Systems and methods for vascular image co-registration
Patent Information
- Application Number
- JP2025098579
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-03-05
- Filing Date
- 2025-06-12
- Publication Date
- 2025-10-27
AI Technical Summary
Existing medical imaging systems for vascular structures lack effective methods for co-registering intravascular and extravascular imaging data, which are complementary but often require alignment for accurate vascular assessment.
A method for vascular imaging coregistration that involves acquiring extravascular imaging data showing an intravascular device and anatomical landmarks, along with intravascular imaging data, and using software for marking and aligning predicted positions of detected landmarks with visualized landmarks, enabling accurate registration.
Facilitates precise alignment of intravascular and extravascular imaging data, providing comprehensive vascular assessment by correlating different imaging modalities, enhancing diagnostic accuracy and treatment planning.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE The present disclosure relates to medical imaging and systems and methods for medical imaging. More particularly, the present disclosure relates to systems and methods for vascular imaging, including intravascular and extravascular imaging and co-registration. [Background technology]
[0002] A wide variety of medical imaging systems and methods have been developed for use in medical applications, such as imaging vascular anatomical structures. Some of these systems and methods include intravascular and extravascular imaging modalities for imaging vascular structures. These systems and methods include a variety of configurations and may operate or be used according to any one of a variety of methods. Each of the known vascular imaging systems and methods has certain advantages and disadvantages. Therefore, there is a continuing need to provide alternative systems and methods for vascular imaging and evaluation, as well as imaging co-registration. Summary of the Invention
[0003] The present disclosure provides alternative medical imaging systems and methods. One example includes a method for vascular imaging coregistration. The method includes acquiring extravascular imaging data of a portion of a blood vessel. The extravascular imaging data includes an extravascular image showing an intravascular imaging device disposed within the blood vessel, with an imaging element of the intravascular imaging device positioned at a start position of a translation procedure during which the imaging element is translated within the blood vessel from the start position to an end position. The extravascular image also includes an extravascular contrast image showing the portion of the blood vessel in contrast and a visualized anatomical landmark. The method includes acquiring intravascular imaging data from the intravascular imaging device during the translation procedure, the intravascular imaging data including one or more intravascular images showing the detected anatomical landmarks. The method also includes marking start and end positions of the imaging element on the extravascular imaging data, marking predicted positions of the detected anatomical landmarks on the extravascular imaging data, and registering the predicted positions of the detected anatomical landmarks with the visualized anatomical landmarks.
[0004] Alternatively or additionally to any of the above embodiments, the extravascular imaging data includes one or both of angiographic image data and fluoroscopic image data. Alternatively or additionally to any of the above embodiments, the angiographic data is selected from one or more of two-dimensional angiographic image data, three-dimensional angiographic image data, or computed tomography angiographic image data.
[0005] Alternatively or additionally to any of the above embodiments, the extravascular imaging data is a video including an extravascular image showing an intravascular imaging device and an extravascular contrast image showing a portion of a blood vessel in contrast.
[0006] Alternatively or additionally to any of the above embodiments, the extravascular imaging data is a series of images including extravascular images showing an intravascular imaging device and extravascular contrast images showing a portion of a blood vessel in contrast.
[0007] Alternatively or additionally to any of the above embodiments, the intravascular imaging data is selected from one or more of intravascular ultrasound data and optical coherence tomography data.
[0008] Alternatively or additionally to any of the above embodiments, marking the start and end positions comprises using image pattern recognition software. Alternatively or additionally to any of the above embodiments, marking the start and end positions includes allowing a user to manually mark the start and end positions.
[0009] Alternatively or additionally to any of the above embodiments, further comprising identifying anatomical landmarks visualized on the extravascular imaging data. Alternatively or additionally to any of the above embodiments, identifying anatomical landmarks visualized on the extravascular imaging data includes using image pattern recognition software.
[0010] Alternatively or additionally to any of the above embodiments, identifying anatomical landmarks visualized on the extravascular imaging data includes allowing a user to manually mark anatomical landmarks visualized on the extravascular imaging data.
[0011] Alternatively or additionally to any of the above embodiments, identifying anatomical landmarks visualized on the extravascular imaging data includes image pattern recognition software marking the anatomical landmarks visualized on the extravascular imaging data.
[0012] Alternatively or additionally to any of the above embodiments, marking the predicted locations of the detected anatomical landmarks on the extravascular imaging data includes using image pattern recognition software.
[0013] Alternatively or additionally to any of the above embodiments, marking the predicted locations of the detected anatomical landmarks on the extravascular imaging data includes allowing a user to manually mark the predicted locations of the detected anatomical landmarks on the extravascular imaging data.
[0014] Alternatively or additionally to any of the above embodiments, aligning the predicted positions of the detected anatomical landmarks with the visualized anatomical landmarks is performed automatically using software.
[0015] Alternatively or additionally to any of the above embodiments, aligning the predicted positions of the detected anatomical landmarks with the visualized anatomical landmarks includes allowing a user to manually align the predicted positions of the detected anatomical landmarks with the visualized anatomical landmarks.
[0016] Alternatively or additionally to any of the above embodiments, the translation procedure is performed using an automated translation system. Alternatively or additionally to any of the above embodiments, the translational procedure is a pullback.
[0017] Alternatively or additionally to any of the above embodiments, during the translation procedure, the imaging element is translated within the blood vessel from a start position to an end position at a known speed. Alternatively or additionally to any of the above embodiments, the method further comprises calculating a path on the extravascular imaging data along which an imaging element of the intravascular imaging device moves from a start position to an end position during the translation procedure.
[0018] Alternatively or additionally to any of the above embodiments, further comprising determining predicted positions of anatomical landmarks detected on the extravascular imaging data using known velocities at which the imaging element is translated from a start position to an end position within the blood vessel.
[0019] Alternatively or additionally to any of the above embodiments, marking the predicted position of the detected anatomical landmark on the extravascular imaging data includes calculating a path on the extravascular imaging data along which an imaging element of the intravascular imaging device moves from a start position to an end position during the translation procedure, and using a known speed at which the imaging element is translated from the start position to the end position within the blood vessel to determine the predicted position of the detected anatomical landmark on the extravascular imaging data.
[0020] Alternatively or additionally to any of the above embodiments, further comprising estimating the accuracy of the imaging coregistration. Alternatively or additionally to any of the above embodiments, further comprising generating a visual indicator representing the estimated accuracy of the imaging coregistration.
[0021] Alternatively or additionally to any of the above embodiments, further comprising displaying a visual indicator overlaid on the portion of the blood vessel on the extravascular imaging data. Alternatively or additionally to any of the above embodiments, further comprising estimating the accuracy of the imaging coregistration for one or more segments of a portion of a blood vessel, generating a visual indicator representing the estimated accuracy of the imaging coregistration for the one or more segments, and displaying the visual indicator on the one or more segments on the extravascular imaging data.
[0022] Alternatively or additionally to any of the above embodiments, the visual indicator includes one or more color-coded indicators. Alternatively or additionally to any of the above embodiments, the extravascular imaging data further includes intermediate extravascular images acquired during the translation procedure showing an intravascular imaging device positioned within the blood vessel, with the imaging element positioned at an intermediate position during the translation procedure between the start position and the end position, and the method further includes marking the intermediate position of the imaging element on the extravascular imaging data.
[0023] Alternatively or additionally to any of the above embodiments, marking the intermediate positions of the imaging elements on the extravascular imaging data includes using image pattern recognition software.
[0024] Alternatively or additionally to any of the above embodiments, marking the intermediate position of the imaging element on the extravascular imaging data includes allowing a user to manually mark the intermediate position of the imaging element on the extravascular imaging data.
[0025] Alternatively or additionally to any of the above embodiments, the extravascular contrast image also illustrates a second visualized anatomical landmark, and the intravascular imaging data includes one or more additional intravascular images illustrating the second detected anatomical landmark, and the method further includes marking a predicted location of the second detected anatomical landmark on the extravascular imaging data, and aligning the predicted location of the second detected anatomical landmark with the second visualized anatomical landmark.
[0026] Alternatively or additionally to any of the above embodiments, the extravascular contrast image also illustrates a third visualized anatomical landmark, and the intravascular imaging data includes one or more additional intravascular images illustrating the third detected anatomical landmark, and the method further includes marking a predicted location of the third detected anatomical landmark on the extravascular imaging data, and aligning the predicted location of the third detected anatomical landmark with the third visualized anatomical landmark.
[0027] Alternatively or additionally to any of the above embodiments, the extravascular contrast image also illustrates a fourth visualized anatomical landmark, and the intravascular imaging data includes one or more additional intravascular images illustrating the fourth detected anatomical landmark, and the method further includes marking a predicted location of the fourth detected anatomical landmark on the extravascular imaging data, and aligning the predicted location of the fourth detected anatomical landmark with the fourth visualized anatomical landmark.
[0028] The computer readable medium has stored thereon in a non-transitory state program code for use by a computing device, the program code causing the computing device to perform the method of any one of the above embodiments.
[0029] A system for vascular imaging co-registration comprises one or more input ports for receiving imaging data, one or more output ports, and a controller in communication with the input ports and the output ports, the controller being configured to perform the method of any one of the above embodiments.
[0030] Alternatively or additionally to any of the above embodiments, the input port may support one or more of live video and DICOM. Alternatively or additionally to any of the above embodiments, the output port is configured to output to one or more of a display and a data archive.
[0031] A system for intravascular imaging registration includes an intravascular imaging device, a computer, and a computer-readable medium having stored thereon in a non-transitory state program code for use by the computing device, the program code causing the computing device to perform the method of any one of the above embodiments.
