Radioactive ray imaging method and device

By displaying the positioning image and calculating the position matching degree in the radioactive ray imaging device, the technician can adjust the positioning of the person being tested, and solve the problem of inaccurate positioning caused by the technician's reliance on subjective experience, and improve imaging quality and safety.

CN119924865APending Publication Date: 2025-05-06SHENZHEN MINDRAY BIO MEDICAL ELECTRONICS CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202311468913.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-06
Publication Date
2025-05-06

AI Technical Summary

Technical Problem

In radioactive ray imaging equipment, technicians rely on subjective experience to perform positioning operations before exposure, and lack objective evaluation tools, resulting in the positioning of the person being tested does not meet the standards, increasing the possibility of radiation hazards and image reshoots.

Method used

A method and apparatus for radioradio imaging are provided, which can help technician adjust the position position of the subject to be detected, acquire and display the position matching degree, and generate and display the position quality control image to help technician adjust the position position of the subject to be detected.

Benefits of technology

It improves the accuracy of the positioning of the person being tested, reduces radiation hazards and image reshoots, and improves imaging quality and efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119924865A_ABST
    Figure CN119924865A_ABST
Patent Text Reader

Abstract

The invention discloses a radioactive ray imaging method and equipment, and the method comprises the steps: obtaining a positioning image, obtaining a positioning attention item on the image based on the positioning image, and calculating a position matching degree based on the positioning attention item, displaying a region of interest, an imaging surface region, an irradiation field region and a position matching degree in the positioning attention item, and displaying the body position of the detected person presented by the positioning image and the to-be-shot body position of the detected person; a user can judge whether the positioning needs to be adjusted again and how to adjust the positioning according to the identified positioning attention item, and the operation is very convenient.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of radioactive ray imaging, and in particular to a method and device for radioactive ray imaging. Background Art

[0002] Radioactive ray imaging equipment is a common imaging system in medical digital imaging and is widely used in the field of physical examination and conventional medical imaging diagnosis. Radioactive ray imaging equipment is a device that uses radioactive rays (such as X-rays) to penetrate the subject to form an image.

[0003] Take digital radiography (DR) as an example. Due to its advantages of fast imaging speed, low radiation dose, clear and delicate images, and the ability to examine the entire body, it is widely used in clinical examinations and has become one of the main auxiliary means for doctors to diagnose diseases. Positioning is an important part of the technician's examination process. There are many requirements for positioning. For example, the subject's shooting area needs to be placed on the imaging surface and within the irradiation field and meet the requirements to prevent incomplete coverage of the diagnosis area or excessive radiation hazards; for another example, the subject's overall or partial posture needs to be adjusted to meet the shooting requirements.

[0004] In actual situations, radiological technicians mainly rely on their own subjective experience for the pre-exposure operation process and lack objective evaluation and measurement tools. In addition, there are a large number of body positions, so ensuring that all matters related to the positioning of the subject meet the positioning standards has become a problem that troubles technicians. Summary of the invention

[0005] In view of the above problems, the present invention proposes a method and device for radioactive ray imaging, which are described in detail below.

[0006] According to the first aspect, an embodiment provides a method for radioactive ray imaging, which is applied to a radioactive ray imaging device, and the method includes:

[0007] Displaying the photographic body positions of the subject on the human-computer interaction interface;

[0008] In response to an instruction for selecting the photographable body positions, determining a body position of the subject to be photographed from the photographable body positions;

[0009] Acquire a positioning image, wherein the positioning image is an image of the subject at a shooting position between the radiation source and the detector;

[0010] Acquiring positioning focus items on the image based on the positioning image, the positioning focus items including the region of interest of the subject, the imaging surface area of ​​the detector, the irradiation field area of ​​the radiation source irradiating the subject, and the body position of the subject presented by the positioning image;

[0011] Calculating a position matching degree based on the positioning focus item, the position matching degree including: a position matching degree between the region of interest and the imaging surface area, and a position matching degree between the region of interest and the irradiation field area;

[0012] The region of interest, the imaging surface area, the irradiation field area, the position matching degree, the body position of the subject presented by the positioning image, and the body position of the subject to be photographed are displayed.

[0013] In one embodiment, the positioning focus item also includes a detection field area of ​​a dose estimation unit; and the method also includes displaying the detection field area.

[0014] In one embodiment, a positioning quality control image is generated and displayed based on the positioning image, the positioning focus items and the position matching degree; the positioning quality control image includes an auxiliary image, as well as the region of interest, the imaging surface area, the irradiation field area and the position matching degree; the auxiliary image is the positioning image or a schematic image obtained based on the positioning image.

[0015] In one embodiment, the positioning quality control image further includes the body position of the subject presented by the positioning image and / or the body position of the subject to be photographed.

[0016] In one embodiment, the positioning quality control image displays the region of interest, the imaging surface area and the irradiation field area by superimposing a schematic diagram on the auxiliary image contained therein; preferably, the schematic diagram includes an area defined by lines.

[0017] In one embodiment, the position matching degree is displayed on the positioning quality control image by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the boundary, the deviation size of the corner point and the deviation size of the center.

