore, certain blocks may be optional, and some of the methods described may be performed as alternative methods.
[0034] Procedure 400 begins in block 402, in which one or more images of the patient's heart are acquired. The images may first be acquired using a scanning device 222, such as a CT scanner or MRI machine, as shown in Figure 2. When acquiring images, a contrast agent may be used to improve the visibility of various internal structures of the heart. The images (or multiple images) acquired using the scanning device 222 may be stored in an image data storage device 206 or any other computer memory accessible via a computer network 202. The images may be of all or at least part of the heart (e.g., at least the mitral valve and LVOT). The images may be acquired directly from the scanning device 222, from the image data storage device 206, or from any other suitable medium, such as loading images from a data storage device. The procedure then proceeds to block 404, in which a 3-D model of blood volume is calculated based on the acquired images. In certain embodiments, a contrast agent is used for the 3-D modeling of blood volume. The 3-D model may be calculated using the image processing module 208, or other software and / or hardware designed to generate 3-D models from CT and / or MRI image data. The 3-D model of blood volume may be all or at least part of the heart (e.g., at least the mitral valve and LVOT). In certain embodiments, block 404 is selective, and subsequent blocks may be performed on the image instead. In further description of step 400, “3-D model” may refer not only to the 3D model generated from the image, but also to the image itself.
[0035] Optionally, a 3D model of the heart may be generated by reconstructing the anatomical structure of the heart in block 406 using a 3D model of blood volume. Alternatively, a 3D model of blood volume itself may be used as the 3D model of the heart. The 3D model of the heart may be of all or at least part of the heart (e.g., at least the mitral valve and LVOT). This reconstruction may be performed using the image processing module 208.
[0036] The procedure then proceeds to step 408, where a design for the artificial mitral valve (e.g., a drawing of an artificial mitral valve design) is selected. As considered with respect to Figure 1, step 400 may use a drawing of an artificial mitral valve instead of an actual artificial mitral valve. For example, a user of a computer device, such as client device 204, may select a design for the artificial mitral valve. In one embodiment, selecting a design for the artificial mitral valve refers to obtaining a selection of previously generated mitral valve designs (e.g., designs previously generated by a clinician). In another embodiment, selecting a design for the artificial mitral valve refers to loading a design for the artificial mitral valve from a file, from memory, or from a database of mitral valve designs. In yet another embodiment, selecting a design for the artificial mitral valve refers to randomly (pseudo-randomly) selecting a design for the artificial mitral valve from a database of artificial mitral valve designs (e.g., automatically by the computer device or by a user of the computer device). In another embodiment, selecting a design for an artificial mitral valve refers to manually or automatically selecting a design for an artificial mitral valve based on one or more measurements made on a 3-D model of the heart or blood volume, such as the diameter of the circle that best fits the annulus of the mitral valve used to select the mitral valve design with the best matching diameter. In another embodiment, the design for an artificial mitral valve may be selected using the method described in International Publication No. 2015 / 179543, which is incorporated herein by reference in its entirety.
[0037] In the following block 410, the position for implanting the mitral valve design is obtained. For example, a user of a computer device such as client device 204 may select the position of the artificial mitral valve (e.g., randomly, visually, etc.). In another embodiment, the computer device automatically positions the artificial mitral valve (e.g., randomly, pseudo-randomly, based on the most suitable algorithm, etc.). In another embodiment, the computer device or a user of the computer device automatically obtains the position of the artificial mitral valve previously determined by a clinician, for example. In block 412, the selected artificial mitral valve is placed in the 3-D model of the heart at the selected position. For example, client device 204 generates a 3-D model of the heart with the artificial mitral valve included in the 3-D model superimposed. Figures 5A-5H show an example of a 3-D model of the heart 500 with the artificial mitral valve 511 included in the 3-D model superimposed. The anatomical structures of the heart 500 and the artificial mitral valve 511 define neo-LVOT, as discussed. A specific aspect of procedure 400 is described using a 3-D model of the heart 500 as an exemplary embodiment.
[0038] In block 414, the bottom edge of the artificial mitral valve in the 3-D model is determined by any choice. For example, the artificial mitral valve 511 is shown to have a bottom edge 520. In certain embodiments, the bottom edge is a curve that is approximately circular or approximately elliptical. In certain embodiments, the curve may be indicated manually or embedded in the data describing the artificial mitral valve. For example, a user of a computer device such as client device 204 may indicate the bottom edge of the artificial mitral valve. In some embodiments, the computer device itself may determine the bottom edge using image technology or other technology. The bottom edge may be the edge of the artificial mitral valve 511 that defines the neo-LVOT.