[0032] The controller comprises a processor and a memory, the memory including instructions executable by the processor to perform the method of any one of the above embodiments. The above summary of some embodiments is not intended to describe each disclosed embodiment or every implementation of the present disclosure. The following figures and detailed description more particularly exemplify these embodiments. [Brief explanation of the drawings]
[0033] The present disclosure can be more fully understood from the following detailed description considered in conjunction with the accompanying drawings, in which: [Figure 1] FIG. 1 is a schematic diagram of an exemplary system for use in vascular imaging coregistration. [Figure 2] FIG. 2 is a schematic diagram of an exemplary intravascular imaging catheter shown in partial cross section. [Figure 3] FIG. 3 is a schematic diagram of a distal portion of the exemplary intravascular imaging catheter of FIG. 2 shown in cross-section. [Figure 4] FIG. 4 is a schematic diagram of a display showing an example of an extravascular image. [Figure 5] FIG. 5 is a schematic diagram of a display showing an example of an extravascular contrast image. [Figure 6]FIG. 6 is a schematic diagram of a display showing an example of an extravascular image and corresponding intravascular imaging, including transverse and longitudinal cross-sectional images, acquired during the initial portion of a translation procedure. [Figure 7] FIG. 7 is a schematic diagram of a display showing an example of an extravascular image and corresponding intravascular imaging, including transverse and longitudinal cross-sectional images, acquired during an intermediate portion of a translation procedure. [Figure 8] FIG. 8 is a schematic diagram of a display showing an example of an extravascular image and corresponding intravascular imaging, including transverse and longitudinal cross-sectional images, acquired during the end portion of a translation procedure. [Figure 9] FIG. 9 is a schematic diagram of a display showing an example of a combined extravascular image marked with the start and end positions of a translation procedure, along with corresponding intravascular imaging including transverse and longitudinal cross-sectional images. [Figure 10] FIG. 10 is a schematic diagram of a display showing an example of an extravascular image including marked predicted locations of detected anatomical landmarks, along with corresponding intravascular imaging including transverse and longitudinal cross-sectional images. [Figure 11] FIG. 11 is a schematic diagram of a display such as that of FIG. 10 showing the marked predicted locations of detected anatomical landmarks aligned with the visualized anatomical landmarks, as well as corresponding intravascular imaging including transverse and longitudinal cross-sectional images. [Figure 12] FIG. 12 is a schematic diagram of a display showing an example of an extravascular image including a marked predicted location of a second detected anatomical landmark, along with corresponding intravascular imaging including a transverse cross-sectional image and a longitudinal cross-sectional image. [Figure 13] FIG. 13 is a schematic diagram of a display such as that of FIG. 12 showing the marked predicted location of a second detected anatomical landmark aligned with the second visualized anatomical landmark, along with corresponding intravascular imaging including transverse and longitudinal cross-sectional images. [Figure 14] FIG. 14 is a schematic diagram of a display showing an example of an extravascular image including a marked predicted location of a third detected anatomical landmark, along with corresponding intravascular imaging including a transverse cross-sectional image and a longitudinal cross-sectional image. [Figure 15] FIG. 15 is a schematic diagram of a display such as that of FIG. 14 showing the marked predicted location of the third detected anatomical landmark aligned with the third visualized anatomical landmark, along with corresponding intravascular imaging including transverse and longitudinal cross-sectional images. [Figure 16] FIG. 16 is a schematic diagram of a display showing an example of an extravascular image including a marked predicted location of a fourth detected anatomical landmark, along with corresponding intravascular imaging including a transverse cross-sectional image and a longitudinal cross-sectional image. [Figure 17] FIG. 17 is a schematic diagram of a display such as that of FIG. 16 showing the marked predicted location of the fourth detected anatomical landmark aligned with the fourth visualized anatomical landmark, along with corresponding intravascular imaging including transverse and longitudinal cross-sectional images. [Figure 18] FIG. 18 is a schematic diagram of a display showing a co-registered image including an exemplary extravascular image, along with corresponding intravascular imaging including transverse and longitudinal cross-sectional images. DETAILED DESCRIPTION OF THE INVENTION
[0034] While the present disclosure is amenable to various modifications and alternative forms, specifics thereof have been shown by way of example in the drawings and will be described in detail. It should be understood, however, that the intention is not to limit the invention to the particular embodiments described. On the contrary, the invention covers all modifications, equivalents, and alternatives falling within the spirit and scope of the present disclosure.
[0035] For the following defined terms, these definitions shall be applied, unless a different definition is given in the claims or elsewhere in this specification. All numerical values are assumed to be modified herein by the term "about," whether explicitly stated or not. The term "about" generally refers to a range of numbers that one of ordinary skill in the art would consider equivalent to the recited value (e.g., having the same function or result). In many instances, the term "about" may include numbers that are rounded to the nearest significant figure.
[0036] The recitation of numerical ranges by endpoints includes all numbers within that range (eg, 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.80, 4, and 5). 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. As used in this specification and the appended claims, the term "or" is generally used in its sense including "or" unless the content clearly dictates otherwise.
[0037] It should be noted that references herein to "one embodiment," "some embodiments," "other embodiments," etc., indicate that the described embodiment may include one or more particular features, structures, or characteristics. However, such a description does not necessarily mean that all embodiments include the particular feature, structure, or characteristic. In addition, if a particular feature, structure, or characteristic is described in connection with one embodiment, it should be understood that such feature, structure, or characteristic may also be used in connection with other embodiments, whether or not explicitly described, unless expressly stated to the contrary.
[0038] The following detailed description should be read with reference to the drawings, in which like elements in different drawings are numbered the same. The drawings, which are not necessarily to scale, depict illustrative embodiments and are not intended to limit the scope of the invention.
[0039] Several different medical imaging modalities can be used to evaluate or treat blood vessels. Two general types of imaging modalities include extravascular and intravascular imaging modalities. This disclosure relates to the use and co-registration of these modalities.
[0040] Extravascular imaging modalities, such as various forms of radiological imaging, provide extravascular imaging data of portions of blood vessels. Some examples include angiographic or fluoroscopic imaging modalities, such as two-dimensional angiography / fluoroscopy, three-dimensional angiography / fluoroscopy, or computed tomography angiography / fluoroscopy. Angiography typically involves rendering a radiographic image of one or more blood vessels, often using a radiopaque contrast agent. Angiographic images can also be viewed in real time via fluoroscopy. Fluoroscopy generally uses less radiation than angiography and is often used to guide medical devices containing radiopaque markers within or through blood vessels. Extravascular imaging data of blood vessels can provide useful information regarding the location or positioning of blood vessels, anatomy, or devices within the blood vessel or anatomy. For example, extravascular imaging data (e.g., angiograms) can provide a comprehensive overall view or series of images or videos of the vessel of interest, which can provide a "roadmap" with good temporal resolution for general assessment of the vessel or navigation of devices within the vessel.
[0041] Intravascular imaging modalities provide intravascular imaging data of a portion of a blood vessel. Some examples of intravascular imaging modalities include intravascular ultrasound (IVUS) and optical coherence tomography (OCT). These modalities typically involve imaging the blood vessel itself using an intravascular probe attached to a device containing an imaging element placed within the blood vessel. Several types of device systems are designed to track through the vasculature to provide intravascular image data. These may include, but are not limited to, intravascular ultrasound (IVUS) devices and optical coherence tomography (OCT) devices (e.g., catheters, guidewires, etc.). In operation, a probe attached to an intravascular device containing an imaging element is moved along the blood vessel in the area where imaging is desired. As the probe passes through the area of interest, a set of intravascular image data corresponding to a series of "slices" or cross-sections of the blood vessel, lumen, and surrounding tissue is obtained. These devices may include radiopaque materials or markers. Such markers are typically placed near the distal tip or near or on the probe. Thus, the approximate location of the imaging probe or imaging element can be identified by observing the procedure with either a fluoroscopic or angiographic image. Typically, such imaging devices are connected to a dedicated processing unit or control module, including processing hardware and software and a display. The raw image data is received by a console, processed to render an image containing features of interest, and rendered on a display device. Intravascular imaging data of a blood vessel can provide useful information about the blood vessel that is different from, or in addition to, information provided by extravascular imaging data.For example, intravascular imaging data may provide data regarding the cross-section of the lumen, the thickness of deposits on the vessel wall, the diameter of the unaffected portion of the vessel, the length of the affected section, the composition of deposits or plaque on the vessel wall, an assessment of plaque burden, or an assessment of stent deployment.
[0042] These two general types of imaging modalities provide different imaging data and may therefore be complementary to one another. Accordingly, in certain situations, it may be desirable to provide or use both general types of medical imaging modalities to evaluate or treat a vessel. Additionally, it may be useful to correlate the locations of acquired intravascular imaging data / images with their locations on a vascular roadmap obtained by extravascular imaging data / images. It may be useful to coordinate or “register” (e.g., coregistration) imaging data rendered by two different modalities. It may also be useful to display the coregistrated extravascular and intravascular imaging data together, for example, on a common display monitor. Some exemplary embodiments disclosed herein may include or relate to some or all of these aspects.
[0043] According to some embodiments of the present disclosure, exemplary methods, systems, devices, or software are described herein. These examples include image data acquisition equipment and data / image processors and associated software for acquiring and registering (e.g., co-registration) imaging data rendered by two separate imaging modalities (e.g., extravascular imaging data and intravascular imaging data). Additionally or alternatively, the exemplary methods, systems, or software may generate a view on a single display that simultaneously provides extravascular images with intravascular images and positional information associated with an imaging probe (e.g., an IVUS or OCT probe) attached to an intravascular device.
