Systems and methods for intravascular visualization
The intravascular imaging display system addresses the challenge of reduced accuracy due to signal attenuation by using graphical indicators and machine learning to distinguish location accuracy, enhancing the system's ability to accurately depict anatomical features.
Patent Information
- Application Number
- JP2025264942
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-05-27
- Filing Date
- 2025-12-18
- Publication Date
- 2026-02-27
AI Technical Summary
Existing intravascular imaging systems face challenges in accurately determining the location of anatomical features, particularly in the presence of plaque that attenuates ultrasound signals, leading to reduced signal-to-noise ratios and compromised location accuracy.
An intravascular imaging display system that uses graphical indicators to visually distinguish between areas of varying location accuracy based on ultrasound signal attenuation, employing machine learning and deep learning models to determine feature positions and incorporating user input for model improvement.
Enhances the system's ability to provide accurate location information on anatomical features by visually indicating confidence levels, allowing clinicians to make informed decisions and improving the system's automated feature detection capabilities.
Smart Images

Figure 2026034676000001_ABST
Abstract
Description
[Technical Field]
[0001] Embodiments of the present disclosure relate to intravascular imaging and display systems and related methods. [Background technology]
[0002] Imaging systems, such as intravascular ultrasound (IVUS) imaging systems, have been developed to provide diagnostic tools for visualizing various diseases or disorders. For example, IVUS imaging systems have been used as an imaging modality to diagnose blocked blood vessels and provide information to assist physicians in selecting and placing stents and other devices to restore or increase blood flow. IVUS imaging systems have also been used to diagnose the accumulation of atherosclerotic plaque at specific locations within blood vessels. IVUS imaging systems can also be used to determine the presence of an obstruction or stenosis within a blood vessel, as well as the nature and extent of the obstruction or stenosis. IVUS imaging systems can also be used to visualize multiple segments of the vascular system that may be difficult to visualize using other intravascular imaging techniques, such as angiography, due to, for example, motion (e.g., a beating heart) or obstructions by one or more structures (e.g., one or more blood vessels not desired to be imaged). IVUS imaging systems may also be used to monitor or evaluate ongoing intravascular treatments, such as angiography and stent placement, in real time (or near real time). Additionally, IVUS imaging systems may be used to monitor one or more cardiac chambers. Summary of the Invention
[0003]
[0003] Embodiments of the present disclosure relate to intravascular imaging display systems and related methods. In a first aspect, an intravascular imaging display system is included having a control circuit and a video output circuit. The video output circuit can be configured to generate a display output including a user interface. The user interface can include a plurality of graphical elements related to the vessel being imaged. The plurality of graphical elements can include a first detected feature that can be at least partially defined by a first graphic indicator. The plurality of graphical elements can include a second detected feature that can be at least partially defined by a second graphic indicator. The first graphic indicator can be visually different from the second graphic indicator. The first detected feature and the second detected feature can be assigned by the control circuit to indicate one or more locations along the vessel wall based on whether attenuation of the ultrasound return signal exceeds a threshold.
[0004] In a second aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the first graphical indicator may include a solid border. In a third aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the second graphic indicator may include a dashed line border.
[0005] In a fourth aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the plurality of graphical elements may be associated with a longitudinal cross-section of the vessel.
[0006] In a fifth aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the plurality of graphical elements may be associated with a radial cross-section of the vessel.
[0007] In a sixth aspect, in addition to one or more of the preceding or following aspects, or as an alternative to some aspects, the first detected feature portion may include a representation of a first lumen boundary and a representation of a first vascular boundary. The second detected feature portion may include a representation of a second lumen boundary and a representation of a second vascular boundary.
[0008] In a seventh aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the positions of the multiple representations of the first vascular boundary, the second vascular boundary, the first lumen boundary, and the second lumen boundary may be determined using a machine learning derived model.
[0009] In an eighth aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the positions of the multiple representations of the first vascular boundary, the second vascular boundary, the first lumen boundary, and the second lumen boundary may be determined using a deep learning derived model.
[0010] In a ninth aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the user interface may include one or more numerical parameters related to the vessel being imaged, and the one or more numerical parameters may include a typographical feature indicating whether the one or more numerical parameters are related to a first detected feature portion or a second detected feature portion.
[0011] In a tenth aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the user interface may be configured to receive user input from a system user regarding the positions of the plurality of graphical elements.
[0012] In an eleventh aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the user interface may be configured to receive user input from a system user regarding at least one of the position of the representation of the first vascular boundary and the position of the representation of the second vascular boundary.
[0013] In a twelfth aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the intravascular imaging display system may be configured to use user input as part of a dataset for generation of a machine learning model.
[0014] In a thirteenth aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the first detected feature portion includes one or more distinct portions separated by one or more distinct portions of the second detected feature portion.
[0015] A fourteenth aspect may include a method of providing a display for an intravascular imaging display system. The method may include distinguishing between a first vessel wall portion and a second vessel wall portion based on attenuation of an ultrasound return signal. The method may include generating a display output including a user interface, where the user interface may include a plurality of graphical elements associated with the vessel being imaged, including a first detected feature corresponding to the first vessel wall portion and a second detected feature corresponding to the second vessel wall portion. The first detected feature may be at least partially defined by a first graphic indicator, and the second detected feature may be at least partially defined by a second graphic indicator. The first graphic indicator may be visually distinct from the second graphic indicator.
[0016] In a fifteenth aspect, in addition to one or more of the above or below aspects, or as an alternative to some aspects, the first graphic indicator may include a solid line border and the second graphic indicator may include a dashed line border.
[0017] In a sixteenth aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the method may further include using a machine learning derived model to determine the positions of multiple graphical elements associated with the vessel being imaged.
[0018] In a seventeenth aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the method may further include using a deep learning derived model to determine positions of a plurality of graphical elements associated with the vessel being imaged.
[0019] In an eighteenth aspect, in addition to one or more of the above or below described aspects, or as an alternative to some aspects, the method may further include receiving user input from a system user regarding a plurality of graphical elements associated with the vessel being imaged.