[0039] In block 416, a starting plane is determined that crosses the surface of the artificial mitral valve 511 (e.g., the bottom edge of the artificial mitral valve 511), at least one point of the neo-LVOT, and at least one point on the patient's anatomical structure (e.g., the left ventricle or aorta) that defines the boundary of the neo-LVOT in a 3D model of the heart. The starting plane may be determined using manual input by a user of a computer device such as the client device 204, or automatically by a computer device, such as using the 3-D measurement and analysis module 220 (e.g., randomly, or based on the surface of the aortic valve as described later, or corresponding to the shortest distance between the patient's anatomical structure and the artificial mitral valve 511). The starting plane may correspond to a first plane or starting plane for calculating the area of the neo-LVOT within the neo-LVOT.
[0040] In one embodiment, the starting plane is determined by first determining the aortic valve plane in a 3D model of the heart. The aortic valve plane may be determined on a 3D model of the heart itself and / or based on an image of the heart, e.g., a 2D image. For example, the aortic valve plane may be determined as the optimal plane passing through the aortic valve leaflets, or as a plane passing through multiple points around the aortic valve. In one example, this plane may correspond to plane 522 of heart 500 shown in Figure 5B. The aortic valve plane may be determined manually by a user of a computer device, such as a client device 204, or automatically by a computer device, such as by using shape recognition technology to recognize the aortic valve of the heart. The aortic plane may be determined based on a 3D model of the heart or based on a medical image of the heart.
[0041] In certain embodiments, the starting plane may be determined based on a plane of the aortic valve. For example, in certain embodiments, the plane of the aortic valve may be translated toward the prosthetic mitral valve (e.g., the bottom edge of the prosthetic mitral valve) until it intersects with the prosthetic mitral valve. For example, as shown in Figure 5B, plane 522 is translated or moved along axis 524 (e.g., corresponding to the centerline of the LVOT or neo-LVOT) until plane 522 intersects with the bottom edge 520 (e.g., the first to intersect). The resulting plane 526, shown in Figure 5B, may be used as the starting plane. Such translation may be performed automatically by a computer device.
[0042] In certain embodiments, the starting surface may be determined by translating a surface of the aortic valve toward the artificial mitral valve until the starting surface contacts the artificial mitral valve (e.g., the bottom edge of the artificial mitral valve). For example, as shown in Figure 5C, surface 522 is translated or moved along axis 524a (e.g., corresponding to the centerline of the LVOT or neo-LVOT) until surface 522 contacts the bottom edge 520. The resulting surface 526a, shown in Figure 5C, may be used as the starting surface. Such translation may be performed automatically by a computer device.
[0043] In block 418, multiple cross-sectional planes are generated in addition to the starting plane. For example, the multiple cross-sectional planes may be determined as any planes intersecting the surface of the artificial mitral valve 511 (e.g., the bottom edge of the artificial mitral valve 511), at least one point on the neo-LVOT, and at least one point on the patient's anatomical structure (e.g., the left ventricle or aorta) that defines the boundary of the neo-LVOT in a 3-D model of the heart. The multiple cross-sectional planes may also be determined by measuring the neo-LVOT from several positions and angles. In certain embodiments, the multiple cross-sectional planes are generated based on the starting plane. The multiple cross-sectional planes may be determined at least partially automatically by a computer device such as the client device 204, 3-D measurement and analysis module 220 (e.g., based on a curve (e.g., the bottom edge) or plane of the artificial mitral valve, such as the center of a line / plane). The user may provide some input, such as the selection of one or more origins on the starting plane, as discussed herein. The multiple cross-sections may correspond to rotations (and optionally translations) of the starting plane in one or more directions around each of one or more origins (e.g., directions along two different axes perpendicular to each other). For example, Figures 5D and 5E show multiple cross-sections 528 corresponding to a starting plane 526. As shown, the starting plane 526 and the multiple cross-sections 528 intersect the neo-LVOT to define various areas of the neo-LVOT within the various planes. In some embodiments, the starting plane 526 is also considered one of the multiple cross-sections 528. Embodiments relating to methods for generating multiple cross-sections are described further herein, in Figure 6, etc. The multiple cross-sections may correspond to multiple planes for calculating the area of the neo-LVOT within the neo-LVOT.