[0018] In one embodiment, the positioning quality control image is superimposed on the auxiliary image contained therein to display the detection field area.

[0019] In one embodiment, the region of interest, the imaging surface area and the irradiation field area are displayed in the positioning quality control image in the form of text and coordinates; and / or, the position matching degree is displayed in the form of text and coordinates in the positioning quality control image.

[0020] In one embodiment, acquiring a positioning focus item on an image based on the positioning image includes: displaying the positioning image, and receiving a region selection instruction from a user on the positioning image to determine the region of interest; or, identifying an anatomical structure associated with the body position to be photographed of the subject from the positioning image, and generating the region of interest based on the anatomical structure.

[0021] In one embodiment, the positioning focus item also includes current posture information of the subject associated with the positioning requirement; and the method also includes displaying the current posture information of the subject associated with the positioning requirement.

[0022] In one embodiment, obtaining a positioning focus item on an image based on the positioning image includes:

[0023] Acquiring a positioning requirement associated with the body position to be photographed of the subject;

[0024] Identifying, from the positioning image, an anatomical structure associated with the body position to be photographed of the subject;

[0025] Based on the positioning requirement and the identified anatomical structure, current posture information of the subject associated with the positioning requirement is determined.

[0026] In one embodiment, the method further includes: acquiring and displaying a positioning requirement associated with the body position to be photographed of the subject.

[0027] In one embodiment, the positioning concern items also include foreign matter that affects imaging; the method also includes displaying the foreign matter when the foreign matter exists.

[0028] In one embodiment, acquiring the positioning focus items on the image based on the positioning image includes: displaying the positioning image, receiving a foreign object selection instruction from a user on the positioning image, and determining the foreign object that affects imaging in the image; or automatically identifying the foreign object that affects imaging from the positioning image.

[0029] In one embodiment, the method further includes: acquiring a positioning image after the positioning is completed, determining whether the subject is moving based on the positioning image after the positioning is completed and the positioning image acquired thereafter, and if moving, generating prompt information for indicating the movement status.

[0030] In one embodiment, the region of interest is displayed by projecting onto the subject, wherein the region of interest displayed by the projection is consistent with the position of the actual region of interest of the subject; and / or,

[0031] Displaying the imaging surface area by projecting onto the subject, wherein the imaging surface area displayed by projection is consistent with the position of the actual imaging surface area of ​​the detector; and / or,

[0032] The irradiation field area is displayed by projecting onto the subject, wherein the irradiation field area displayed by the projection is consistent with the position of the actual irradiation field area of ​​the radiation source; and / or,

[0033] Displaying the detection field area by projecting it onto the subject, wherein the detection field area displayed by the projection is consistent with the position of the actual detection field area of ​​the dose estimation unit; and / or,

[0034] The position matching degree is displayed by projecting onto the detected person.

[0035] In one embodiment, the positioning image is an image acquired in real time, and when the positioning image changes, the positioning focus item and the position matching degree are updated in real time.

[0036] In one embodiment, the device has a display screen, and the method includes: displaying through the display screen the region of interest, the imaging surface area, the irradiation field area, the position matching degree, the body position of the subject presented by the positioning image, the body position of the subject to be photographed, the detection field area, the positioning requirement associated with the body position of the subject to be photographed, the current posture information of the subject associated with the positioning requirement, and one or more of the foreign matter.

[0037] In one embodiment, the method further comprises generating a guidance item based on the positioning focus item and / or the position matching degree, and outputting the guidance item; the guidance item is a prompt for guiding the subject; preferably, the guidance item comprises at least one of the following:

[0038] Guiding the subject to move so that the range and / or position of the region of interest and the imaging surface area meet the requirements;

[0039] guiding the subject to move so that the range and / or position of the region of interest and the irradiation field area meet the requirements;

[0040] Guiding the subject to position the posture so that the subject's body position is the subject's body position to be photographed;

[0041] The positioning posture of the detected person is guided so that the current posture information of the detected person meets the posture required by the positioning requirement associated with the body position to be photographed of the detected person.

[0042] According to the second aspect, an embodiment provides a method for radioactive ray imaging, comprising:

[0043] Acquire a positioning image, wherein the positioning image is an image of the subject at a shooting position between the radiation source and the detector;

[0044] Acquire positioning focus items on the image based on the positioning image, the positioning focus items including one or more of the subject's region of interest, the imaging surface area of ​​the detector, the irradiation field area of ​​the radiation source irradiating the subject, the detection field area of ​​the dose estimation unit, the subject's body position presented by the positioning image, the positioning requirement, the subject's current posture information associated with the positioning requirement, and foreign matter affecting imaging;

[0045] Calculating a position matching degree based on the positioning focus item, the position matching degree including: a position matching degree between the region of interest and the imaging surface area, and / or a position matching degree between the region of interest and the irradiation field area, and / or a position matching degree between the imaging surface area and the irradiation field area;

[0046] At least one of the positioning focus item and the position matching degree is displayed.