[0020] In a nineteenth aspect, in addition to one or more of the preceding or following aspects, or as an alternative to some aspects, the method may include receiving user input from a system user regarding the location of the vascular boundary.
[0021] In a twentieth aspect, in addition to one or more of the preceding or following aspects, or as an alternative to some aspects, the method may include using user input as part of a training dataset for generation of the machine learning model.
[0022] This Summary is an overview of some of the teachings of the present application and is not intended to be an exclusive or exhaustive treatment of the present subject matter. Further details are found in the detailed description and the appended claims. Other aspects will be apparent to those skilled in the art upon reading and understanding the following detailed description and viewing the drawings that form a part thereof, each of which should not be construed in a limiting sense. The scope of the present application is defined by the appended claims and their legal equivalents. [Brief explanation of the drawings]
[0023] Aspects may be more fully understood with reference to the following drawings. [Figure 1] FIG. 1 is a schematic diagram of an intravascular imaging system according to various embodiments herein. [Figure 2] FIG. 2 is a radial cross-sectional view of a vessel being imaged in accordance with various embodiments herein. [Figure 3] FIG. 3 is a radial cross-sectional view of a vessel being imaged in accordance with various embodiments herein. [Figure 4] FIG. 4 is a schematic diagram of a display of an intravascular imaging system according to various embodiments herein. [Figure 5] FIG. 5 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 6] FIG. 6 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 7] FIG. 7 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 8] FIG. 8 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 9] FIG. 9 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 10]FIG. 10 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 11] FIG. 11 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 12] FIG. 12 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 13] FIG. 13 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 14] FIG. 14 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 15] FIG. 15 is a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein. [Figure 16] FIG. 16 is a schematic side view of an intravascular imaging catheter of an IVUS imaging system according to various embodiments herein. [Figure 17] FIG. 17 is a schematic perspective view of a distal end of an elongate member of an intravascular imaging catheter according to various embodiments herein. DETAILED DESCRIPTION OF THE INVENTION
[0024] While various modifications and alternative forms of the embodiments are possible, details thereof are shown by way of example and drawings and are described in detail below. However, it should be understood that the scope of the present application is not limited to the particular aspects described. Rather, the present application encompasses modifications, equivalents, and alternatives falling within the spirit and scope of the present application.
[0025] As described above, imaging systems have been developed to provide diagnostic tools for visualizing various diseases or disorders. As an example, an IVUS imaging system may include a control module (with a pulse generator, an image processor, and a display or monitor), a catheter, and one or more transducers disposed in the catheter. The catheter containing the transducers may be positioned in a lumen or cavity within or adjacent to the region to be imaged, such as a vessel wall or patient tissue adjacent to the vessel wall. The pulse generator in the control module generates electrical pulses, which are delivered to the one or more transducers and converted into acoustic pulses that are transmitted through the patient tissue. Reflected pulses of the transmitted acoustic pulses are absorbed and converted into electrical pulses by the one or more transducers. The converted electrical pulses are delivered to an image processor and converted into an image that can be displayed on a monitor.
[0026] The value of an imaging system can be enhanced by automatically identifying portions of anatomical structures of clinical interest and / or automatically calculating their measurements. For example, in some scenarios, the system can automatically determine the location of anatomical features of interest (such as the lumen boundary of a vessel and / or the boundary of a vessel wall) by evaluating the imaging signals using machine learning techniques. Specifically, a model can be generated through machine learning techniques (such as supervised learning techniques, deep learning techniques, and / or the like) and then applied to the imaging signals to identify the location of the anatomical features of interest and / or their measurements. The locations of the anatomical features of interest and / or their measurements can be displayed within the user interface of the system herein in the form of displayed or depicted graphical elements that depict the anatomical features of interest and / or their measurements or characteristics.
[0027] However, in many cases, the ability of a system to accurately determine the location of multiple anatomical features of interest in an automated manner depends on the ability to collect sufficient imaging signals with a sufficient signal-to-noise ratio. Some conditions (such as the presence of plaque that attenuates ultrasound signals) may interfere with the imaging process, specifically attenuating the signal collected by the system and / or reducing its signal-to-noise ratio to a level that prevents the system from accurately and reliably identifying the location of multiple anatomical features of interest in an automated manner. In such cases, the system may still be able to estimate the location of such features, but the estimate may lack the typical level of location accuracy for the system. In such cases, it may be important for the system user (e.g., a clinician) to be aware of the location accuracy of the multiple features depicted by the system, including possible instances of reduced location accuracy.
[0028] Embodiments herein can provide a system user with information regarding the identified locations of multiple anatomical features of interest and / or the accuracy of their measurements, for example, through a user interface. In various embodiments herein, an intravascular imaging display system can display multiple graphical components to provide information regarding the location accuracy. For example, in various embodiments herein, an intravascular imaging display system can display multiple graphical components related to a vessel wall, including a first vessel wall portion defined at least in part by a first graphic indicator and a second vessel wall portion defined at least in part by a second graphic indicator that is visually different from the first graphic indicator. The first vessel wall portion and the second vessel wall portion can each indicate one or more positions along the vessel wall that exhibit different degrees of location accuracy or confidence as determined by the control circuitry based on the attenuation of the ultrasound return signal or another metric or technique. Thus, the visually distinct first vessel wall portion and the second vessel wall portion can be used to visually inform the system user of differences in the accuracy with which their locations are determined.
[0029] In various embodiments, a method of providing a display for an intravascular imaging display system herein may include a plurality of operations for distinguishing between a first vessel wall portion and a second vessel wall portion based on attenuation of an ultrasound return signal or another metric or technique (such as signal-to-noise ratio or the like) indicative of the location of and / or the accuracy of measurement of a plurality of anatomical features of interest, and generating a display output including a user interface. The user interface may include a plurality of graphical components associated with a representation of the vessel wall, including a representation of the first vessel wall portion and a representation of the second vessel wall portion. The representation of the first vessel wall portion may be defined at least in part by a first graphic indicator, and the representation of the second vessel wall portion may be defined at least in part by a second graphic indicator.