[0044] FIG. 1 is a schematic diagram of an exemplary system 102 that may be used in connection with performing embodiments of the present disclosure through acquiring and co-registering extravascular image data (e.g., angiogram / fluoroscopy) and intravascular image data (e.g., IVUS or OCT images). The system 102 may include an extravascular imaging system / subsystem 104 (e.g., an angiogram / fluoroscopy system) for acquiring / generating the extravascular imaging data. The system 102 may also include an intravascular imaging system / subsystem 106 (e.g., IVUS or OCT) for acquiring / generating the intravascular imaging data. The system 102 may include a computer system / subsystem 130 including one or more controllers or processors, memory, and / or software configured to execute a method for vascular imaging registration of acquired extravascular imaging data and acquired intravascular imaging data.
[0045] The extravascular imaging data may be radiological image data acquired by an angiography / fluoroscopy system 104. Such angiography / fluoroscopy systems are generally known in the art. The angiography / fluoroscopy system 104 may include an angiography table 110, which may be positioned to provide sufficient space for positioning an angiography / fluoroscopy unit C-arm 114 in an operative position relative to a patient 100 on the angiography table 110. The raw radiological image data acquired by the angiography / fluoroscopy C-arm 114 may be passed to an extravascular data input port 118 via a transmission cable 116. The input port 118 may be a separate component or may be integrated into or part of the computer system / subsystem 130. The angiography / fluoroscopy input port 118 may include a processor that converts the raw radiological image data received thereby into extravascular image data (e.g., angiography / fluoroscopy image data), for example, in the form of live video, DICOM, or a series of individual images. The extravascular image data may be initially stored in memory in the input port 118 or may be stored in the computer 130. If the input port 118 is a separate component from the computer 130, the extravascular image data may be transferred to the computer 130 via the cable 117 and input into the input port of the computer 130. In some alternatives, communication between devices or processors may be performed via wireless communication rather than via cables.
[0046] The intravascular imaging data may be, for example, IVUS data or OCT data acquired by an intravascular imaging system / subsystem 106 (e.g., an IVUS or OCT system). Such IVUS and OCT systems are generally well known in the art. The intravascular subsystem 106 may include an intravascular imaging device such as an imaging catheter 120, e.g., an IVUS or OCT catheter. The imaging device 120 is configured to be inserted into the patient 100 such that its distal end, including a diagnostic assembly or probe 122 (e.g., an IVUS or OCT probe), is near a desired imaging location in a blood vessel. A radiopaque material or marker 123 disposed on or near the probe 122 can provide an indication of the current position of the probe 122 in a radiographic image.
[0047] As an example, for IVUS intravascular imaging data, the diagnostic probe 122 generates ultrasound waves and receives ultrasound echoes representing an area proximate the diagnostic probe 122. The probe 122 or catheter 120 can convert the ultrasound echoes into corresponding signals, such as electrical or optical signals. The corresponding signals are transmitted along the length of the imaging catheter 120 to a proximal connector 124. The proximal connector 124 of the catheter 120 is communicatively coupled to a processing unit or control module 126. IVUS versions of the probe 122 are provided in various configurations, including single and multiple transducer element arrangements. It should be understood that in the context of IVUS, a transducer can be considered an imaging element. In the case of a multiple transducer element arrangement, an array of transducers may potentially be arranged linearly along the longitudinal axis of the imaging catheter 120, curvilinearly around the longitudinal axis of the catheter 120, circumferentially around the longitudinal axis, etc.
[0048] An example of an IVUS intravascular imaging catheter 120 is shown in FIGS. 2 and 3. The imaging catheter 120 may include an elongate shaft 170 having a proximal end region 172 and a distal end region 174. A proximal hub or connector 124 may be coupled to or otherwise disposed adjacent to the proximal end region 172. A tip member 176 may be coupled to or otherwise disposed adjacent to the distal end region 174. The tip member 176 may include a guidewire lumen, an atraumatic distal tip, one or more radiopaque markers, or other features. An imaging assembly 177 may be disposed within the shaft 170. Generally, the imaging assembly 177 (which may include an imaging probe 122 including an imaging element 182) may be used to capture / generate images of a blood vessel. In some examples, the medical device may include devices or features similar to those disclosed in U.S. Patent Application Publication Nos. 2012 / 0059241 and 2017 / 0164925, the entire disclosures of which are incorporated herein by reference. In at least some examples, the medical device 120 may be similar to or include features similar to the OPTICROSS™ imaging catheter commercially available from BOSTON SCIENTIFIC (Marlborough, MA).
[0049] 3 , the imaging assembly 177 may include a drive cable or shaft 178, an imaging probe 122 including a housing 180, and an imaging element or transducer 182. The imaging probe 122 or housing 180 may be coupled to the drive cable 178. The transducer 182 may be rotatable or axially translatable relative to the shaft 170. For example, the drive cable 178 may be rotated or translated to rotate or translate the transducer 182. The probe 122 or housing 180 may include or be made of, for example, a radiopaque material or marker 123, which may provide an indication of the current position of the probe 122 in a radiographic image.
[0050] Referring back to FIG. 1 , as another example, the device 120 may be an OCT catheter used to collect OCT intravascular data. The OCT catheter 120 may include a diagnostic probe 122 that generates or propagates a light beam directed at tissue; a portion of this light that reflects off subsurface features is collected to represent the area proximate to the diagnostic probe 122. In OCT, the diagnostic probe 122 includes an optical imaging device for light delivery and collection. It should be understood that in the context of OCT, the optical imaging device of the probe 122 can be considered an imaging element. Using a technique called interferometry, the optical path length of received photons can be recorded, eliminating most photons that are scattered multiple times before detection. Thus, OCT can construct images of thick samples by collecting light directly reflected from the surface of the object while eliminating background signals. The probe 122 or catheter 120 may transmit optical or light signals along its shaft or convert the light signals into corresponding signals, such as electrical or optical signals, that can be transmitted along the length of the imaging catheter 120 to the proximal connector 124. The proximal connector 124 of the catheter 120 is communicatively coupled to a processing unit or control module 126. The probe 122 or housing 180 may include or be made of radiopaque material or markers 123, which may provide an indication of the current position of the probe 122 in a radiological image.
[0051] Raw intravascular image data (e.g., raw IVUS or OCT data) may be acquired by the imaging catheter 120 and passed to the control module 126, for example, via the connector 124. The control module 126 may be a separate component or may be integrated into or part of the computer system / subsystem 130. The control module 126 may convert, or include a processor configured to convert, the raw intravascular image data received via the catheter 120 into intravascular image data (e.g., IVUS or OCT image data), for example, in the form of live video, DICOM, or a series of individual images. The intravascular imaging data may include cross-sectional images of a vessel segment. Additionally, the intravascular imaging data may include longitudinal cross-sectional images corresponding to slices of the vessel taken along its length. The control module 126 may be considered an input port for the computer system / subsystem 130 or may be considered connected to the input port of the computer 130, for example, via a cable 119 or a wireless connection. The intravascular image data may be initially stored in memory within the control module 126 or may be stored in memory of the computer system / subsystem 130. If the control module 126 is a separate component from the computer system / subsystem 130, the intravascular image data may be transferred to the computer 130, for example, via cable 119, and input to an input port of the computer 130. Alternatively, communication between devices or processors may be performed via wireless communication rather than via cable 119.
[0052] The control module 126 may include one or more components that may be configured to operate the imaging device 120 or control the collection of intravascular imaging data. For example, in the case of an IVUS system, the control module 126 may include one or more of a processor, memory, pulse generator, motor drive unit, or display. As another example, in the case of an OCT system, the control module 126 may include one or more of a processor, memory, light source, interferometer, optics, motor drive unit, or display. In some cases, the control module 126 may be or include a motor drive unit configured to control the movement of the imaging catheter 120. Such a motor drive unit may control the rotation or translation of the imaging catheter 120 or components thereof. In some examples, the control module 126 or motor drive unit may include an automated translation system that may be configured to translate the imaging catheter 120 within a controlled / measured object within the patient 100. Such an automated translation system may be used such that during a translation procedure, the imaging catheter 120 (including the imaging element) is translated within the blood vessel from a start position to an end position at a constant or known velocity (e.g., the imaging catheter 120 is translated at a particular velocity for a known amount of time). In other embodiments, the translation may be performed manually. The translation procedure may be, for example, a “pullback” procedure (where the catheter 120 is pulled through the blood vessel) or a “push-through” procedure (where the catheter 120 is pushed through the blood vessel). The control module 126 may be comprised of or include hardware and software configured to control intravascular imaging and data acquisition. For example, the control module 126 may include control features for turning on / off imaging or data acquisition from / to the catheter 120.
[0053] The computer system / subsystem 130 may include one or more controllers or processors, one or more memories, one or more input ports, one or more output ports, and / or one or more user interfaces. The computer 130 is configured to acquire intravascular image data from or through the intravascular imaging system / subsystem 106 (e.g., IVUS or OCT) and to acquire or acquire extravascular image data from or through the extravascular imaging system / subsystem 104 (e.g., an angiography / fluoroscopy system). The computer 130, or components thereof, may include software and hardware designed to be incorporated into standard catheterization procedures and to automatically acquire both extravascular imaging data (e.g., angiography / fluoroscopy) and intravascular imaging data (e.g., IVUS or OCT) through image or video acquisition.
[0054] The computer system / subsystem 130 or components thereof may include software or hardware configured to execute a method for vascular imaging coregistration of acquired extravascular imaging data and acquired intravascular imaging data. In that context, the computer 130 may include computer-readable instructions or software for executing a method for vascular imaging coregistration as disclosed herein. For example, in some respects, the computer may include a processor or memory including software including program code that causes the computer to execute a method for vascular imaging coregistration as disclosed herein. For example, the computer / computing device may include a processor or memory including instructions executable by a processor to execute a method for vascular imaging coregistration as disclosed herein. In that context, it should also be understood that computer-readable media having program code stored thereon in a non-transitory state for use by the computer / computing device 130 are also disclosed herein, the program code causing the computing device 130 to execute a method for vascular imaging coregistration as disclosed herein. Additionally, the computer / computing device 130 may be part of or include a system for intravascular imaging registration, including one or more input ports for receiving imaging data, one or more output ports, and a controller in communication with the input and output ports, the controller configured to perform the method for intravascular imaging registration as disclosed herein.