[0047] In one embodiment, displaying the positioning concern items includes: generating and displaying a positioning quality control image, wherein the positioning quality control image includes an auxiliary image, and the positioning quality control image also includes the positioning concern items and / or the position matching degree; wherein the auxiliary image is the positioning image or a schematic image obtained based on the positioning image.

[0048] In one embodiment, the positioning quality control image displays the region of interest, the imaging surface area and the irradiation field area by superimposing a schematic diagram on the auxiliary image contained therein; preferably, the schematic diagram includes an area defined by lines;

[0049] and / or, displaying the region of interest, the imaging surface area and the irradiation field area in the positioning quality control image in the form of text and coordinates;

[0050] And / or, the position matching degree is displayed in the positioning quality control image in the form of text and coordinates.

[0051] In one embodiment, the position matching degree is displayed on the positioning quality control image by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the boundary, the deviation size of the corner point and the deviation size of the center.

[0052] In one embodiment, acquiring a positioning focus item on an image based on the positioning image includes: displaying the positioning image, and receiving a region selection instruction from a user on the positioning image to determine the region of interest; or, identifying an anatomical structure associated with the body position to be photographed of the subject from the positioning image, and generating the region of interest based on the anatomical structure.

[0053] In one embodiment, obtaining a positioning focus item on an image based on the positioning image includes:

[0054] Acquiring a positioning requirement associated with the body position to be photographed of the subject;

[0055] Identifying, from the positioning image, an anatomical structure associated with the body position to be photographed of the subject;

[0056] Based on the positioning requirement and the identified anatomical structure, current posture information of the subject associated with the positioning requirement is determined.

[0057] In one embodiment, the method further includes: acquiring a positioning image after the positioning is completed, determining whether the subject is moving based on the positioning image after the positioning is completed and the positioning image acquired thereafter, and if moving, generating prompt information for indicating the movement status.

[0058] In one embodiment, displaying the positioning focus item includes: displaying by projection, wherein:

[0059] Displaying the region of interest by projecting onto the subject, wherein the region of interest displayed by projection is consistent with the position of the actual region of interest of the subject; and / or,

[0060] Displaying the imaging surface area by projecting onto the subject, wherein the imaging surface area displayed by projection is consistent with the position of the actual imaging surface area of ​​the detector; and / or,

[0061] The irradiation field area is displayed by projecting onto the subject, wherein the irradiation field area displayed by the projection is consistent with the position of the actual irradiation field area of ​​the radiation source; and / or,

[0062] Displaying the detection field area by projecting it onto the subject, wherein the detection field area displayed by the projection is consistent with the position of the actual detection field area of ​​the dose estimation unit; and / or,

[0063] The position matching degree is displayed by projecting onto the detected person.

[0064] In one embodiment, the positioning image is an image acquired in real time, and when the positioning image changes, the positioning focus item is updated in real time.

[0065] In one embodiment, the method further comprises generating a guidance item based on the positioning focus item and / or the position matching degree, and outputting the guidance item; the guidance item is a prompt for guiding the subject; preferably, the guidance item comprises at least one of the following:

[0066] Guiding the subject to move so that the range and / or position of the region of interest and the imaging surface area meet the requirements;

[0067] guiding the subject to move so that the range and / or position of the region of interest and the irradiation field area meet the requirements;

[0068] Guiding the subject to position the posture so that the subject's body position is the subject's body position to be photographed;

[0069] The positioning posture of the detected person is guided so that the current posture information of the detected person meets the posture required by the positioning requirement associated with the body position to be photographed of the detected person.

[0070] According to a third aspect, an embodiment provides a radioactive ray imaging device, comprising:

[0071] A radiation source, used for emitting radioactive rays to the person being tested;

[0072] a detector for receiving radioactive rays transmitted through the subject; and

[0073] A processor is used to execute the method described in any embodiment of the present invention.

[0074] According to the method and device for radioactive ray imaging of the above-mentioned embodiment, by acquiring a positioning image and obtaining positioning focus items based on the positioning image, and further calculating the position matching degree, and displaying relevant information for the user to view, the user can determine whether the positioning needs to be readjusted and how to adjust the positioning based on the above-identified positioning focus items, which is very convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0075] Figure 1 A schematic diagram of the structure of a radioactive ray imaging device according to an embodiment;

[0076] Figure 2 is a schematic structural diagram of a ray source according to an embodiment;

[0077] Figure 3 is a schematic structural diagram of a ray source according to an embodiment;

[0078] Figure 4 A schematic diagram of the structure of a detector according to an embodiment;

[0079] Figure 5 A schematic diagram of the structure of a radioactive ray imaging device according to an embodiment;

[0080] Figure 6 A schematic diagram of the structure of a radioactive ray imaging device according to an embodiment;

[0081] Figure 7 A schematic diagram of the structure of a radioactive ray imaging device according to an embodiment;

[0082] Figure 8 A schematic diagram of the structure of a radioactive ray imaging device according to an embodiment;

[0083] Fig. 9 A schematic diagram of the structure of a radioactive ray imaging device according to an embodiment;

[0084] Fig.10 A flowchart of a method for radioactive ray imaging according to an embodiment;