[0030] Referring now to FIG. 1 , a schematic diagram of an intravascular imaging system 100 is shown in accordance with various embodiments herein. In this example, the intravascular imaging system 100 takes the form of an IVUS imaging system. However, other imaging systems, including optical coherence tomography systems, are also contemplated. The intravascular imaging system 100 includes a catheter 102 that can be coupled to a processing unit or control module 104. The control module 104 can include, for example, a control circuit 106, a pulse generator 108, a drive unit 110, a video output circuit 112, and one or more displays or display units 114. In some examples, the pulse generator 108 forms electrical pulses that can be input to one or more transducers disposed within the catheter 102.
[0031] For purposes of this specification, the term "display" may refer to either an electronic device (e.g., a monitor) used for the visual display of data and / or the visual display of the data itself. In other words, depending on the context, the term "display" can refer to a hardware device for displaying data as well as data displayed on a hardware device.
[0032] In some examples, mechanical energy from the drive unit 110 may be used to drive an imaging core disposed within the catheter 102. In some examples, electrical signals transmitted from one or more transducers may be input to the control circuitry 106 for processing. In some examples, the processed electrical signals from the one or more transducers may be displayed as one or more images on one or more display units 114. For example, a scan converter may be used to map scan line samples (e.g., radial scan line samples, etc.) to a two-dimensional Cartesian grid to display one or more images on the one or more display units 114.
[0033] In some examples, control circuitry 106 may be used to control the function of one or more of the other components of control module 104. For example, control circuitry 106 may be used to control at least one of the frequency or duration of electrical pulses transmitted from pulse generator 108, the speed of rotation of the imaging core by drive unit 110, the speed or length of pullback of the imaging core by drive unit 110, or one or more characteristics of one or more images formed on one or more display units 114.
[0034] Referring now to Figure 2, a schematic diagram of a radial cross section of a vessel being imaged in accordance with various embodiments herein is shown. Figure 2 shows a catheter 102 and an ultrasonic acoustic pulse 204 from the catheter 102. The vessel being imaged includes a vessel lumen 202 and a lumen boundary 206. The vessel also includes a vessel boundary 208. Figure 2 also shows surrounding tissue 210. The ultrasonic acoustic pulse 204 is reflected by multiple such portions of the tissue and then processed by the system to generate images such as those shown in Figures 4-15.
[0035] However, plaque, which attenuates ultrasound signals, can interfere with ultrasound imaging by attenuating the amount of signal reaching and / or reflecting back from anatomical features, such as vessel boundaries. Referring now to FIG. 3, a schematic radial cross-sectional view of a vessel being imaged in accordance with various embodiments herein is shown. Similar to FIG. 2, FIG. 3 illustrates a catheter 102 and an ultrasound acoustic pulse 204 from the catheter 102, along with a vessel lumen 202, a lumen boundary 206, a vessel boundary 208, and surrounding tissue 210. However, FIG. 3 also illustrates plaque 302, which attenuates ultrasound signals. Plaque 302 attenuates ultrasound signals and can reduce the accuracy of automatically determining the location of multiple features, such as the vessel boundary 208.
[0036] Embodiments of the imaging systems herein include a user interface, whereby an ultrasound image and / or its display may be presented with graphical elements indicating the location of anatomical features such that the location accuracy is visually apparent to a system user. Referring now to FIG. 4 , a schematic diagram of the display 114 of an intravascular imaging system according to various embodiments herein is shown. FIG. 4 illustrates a user interface 402. The user interface 402 includes features related to a radial cross-section 404 of the vessel being imaged. The user interface 402 also includes a measurement parameter area 406. The user interface 402 also includes features related to a longitudinal cross-section 408 of the vessel being imaged.
[0037] Referring now to FIG. 5 , a schematic diagram of certain components of the display 114 of an intravascular imaging system in accordance with various embodiments herein is shown. The user interface includes features related to the radial cross-section 404 of the vessel being imaged. In this example, the features related to the radial cross-section 404 include a delineated lumen boundary 502 and a delineated vascular boundary 504. In this example, the delineated lumen boundary 502 is shown with a graphic indicator or graphical element in the form of a solid line, and the delineated vascular boundary 504 is shown with a graphic indicator in the form of a dashed or broken line. This visual distinction in these lines can be used to indicate areas where signal attenuation (or another effect) may affect the accuracy of the location of the delineated vascular boundary 504, as indicated through the user interface. Conversely, if the delineated vascular boundary 504 is believed to be indicated with high location accuracy, the delineated vascular boundary 504 can be shown in the user interface with a solid or continuous line.
[0038] The user interface may also include a measurement parameter area 406. The measurement parameter area 406 may include various measurements, such as lumen measurements 506, vascular measurements 508, and plaque data 510. In this example, the lumen measurements 506 are shown in a font with solid lines, and the vascular measurements 508 are shown in a font with dashed or broken lines. This can be used to indicate to the system user that the lumen measurements 506 are highly accurate, while the vascular measurements 508 may be less accurate due to signal attenuation or another effect in that portion of the vessel. Instead of or in addition to clearly indicating data by using dashed and solid lines, other visual differentiation techniques (e.g., other typographical features) can be used, such as indicating measurements that may be less accurate with a different color, a different typeface, italics, bold, underlined, different kerning, a different fill, or a different border.
[0039] The user interface may also include multiple graphical components related to the longitudinal cross-section 408 of the vessel being imaged. In this example, the multiple graphical components related to the longitudinal cross-section 408 may include a distal-to-proximal navigation guide 512 and a navigation slider 516 that can be used by the system user to quickly navigate the image data longitudinally along the length of the vessel being imaged.
[0040] The user interface may also include a representation of the longitudinal vessel wall 514. The representation of the longitudinal vessel wall 514 may include a focal region 524 that includes a lumen 520 and a vessel wall 518. The vessel wall 518 may include a first vessel wall portion 528 and a second vessel wall portion 526. The first vessel wall portion 528 includes the first lumen boundary 502. The first vessel wall portion 528 also includes the first vessel boundary 504. The user interface may also include a marker for the minimum cross-sectional area 522 of the lumen.