[0044] In block 420, the area of the neo-LVOT is calculated for each of the multiple cross-sections. In some embodiments, the area of the neo-LVOT is automatically calculated by a computer device such as the client device 240 or the 3-D measurement and analysis module 220. In some embodiments, for each cross-section, the area of the neo-LVOT is calculated by subtracting the cross-section of the artificial mitral valve at the cross-section from the cross-section of the left ventricle of the 3-D model of the heart at the cross-section. The resulting surface area of the cross-section is calculated as the area of the neo-LVOT.
[0045] In block 422, the smallest or minimum area of the neo-LVOT among multiple cross-sections is determined. In some embodiments, the minimum area of the neo-LVOT is automatically calculated by a computer device, such as a client device 240 or a 3-D measurement and analysis module 220. For example, the computer device 240 compares the areas of the neo-LVOT across multiple cross-sections and finds the cross-section with the minimum area of the neo-LVOT.
[0046] In block 424, it is determined whether the minimum area of the neo-LVOT meets a threshold. In some embodiments, block 424 is performed automatically by a computer device such as a client device 240 or a 3-D measurement and analysis module 220. In some embodiments, the threshold is the absolute surface area. In some embodiments, the threshold is the percentage or ratio of the minimum area of the neo-LVOT to the area of the original LVOT in the cross-section having the minimum area of the neo-LVOT. For example, in some embodiments, the area of the original LVOT in the cross-section having the minimum area of the neo-LVOT is calculated. In some embodiments, the area of the original LVOT is calculated automatically by a computer device such as a client device 240. The area of the original LVOT may be calculated by determining the cross-section of the left ventricle in a 3-D model of the heart in the cross-section and calculating the surface area of the cross-section as the area of the original LVOT. Thus, the ratio or percentage of the minimum area of the neo-LVOT to the area of the original LVOT may be compared to the threshold.
[0047] In block 424, if it is determined that the minimum area of the neo-LVOT meets the threshold, procedure 400 proceeds to block 426. In block 426, the design of the selected artificial mitral valve is completed. For example, the design of the artificial mitral valve may be output in the form of a selection of a commercially available artificial mitral valve, a prescription for a specific artificial mitral valve, a custom-made artificial mitral valve design, or a CAD file. In certain embodiments, the design of the artificial mitral valve may be manufactured for a custom-made artificial mitral valve, etc. In some embodiments, the design of the artificial mitral valve is manufactured by additive manufacturing. In certain embodiments, the selected artificial mitral valve may be implanted in a patient.
[0048] In block 424, if it is determined that the minimum area of the neo-LVOT does not meet the threshold, procedure 400 returns to 408, where suitability for mitral valve replacement is examined and a new artificial mitral valve design is selected. In certain embodiments, the new artificial mitral valve design may again be selected manually. In certain embodiments, the new artificial mitral valve design may be automatically selected or designed by a computer device, such as computer device 204. For example, a previously selected artificial mitral valve design may be automatically modified (e.g., one or more dimensions are automatically changed by an increase, etc., within an allowable range of dimensions). Modifications may be performed iteratively until a suitable artificial mitral valve design is determined, so that procedure 400 is performed and a new artificial mitral valve design is automatically selected or designed.
[0049] In some embodiments, if it is determined that the minimum area of the neo-LVOT does not meet the threshold, the procedure 400 may be terminated and the mitral valve replacement may not be performed.
[0050] While procedure 400 describes using a single starting plane and a plurality of corresponding cross-sections to determine the minimum area of the neo-LVOT, it should be noted that in certain embodiments, a plurality of starting planes and a plurality of corresponding cross-sections may be used to determine the minimum area of the neo-LVOT. For example, a plurality of starting planes may be used that intersect with the design of the artificial mitral valve at different locations on the design of the artificial mitral valve (e.g., the bottom edge of the artificial mitral valve, different surfaces of the design of the artificial mitral valve, etc.). In one embodiment, the first starting plane may be based on a surface of the aortic valve that is translated parallel toward the artificial mitral valve until it first intersects with the bottom edge of the artificial mitral valve. Additional plurality of starting planes may be positioned along the bottom edge at an increase (e.g., 5 degrees) from the first starting plane over a range (e.g., -20 degrees to +20 degrees). For example, Figure 5F shows the spacing between the intersections of the plurality of starting planes and the bottom edge of the artificial mitral valve. In another embodiment, a first starting surface may be selected, and a plurality of additional starting surfaces may be arranged in a specific direction from the first starting surface (e.g., along a specific surface, line, or surface such as an artificial mitral valve or neo-LVOT) with increasing amounts (e.g., 5 degrees, at specific intervals, etc.). In a particular embodiment, the plurality of starting surfaces may themselves correspond to a plurality of cross-sections generated in block 418.