[0085] Fig.11 A flowchart of a method for radioactive ray imaging according to an embodiment;

[0086] Fig.12 A flowchart of a method for radioactive ray imaging according to an embodiment;

[0087] Fig.13 A flowchart of a method for radioactive ray imaging according to an embodiment;

[0088] FIG. 14( a ) is an example diagram of a positioning image according to an embodiment; FIG. 14( b ) is an example diagram of a positioning quality control image according to an embodiment;

[0089] Fig.15 An example diagram showing a focus item for positioning according to an embodiment;

[0090] Fig.16 An example diagram showing positioning requirements of an embodiment;

[0091] FIG. 17( a ) is an example diagram of motion detection and display after positioning according to an embodiment; FIG. 17( b ) is an example diagram of motion detection and display after positioning according to an embodiment;

[0092] Fig.18 This is an example diagram of displaying a positioning focus item by projection in an embodiment. DETAILED DESCRIPTION

[0093] The present invention is further described in detail below by specific embodiments in conjunction with the accompanying drawings. Wherein similar elements in different embodiments adopt associated similar element numbers. In the following embodiments, many detailed descriptions are for making the present application better understood. However, those skilled in the art can easily recognize that some features can be omitted in different situations, or can be replaced by other elements, materials, methods. In some cases, some operations related to the present application are not shown or described in the specification, this is to avoid the core part of the present application being overwhelmed by too much description, and for those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations according to the description in the specification and the general technical knowledge in the art.

[0094] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate manner to form various implementations. At the same time, the steps or actions in the method description can also be interchanged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the various sequences in the specification and the drawings are only for the purpose of clearly describing a certain embodiment and are not meant to be a required sequence, unless otherwise specified that a certain sequence must be followed.

[0095] The serial numbers of the components in this document, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0096] The standardization of the technician's operation before exposure affects the image quality. If the image does not meet the requirements, it needs to be retaken, which is not only cumbersome but also increases the radiation hazard to the subject. After the positioning is completed, if the subject moves again, it is difficult to detect in time, resulting in the image not meeting the standards.

[0097] Please refer to Figure 1 In some embodiments, a radioactive ray imaging device is provided, the device comprising a ray source 10, a detector 20 and a processor 30; the ray source 10 is used to emit radioactive rays such as X-rays to a subject; the detector 20 is used to receive the radioactive rays that pass through the subject to perform imaging. The following is a detailed description.

[0098] In some embodiments, please refer to Figure 2The radiation source 10 may include a high voltage generator 11 and a radiation emitter 12; the high voltage generator 11 is electrically connected to the radiation emitter 12, and the high voltage generator 11 is used to provide a high voltage signal, such as a hundred volt or a thousand volt high voltage, to the radiation emitter 12; the radiation emitter 12 is used to bombard the target surface with electrons under the high voltage signal to generate radioactive radiation, such as X-rays, and the radiation emitter 12 may be, for example, a tube. The detector 20 is used to receive the radioactive radiation for imaging.

[0099] In some embodiments, please refer to Figure 3 , the ray source 10 may further include a beam limiter 13. In some embodiments, the beam limiter 13 is used to determine or simulate the projection area of ​​the ray source 10 or the ray emitter 12, and the area irradiated by the beam limiter 13 may be referred to as an irradiation field or an irradiation field area. In addition, the ray source 10 is used to emit radioactive rays, and the detector 20 is used to receive radioactive rays; in this process, the beam limiter 13 can also be used to limit the irradiation field of the radioactive rays emitted by the ray emitter 12; therefore, in some examples, the beam limiter 13 can also play a role in constraining the radioactive rays and shielding the scattered radioactive rays.

[0100] The detector 20 is a core component of the radioactive ray imaging device, which has an important impact on the imaging quality. In some embodiments, the detector 20 is used to receive radioactive rays such as X-rays and finally convert them into electrical signals to complete the image information acquisition. Figure 4 In one embodiment, the detector 20 includes a ray conversion layer 21 and a TFT matrix layer 22. The ray conversion layer 21 is used to convert radioactive rays such as X-rays into visible light; the ray conversion 21 generally includes a scintillating layer or a fluorescent layer for converting the rays into visible light. Taking the scintillating layer as an example, it can generally be made of a scintillating material, typically, such as cesium iodide (CsI) or gadolinium oxysulfide (GOS). The TFT matrix layer 22 is used to sense the visible light converted by the ray conversion layer 21, and convert the visible light into an electrical signal for image information acquisition. In some embodiments, the detector 20 can be a flat-panel detector.

[0101] In some embodiments, please refer to Figure 5 The radioactive ray imaging device may also include one or more dose estimation units 23, which are used to estimate the dose of the ray during the ray imaging process so that the processor 30 or the ray source 10 can determine the timing of receiving the emitted ray, that is, to control the exposure cutoff.

[0102] In some embodiments, please refer to Figure 6The radioactive ray imaging device may further include a camera 40, or the radioactive ray imaging device may further be connected to a camera 40; the camera 40 may be capable of performing image acquisition, such as real-time image acquisition. In one example, when the subject is located at a shooting position between the ray source 10 and the detector 20, the camera 40 may acquire an image to obtain an image of the subject at the shooting position between the ray source and the detector.