[0041] First vessel wall portion 528 and second vessel wall portion 526 can be assigned by control circuitry 106 to indicate one or more locations along vessel wall 518 based on whether the attenuation of the ultrasound return signal exceeds a threshold. First vessel wall portion 528 can be a specific contiguous segment or can be divided into multiple discrete segments. Similarly, second vessel wall portion 526 can be a specific contiguous segment or can be divided into multiple discrete segments. In various embodiments, first vessel wall portion 528 can be divided into multiple discrete portions separated by second vessel wall portion 526. In various embodiments, first vessel wall portion 528 can be at least partially defined by a first graphic indicator. In various embodiments, the first graphic indicator can include a solid boundary. In various embodiments, second vessel wall portion 526 can be at least partially defined by a second graphic indicator. In various embodiments, the second graphic indicator may include a dotted, dashed, or dashed border.
[0042] In various embodiments, the system can use a signal attenuation threshold to distinguish which portions of the longitudinal vessel wall representation 514 are first vessel wall portions 528 and which portions of the longitudinal vessel wall representation 514 are second vessel wall portions 526. In some embodiments, this threshold can be preset. In some embodiments, this threshold can be dynamically set. The attenuation threshold can be preset or dynamically set. In some embodiments, the signal attenuation threshold can be 1, 2, 3, 5, 7, 10, 20, 30, 40, 50, 60, 70, 80, 90 percent attenuation or less or more, or a value falling within a range between any of the above.
[0043] In various embodiments, the locations of the first vascular boundary 504 and the second vascular boundary 208 are determined using a machine learning derived model. In various embodiments, the locations of the first vascular boundary 504 and the second vascular boundary 208 are determined using a deep learning derived model.
[0044] Many different techniques can be used to make the representation of the first vessel wall portion and the representation of the second vessel wall portion visually distinguishable from one another. Referring now to FIG. 6 , a schematic diagram of components of a display of an intravascular imaging system according to various embodiments herein is shown. FIG. 6 illustrates graphical components associated with a longitudinal cross-section 408 of a vessel being imaged. Similar to FIG. 5 , the longitudinal cross-section 408 includes a distal-to-proximal navigation guide 512, a navigation slider 516, and a longitudinal vessel wall representation 514. The longitudinal vessel wall representation 514 includes multiple graphic elements representing the vessel wall 518, the vessel lumen 520, and a marker of the minimum cross-sectional area 522 of the lumen. The vessel wall can be visually divided into a first vessel wall portion 528 and a second vessel wall portion 526. In this embodiment, the vessel wall 518 includes a solid portion 602 associated with the first vessel wall portion 528. Filled portion 602 may make first vessel wall portion 528 even more visually distinct.
[0045] If the system user navigates to a portion of the vessel where signal attenuation is sufficiently low, the delineated vessel boundary 504 may be shown as a solid line. Referring now to Figure 7, a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein is shown. The user interface includes several features related to the radial cross-section 404 of the vessel being imaged, including the delineated lumen boundary 502 and the delineated vessel boundary 504. In this example, both the delineated lumen boundary 502 and the delineated vessel boundary 504 are shown as solid lines.
[0046] In some scenarios, the locations of multiple features other than simply the vessel boundary may be displayed to indicate a reduced confidence in the location accuracy. Referring now to Figure 8, a schematic diagram of multiple components of a display of an intravascular imaging system according to various embodiments herein is shown. The user interface includes multiple features associated with a radial cross-section 404 of the vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504, both of which are displayed as dashed lines.
[0047] In some embodiments, overlapping lines may be used to indicate a reduced confidence in the positional accuracy. Referring now to FIG. 9 , a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein is shown. The user interface includes several features related to the radial cross-section 404 of the vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504. In this example, the delineated vessel boundary 504 is shown with a double line. However, triple lines or a different number of offset lines are also contemplated herein.
[0048] In some embodiments, one or more filled-in sections may be included in the user interface to indicate a reduced confidence level of the positional accuracy. Referring now to FIG. 10 , a schematic diagram of several graphical components of a user interface of a display of an intravascular imaging system according to various embodiments herein is shown. The user interface includes several features related to the radial cross-section 404 of the vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504. The user interface may also include a filled-in portion 1002 between the delineated lumen boundary 502 and the delineated vessel boundary 504.
[0049] In some embodiments, irregular and / or zig-zag lines may be included in the user interface to indicate a reduced confidence in the location accuracy. Referring now to FIG. 11 , a schematic diagram of several components of a display including a user interface of an intravascular imaging system according to various embodiments herein is shown. The user interface includes several features related to a radial cross-section 404 of the vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504. In this example, the delineated vessel boundary 504 is shown as a zig-zag line to visually indicate a reduced confidence in the location accuracy.
[0050] In some embodiments, only a portion of a radial cross-section may have reduced confidence in location accuracy. For example, signal-attenuating plaque may not be 360° attached to the vessel. In such a scenario, certain radial portions of an anatomical feature of interest may have reduced confidence in location accuracy, while remaining portions may not have reduced confidence in location accuracy. Thus, in some embodiments, some graphical elements, such as lines, may be displayed in a particular manner, while remaining portions may be displayed in a different manner. Referring now to FIG. 12 , a schematic diagram of several components of a display of an intravascular imaging system according to various embodiments herein is shown. The user interface includes several features related to the radial cross-section 404 of the vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504. In this example, the delineated vessel boundary 504 includes a portion 1202 as a solid line and another portion 1204 as a dotted or dashed line.
[0051] In various embodiments herein, an actual ultrasound image can be shown as part of the display. For example, in various embodiments herein, at least some components of the displays described herein can be overlaid on, superimposed on or adjacent to, or otherwise shown in conjunction with an ultrasound image, such as a radial cross-sectional ultrasound image or a longitudinal cross-sectional ultrasound image. As a particular example, a delineated lumen boundary and / or a delineated vascular boundary can be overlaid on a radial cross-sectional ultrasound image. In this way, a system user can simultaneously view the actual ultrasound image and where the system has determined the localized lumen boundary and vascular boundary (e.g., the delineated boundary).