[0055] The computer system / subsystem 130 may also include software and hardware configured to render or display imaging, including, for example, received image data or extravascular or intravascular imaging derived from the coregistration method. In some cases, the computer 130 or software may be configured to render both extravascular and intravascular images on a single display. In this regard, the system may include a display 150 configured to simultaneously display extravascular and intravascular image data rendered by the computer 130. The display 150 may be part of the computer system 130 or may be a separate component that communicates with the computer system 130, for example, via an output port on the computer 130 and a transmission cable 121. However, in some other cases, communication via the output port may be wireless rather than via a cable. In some examples, the computer 130 or display 150 may be configured to simultaneously provide angiograms, IVUS transverse views, and IVUS longitudinal views, which may or may not all be coregistrated. In other examples, the display may be configured to simultaneously provide an angiogram, an OCT cross-sectional view, and an OCT longitudinal cross-sectional view, which may or may not be co-registered.
[0056] The computer system / subsystem 130 may also include one or more additional output ports for transferring data to other devices. For example, the computer may include an output port for transferring data to a data archive or memory 131. The computer system / subsystem 130 may also include a user interface, which may include software and hardware configured to allow an operator to use or interact with the system.
[0057] The components of system 102 may be used cooperatively during a vascular imaging method or procedure involving the collection of extravascular and intravascular imaging data during a translational procedure. In the context of performing such a procedure and acquiring the necessary imaging data, an exemplary method for intravascular imaging registration may be performed or implemented.
[0058] For example, patient 100 may be positioned on table 110 for extravascular imaging of a portion of a blood vessel of interest. Patient 100 or the table may be positioned or adjusted to provide a desired view of the blood vessel of interest in preparation for collection of extravascular imaging data. Additionally, an intravascular imaging catheter 120 may be introduced intravascularly into the portion of the blood vessel of interest in preparation for a translation procedure to collect intravascular imaging data. The intravascular imaging catheter 120 may be navigated and positioned within the blood vessel (often under fluoroscopy) so that the imaging element is at a desired starting position for the translation procedure. A guide catheter may be used to assist with navigation. Once properly positioned, the translation procedure may be performed or implemented. The necessary extravascular and intravascular imaging data may be acquired before or during the translation procedure. In connection with this, or as part of this process, an exemplary method for vascular imaging coregistration or registration may be performed or implemented.
[0059] Extravascular imaging data acquisition One aspect of an exemplary method for vascular imaging coregistration includes acquiring extravascular imaging data of a portion of a blood vessel. One component of the acquired extravascular imaging data includes an extravascular image showing an intravascular imaging device positioned within the blood vessel. This can be represented by FIG. 4 , which shows an angiography / fluoroscopy image 151 generated by angiography / fluoroscopy system 104, acquired by computer 130, and displayed on image output 153 in the upper left portion of display 150. Image 151 may be part of a video stream or series of images displayed on the screen of display 150 at image output 153. Individually rendered frames may be tagged with appropriate tags (e.g., frame number, timestamp, sequence number, etc.) that may be useful for correlating image data frames. As shown, the acquired imaging data can include an extravascular image 151 showing an intravascular imaging device 120 positioned within a blood vessel 10 (shown in dashed lines) with an imaging element 182 of the intravascular imaging device 120 positioned at a start position 20 of the translation procedure (e.g., sometimes referred to as an “extravascular device image 151”). This extravascular device image 151 can be acquired and recorded under fluoroscopy, whereby radiopaque markers 123 on the device 120 can be used to identify / visualize the location of the imaging element 182 or the start position 20 of the imaging element 182. Because the start position 20 has been determined by identifying the actual position from the extravascular image 151, it is an image showing the actual / known position of the intravascular imaging device 120 positioned within the blood vessel 10 at a particular time, which can be useful during registration. As will be appreciated, the image 151 may be acquired without contrast (e.g., under fluoroscopy), and therefore the anatomical structure of the blood vessel 10 may be difficult to identify / visualize (which is why it is shown with dashed lines).
[0060] During the translation procedure, the imaging element 182 is translated within the blood vessel 10 from a start position 20 to an end position 30. This extravascular image 151 can also indicate the end position 30 of the translation procedure. For example, as described above, a guide catheter 190 including a distal end 191 can be used during the procedure. The distal end 191 can include a radiopaque material or marker, be visualized or indicated on the acquired extravascular image 151, and be used as the end position of the translation procedure. Because the end position 30 was determined by identifying the actual position from the acquired angiography / fluoroscopy image 151, it is also an actual / known position within the blood vessel 10 and can be useful during registration. In other embodiments, other reference points shown on the extravascular image 151 can be used to define the start or end position. For example, other devices, stents, anatomical markers, etc. shown on the extravascular image 151 can be used.
[0061] The acquired extravascular imaging data may also include an extravascular contrast image showing a portion of the blood vessel in contrast and showing one or more visualized anatomical landmarks. This may be represented, for example, by FIG. 5 , which shows an extravascular contrast image 251 (e.g., an angiogram taken with contrast agent within the blood vessel 10) generated by the angiography / fluoroscopy system 104, acquired by the computer 130, and displayed on the display 150 at the image output 153. The image 251 may be part of the same video stream or series of images as the device image 151 and may be displayed on the screen of the display at the image output 153. As shown, the acquired data may include an extravascular contrast image 251 showing a portion of the blood vessel 10 in contrast and showing one or more visualized anatomical landmarks (e.g., side branch vessels 12, 14, 16, and 18). In this example, the one or more visualized landmarks include the side branch vessels 12, 14, 16, and 18, although other anatomical landmarks are contemplated and may be shown / used. Some examples of other visualized anatomical landmarks that may be shown / used may include identifiable changes in the size or shape of the blood vessel 10, such as stents, curvatures, stenoses, dilations, or other identifiable anatomical landmarks that may be visualized on the extravascular contrast image 251.
[0062] The acquired extravascular imaging data may include video data that includes both the extravascular device image 151 (e.g., an image showing the starting position of the intravascular imaging device 120) and the extravascular contrast image 251 (e.g., a "roadmap"). In some cases, the extravascular device image 151 and the extravascular contrast image 251 may be separate individual images that may be combined or overlaid. These images may be acquired automatically by the system as part of a program that may be initiated by the user, or may be manually requested or acquired by a user interacting with the system, for example, through a user interface.
[0063] The order in which the extravascular imaging data is acquired may also vary. For example, as in the embodiment shown in FIGS. 4 and 5, the imaging device 120 may first be navigated to a desired starting position, and the extravascular device image 151 (e.g., FIG. 4) may be acquired first. The extravascular contrast image 251 (e.g., FIG. 5) may then be acquired with the imaging device 120 already within the vessel 10 or remaining within the vessel 10 when the contrast image 251 is taken. In other embodiments, it is contemplated that the order may be reversed. For example, the extravascular contrast image 251 may first be acquired with the intravascular imaging device not within the vessel 10. The imaging device 120 may then be navigated to a desired starting position, and the extravascular device image 151 may be acquired showing the device 120 in the starting position. As will be appreciated, the extravascular imaging data may include one or both of angiography image data and fluoroscopy image data. Additionally, as disclosed herein, the extravascular imaging data can be selected from one or more of two-dimensional angiography image data, three-dimensional angiography image data, or computed tomography angiography image data.
[0064] Acquisition of intravascular imaging data Another aspect of an exemplary method for vascular imaging coregistration includes acquiring intravascular imaging data from an intravascular imaging device during a translation procedure, the intravascular imaging data including one or more intravascular images showing one or more detected anatomical landmarks. This example can be illustrated / described with reference to FIGS. 6-8, which are a series of diagrams showing intravascular imaging data, each represented by a video or a series of intravascular images acquired during the course of the translation procedure. The system may include software configured to initiate, perform, or facilitate the translation procedure. The translation procedure may be initiated by a user interacting with the system, for example, via a user interface (e.g., clicking a "start pullback procedure" button to begin translation). Additionally, the translation procedure may be performed using an automated pullback system, for example, at a known speed, as discussed herein.
[0065] In this example, the translation procedure is a pullback, in which imaging element 182 is translated within the blood vessel from start position 20 to end position 30. As will be appreciated, in this example, the intravascular imaging data is intravascular ultrasound data (IVUS). However, as noted above, in other embodiments, the intravascular imaging data may be generated using other intravascular modalities, such as optical coherence tomography (OCT). The acquired intravascular imaging data in the form of a video or series of images includes one or more intravascular images illustrating one or more detected anatomical landmarks throughout the progression of the translation procedure. Individually rendered intravascular image frames may be tagged with appropriate tags (e.g., frame number, pullback distance, timestamp, sequence number, etc.), which may be useful, for example, to correlate the intravascular image frame with corresponding extravascular (e.g., radiopaque marker) image data frames or to aid in correlating longitudinal cross-sectional intravascular images with transverse cross-sectional intravascular images. As will become apparent, in this example, the anatomical landmarks detected on the IVUS include the four side branches shown on the angiogram of this portion of the blood vessel (e.g., side branches 12, 14, 16, and 18 on the angiogram of FIG. 5). However, other detected anatomical landmarks may be considered and shown / used. Some examples of other detected anatomical landmarks that may be used include identifiable changes in the size or shape of the blood vessel 10, such as stents, curvatures, stenoses, dilations, or other detectable anatomical landmarks that may be detected in one or more intravascular images acquired during the translational procedure.