[0103] In some embodiments, please refer to Figure 7 The radioactive ray imaging device further includes an output component, such as a display screen 50 or a voice playing component 51. In some embodiments, the display screen 50 may be integrated with a voice playing function. In some embodiments, the radioactive ray imaging device includes a supporting structure for supporting the ray source 10 and / or the detector 20. The display screen 50 and / or the voice playing component 51 may be arranged on the supporting structure.

[0104] Figure 8It is an example of a mobile radioactive ray imaging device. In the figure, the support structure includes a movable body 210, a mechanical arm 211 disposed on the body 210, and a radiation source 10, and the mechanical arm 211 may be provided with the radiation source 10. In some embodiments, the radiation source 10 may have a shell structure for supporting and storing. In some embodiments, the radiation source 10 is used to support the radiation emitter 12, for example, the radiation emitter 12 is disposed in the radiation source 10. In some embodiments, the radiation source 10 is used to support the high-voltage generator 11, for example, the high-voltage generator 11 is disposed in the radiation source 10. In some embodiments, the beam limiter 13 is disposed in the radiation source 10. The detector 20 may be a flat-panel detector, which can be conveniently stored in the body 210 when not in use. Since the body 210 of the device is movable, it can be moved to a desired location for use, such as being pushed to an operating room, an emergency room, an ICU ward, a neonatal department, and an isolation area for critically ill patients. The movable body 210 is usually provided with a motion mechanism, which can be manually actuated or electrically driven to enable the movement of the device. The radiation source 10 can be suspended and movably arranged on the body 210, and can be moved in two or three dimensions in space through the mechanical arm 211. The detector 20 configured for the device can be wired or wireless: the wired flat panel detector 20 is generally connected to the body 210 through a cable to complete functions such as charging and data transmission; the wireless flat panel detector 20 can be mechanically separated from the body 210 for use, for example, the technician takes out the wireless flat panel detector 20 from the body 210 where the wireless flat panel detector 20 is stored for use. Generally, mobile radioactive ray imaging devices are equipped with wireless flat panel detectors. After receiving the exposure request, the processor 30 controls the radiation source 10 to expose, that is, to emit radioactive rays such as X-rays to the subject, and controls the wireless flat panel detector 20 to work in conjunction with the radiation source 10 to receive radioactive rays such as X-rays that pass through the subject for imaging. The imaged data may then be further transmitted to the processor 30 for image processing and subsequent control for display.

[0105] Fig. 9An example of a fixed radioactive ray imaging device. In the figure, the support structure may include a column 220, a slide rail 221 arranged on the column 220, and a ray source 10 arranged on the slide rail 221, and the ray source 10 can be moved in two or three dimensions in space through the slide rail 221. In some embodiments, the ray source 10 may have a shell structure for supporting and storing. In some embodiments, the ray source 10 is used to support the ray emitter 12, for example, the ray emitter 12 is arranged in the ray source 10. In some embodiments, the beam limiter 13 is arranged in the head 10. The device may also include a bed board 261 and a bed support structure 263 for supporting the bed board 261; the bed board 261 can be used to support the subject, for example, for the subject to lie flat. It should be noted that the fixed radioactive ray imaging device can be equipped with a vertically arranged detector 20 and a horizontally arranged detector 20, and both detectors 20 can be wired. It should be noted that some fixed radioactive ray imaging devices may be equipped with only one vertically arranged detector 20 or one horizontally arranged detector 20, or both detectors 20. Some other fixed radioactive ray imaging devices may also be equipped with wireless detectors 20, for example, a fixed X-ray imaging device may be equipped with a wireless flat panel detector 20, or may be equipped with both a wireless flat panel detector 20 and a wired flat panel detector 20. Whether it is a wired detector 20 or a wireless detector 20, both are used to receive X-rays for imaging.

[0106] In some embodiments, the radioactive ray imaging device is located in a shielded room, and a technician can operate the radioactive ray imaging device through a computer outside the shielded room. The computer outside the shielded room includes a host and a display.

[0107] Therefore, the component with display function in this article can be the display screen 50 or the display included in the computer.

[0108] In some embodiments, the radioactive ray imaging device may be a digital X-ray imaging device (Digital Radiography, DR).

[0109] The above are some descriptions of the equipment for radioactive ray imaging.

[0110] In some embodiments, the processor 30 is capable of executing the method of radiographic imaging disclosed herein or one or more steps thereof.

[0111] Please refer to Fig.10 The method of radiographic imaging may include the following steps:

[0112] Step S100: Acquire a positioning image, which is an image of the subject at a shooting position between the radiation source 10 and the detector 20.

[0113] For example, the camera 40 is used to capture images, such as a single frame or multiple frames of images, to obtain positioning images.

[0114] Step S110: acquiring a positioning focus item on the image based on the positioning image.

[0115] The inventor conducted research on clinical positioning-related issues and proposed positioning focus items, which are used to assist technicians in positioning the subject.