[0052] 13, there is shown a schematic diagram of several components of a display comprising a user interface of an intravascular imaging system according to various embodiments herein. In particular, FIG. 13 shows several features associated with a radial cross-section 404 of a vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504. The delineated lumen boundary 502 and the delineated vessel boundary 504 are shown superimposed on an actual ultrasound image 1302 representing the radial cross-section of the vessel.
[0053] In various embodiments, the user interface can be configured to receive user input from a system user regarding the displayed plurality of graphical features, such as a delineated lumen boundary and / or a delineated vascular boundary. For example, in some scenarios, a system user may view an ultrasound image and disagree with the location of some anatomical features of interest delineated by the system. As such, the user interface can be configured to receive user input regarding the user's determination of the location of the plurality of anatomical features. For example, the user interface can be configured to receive user input from the system user regarding at least one of the location of a first vascular boundary and the location of a second vascular boundary. In various embodiments, the intravascular imaging display system can be configured to use the user input as part of a dataset for generating a machine learning model. For example, the user input can be used as training data as part of a supervised machine learning approach to generate an improved model used to automatically determine the location of the plurality of anatomical features.
[0054] Referring now to FIG. 14 , a schematic diagram of several components of the display of an intravascular imaging system according to various embodiments herein is shown. The user interface includes several graphical features related to a radial cross-section 404 of the vessel being imaged, including a delineated lumen boundary 502 and a delineated vessel boundary 504. The vessel being imaged may also include a hand-drawn boundary 1402. The hand-drawn boundary 1402 may reflect user input provided using a user input device 1404, such as a stylus, touchscreen input, mouse, or other pointer. Data related to the hand-drawn boundary 1402 (such as its location) may be stored by the system and / or transmitted to a remote computing resource, such as a computing resource in the cloud. In some embodiments, a spatial difference between the delineated vessel boundary 504 as shown by the system and the hand-drawn boundary 1402 may be calculated. This difference may be stored and / or transmitted to the remote computing resource.
[0055] In some embodiments, a composite of multiple actual ultrasound images (frames) representing a longitudinal cross-section of a vessel can be shown within the display. Referring now to FIG. 15 , a schematic diagram of components of a display of an intravascular imaging system according to various embodiments herein is shown. Similar to that described with respect to FIG. 5 , FIG. 15 illustrates graphical components associated with longitudinal cross-section 408. In this example, the graphical components associated with longitudinal cross-section 408 may include a navigation slider 516 that can be used by a system user to quickly move the image data longitudinally along the length of the imaged vessel. FIG. 15 also illustrates a longitudinal vessel wall representation 514 including a focal region 524 that includes a lumen 520 and a vessel wall 518. The vessel wall 518 may include a first vessel wall portion 528 and a second vessel wall portion 526. The first vessel wall portion 528 includes a first lumen boundary 502. The first vessel wall portion 528 also includes a first vessel boundary 504. The user interface may also include a marker for the minimum cross-sectional area of the lumen 522. First vessel wall portion 528 and second vessel wall portion 526 may be assigned by control circuitry 106 to indicate one or more locations along the vessel wall 518 based on whether the attenuation of the ultrasound return signal exceeds a threshold. However, Figure 15 also shows a composite of multiple ultrasound images (frames) 1512 representing a longitudinal cross-section of the vessel being imaged.
[0056] Referring now to FIG. 16 , a schematic side view of a catheter 102 of an IVUS imaging system according to various embodiments of the present disclosure is shown. While an IVUS system is shown as an example, it will be understood that the features described herein may also be applied to other intravascular imaging systems. The catheter 102 includes an elongated member 1602 and a hub 1604. The elongated member 1602 includes a proximal end 1606 and a distal end 1608. In FIG. 16 , the proximal end 1606 of the elongated member 1602 is coupled to the catheter hub 1604, and the distal end 1608 of the elongated member is configured and arranged for percutaneous insertion into a patient. Optionally, the catheter 1602 can define at least one flush port, such as a flush port 1610. The flush port 1610 may be defined within the hub 1604. The hub 1604 can be configured and arranged to couple to a control module. In some examples, the elongate member 1602 and the hub 1604 are integrally formed. In other examples, the elongate member 1602 and the catheter hub 1604 are formed separately and then assembled together.
[0057] 17 , a schematic perspective view of the distal end 1608 of the elongate member 1602 of the catheter 102 is shown, in accordance with various embodiments herein. The elongate member 1602 includes a sheath 1702 having a longitudinal axis (e.g., a central longitudinal axis extending axially through the center of the sheath 1702 and / or catheter 102) and a lumen 1704. An imaging core 1706 is disposed within the lumen 1704. The imaging core 1706 includes an imaging device 1708 coupled to the distal end of a drive shaft 1710 that is rotatable manually or using a computer-controlled drive mechanism. One or more transducers 1712 are attached to the imaging device 1708 and may be employed to transmit and receive acoustic signals. The sheath 1702 may be formed from any flexible, biocompatible material suitable for insertion into a patient. Examples of suitable materials include, for example, polyethylene, polyurethane, plastic, spiral cut stainless steel, nitinol hypotubing, or the like, or combinations thereof.
[0058] In some examples, an array of transducers 1712 is attached to the imaging device 1708, as shown, for example, in FIG. 17 . Alternatively, a single transducer may be used. Any suitable number of transducers 1712 may be used. For example, there may be 2, 3, 4, 5, 6, 7, 8, 9, 10, 12, 15, 16, 20, 25, 50, 100, 500, 1000, or more transducers. As will be appreciated, other numbers of transducers may also be used. When multiple transducers 1712 are employed, the transducers 1712 may be configured in any suitable arrangement, including, for example, a circular arrangement, a rectangular arrangement, etc.
[0059] The one or more transducers 1712 can be formed from a material capable of converting an applied electrical pulse into a pressure strain on the surface of the one or more transducers 1712, and vice versa. Examples of suitable materials include piezoelectric ceramic materials, piezoelectric composites, piezoelectric plastics, barium titanate, lead zirconate titanate, lead metaniobate, polyvinylidene fluoride, and the like. Other transducer technologies include composite materials, single crystal composites, and semiconductor devices (e.g., capacitive micromachined ultrasound transducers (“cMUT”), piezoelectric micromachined ultrasound transducers (“pMUT”), and the like).