[0066] Each of FIGS. 6-8 shows, at the bottom of the display 150, an on-screen image output 154 including intravascular imaging data comprising / representing a series of images generated by the intravascular imaging system / subsystem 106, acquired by the computer 130, and displayed on the display 150. As will be appreciated, the intravascular images shown on the image output 154 may include multiple longitudinal cross-sectional images corresponding to slices of the vessel taken along its length during the translation procedure. The intravascular images shown on the image output 154 may be acquired during the translation procedure and recorded as part of a video or series of intravascular images. As the translation procedure progresses, the intravascular imaging data shown on the image output 154 may be gradually populated with additional intravascular images as they are generated. This is represented, for example, by viewing the progression / extension of the image output 154 from FIGS. 6 through 8, where additional intravascular images are gradually added to the intravascular imaging data 154 on the display 150 as the translation procedure progresses. One or more of these intravascular images show one or more detected anatomical landmarks (as described in further detail herein).
[0067] Additionally, each of FIGS. 6-8 shows an on-screen image output 152 in the upper right portion of the display 150, which includes intravascular imaging data including / representing a series of cross-sectional images of a blood vessel segment. These cross-sectional images are generated by the intravascular imaging system / subsystem 106, included in the imaging data acquired by the computer 130, and displayed on the image output 152 on the display 150. These cross-sectional intravascular images shown on the image output 152 may be acquired progressively during the translation procedure and may be part of or recorded as an intravascular imaging video or a series of intravascular images. At any particular time during the translation procedure, the cross-sectional image shown on the image output 152 may correspond to the longitudinal image last added to the intravascular imaging output 154. In other words, a particular cross-sectional image displayed on the image output 152 and the corresponding longitudinal image simultaneously added to the end of the image output 154 may be different cross-sectional intravascular images / views, but taken at the same time / at the same location within the blood vessel.
[0068] For example, intermediate extravascular imaging data may be optionally / periodically acquired during the translation procedure to track the actual progress of the intravascular imaging device 120 during the translation procedure. These intermediate extravascular image(s) may be acquired during the translation procedure and may indicate the actual / known position of the intravascular imaging device 120 disposed within the blood vessel 10 with the imaging element positioned at an intermediate position during the translation procedure between the start position 20 and the end position 30. For example, periodically during the translation procedure, the angiography / fluoroscopy system 104 may be activated, either manually or automatically (e.g., fluoroscopy is activated), to generate one or more intermediate angiography / fluoroscopy images, which are acquired by the computer 130 and then displayed on the image output 153 on the display 150. In at least some embodiments, the translation procedure or the intravascular image acquisition or co-registration method may be performed without continuous angiography / fluoroscopy. In other words, the angiography / fluoroscopy system 104 may be periodically activated, but a significant portion or period of the translation may be performed without active angiography / fluoroscopy. In such an embodiment, the actual / known position of the intravascular imaging device 120 is not continuously tracked under angiography / fluoroscopy during the translation procedure.
[0069] 6-8 each show such intermediate / periodically acquired extravascular images in the upper left portion of image output 153 of display 150. As will be appreciated, such intermediate extravascular images show imaging element 182 positioned at an actual / known intermediate location within blood vessel 10 at a particular time during the translation procedure. At a particular point during the translation procedure when an intermediate extravascular image is generated and shown on image output 153 on display 150, a corresponding longitudinal cross-sectional image for that particular intermediate location within blood vessel 10 is shown as the last image added to intravascular imaging output 153. Similarly, the transverse cross-sectional image shown on image output 152 at that time also corresponds to that particular intermediate location within blood vessel 10.
[0070] Briefly illustrating the progression of Figures 6-8, Figure 6 shows an intravascular image taken near the beginning of a translation procedure. Because it is early in the translation procedure, image output 154 at the bottom of the screen is relatively short, showing the relatively few longitudinal cross-sectional intravascular images obtained so far in the translation procedure. In the upper right portion of display 150, image output 152 shows the corresponding intravascular cross-sectional image 252 of the vessel at this location. Figure 6 shows an intermediate extravascular image 351 at image output 153 on display 150. Intermediate extravascular image 351 can be obtained by briefly activating the fluoroscope and identifies the actual / known position of intravascular imaging device 120 at this point in the translation procedure, which in this example shows an imaging element positioned closer to start position 20 than to end position 30.
[0071] FIG. 7 shows intravascular images taken near the middle of the translation procedure. The image output 154 at the bottom of the screen has increased (compared to FIG. 6 ), indicating the addition of more longitudinal cross-sectional intravascular images obtained as the translation procedure progresses. One or more of these intravascular images can also be seen to show one or more detected anatomical landmarks. In this case, the detected anatomical landmarks are detected side branches of the blood vessel 10. In FIG. 7 , these intravascular images showing the first two side branches (e.g., detected anatomical landmarks) are marked with lines 197 and 198. In some cases, detected anatomical landmarks can be automatically detected or marked by the system. For example, the computer 130 can include software or hardware configured to perform image processing and image recognition. Using intravascular image data (e.g., IVUS data or other suitable data), the system can perform image processing and image recognition to identify or mark images containing detected anatomical landmarks 197 / 197. In other cases, images containing detected anatomical landmarks can be manually identified or marked by a user, for example, via a user interface.
[0072] In the upper right portion of display 150 in Figure 7, image output 152 shows a corresponding endovascular cross-sectional image 352 of the blood vessel at this location. Figure 7 also shows a second intermediate extravascular image 451 at image output 153 on display 150. Intermediate extravascular image 451 can be acquired by briefly activating the fluoroscope and identifies the actual / known position of endovascular imaging device 120 at this point in the translation procedure, which in this example shows an imaging element positioned approximately halfway between start position 20 and end position 30.
[0073] FIG. 8 shows intravascular images taken nearing or at the end of the translation procedure. The image output 154 at the bottom of the screen has grown across the display (compared to FIGS. 6 and 7 ), showing the addition of many more longitudinal cross-sectional intravascular images acquired throughout the complete translation procedure (from start to finish). One or more of these intravascular images in the image output 154 on the display 150 can also be seen to show one or more detected anatomical landmarks (e.g., detected side branches of a blood vessel). In FIG. 8 , the intravascular image showing the first two detected side branches is again marked with lines 197 and 198 (as in FIG. 7 ). Two additional intravascular images showing the third and fourth detected side branches are also acquired later in the translation procedure and are marked with lines 199 and 200. As described herein, images containing detected anatomical landmarks may be automatically identified or marked, for example, using image processing and image recognition, or may be manually identified or marked by a user, for example, via a user interface.
[0074] In the upper right portion of display 150, image output 152 shows a corresponding endovascular cross-sectional image 452 of the blood vessel corresponding to the end position within the blood vessel. FIG. 8 also shows an additional (e.g., third) intermediate extravascular image 551 at image output 153 on display 150. Extravascular image 551 can be acquired by briefly activating the fluoroscope and identifies the actual / known position of intravascular imaging device 120, which is shown at the end of the translation procedure with imaging element 182 positioned at end position 30. At this point, the translation procedure can be stopped because imaging element 182 has reached end position 30. This may be done automatically by the system or manually by a user interacting with the system.
[0075] Marking one or more known locations on extravascular imaging data Another aspect of the exemplary method for vascular imaging co-registration includes marking extravascular imaging data for registration. For example, the extravascular imaging data may be marked with actual / known registration points. For example, some embodiments include marking the start position 20 and / or end position 30 of the translation procedure on the extravascular imaging data.
[0076] For example, as described herein, the acquired extravascular imaging data also includes an extravascular image 151 (e.g., FIG. 4 ) and an extravascular contrast image 251 (e.g., FIG. 5 ). The extravascular image 151 is acquired under fluoroscopy and shows the start position 20 and / or end position 30 of the translation procedure, which were distinguished and identified using the device 120 / 190's position or radiopaque markers identified under fluoroscopy. These are examples of actual / known positions or registration points. However, anatomical landmarks such as a vessel lumen or side branches may not be readily identifiable / identifiable in the image 151 due to the absence of contrast flow (although they are shown with dashed lines in FIG. 4 for reference). On the other hand, the extravascular contrast image 251 ( FIG. 5 ) is an angiogram with contrast, thus showing portions of a vessel in contrast and one or more visualized anatomical landmarks. Thus, visualized anatomical landmarks (e.g., side branches) can be identified on the extravascular contrast image 251. However, due to contrast, the location of the device or radiopaque markers of device 120 / 190 may be less discernible or identifiable in extravascular contrast image 251. This makes it difficult or impossible to see or identify actual / known positions or registration points, such as, for example, translation procedure start position 20 and end position 30. In some embodiments, it may be desirable to provide an image for marking or registration that includes data from both an extravascular image without contrast (e.g., fluoroscopy image 151) and an extravascular contrast image (e.g., contrast image 251).
[0077] In some embodiments, data from the extravascular image 151 showing actual / known positions or registration points, such as the start position 20 and end position 30 of the translation procedure, may be combined with or overlaid onto the extravascular contrast image 251. In some cases, this process may be performed automatically by the system. For example, the computer 130 may include software or hardware configured to perform image processing and image recognition designed to combine or overlay data within the images. In other cases, the images may be combined or overlaid manually by a user, for example, via a user interface.
[0078] The result of combining or overlaying data from an extravascular image 151 (e.g., a fluoroscopy image) with data from an extravascular contrast image 251 (e.g., an angiogram with contrast) can result in a combined or enhanced extravascular image 651 (e.g., an enhanced angiogram), which is extravascular imaging data that has been or can be marked. An example of such an extravascular image 651 is shown in Figure 9, which shows an extravascular image 651 generated by computer 130 and displayed on image output 153 in the upper left portion of display 150.