[0116] In some embodiments, the positioning focus items include the subject's area of ​​interest, the imaging surface area of ​​the detector 20, the irradiation field area of ​​the radiation source 10 on the subject, the detection field area of ​​the dose estimation unit 23, the subject's position presented in the positioning image, the positioning requirements, the subject's current posture information associated with the positioning requirements, and one or more of foreign objects that affect imaging.

[0117] The following is a description of each positioning concern.

[0118] The area of ​​interest of the subject: refers to the area of ​​the subject that needs to be included in the image obtained based on radiographic imaging, that is, the area of ​​the subject to be diagnosed. The doctor makes a diagnosis by viewing the radiographic image of this area; generally, the area of ​​interest of the subject is associated with the body position of the subject to be photographed.

[0119] In some embodiments, step S110 displays the positioning image, and receives a region selection instruction from a user (e.g., a technician) on the positioning image to determine the region of interest. For example, the positioning image is displayed on the display function component, and the technician specifies the region of interest by inputting a region selection instruction on the positioning image (e.g., performing a box selection operation on the positioning image using a tool such as a mouse).

[0120] In some embodiments, step S110 identifies the anatomical structure associated with the subject's position to be photographed from the positioning image, and generates a region of interest based on the anatomical structure. The recognition algorithm of step S110 may be based on methods such as machine learning.

[0121] Taking the chest posteroanterior position as an example, the anatomical structures associated with the body position to be photographed include the sixth thoracic vertebra, the apex of the lung, the posterior costophrenic angle, and the bony thorax and soft tissues on both sides; therefore, these anatomical structures are identified from the positioning image, and the sixth thoracic vertebra is taken as the center of the region of interest. The range of the region of interest includes the apex of the lung to the posterior costophrenic angle, and the bony thorax and soft tissues on both sides, so that the region of interest is generated based on the center and range of the region of interest.

[0122] Taking the shoulder joint anterior-posterior position as an example, the anatomical structures associated with the body position include the coracoid process, the proximal humerus, the clavicle and the scapula; therefore, these anatomical structures are identified from the positioning image, and then 2.5 cm below the coracoid process is taken as the center of the region of interest. The range of the region of interest includes the proximal humerus, the outer 2 / 3 of the clavicle and the upper part of the scapula, so that the region of interest is generated based on the center and range of the region of interest.

[0123] The imaging surface area of ​​the detector 20 refers to the area where the detector 20 can receive and sense radiation.

[0124] In some embodiments, step S110 displays the setup image, and receives a region selection instruction from a user (e.g., a technician) on the setup image to determine the imaging surface region of the controller 20. For example, the setup image is displayed on the display function component, and the technician specifies the imaging surface region of the detector 20 by inputting a region selection instruction on the setup image (e.g., performing a box selection operation on the setup image using a tool such as a mouse).

[0125] In some embodiments, step S110 identifies the detector 20 from the positioning image, and generates an imaging surface area of ​​the detector 20 based on the identified detector 20. Since the positioning image is an image of the subject at the shooting position between the radiation source 10 and the detector 20, the positioning image may also include an image of the detector 20. Therefore, the detector 20 can be identified from the image, for example, by determining its four corners through the identified controller 20, thereby positioning the detector 20 and generating its imaging surface area. The identification of the detector 20 from the positioning image may be based on methods such as machine learning.

[0126] In some embodiments, step S110 can also obtain the spatial position of the actual imaging surface area of ​​the detector 20 based on a sensor that can be positioned, that is, the position of the actual imaging surface area of ​​the detector 20 in the world coordinate system, and then obtain the position information of the imaging surface area of ​​the detector 20 in the positioning image based on the position transformation relationship between the positioning image and the world coordinate system.

[0127] The irradiation field area of ​​the subject irradiated by the ray source 10 (hereinafter referred to as the irradiation field area of ​​the ray source 10) refers to the position and / or range irradiated by the rays emitted by the ray source 10. Before taking a radiographic image, the technician can simulate the projection area of ​​the ray source 10 or the ray emitter 12 by means of the beam limiter 13, which will irradiate a cone of light onto the subject.

[0128] In some embodiments, step S110 displays the positioning image, and receives a region selection instruction from a user (e.g., a technician) on the positioning image to determine the irradiation field region of the subject irradiated by the radiation source 10. For example, the positioning image is displayed on the display function component, and the technician specifies the irradiation field region of the radiation source 10 by inputting a region selection instruction on the positioning image (e.g., performing a box selection operation on the positioning image using a tool such as a mouse).

[0129] Since the beam limiter 13 irradiates a conical light beam onto the subject to simulate the irradiation field area of ​​the radiation source 10, step S110 can also identify the irradiation field area of ​​the radiation source 10 from the positioning image based on the image formed by irradiating the conical light beam onto the subject.

[0130] In some embodiments, step S110 can also obtain the spatial position of the actual irradiation field area of ​​the ray source 10 based on a sensor that can be positioned, that is, the position of the actual irradiation field area of ​​the ray source 10 in the world coordinate system, and then obtain the position information of the irradiation field area of ​​the ray source 10 in the positioning image based on the position transformation relationship between the positioning image and the world coordinate system.