[0060] Pressure distortions on the surface of the one or more transducers 1712 form acoustic pulses at a frequency based on the resonant frequency of the one or more transducers 1712. The resonant frequency of the one or more transducers 1712 can be affected by the size, shape, and material used to form the one or more transducers 1712. The one or more transducers 1712 can be formed in any shape suitable for placement within the catheter 102 and for propagating acoustic pulses of a desired frequency in one or more selected directions. For example, the transducers can be disk-shaped, block-shaped, rectangular-shaped, elliptical-shaped, etc. The one or more transducers can be formed into the desired shape by any process, including, for example, dicing, die-and-fill, machining, micromachining, etc.
[0061] As an example, each of the one or more transducers 1712 may include a layer of piezoelectric material sandwiched between a matching layer and a conductive backing material formed from an acoustically absorbing material (e.g., an epoxy substrate with tungsten particles). In operation, the piezoelectric layer can be electrically excited to cause the emission of an acoustic pulse.
[0062] The one or more transducers 1712 can be used to form radial cross-sectional images of the surrounding space. Thus, for example, when the one or more transducers 1712 are disposed in the catheter 102 and inserted into a patient's blood vessel, the one or more transducers 1712 can be used to form images of the walls of the blood vessel and the tissue surrounding the blood vessel.
[0063] The imaging core 1706 is rotated about the longitudinal axis of the catheter 102. As the imaging core 1706 rotates, the one or more transducers 1712 emit acoustic signals in different radial directions (e.g., along different radial scan lines). For example, the one or more transducers 1712 may emit acoustic signals at regular (or irregular) increments, such as 256 radial scan lines per rotation. It will be understood that other numbers of radial scan lines per rotation are alternatively possible.
[0064] When an emitted acoustic pulse with sufficient energy encounters one or more medium boundaries, such as one or more tissue boundaries, a portion of the emitted acoustic pulse is reflected back to the emitting transducer as an echo pulse. Each echo pulse that arrives at the transducer with sufficient energy to be detected is converted to an electrical signal at the receiving transducer. The converted electrical signal or signals are transmitted to a control module, where a processor processes the electrical signal characteristics to form a displayable image of the imaged area based at least in part on the collection of information from each of the transmitted acoustic pulses and received echo pulses. In some examples, the rotation of the imaging core 1706 is driven by a drive unit 110 disposed within the control module. In alternative embodiments, the one or more transducers 1712 are fixed in place and do not rotate. In that case, the drive shaft 1710 may instead rotate a mirror that reflects acoustic signals to and from the fixed one or more transducers 1712.
[0065] As one or more transducers 1712 are rotated about the longitudinal axis of the catheter 102 emitting the acoustic pulses, multiple images can be formed that collectively form a radial cross-sectional image (e.g., a tomographic image) of a portion of the area surrounding the one or more transducers 1712, such as the wall of a blood vessel of interest and the tissue surrounding the blood vessel. The radial cross-sectional images can optionally be displayed on one or more display units 114. The imaging core 1706 can be rotated manually or using a computer-controlled mechanism.
[0066] The imaging core 1706 may move longitudinally along a blood vessel into which the catheter (shown in FIG. 1 ) is inserted, such that multiple cross-sectional images may be formed along the longitudinal length of the blood vessel. During an imaging procedure, the one or more transducers 1712 may be retracted (e.g., pulled back) along the longitudinal length of the catheter 102. The catheter may include at least one telescoping section that may be retracted during pullback of the one or more transducers 1712. In some examples, a drive unit drives the retraction of the imaging core 1706 within the catheter. The retraction distance by the drive unit of the imaging core may be any suitable distance, including, for example, at least 5 cm, 10 cm, 15 cm, 20 cm, 25 cm, or more. Regardless of whether the imaging core 1706 moves longitudinally independently of the catheter, the entire catheter may be retracted during an imaging procedure.
[0067] A stepper motor may optionally be used to retract the imaging core 1706. The stepper motor may retract the imaging core 1706 a short distance, stop long enough for the one or more transducers 1712 to capture an image or series of images, then retract the imaging core 1706 another short distance, again to capture another image or series of images, and so on.
[0068] The quality of images produced at different depths from one or more transducers 1712 may be affected by one or more factors, including, for example, bandwidth, transducer focus, beam pattern, and frequency of the acoustic pulses. The frequency of the acoustic pulses output from one or more transducers 1712 may also affect the penetration depth of the acoustic pulses output from the one or more transducers 1712. Generally, as the frequency of the acoustic pulses decreases, the penetration depth of the acoustic pulses within patient tissue increases. In some examples, the intravascular imaging system 100 operates within a frequency range of 5 MHz to 100 MHz.
[0069] One or more conductors 1714 may electrically couple the transducer 1712 to a control module (shown in FIG. 1 ), in which case the one or more conductors 1714 may extend along the longitudinal length of the rotatable drive shaft 1710.
[0070] A catheter with one or more transducers 1712 attached to the distal end 1608 of the imaging core 1708 may be percutaneously inserted into the patient via an accessible vessel, such as the femoral artery, femoral vein, or jugular vein, at a site remote from a selected portion of a selected region, such as a blood vessel, to be imaged. The catheter may then be advanced through the patient's blood vessels to a selected imaging site, such as a portion of a selected blood vessel.
[0071] An image or image frame (“frame”) can be generated each time one or more acoustic signals are emitted into the surrounding tissue and one or more corresponding echo signals are received by the imaging device 1708 and transmitted to the processor. Alternatively, an image or image frame may be a composite of scan lines from a full or partial rotation of the imaging core or device. Multiple frames (e.g., a sequence of frames) may be acquired over time during any type of movement of the imaging device 1708. For example, frames may be acquired during rotation and pullback of the imaging device 1708 along the target imaging location. It should be understood that frames may be acquired with or without rotation of the imaging device 1708, and with or without pullback. Furthermore, it will be understood that frames may be acquired using other types of movement procedures in addition to or instead of at least one of rotation or pullback of the imaging device 1708.