[0079] As can be seen in FIG. 9 , the start location 20 or the end location 30 (e.g., actual / known locations or registration points) may be identified on the extravascular image 651 and marked on the extravascular imaging data. For example, the start location 20 may be marked on the extravascular image 651 with a marker 620. The end location 30 may be marked on the extravascular image 651 with a marker 630. In some cases, this identification or marking process may be performed automatically by the system. For example, the computer 130 may include software or hardware configured to perform image processing and image recognition configured to identify and mark the start location 20 or the end location 30 (or other actual / known locations or registration points). In other cases, the marking of the start location 20 or the end location 30 (or other actual / known locations or registration points) is performed manually by a user, for example, via a user interface.
[0080] Other extravascular data or images, including or indicating other actual / known positions of the imaging elements of intravascular imaging device 120 during the translation procedure, may be combined with or overlaid on extravascular contrast image 251 or extravascular image 651. For example, other extravascular images, such as intermediate extravascular image 351 ( FIG. 6 ), intermediate extravascular image 451 ( FIG. 7 ), or intermediate extravascular image 551 ( FIG. 8 ), are also acquired under fluoroscopy during the translation procedure, each including the actual / known position (via radiopaque markers 123) of imaging elements 182 of intravascular imaging device 120 at a certain point during the translation procedure. Combining or overlaying data from one or more of these additional extravascular images with contrast image 251 or extravascular image 651 can add additional reference points and may help to increase accuracy. The process of combining or overlaying data may be performed automatically by the system or manually by the user, as described above. Additionally, the particular actual / known position(s) of the imaging element 182 may be marked on the extravascular imaging data, the marking occurring in a similar manner as discussed above.
[0081] 9 also shows intravascular images taken as the translation procedure nears or ends. Image output 154 at the bottom of the screen shows longitudinal cross-sectional intravascular images acquired during the translation procedure (from start to finish). Image output 154 includes an intravascular image showing four detected anatomical landmarks (e.g., side branches), which are marked with lines 197, 198, 199, and 200, respectively. In the upper right portion of display 150, image output 152 shows a corresponding intravascular cross-sectional image 552 of the vessel corresponding to the intravascular end location.
[0082] As described herein, at least a portion of the translation procedure during the collection of intravascular images may be performed or conducted without continuous angiography / fluoroscopy. In other words, the angiography / fluoroscopy system 104 may not be activated during the translation procedure, or may be activated only periodically, for example, to acquire the actual / known position. However, significant portions or periods may be performed without angiography / fluoroscopy. In such cases, the actual / known position of the intravascular imaging device 120 is not continuously tracked under angiography / fluoroscopy during the translation procedure.
[0083] In embodiments in which angiography / fluoroscopy is inactive during a significant portion of the translation procedure, the system may be configured to calculate an approximate or predicted position (e.g., via radiopaque markers 123) of the imaging element 182 for those portions of the translation procedure when angiography / fluoroscopy is inactive. For example, such calculation may be based on its last registered position / location (e.g., the last registered actual / known position of the imaging element 182) and other indicators of catheter movement or position, such as known pullback distance and velocity, calculated path, or other non-visual position data.
[0084] For example, if the initial position of the imaging element 182 is known (e.g., through one or more actual / known positions or registration points, such as the start position 20, the end position 30, or one of the intermediate positions acquired during the translation procedure), and the catheter 120 is pulled by an automated pullback system at a particular speed for a known amount of time, the calculated / predicted position is the distance from the initial position along the travel path, represented by the product of the pullback speed and time. The computer 130 or its components may include software or hardware designed to perform such calculations and output the results, e.g., to indicate or mark the calculated / predicted position on a displayed image, as desired. For example, the calculated / predicted position for a particular point during the translation procedure may be overlaid on the extravascular image 651 or a co-registered image such as that shown in FIG. 18, to represent the calculated / predicted position of the probe 122 or imaging element 182 at that point in the translation procedure.
[0085] In some embodiments, a calculated path (e.g., a calculated path of travel) followed by the imaging element 182 during the translation procedure may be determined, used, or displayed. For example, the predicted / calculated path may extend between the start position 20 and the end position 30 and may generally extend along the imaged vascular lumen shown on the extravascular contrast imaging data. Data regarding the calculated path may also be used or considered when calculating the approximate or predicted position of the imaging element 182. Some examples of methods that may be used to determine the calculated path include user-specified points or manual routing, image pattern recognition, automatic two-dimensional and three-dimensional path calculation, user-assisted automatic path calculation, and a combination of manual and automatic path calculation. The computer 130 or its components may include software or hardware designed to perform or facilitate such calculations and output the results, e.g., to indicate or mark the calculated path on a displayed image, if desired. For example, the calculated path may be overlaid on an extravascular image 651 or a co-registered image such as that shown in FIG. 18, which can represent the projected path of the probe 122 or imaging element 182 during the translation procedure.
[0086] As will be appreciated, errors may exist between the calculated / predicted positions and the actual / known positions. For example, during certain periods when fluoroscopy is inactive, it is expected that foreshortening issues may exist, causing errors between the calculated / predicted positions and the actual / known positions, especially in tortuous / curved vessels. However, each subsequent time the fluoroscopy is activated and actual / known position data is acquired and presented to the processor, the errors between the actual / known positions and the predicted / calculated positions may be reduced or eliminated by replacing the calculated / predicted positions with the actual / known positions. In addition, another aspect of the exemplary method for vascular imaging coregistration disclosed herein includes aligning the predicted positions of certain detected anatomical landmarks with corresponding visualized anatomical landmarks, as described in more detail below. This aspect may also help mitigate or reduce errors / misregistration.
[0087] Marking predicted locations of detected anatomical landmarks on extravascular imaging data Another aspect of an exemplary method for vascular imaging coregistration includes marking the predicted location of the detected anatomical landmark(s) on the extravascular imaging data. The intravascular imaging data acquired during the translation procedure includes one or more intravascular images showing one or more detected anatomical landmarks. As will be appreciated, these intravascular images showing the detected anatomical landmarks are included in the intravascular imaging data acquired using the intravascular imaging device during the translation procedure. For coregistration purposes, the locations of these detected anatomical landmarks (e.g., from IVUS or OCT data) are correspondingly identified and / or marked and / or registered on the extravascular imaging data (e.g., angiography / fluoroscopy data). It is useful to know the location (either actual / known location or calculated / predicted location) of the imaging elements 182 of the intravascular imaging device 120 upon detecting a particular detected anatomical landmark during the translation procedure, which can then be used to mark and / or register that location (of the detected anatomical landmark) on the extravascular imaging data (e.g., angiography / fluoroscopy data).
[0088] In certain situations where an extravascular imaging device (angiography / fluoroscopy) is active at the same time that imaging element 182 detects a particular detected anatomical landmark, the location of the detected anatomical landmark is an actual / known location, and the location of that particular detected anatomical landmark can be marked and / or registered to its position on the extravascular imaging data using the actual / known location provided by the extravascular imaging.
[0089] However, as described herein, at least a portion, if not most or all, of the translational procedure when intravascular images are collected is performed without subsequent extravascular imaging (e.g., without angiography / fluoroscopy). In such cases, the actual / known positions of the imaging elements 182 on the intravascular imaging device 120 when detecting particular detected anatomical landmarks during the translational procedure are unknown. Therefore, calculated / predicted positions of the imaging elements 182 on the intravascular imaging device 120 when detecting particular detected anatomical landmarks during the translational procedure are used. Methods and / or systems for determining the calculated / predicted positions of the imaging elements 182 are described above and can be used in this context. The predicted positions of the detected anatomical landmarks are then marked on the extravascular imaging data.
[0090] For example, FIG. 10 shows extravascular imaging data, in this case extravascular image 751, which can be created in a similar manner as extravascular image 651 of FIG. 9 and is similar in morphology and function. Extravascular image 751 shows visualized anatomical landmarks, in this case side branches 12, 14, 16, and 18. In addition, a predicted position of a detected anatomical landmark 197 (e.g., the first side branch) from intravascular image 154 has been calculated / predicted (as described herein). The predicted position of the detected anatomical landmark 197 is then marked on the extravascular imaging data (e.g., extravascular image 751) with a marker arrow 212. As can be seen, in this example, there is some misalignment / error / mismatch between the predicted and marked position 212 for the first side branch and the visualized anatomical landmark 12 on the extravascular imaging data.
[0091] It should also be noted that in the extravascular image 751, the visualized anatomical landmarks (e.g., side branches) are and / or can be identified manually or by a system. In some embodiments, the visualized anatomical landmarks (e.g., side branches 12, 14, 16, 18) may simply be manually identified by a user, e.g., by the user evaluating the image on a screen. In some embodiments, the visualized anatomical landmarks (e.g., side branches 12, 14, 16, 18) may be automatically identified by a system. For example, the computer 130 may include software or hardware configured to perform image processing and image recognition. Using the extravascular image data (e.g., angiography data), the system can perform image processing and image recognition to identify the visualized anatomical landmarks (e.g., side branches 12, 14, 16, 18).
[0092] The visualized anatomical landmarks may be marked on the extravascular imaging data. For example, the visualized anatomical landmarks (e.g., side branches 12, 14, 16, and 18) may be marked with appropriate markers and / or labels on the extravascular image 751. In this case, the side branch 12 is marked as SB1, the side branch 14 is marked as SB2, the side branch 16 is marked as SB3, and the side branch 18 is marked as SB4. In some cases, this identification or marking process may be performed automatically by the system. For example, the computer 130 may include software or hardware configured to perform image processing and image recognition configured to identify and mark the visualized anatomical landmarks. In other cases, marking the visualized anatomical landmarks may be performed manually by a user, for example, via a user interface.