[0051] Figure 6 is a flowchart of procedure 600 for generating multiple cross-sections according to a particular embodiment. In a particular embodiment, procedure 600 may be used to perform block 418 of procedure 400 in Figure 4.
[0052] In block 602, the origin is selected on the starting plane. The origin may act as the point on which the starting plane is rotated to generate multiple cross-sections. For example, in one embodiment, the origin may be a point on the artificial mitral valve (e.g., the bottom edge of the artificial mitral valve) intersecting the starting plane (e.g., point 530 in Figure 5G), a point on the patient's anatomical structure (e.g., the left ventricle or aorta) defining the neo-LVOT intersecting the starting plane (e.g., point 532), or a point within the neo-LVOT intersecting the starting plane (e.g., point 534). In certain embodiments, a user of a computer device, such as a client device 204, may indicate the origin. In certain embodiments, the computer device may automatically calculate the origin by finding the intersection point between the starting plane and the bottom edge of the artificial mitral valve. In certain embodiments, multiple different origins may be selected relative to the starting plane. That is, step 600 may be performed multiple times, once for each origin, to generate multiple cross-sections.
[0053] In block 604, a first axis for rotation at the origin is determined. In certain embodiments, the first axis for rotation may be the intersection line between the starting plane and the bottom surface of the artificial mitral valve, including the bottom edge of the artificial mitral valve. For example, Figure 5D shows an example of a first axis for rotation 536, which is the intersection point between the starting plane 526 and the bottom surface 538 of the artificial mitral valve. In certain embodiments, a user of a computer device, such as a client device 204, may indicate the first axis for rotation. In certain embodiments, the computer device may automatically determine the first axis for rotation by using image technology to determine the bottom surface 538 and finding the intersection point between the starting plane 526 and the bottom surface 538. The first axis for rotation may also be determined in other ways, such as the intersection line between the starting plane and the surface, plane, line, etc., of the artificial mitral valve.
[0054] In block 606, a second axis for rotation at the origin is determined. In certain embodiments, the second axis for rotation may be a line in the starting plane passing through the origin and perpendicular to the first axis for rotation. For example, Figure 5E shows an example of a second axis for rotation 540. In certain embodiments, a computer device may automatically determine the second axis for rotation. By having a second axis for rotation perpendicular to the first axis for rotation, the entire volume in 3-D space may be quantified relative to the cross-sectional area.
[0055] In block 608, one or more rotation increments are determined. For example, a single rotation increment (e.g., 1 degree) may be determined for the first axis and the second axis. In another embodiment, different rotation increments may be determined for the first axis and the second axis.
[0056] In block 610, multiple cross-sections are generated by rotating the starting plane by an appropriate rotational increment around one or more of the first or second axes, with each cross-section being a rotation of a different increment. For example, in a particular embodiment, the starting plane may be rotated one or more times around the first axis by the rotational increment to generate multiple cross-sections 528, as shown in Figure 5D. In addition, or alternatively, in a particular embodiment, the starting plane may be rotated one or more times around the second axis by the rotational increment to generate multiple cross-sections 528, as shown in Figure 5E.
[0057] In certain embodiments, multiple cross-sections are generated by further duplicating one or more cross-sections generated in block 610 and translating one or more cross-sections (e.g., along the bottom edge, surface, line, etc. of the artificial mitral valve) by one or more distance increments. In certain embodiments, multiple cross-sections are generated by further duplicating one or more cross-sections generated in block 610 and translating one or more translated cross-sections (e.g., along the bottom edge, surface, line, etc. of the artificial mitral valve) until the translated one or more cross-sections are tangential to the artificial mitral valve (e.g., the bottom edge of the artificial mitral valve).
[0058] In certain embodiments, the range of rotation over which the starting plane is rotated may be limited based on a 3-D model of the heart and the artificial mitral valve. For example, rotation around the first axis may be limited to a range defined by 1) a plane (shown as plane 550 in Figure 5H) passing through the first axis and a point on the top edge of the artificial mitral valve located opposite the point where the first axis intersects the bottom edge, and 2) a plane passing through the first axis and tangent to the top edge of the prosthesis (shown as plane 560 in Figure 5H).