[0072] In some examples, when pullback is performed, the pullback may be at a constant speed, thus providing a tool for potential applications that can calculate longitudinal vessel / plaque measurements. In some examples, the imaging device 1708 is pulled back at a constant speed of about 0.3-0.9 mm / sec or about 0.5-0.8 mm / sec. In some examples, the imaging device 1708 is pulled back at a constant speed of at least 0.3 mm / sec. In some examples, the imaging device 1708 is pulled back at a constant speed of at least 0.4 mm / sec. In some examples, the imaging device 1708 is pulled back at a constant speed of at least 0.5 mm / sec. In some examples, the imaging device 1708 is pulled back at a constant speed of at least 0.6 mm / sec. In some examples, the imaging device 1708 is pulled back at a constant speed of at least 0.7 mm / sec. In some examples, the imaging device 1708 is pulled back at a constant speed of at least 0.8 mm / sec.
[0073] In some examples, one or more acoustic signals are output to the surrounding tissue at regular time intervals. In some examples, one or more corresponding echo signals are received by the imaging device 1708 and transmitted to the control circuitry 106 (which may include a processor) at regular time intervals. In some examples, the resulting frames are generated at regular time intervals.
[0074] At least some conventional IVUS imaging systems display only a single image (e.g., cross-sectional, longitudinal, etc.) during or after an IVUS procedure, such as a pullback procedure. However, it may be useful to simultaneously display at least two images in real time during an IVUS procedure (e.g., a pullback procedure), such as the most recently processed image and a previously acquired image having certain or selected image characteristics (e.g., maximum or minimum lumen area or diameter).
[0075] Some diagnostic and / or therapeutic interventions may involve analysis of images generated by an IVUS imaging system. However, this analysis may require a significant amount of training / experience to effectively interpret the images. Furthermore, automated analysis and / or evaluation may be difficult due to the high presence of speckles on IVUS images. Disclosed herein are methods for processing and / or analyzing images, such as images generated using / by an IVUS imaging system. Such methods may utilize machine learning, artificial intelligence, deep neural networks, etc. to improve the processing and / or analysis of images generated using / by an IVUS imaging system.
[0076] The processes / methods described herein may include generating and / or collecting images of a blood vessel (e.g., IVUS images generated via an IVUS pullback procedure, cross-sectional images, etc.). The generated / collected images may include image processing and / or segmentation using a deep learning network (e.g., a deep neural network such as a U-Net deep neural network) to obtain image segmentation for quantitative analysis and image classification for automatic identification of lesion type, stent detection, etc., lumen boundary identification, lumen dimension identification, minimal lumen area (MLA) determination, media boundary identification (e.g., identification of the media boundary of the tunica media within a vessel), media dimension identification, calcification angle / arc identification, calcification coverage identification, lesion type identification, combinations thereof, and / or the like. In addition to identifying such boundary / dimensions, the output may be displayed on a display unit in an appropriate format (e.g., with words or symbols, as an actual or schematic image, graphically, numerically, etc.). In some examples, multiple images of an IVUS pullback or "run" may be analyzed. Output of this run analysis may include lumen contour (e.g., including, for example, a longitudinal section or "long view"), vessel contour (e.g., including, for example, a longitudinal section or "long view"), representation of calcification length (e.g., visualization or image, numerical visualization, graphical visualization, etc.), depiction / display of a reference frame (e.g., minimum lumen area or "MLA", minimum stent area or "MSA", etc.), indication of side branch location (e.g., visualization or image, numerical visualization, graphical visualization, etc.), indication of the distance between two frames of interest (e.g., visualization or image, numerical visualization, graphical visualization, etc.), indication of stent expansion (e.g., visualization or image, numerical visualization, graphical visualization, etc.), combinations thereof, etc.This may also include analyzing the image using a deep neural network (e.g., the UNet deep neural network, which is a convolutional neural network developed for biomedical image segmentation, or another neural network) and / or other machine learning and / or artificial intelligence techniques. Other deep learning neural networks that may be applied in some scenarios may include deep belief networks, generative adversarial networks, recurrent neural networks, and other types of convolutional deep neural networks.
[0077] For example, some exemplary IVUS imaging systems that may be used with the embodiments and / or operations of the present specification include, but are not limited to, those disclosed in U.S. Patent Nos. 7,246,959, 7,306,561, and 6,945,938, as well as U.S. Patent Application Publication Nos. 2006 / 0100522, 2006 / 0106320, 2006 / 0173350, 2006 / 0253028, 2007 / 0016054, and 2007 / 0038111, and International Publication No. 2021 / 062006, all of which are incorporated herein by reference.
[0078] method Many different methods are contemplated herein, including, but not limited to, methods for generating multiple images of an intravascular imaging display system, methods for generating or controlling a user interface of an intravascular imaging display system, methods of using an intravascular imaging display system, etc. Aspects of system / device operation described elsewhere herein may be performed as operations of one or more methods according to various embodiments herein, and may be performed using control circuitry or components thereof, such as a processor, microcontroller, ASIC, or other hardware component, either local or remote, such as the cloud.
[0079] In various embodiments, the operations and / or method steps described herein may be performed as part of a computer-implemented method executed by one or more processors of one or more computing devices. In various embodiments, the operations and method steps described herein may be implemented as instructions stored on a non-transitory computer-readable medium that, when executed by one or more processors, cause the system to perform the operations and / or steps.
[0080] One embodiment includes a method for providing a display for an intravascular imaging display system, the method may include distinguishing between a first vessel wall portion and a second vessel wall portion based on attenuation of an ultrasound return signal. The method may also include generating a display output including a user interface, the user interface including a representation of a vessel wall including the first vessel wall portion and the second vessel wall portion. The representation of the first vessel wall portion may be defined at least in part by a first graphic indicator, and the representation of the second vessel wall portion may be defined at least in part by a second graphic indicator.
[0081] In one embodiment, the first graphic indicator may include a solid line border. In one embodiment, the second graphic indicator may include a dashed line border. However, many other variations, including those described elsewhere herein, are also contemplated herein.