[0093] 10 also shows intravascular images taken during the translation procedure. Image output 154 at the bottom of the screen shows longitudinal cross-sectional intravascular images acquired during the translation procedure (from start to finish). Image output 154 includes intravascular images showing four detected anatomical landmarks (e.g., side branches), which are again identified as described elsewhere herein and then marked with lines 197, 198, 199, and 200. It will be appreciated that lines 197, 198, 199, and 200 also have labels and / or flags. In particular, line 197 is labeled SB1, line 198 is labeled SB2, line 199 is labeled SB3, and line 200 is labeled SB4. The markings / text / symbols on the labels indicating the four detected anatomical landmarks (e.g., side branches detected on IVUS) match the markings / text / symbols on the labels given to the corresponding visualized anatomical landmarks (e.g., side branches detected on an angiogram). In addition, each detected anatomical landmark also has an additional label showing a small representation of the corresponding intravascular cross-sectional image for that particular detected anatomical landmark. These small images of the corresponding intravascular cross-sectional image can be seen above each text label for each detected anatomical landmark. In some cases, these markings / labels may be applied automatically by the system. For example, the computer 130 may include software or hardware configured to perform image processing and image recognition configured to identify and mark / label the landmarks accordingly. In other cases, the marking / labeling may be performed manually by the user, for example, via a user interface.
[0094] In some cases, these lines / markings / labels may be interactive. For example, via a user interface, a user can activate one of the lines / markings / labels, which may be highlighted and / or activated. When a line / marking / label for a particular detected anatomical landmark is highlighted or activated, a corresponding marked predicted location for that particular detected anatomical landmark is shown on the extravascular imaging data (e.g., extravascular image 751), and a corresponding intravascular cross-sectional image for that particular detected anatomical landmark is shown in image output 152 in the upper right portion of display 150. For example, as seen in FIG. 10 , label SB1 (designating detected anatomical landmark 197) is shown activated / highlighted, as represented by the downward arrow above the label. A marker arrow 212 designating the predicted location of the detected anatomical landmark 197 on the extravascular imaging data is then shown on extravascular image 751. The corresponding intravascular cross-sectional image for the detected anatomical landmark 197 is then shown on the image output 152. Each of the other labels may be similarly activated to show corresponding information.
[0095] Alignment of predicted locations of detected anatomical landmarks with visualized anatomical landmarks Another aspect of the exemplary method for vascular imaging co-registration includes aligning predicted locations of detected anatomical landmarks with visualized anatomical landmarks.
[0096] As described herein, the visualized anatomical landmark(s) are identified and / or identifiable on the extravascular imaging data, either manually or automatically by a system. The visualized anatomical landmarks may optionally be marked on the extravascular imaging data, either manually or automatically by a system. Furthermore, predicted position(s) of the detected anatomical landmark(s) may be calculated and marked on the extravascular imaging data, either manually or automatically by a system. However, as described herein, there may be some misregistration / error / mismatch between the predicted marked position(s) of the detected anatomical landmark(s) on the extravascular imaging data and the corresponding visualized anatomical landmark(s) on the extravascular imaging data. The disclosed method for vascular imaging coregistration may include registering the predicted positions of the detected anatomical landmarks with the visualized anatomical landmarks, which may help to mitigate this misregistration / error / mismatch.
[0097] For example, FIG. 10 illustrates a display including extravascular imaging data, in this case, an extravascular image 751 showing a visualized anatomical landmark 12. The landmark 12 is identified on the extravascular image 751 and labeled as SB1 (e.g., side branch 1). In addition, a predicted position of the anatomical landmark 197 (also labeled as SB1) detected from the intravascular image 154 is calculated / predicted and marked on the extravascular image 751 with a marker arrow 212. As will be appreciated, there may be some misalignment / error / mismatch between the predicted position 212 relative to the detected anatomical landmark and the identified visualized anatomical landmark 12 on the extravascular imaging data. The methods and systems disclosed herein provide for aligning the predicted position 212 with the visualized anatomical landmark 12. Alignment is typically performed by moving or dragging an indicator representing the predicted position 212 on the screen so that it is aligned with the visualized anatomical landmark 12. In some cases, this alignment process may be performed automatically by the system. For example, the computer 130 may include software or hardware configured to automatically align the predicted location 212 with the corresponding visualized anatomical landmark 12. This may be done at the user's direction or automatically if a misalignment is detected. In other cases, the alignment may be performed manually by the user, for example, via a user interface. Some examples of manual alignment may include the use of interactive labels as described above. For example, via the user interface, the user may highlight / activate a label corresponding to a detected anatomical landmark of interest, in this case, the detected anatomical landmark 197 labeled SB1. When the label of the detected anatomical landmark is highlighted / activated, the corresponding marked predicted location of that particular detected anatomical landmark is shown on the extravascular imaging data, where a marker arrow 212 designates the predicted location of the detected anatomical landmark 197.The user can then manually move / drag the marker arrow 212 to align it with the corresponding visualized anatomical landmark, in this case, visualized anatomical landmark 12. The user may then deactivate the label, for example, to thereby save the alignment. FIG. 11 shows the screen with the same imaging data as shown in FIG. 10 , but after aligning the predicted position 212 with the visualized anatomical landmark 12.
[0098] Similar registration steps can be performed for any other predicted locations of additional detected anatomical landmarks and corresponding misaligned visualized anatomical landmarks.
[0099] For example, FIG. 12 shows a display including extravascular imaging data, in this case extravascular image 851, which is essentially the same as extravascular image 751 but focuses on the visualized anatomical landmark 14 and the corresponding predicted location of the detected anatomical landmark 198. The landmark 14 is identified on the extravascular image 851 and labeled as SB2 (e.g., side branch 2). In addition, the predicted location of the detected anatomical landmark 198 (also labeled as SB2) from the intravascular image 154 is calculated / predicted and marked on the extravascular imaging image 851 with a marker arrow 214. As will be appreciated, there will be some misalignment / error / mismatch between the predicted location 214 relative to the detected anatomical landmark and the identified visualized anatomical landmark 14 on the extravascular imaging data. The methods and systems disclosed herein also provide for aligning the predicted location 214 with the visualized anatomical landmark 14 in a manner similar to that described above for aligning the predicted location 212 with the visualized anatomical landmark 12. FIG. 13 shows a view with the same imaging data as shown in FIG. 12, but after aligning the predicted location 214 with the visualized anatomical landmarks 14.
[0100] Similarly, FIG. 14 shows a display including extravascular imaging data, in this case extravascular image 951, which is essentially the same as extravascular images 751 and 851, but which focuses on the corresponding predicted locations of the visualized anatomical landmarks 16 and the detected anatomical landmarks 199. The landmarks 16 are identified on the extravascular image 951 and labeled as SB3 (e.g., side branch 3). In addition, the predicted locations of the detected anatomical landmarks 199 (also labeled as SB3) from the intravascular image 154 are calculated / predicted and marked on the extravascular imaging image 951 with a marker arrow 216. As will be appreciated, there will be some misalignment / error / mismatch between the predicted locations 216 relative to the detected anatomical landmarks and the identified visualized anatomical landmarks 16 on the extravascular imaging data. The methods and systems disclosed herein also provide for aligning the predicted locations 216 with the visualized anatomical landmarks 16 in a manner similar to that described above for aligning the predicted locations 212 with the visualized anatomical landmarks 12. FIG. 15 shows a view with the same imaging data as shown in FIG. 14, but after aligning the predicted locations 216 with the visualized anatomical landmarks 16.
[0101] Similarly, FIG. 16 shows a display including extravascular imaging data, in this case extravascular image 1051, which is essentially the same as extravascular images 751, 851, and 951, but which focuses on the visualized anatomical landmark 18 and the corresponding predicted location of the detected anatomical landmark 200. The landmark 18 is identified on the extravascular image 1051 and labeled as SB4 (e.g., side branch 4). In addition, the predicted location of the detected anatomical landmark 200 (also labeled as SB4) from the intravascular image 154 is calculated / predicted and marked with a marker arrow 218 on the extravascular imaging image 1051. As can be seen, there is some misalignment / error / mismatch between the predicted location 218 for the detected anatomical landmark and the identified visualized anatomical landmark 18 on the extravascular imaging data. The methods and systems disclosed herein also provide for aligning the predicted location 218 with the visualized anatomical landmarks 18 in a manner similar to that described above for aligning the predicted location 212 with the visualized anatomical landmarks 12. Figure 17 shows a view having the same imaging data as shown in Figure 16, but after aligning the predicted location 218 with the visualized anatomical landmarks 18.
[0102] As a result of the methods and / or systems described herein, intravascular images generated by an intravascular catheter during a translational procedure are co-registered to extravascular images, thereby linking all intravascular images (e.g., IVUS or OCT images) to their corresponding locations on the extravascular image (e.g., angiography images). The resulting co-registered images can be used to render and present a co-registered display including both the extravascular image and the corresponding intravascular image. The co-registered extravascular and intravascular images can be simultaneously displayed alongside each other on the display 150. The co-registered image data may be stored on the computer 130 or long-term storage device 131 for later review, e.g., in a session separate from the procedure in which the extravascular and intravascular image data were acquired. The co-registered display may also be rendered in a playback mode.
[0103] 18 shows an example of such a resulting co-registered display including both extravascular and corresponding intravascular images. As can be appreciated, the co-registered extravascular and intravascular images can be simultaneously displayed alongside one another on the display 150. For example, the display 150 includes an image output 153 in the upper left portion for showing the co-registered extravascular imaging data, an image output 154 along the bottom for showing the co-registered longitudinal cross-sectional intravascular images acquired during the translation procedure (e.g., from start to finish), and an image output 152 in the upper right portion for showing the corresponding co-registered transverse cross-sectional intravascular images acquired during the translation procedure.