[0059] Using the system and method described above, the standardized method provides physicians and researchers with the ability to determine the minimum area of neo-LVOT for transcatheter mitral valve repair research and development, as well as appropriate sizing in relation to the patient and treatment plan. While the specific embodiments described above relate to the mitral valve, those skilled in the art will understand that the above principles, system, and method can be readily applied in relation to other types of surgical procedures and other areas of anatomical structures. For example, in some embodiments, the valve may be a branch valve, tricuspid valve, etc. In other embodiments, the system and method described above may be used for the treatment of pulmonary artery stenosis, other valves, left atrial appendage (LAA) occlusion, stent grafts for aortic aneurysms, cerebral aneurysm devices, annular evaluation (e.g., minimum / maximum area), etc. In specific embodiments, the system and method described may be used for the airway, the treatment of airway diseases, and replacements for prostheses in the airway (e.g., stents, grafts, valves, drug delivery systems, etc.).
[0060] Any feature described in relation to any one embodiment may be used alone or in combination with other features described, or in combination with one or more features of any other embodiment, or any combination of any other embodiment. Furthermore, equivalents and modifications not described above may be used without departing from the scope of the invention as defined in the appended claims.
[0061] The methods disclosed herein comprise one or more steps or actions to achieve the described method. The steps and / or actions of the method may be interchangeable with one another without departing from the claims. In other words, unless a particular order of steps or actions is specified, the order and / or use of any particular steps and / or actions may be modified without departing from the claims. Furthermore, one or more blocks / steps may be deleted or added. For example, only a portion of the procedure 400 shown with respect to Figures 4 and 4A (e.g., blocks 402-422 to determine the minimum area of the neo-LVOT) may be performed in a particular embodiment.
[0062] The various embodiments disclosed herein provide the use of computer systems to perform specific features. Those skilled in the art will readily understand that these embodiments can be performed using a number of different types of computer devices, including both general-purpose and / or dedicated computer system environments or configurations. Examples of well-known computer systems, environments, and / or configurations suitable for use in connection with the embodiments described above may include, but are not limited to, personal computers, server computers, handheld or laptop devices, multiprocessor systems, microprocessor-based systems, programmable consumer electronics, network PCs, minicomputers, mainframe computers, and distributed computing environments including any of the above systems or devices. These devices may include stored instructions, which, when executed by a microprocessor within the computer device, cause the computer device to perform specified actions for executing instructions. As used herein, instructions refer to computer execution steps for processing information within a system. Instructions can be executed by software, firmware, or hardware and include any type of programmed steps executed by components of the system.
[0063] The microprocessor may be a conventional general-purpose single-chip or multi-chip microprocessor such as a Pentium® processor, Pentium® Pro processor, 8051 processor, MIPS® processor, PowerPC® processor, or Alpha® processor. Furthermore, the microprocessor may be any conventional dedicated microprocessor such as a digital signal processor or graphics processor. The microprocessor typically has conventional address lines, conventional data lines, and one or more conventional control lines.
[0064] Aspects and embodiments of the present invention disclosed herein may be implemented as methods, apparatus, or products using standard programming or engineering techniques to produce software, firmware, hardware, or any combination thereof. As used herein, the term “product” refers to hardware such as optical memory devices or non-temporary computer-readable media, as well as code or logic executed on volatile or non-volatile memory devices such as signals or carriers, or on temporary computer-readable media. Such hardware may include, but is not limited to, field-programmable gate arrays (FPGAs), application-specific integrated circuits (ASICs), composite programmable logic devices (CPLDs), programmable logic arrays (PLAs), microprocessors, or other similar processing devices.