[0131] The detection field area of ​​the dose estimation unit 23 refers to the area where the dose estimation unit 23 can receive and sense radiation. In some embodiments, the dose estimation unit 23 can be turned on or off. When the dose estimation unit 23 is turned on, the detector area of ​​the dose estimation unit 23 is also turned on or effective.

[0132] In some embodiments, step S110 displays the setup image, and receives a region selection instruction from a user (e.g., a technician) on the setup image to determine the detection field region of the dose estimation unit 23. For example, the setup image is displayed on the display function component, and the technician specifies the detection field region of the dose estimation unit 23 by inputting a region selection instruction on the setup image (e.g., performing a box selection operation on the setup image using a tool such as a mouse).

[0133] In some embodiments, the dose estimation unit 23 is generally disposed on the detector 20 and its position is relatively fixed, so step S110 may also identify the detector 20 from the positioning image and determine the detection field area of ​​the dose estimation unit 23 based on the identified detector 20 .

[0134] In some embodiments, the processor 30 is capable of obtaining information on whether the dose estimation unit 23 is turned on or off; therefore, the detector area of ​​the dose estimation unit 23 obtained in step S110 can be to first determine which dose estimation units 23 are turned on, and then determine the detection field area of ​​each of these turned-on dose estimation units 23.

[0135] The body position of the subject presented in the positioning image refers to what the subject in the positioning image looks like / what kind of shooting position the subject is in.

[0136] In some embodiments, step S110 identifies the subject from the positioning image, and determines the body position of the subject presented in the positioning image based on the identified subject. Identifying the subject from the positioning image and determining the body position may be based on machine learning or other methods.

[0137] In some embodiments, after identifying the subject from the positioning image, step S110 further identifies the anatomical structure of the subject within the imaging plane of the detector 20 and then the controller 20, thereby determining the body position of the subject presented by the positioning image.

[0138] Positioning requirements refer to the posture of the subject to be photographed.

[0139] Taking the chest posterior-anterior position as an example, the positioning requirements of this position include the subject placing the backs of his hands on the hips or hugging the imaging surface, bending his elbows as far forward as possible, and turning his shoulders inward and keeping them flat.

[0140] Taking the lateral knee joint position as an example, the position requirement for this position includes the subject's knee flexion at 120 to 130 degrees.

[0141] The current posture information of the subject associated with the positioning requirement refers to: the positioning requirement associated with the body position to be photographed, which anatomical structures are required to have corresponding postures, and what postures of the subject these anatomical structures present in the positioning image.

[0142] Taking the chest posterior-anterior position as an example, the positioning requirements of this position include that the subject places the backs of his hands on the hips or hugs the imaging surface, bends his elbows, and moves forward as much as possible, and turns his shoulders inward and keeps them flat; then the subject's current posture information associated with the positioning requirements includes: the posture information of the subject's hands and shoulders in the positioning image, etc.

[0143] Taking the lateral knee joint position as an example, the positioning requirement of this position includes the subject's knee flexion 120 to 130 degrees; then the subject's current posture information associated with the positioning requirement includes: the posture information of the subject's knees in the positioning image.

[0144] In some embodiments, step S110 obtains a positioning requirement associated with the subject's body position to be photographed, identifies an anatomical structure associated with the subject's body position to be photographed (or an anatomical structure associated with the positioning requirement) from a positioning image, and determines current posture information of the subject associated with the positioning requirement based on the positioning requirement and the identified anatomical structure.

[0145] Foreign matter that affects imaging refers to whether there is foreign matter that affects imaging on the subject or in the region of interest in the positioning image; affecting imaging means that it affects the detector 20 from receiving radiation.

[0146] For example, the person being tested wears a necklace or other metal object.

[0147] In some embodiments, step S110 displays the positioning image, receives a foreign body selection instruction from a user (e.g., a technician) on the positioning image, and determines the foreign body that affects the imaging in the image. For example, the positioning image is displayed on the display function component, and the technician determines the foreign body on the positioning image by inputting an area selection instruction on the positioning image (e.g., clicking on the positioning image using a tool such as a mouse).

[0148] In some embodiments, step S110 automatically identifies foreign matter that affects imaging from the positioning image based on algorithms such as machine learning.

[0149] The above are some explanations of the positioning focus items.

[0150] Step S120: Calculate the position matching degree based on the positioning focus item.

[0151] The position matching degree is used to indicate the matching degree, overlap degree or difference degree between two regions. In some embodiments, the position matching degree includes: the position matching degree between the region of interest and the imaging surface region, and / or the position matching degree between the region of interest and the irradiation field region, and / or the position matching degree between the imaging surface region and the irradiation field region.

[0152] The position matching degree between the region of interest and the imaging surface area may include: the position difference between the centers of the region of interest and the imaging surface area; and / or the degree of overlap between the ranges of the region of interest and the imaging surface area, such as the distance value between the corresponding boundaries of the two.

[0153] The position matching degree between the region of interest and the irradiation field area may include: the position difference between the centers of the region of interest and the irradiation field area; and / or the degree of overlap between the ranges of the region of interest and the irradiation field area, such as the distance value between their corresponding boundaries.