[0104] In some embodiments, the system may include software or hardware configured to allow a user to scroll and / or track a series of coregiven images. For example, the system may include a configuration that allows a user to scroll through one of the sets of coregiven images, and as scrolling occurs, a processor acquires and displays corresponding coregiven images for the other set of images. For example, with reference to FIG. 18 , a slider bar / cursor 600 may be displayed / overlaid on image output 154 showing a series of intravascular images acquired during a translation procedure. Additionally, a corresponding slider bar / cursor 602 may be displayed on image output 153 along an extravascular image of the vessel. The two bars / cursors 600 / 6012 may be associated and / or linked such that when a user selects and drags the slider bar / cursor 602 along a path (e.g., a calculated path) of the vessel on the coregiven extravascular image shown on image output 153, the bar / cursor 600 slides accordingly along the corresponding / coregiven image shown on image output 154. Similarly, when the user selects and drags slider bar / cursor 600 along the coregiven image shown on image output 154, bar / cursor 602 slides along the path (e.g., calculated path) of the vessel on the coregiven extravascular image shown on image output 153. Additionally, as the user moves either of the bars / cursors 600 / 602, a corresponding cross-sectional image of the vessel segment is displayed on the screen on image output 152.
[0105] Another aspect of a method for vascular imaging coregistration may include estimating the accuracy of the imaging registration. As described herein, there may be some misregistration / error / mismatch between the predicted marked location(s) of the detected anatomical landmark(s) on the extravascular imaging data and the corresponding visualized anatomical landmark(s) on the extravascular imaging data. As disclosed herein, one aspect of a method for vascular imaging coregistration may include aligning the predicted locations of the detected anatomical landmarks with the visualized anatomical landmarks, which may help mitigate some of this misregistration / error / mismatch in the coregistration. However, the fact that this misregistration / error / mismatch occurred in the first place (e.g., before aligning the predicted locations of the detected anatomical landmarks with the visualized anatomical landmarks) suggests a desire to estimate the accuracy of the image coregistration, and in some cases, a mechanism for doing so can be provided. The system may include software or hardware configured to estimate the accuracy of the coregistration and, in some cases, display and / or otherwise indicate the estimated accuracy level for some or all of the coregistration.
[0106] Various methods can be used to estimate the accuracy of a coregistration. For example, the errors between the predicted positions of detected anatomical landmarks and the corresponding visualized anatomical landmarks can be measured individually, in groups, or overall across the entire coregistration. The magnitude of these measurements can indicate an estimated level of accuracy for some or all of the coregistration. For example, if the magnitude of the measured errors is large and / or exceeds a certain predetermined threshold, the predicted level of accuracy for the coregistration can be low. On the other hand, if the magnitude of these measurements is large and / or exceeds a certain predetermined threshold, the predicted level of accuracy for the coregistration can be low. These estimates of accuracy can be made for some or all of the coregistration. Other exemplary factors that may be used in estimating the accuracy of coregistration may include the total number of actual / known positions or registration points used in the coregistration (e.g., obtained via fluoroscopy), the distance between the actual / known positions or registration points, the total number of registrations performed (e.g., registration of predicted positions of detected anatomical landmarks with visualized anatomical landmarks), the distance between the registrations performed, and the tortuosity of the analyzed vessel. Other methods of estimating accuracy may include using curve-based algorithms or formulas, foreshortening prediction formulas or models, etc.
[0107] The estimated accuracy level of the coregistration may be performed for all or a portion of the coregistration and / or across all or a segment of the analyzed vessel portion. Once the estimated accuracy level is determined, the estimated accuracy level for all or a portion of the coregistration is displayed. For example, the system may include software or hardware configured to generate a visual indicator representing the estimated accuracy of the imaging coregistration. In some embodiments, the visual indicator may be displayed and / or overlaid on all or a portion of the depicted vessel on the extravascular imaging data. The visual characteristics may include color, symbol, intensity, etc., and may be overlaid / superimposed on or associated with the depicted vessel segment. In some cases, different colors, symbols, intensity levels may be coded and / or used to indicate the level of accuracy. For example, if the level of accuracy is determined to be high for a particular segment, one color (e.g., green) may be overlaid on that segment. Alternatively, if the level of accuracy is determined to be low for another particular segment, another color (e.g., red) may be overlaid on that segment. It should be understood that these are given by way of example only, and a wide variety of other configurations are contemplated.
[0108] In another aspect, it can be appreciated that there may be an error between the actual / known position and the calculated position, and this error can be determined or measured. In some embodiments, this error can be used to adjust the coregistration to account for it. For example, the error / total distance traveled ratio can be used as a scaling factor to recalculate and adjust a previously calculated / predicted position on an extravascular image (e.g., an angiogram) over a preceding period when the fluoroscope was inactive.
[0109] It will be understood that this disclosure is, in many respects, merely illustrative. Changes may be made in details, particularly in matters of shape, size, and arrangement of steps, without exceeding the scope of the disclosure. This may include, to the extent appropriate, the use of any of the features of one illustrative embodiment used in other embodiments. The scope of the invention will, of course, be defined in the language in which the appended claims are expressed.
Claims
1. A system for vascular imaging coregistration, comprising: a processor, the processor comprising: receiving an extravascular image of a portion of a blood vessel, the extravascular image showing visualized anatomical landmarks; receiving intravascular imaging data from an intravascular imaging device, the intravascular imaging data including one or more intravascular images acquired during a translation procedure in which an intravascular imaging element is pulled back from a start position to an end position, the one or more intravascular images illustrating detected anatomical landmarks; marking the start location and the end location on the extravascular imaging data; marking predicted locations of the detected anatomical landmarks on the extravascular imaging data; Aligning the predicted positions of the detected anatomical landmarks with the visualized anatomical landmarks. A system that is configured to:
2. The system of claim 1, wherein the processor is further configured to receive angiography image data and intravascular ultrasound (IVUS) image data and to correlate the angiography image data with the IVUS image data for coregistration.
3. The system of claim 1, wherein the processor is configured to determine a predicted position of the detected anatomical landmark on the extravascular image based on a known pullback distance and velocity of the intravascular imaging element.
4. The system of claim 1, wherein the processor is configured to align the predicted positions of the detected anatomical landmarks on the extravascular image with corresponding visualized anatomical landmarks by automatic software alignment or manual user adjustment via a user interface.
5. A system as described in any one of claims 1 to 4, wherein the processor is further configured to simultaneously display the co-registered extravascular and intravascular images on a common display, the display displaying both IVUS longitudinal and transverse cross-sectional images and angiographic images corresponding to the aligned anatomical landmarks.
6. The system described in claim 5, wherein the processor is configured to generate a visual indicator representing an estimated accuracy of the coregistration and overlay the visual indicator on the extravascular image.
7. The system of claim 5, wherein the processor is configured to enable scrolling or tracking of the co-registered angiography and IVUS images using synchronized cursors displayed on each image.
8. A system for vascular imaging coregistration, comprising: a processor, the processor comprising: acquiring extravascular imaging data of a portion of a blood vessel, the extravascular imaging data including an extravascular image showing an intravascular imaging device positioned within the blood vessel, together with imaging elements of the intravascular imaging device and visualized anatomical landmarks; acquiring intravascular imaging data from the intravascular imaging device, the intravascular imaging data including one or more intravascular images acquired during a translation procedure in which the imaging element is translated within the blood vessel from a start position to an end position, the one or more intravascular images illustrating detected anatomical landmarks; Aligning the detected anatomical landmarks with the visualized anatomical landmarks. A system that is configured to:
9. The system of claim 8, wherein the processor is further configured to identify the visualized anatomical landmarks on the extravascular imaging data.
10. The system described in claim 9, wherein identifying the visualized anatomical landmarks on the extravascular imaging data includes marking the visualized anatomical landmarks on the extravascular imaging data using image pattern recognition software.
11. The system described in claim 10, wherein identifying the visualized anatomical landmarks on the extravascular imaging data includes allowing a user to manually mark the visualized anatomical landmarks on the extravascular imaging data.
12. A system described in any one of claims 8 to 10, wherein the processor is further configured to determine a path of the imaging element during the translational procedure and to overlay the path on the extravascular image.
13. The system of claim 12, wherein the processor is further configured to mark the start and end positions of the translational procedure on the extravascular image, and marking the start and end positions includes detecting the start and / or end positions using image pattern recognition software.
14. The system of claim 13, wherein marking the start position and the end position includes allowing a user to manually mark the start position and / or the end position.
15. The system of claim 12, wherein determining the path of the imaging element during the translation procedure includes one or more of user-specified points or manual route designation, automatic route calculation, user-assisted automatic route calculation, and a combination of manual and automatic calculation of the path.
16. The system of claim 12, wherein the route includes one or more user-specified points that replace one or more automatic route calculations.
17. A system for vascular imaging coregistration, comprising: a processor, the processor comprising: receiving an extravascular image of a portion of a blood vessel; receiving intravascular imaging data from an intravascular imaging device, the intravascular imaging data including one or more intravascular images illustrating detected anatomical landmarks; marking start and end positions of imaging elements of the intravascular imaging device on the extravascular image; marking predicted locations of the detected anatomical landmarks on the extravascular image based on known translational distance or velocity of the imaging element; and registering the predicted locations of the detected anatomical landmarks with visualized anatomical landmarks shown on the extravascular image. A system that is configured to:
18. The system described in claim 17, wherein aligning the predicted position of the detected anatomical landmark with the visualized anatomical landmark is performed automatically using software.
19. The system described in claim 17 or 18, wherein aligning the predicted position of the detected anatomical landmark with the visualized anatomical landmark includes allowing a user to manually align the predicted position of the detected anatomical landmark with the visualized anatomical landmark.
20. A system as described in claim 17 or 18, wherein the extravascular imaging data includes one or both of angiography image data and fluoroscopy image data, and the angiography image data is selected from two-dimensional angiography image data, three-dimensional angiography image data, or computed tomography angiography image data.