[0082] In one embodiment of the method, the representation of the vessel wall is displayed as a longitudinal cross-section of the vessel. In one embodiment of the method, the representation of the vessel wall is displayed as a radial cross-section of the vessel. In one embodiment of the method, the representation of the vessel wall is displayed as both a longitudinal cross-section of the vessel and a radial cross-section of the vessel.
[0083] In one embodiment of the method, the locations of the plurality of components of the representation of the vessel wall are determined using a machine learning derived model.In one embodiment of the method, the locations of the plurality of components of the representation of the vessel wall are determined using a deep learning derived model.
[0084] In one embodiment, the method may further include receiving user input from a system user regarding a representation of the vascular wall, such as the locations of multiple anatomical features in the vascular wall. In one embodiment, the method may further include receiving user input regarding a vascular boundary. In one embodiment, the method may further include receiving user input from a system user regarding the location of the vascular boundary. In one embodiment of the method, the user input may be used as part of a training data set for generation of a machine learning model for determining the locations of multiple anatomical features of interest in the ultrasound image.
[0085] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content clearly dictates otherwise. It should also be noted that the term "or" is generally used in its sense including "and / or" unless the content clearly dictates otherwise.
[0086] It should also be noted that, as used herein and in the appended claims, the phrase "configured" describes a system, apparatus, or other structure that is constructed or arranged to perform a particular task or adopt a particular configuration. The phrase "configured" can be used interchangeably with other similar phrases, such as arranged and constructed, constructed and arranged, constructed, manufactured and arranged, etc.
[0087] All publications and patent applications in this specification are indicative of the level of those skilled in the art to which this invention pertains. All publications and patent applications are herein incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated by reference.
[0088] As used herein, the recitation of numerical ranges by endpoints is intended to include all numbers subsumed within that range (eg, 2 to 8 includes 2.1, 2.8, 5.3, 7, etc.). The headings used in this application are provided for consistency with the suggestions under 37 CFR 1.77 or otherwise to provide organizational guidance. These headings should not be considered to limit or characterize the invention(s) set forth in any claims that may arise from this disclosure. As an example, while a heading refers to a "Field," a claim should not be limited by the language selected under this heading to describe the so-called field of technology. Furthermore, the description of a technology in the "Background" section is not an admission that that technology is prior art to any invention(s) in this disclosure. The "Summary" should also not be considered a feature of the claimed invention(s).
[0089] The embodiments described herein are not intended to be exhaustive or to limit the invention to the precise form disclosed in the following detailed description. Rather, the embodiments are chosen and described so that those skilled in the art can appreciate and understand the principles and practices thereof. Accordingly, aspects have been described with reference to various specific preferred embodiments and techniques. However, it should be understood that many variations and modifications may be made while remaining within the spirit and scope of the present application.
Claims
1. 1. An intravascular imaging display system comprising: a control circuit; a video output circuit, the video output circuitry is in electronic communication with the control circuitry; the video output circuitry is configured to generate a display output including a user interface; The user interface includes: a plurality of graphical elements associated with the vessel being imaged, said plurality of graphical elements comprising: a first detected feature portion defined at least in part by a first graphic indicator; a second detected feature portion defined at least in part by a second graphic indicator; the first graphic indicator is visually distinct from the second graphic indicator; the first detected feature and the second detected feature are assigned by the control circuit to indicate one or more locations along a vessel wall based on whether attenuation of the ultrasound return signal exceeds a threshold.
2. The intravascular imaging display system of claim 1 , wherein the first graphic indicator comprises a solid border.
3. The intravascular imaging display system of claim 1 or 2, wherein the second graphic indicator comprises a dashed line boundary.
4. 3. The intravascular imaging display system of claim 1, wherein the plurality of graphical elements relate to a longitudinal cross-section of the vessel.
5. 3. The intravascular imaging display system of claim 1, wherein the plurality of graphical elements relate to radial cross-sections of the vessel.
6. The first detected feature portion is a representation of a first lumen boundary; a representation of the first vessel boundary; The second detected feature portion is a second lumen boundary representation; and a second vessel boundary display.
7. 7. The intravascular imaging display system of claim 6, wherein the locations of the multiple representations of the first vessel boundary, the second vessel boundary, the first lumen boundary, and the second lumen boundary are determined using a machine learning derived model.
8. 7. The intravascular imaging display system of claim 6, wherein the positions of the multiple representations of the first vessel boundary, the second vessel boundary, the first lumen boundary, and the second lumen boundary are determined using a deep learning derived model.
9. 3. The intravascular imaging display system of claim 1, wherein the user interface includes one or more numerical parameters associated with the vessel being imaged, the one or more numerical parameters including a typographical feature indicating whether the one or more numerical parameters are associated with the first detected feature portion or the second detected feature portion.
10. 3. The intravascular imaging display system of claim 1, wherein the user interface is configured to receive user input from a system user regarding at least one of a position of the display of the first vessel boundary and a position of the display of the second vessel boundary.
11. The intravascular imaging display system of claim 10 , wherein the intravascular imaging display system is configured to use the user input as part of a data set for generation of a machine learning model.
12. 1. A method for providing a display for an intravascular imaging display system, comprising: distinguishing between a first vessel wall portion and a second vessel wall portion based on the attenuation of the ultrasound return signal; generating a display output including a user interface; the user interface includes a plurality of graphical elements related to the vessel being imaged, including a first detected feature corresponding to the first vessel wall portion and a second detected feature corresponding to the second vessel wall portion; the first detected feature is at least partially defined by a first graphic indicator, and the second detected feature is at least partially defined by a second graphic indicator; The method, wherein the first graphic indicator is visually distinct from the second graphic indicator.
13. The method of claim 12 , wherein the first graphic indicator includes a solid line border and the second graphic indicator includes a dashed line border.
14. 14. The method of claim 12 or 13, further comprising receiving user input from a system user regarding the location of the vessel boundary.
15. The method of claim 14 , further comprising using the user input as part of a training data set for generation of a machine learning model.