Claims
1. A computer-based method for determining information regarding multiple cross-sectional areas of anatomical passages for fluid flow, The steps include obtaining one or more images of the aforementioned passage, The steps include: placing at least a portion of the depiction of the artificial organ into one or more images of the passage at a certain location; A step of determining a starting plane which is a plane including at least one point on the surface of the depiction of the artificial organ at a certain position, at least one point in the volume defined by the passage, and at least one point on the boundary of the passage in one or more images of the passage, The steps include generating multiple cross-sections based on rotating the starting surface once or more times around one or more axes, A step of calculating a plurality of cross-sectional areas corresponding to the plurality of cutting surfaces, The step of calculating the plurality of cross-sectional areas includes the step of calculating the difference between a first cross-section that intersects a cross-section corresponding to at least a portion of the depiction of the artificial organ at a certain location and a second cross-section that intersects a cross-section corresponding to the volume, so that the plurality of corresponding cross-sections are obtained as a result, The steps include: calculating the area of the obtained corresponding cross-section as the corresponding cross-sectional area, A step of determining one of the maximum or minimum cross-sectional areas among the plurality of cross-sectional areas, A step of comparing the largest cross-sectional area or the smallest cross-sectional area with a threshold, A method comprising the step of selectively changing an artificial organ corresponding to the description of the artificial organ based on the comparison.
2. The passage in the aforementioned anatomical structure comprises the left ventricular outflow tract (LVOT), The description of the artificial organ includes a description of an artificial mitral valve. The method according to claim 1, wherein the plurality of cross-sectional areas comprise the areas of a plurality of neo-LVOTs.
3. The process further includes the step of determining one or more additional starting surfaces, The method according to claim 1, wherein the step of generating the plurality of cross-sections is based on rotating each of the one or more additional starting surfaces once or more times around one or more axes.
4. The method according to claim 3, wherein the step of determining one or more starting surfaces includes determining additional starting surfaces by an increment from the starting surface along the depiction of the prosthesis.
5. The aforementioned passage in the anatomical structure consists of the left ventricular outflow tract. The description of the artificial organ consists of a description of an artificial mitral valve. The method according to claim 1, wherein the step of determining the starting surface includes the step of determining the plane of the aortic valve of the passage and the step of translating the plane of the aortic valve until it intersects with the depiction of the prosthesis at a certain position.
6. The method according to claim 1, wherein one or more axes comprises a first axis defined as an intersection line between the starting surface and the bottom surface of the depiction of the artificial organ at a certain position.
7. The method according to claim 6, wherein the one or more axes include a second axis defined in the starting plane as a line perpendicular to the first axis.
8. The step of generating the aforementioned multiple cross-sections is, A step of selecting an origin on the starting surface which is one of a first point on the surface of the depiction of the artificial organ at a certain position, a second point on the boundary of the passage, or a third point within the volume, wherein one or more axes are defined passing through the origin, The method according to claim 1, comprising the step of rotating a starting plane one or more times by an increasing amount around at least one of the one or more axes, wherein each of the one or more results corresponds to a cutting plane.
9. The method according to claim 8, wherein the rotation of the starting surface is limited to a range relating to the first axis of the first axis of the one or more axes.
10. The surface of the depiction of the artificial organ at the aforementioned location has a bottom edge, The aforementioned range is defined as the area between the first surface and the second surface. The first surface is defined to pass through the first axis and a point on the top edge of the depiction of the prosthesis at a certain position, which is located opposite to the intersection of the first axis and the bottom edge of the depiction of the depiction of the prosthesis at a certain position, The method according to claim 9, wherein the second surface is defined to pass through the first axis and to be tangent to the top edge of the depiction of the artificial organ at a certain position.
11. The step of generating the aforementioned multiple cross-sections further includes, The method of claim 8, comprising the step of duplicating and translating one or more of the plurality of cross-sections along the surface of the depiction of the artificial organ at a certain position over one or more distance increments.
12. A non-temporary computer-readable medium on which computer-executable instructions are stored, When executed by one or more processors, one or more processors are made to perform a method for determining information regarding the cross-sectional area of anatomical passages for fluid flow. The aforementioned method, The steps include obtaining one or more images of the aforementioned passage, The steps include: placing at least a portion of the depiction of the artificial organ into one or more images of the passage at a certain location; A step of determining a starting plane which is a plane including at least one point on the surface of the depiction of the artificial organ at a certain position, at least one point in the volume defined by the passage, and at least one point on the boundary of the passage in one or more images of the passage, The steps include generating a plurality of cross-sections based on rotating the starting surface once or more around one or more axes, A step of calculating a plurality of cross-sectional areas corresponding to the plurality of cutting surfaces, The step of calculating the plurality of cross-sectional areas includes the step of calculating the difference between a first cross-section that intersects a cross-section corresponding to at least a portion of the depiction of the artificial organ at a certain location and a second cross-section that intersects a cross-section corresponding to the volume, so that the plurality of corresponding cross-sections are obtained as a result, The steps include: calculating the area of the obtained corresponding cross-section as the corresponding cross-sectional area, A step of determining one of the maximum or minimum cross-sectional areas among the plurality of cross-sectional areas, A step of comparing the largest cross-sectional area or the smallest cross-sectional area with a threshold, A non-temporary computer-readable medium, comprising the step of selectively changing an artificial organ corresponding to the description of the artificial organ based on the comparison.
13. The passage in the aforementioned anatomical structure comprises the left ventricular outflow tract (LVOT), The description of the artificial organ includes a description of an artificial mitral valve, The non-temporary computer-readable medium according to claim 12, wherein the plurality of cross-sectional areas comprise the areas of a plurality of neo-LVOTs.
14. The method further includes the step of determining one or more additional starting surfaces, The non-temporary computer-readable medium according to claim 12, wherein the step of generating the plurality of cross-sections is based on rotating each of the starting surfaces once or more around one or more axes.
15. The step of generating the aforementioned multiple cross-sections is, A step of selecting an origin on the starting surface which is one of a first point on the surface of the depiction of the artificial organ at a certain position, a second point on the boundary of the passage, or a third point within the volume, wherein one or more axes are defined passing through the origin, A non-temporary computer-readable medium according to claim 12, comprising the step of rotating the starting surface one or more times by an increasing amount around at least one of the one or more axes, wherein each of the one or more results corresponds to a cutting surface.
16. A computer system comprising one or more memory units and one or more processors, The one or more processors are configured to cause the computer system to perform operations to determine information regarding the cross-sectional area of passages in anatomical structures for fluid flow. The aforementioned operation is, The steps include obtaining one or more images of the aforementioned passage, The steps include: placing at least a portion of the depiction of the artificial organ into one or more images of the passage at a certain location; A step of determining a starting plane which is a plane including at least one point on the surface of the depiction of the artificial organ at a certain position, at least one point in the volume defined by the passage, and at least one point on the boundary of the passage in one or more images of the passage, The steps include generating a plurality of cross-sections based on rotating the starting surface once or more around one or more axes, A step of calculating a plurality of cross-sectional areas corresponding to the plurality of cross-sections, comprising the step of calculating each corresponding cross-sectional area of the plurality of cross-sectional areas, A step of calculating a plurality of cross-sectional areas corresponding to the plurality of cutting surfaces, The step of calculating the plurality of cross-sectional areas includes the steps of calculating the difference between a first cross-section that intersects a cross-section corresponding to at least a portion of the depiction of the artificial organ at a certain location and a second cross-section that intersects a cross-section corresponding to the defined volume, and calculating the corresponding cross-sectional area, so that the plurality of corresponding cross-sections are obtained as a result, The steps include: calculating the area of the obtained corresponding cross-section as the corresponding cross-sectional area, Steps including, A step of determining one of the maximum or minimum cross-sectional areas among the plurality of cross-sectional areas, A step of comparing the largest cross-sectional area or the smallest cross-sectional area with a threshold, A computer system comprising the step of selectively changing an artificial organ corresponding to the description of the artificial organ based on the comparison.
17. The passage in the aforementioned anatomical structure comprises the left ventricular outflow tract (LVOT), The description of the artificial organ includes a description of an artificial mitral valve, The computer system according to claim 16, wherein the plurality of cross-sectional areas comprise the areas of a plurality of neo-LVOTs.
18. The operation further includes the step of determining one or more additional starting surfaces, The computer system according to claim 16, wherein the step of generating the plurality of cross-sections further comprises rotating each of the additional starting surfaces once or more times around one or more axes.
19. The step of generating the aforementioned multiple cross-sections is, A step of selecting an origin on the starting plane which is one of a first point on the surface of the depiction of the artificial organ at a certain position, a second point on the boundary of the passage, or a third point within the defined volume, wherein one or more axes are defined passing through the origin, The computer system according to claim 16, comprising the step of rotating the starting plane one or more times by an increasing amount around at least one of the one or more axes, wherein each of the one or more results corresponds to a cutting plane.
20. The step of generating the aforementioned multiple cross-sections further includes, The computer system according to claim 16, comprising the step of duplicating and translating one or more of the plurality of cross-sections along the surface of the depiction of the prosthetic organ at a certain position over one or more distance increments.
Citation Information
Patent Citations
Evaluating prosthetic heart valve placement
US20160166332A1