[0154] The position matching degree between the imaging surface area and the irradiation field area may include: the position difference between the centers of the imaging surface area and the irradiation field area; and / or the overlap degree between the imaging surface area and the irradiation field area, such as the distance value between the corresponding boundaries of the two.

[0155] Step S130: displaying at least one of the positioning concern item and the position matching degree. For example, displaying at least one of the positioning concern item and the position matching degree by displaying a functional component.

[0156] For example, step S130 displays the area of ​​interest, the imaging surface area, the irradiation field area, the position matching degree, the body position of the subject presented by the positioning image, the body position of the subject to be photographed, the detection field area, the positioning requirements associated with the body position of the subject to be photographed, the current posture information of the subject associated with the positioning requirements, and one or more of foreign objects through the display screen 50.

[0157] For example, step S130 displays the area of ​​interest, the imaging surface area, the irradiation field area, the position matching degree, the body position of the subject presented by the positioning image, the body position of the subject to be photographed, the detection field area, the positioning requirements associated with the body position of the subject to be photographed, the current posture information of the subject associated with the positioning requirements, and one or more of foreign objects through the computer display.

[0158] In some embodiments, the region of interest may be displayed by displaying a schematic diagram, such as an area defined by lines. In some embodiments, the region of interest may be displayed in the form of text and coordinates; for example, the coordinates of the position of the center of the region of interest, the coordinates of the four corners of the region of interest (when the region of interest is a rectangle) are displayed.

[0159] In some embodiments, the imaging surface area can be displayed by displaying a schematic diagram, such as an area defined by lines. In some embodiments, the imaging surface area can be displayed in the form of text and coordinates; for example, the coordinates of the position of the center of the imaging surface area and the coordinates of the four corners of the imaging surface area are displayed.

[0160] In some embodiments, the irradiation field area can be displayed by displaying a schematic diagram, such as an area defined by lines. In some embodiments, the irradiation field area can be displayed in the form of text and coordinates; for example, the coordinates of the position of the center of the irradiation field area and the coordinates of the four corners of the irradiation field area are displayed.

[0161] It can be understood that when coordinates are used to display areas such as areas of interest, imaging surface areas, and irradiation field areas, the origin of the coordinate system is the same. For example, these areas can be displayed in the same image, and then a coordinate system can be established with the center of the image, or a point in the lower left corner of the image, or a point in the upper left corner of the image as the origin.

[0162] In some embodiments, the area defined by the lines may be marked with deviation dimensions to display the position matching degree; the deviation dimensions include one or more of the deviation dimensions of the boundary, the deviation dimensions of the corner points, and the deviation dimensions of the center.

[0163] For example, in the case where the region of interest and the imaging surface area are displayed by the area defined by lines, the position matching degree of the region of interest and the imaging surface area is displayed by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the corresponding boundaries of the region of interest and the imaging surface area, the deviation size of the corresponding corner points of the region of interest and the imaging surface area, and the deviation size of the center of the region of interest and the imaging surface area.

[0164] For another example, in the case where the region of interest and the irradiation field area are displayed by areas defined by lines, the position matching degree of the region of interest and the irradiation field area is displayed by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the corresponding boundaries of the region of interest and the irradiation field area, the deviation size of the corresponding corner points of the region of interest and the irradiation field area, and the deviation size of the center of the region of interest and the irradiation field area.

[0165] For another example, in the case where the imaging surface area and the irradiation field area are displayed by the area defined by lines, the position matching degree of the imaging surface area and the irradiation field area is displayed by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the corresponding boundaries of the imaging surface area and the irradiation field area, the deviation size of the corresponding corner points of the imaging surface area and the irradiation field area, and the deviation size of the center of the imaging surface area and the irradiation field area.

[0166] In some embodiments, the position matching degree can be displayed in the form of text and coordinates. For example, for the position matching degree of the region of interest and the imaging surface area, the coordinates of the centers of the two are obtained, and the position difference of the centers of the two is calculated to form a new coordinate; for example, the coordinates of the center of the region of interest are (x1, y1), and the coordinates of the center of the imaging surface area are (x2, y2), then the position difference of the centers of the two is calculated to form a new coordinate (x1-x2, y1-y2), and the difference in the coordinates of the corresponding angles of the region of interest and the imaging surface area can also be calculated to form a new coordinate to represent the position matching degree of the two; the position matching degree of the region of interest and the irradiation field area, and the position matching degree of the imaging surface area and the irradiation field area are similar, and will not be repeated here.

[0167] In some embodiments, the body position of the subject presented by the positioning image may be displayed by text.

[0168] In some embodiments, the body position of the subject to be photographed may be displayed by text.

[0169] In some embodiments, the detection field area can be displayed by displaying a schematic diagram, such as an area defined by lines. In some embodiments, the detection field area can be displayed in the form of text and coordinates; for example, the coordinates of the center of the detection field area and the coordinates of the four corners of the detection field area are displayed.

[0170] In some embodiments, the positioning requirements associated with the subject's body position to be photographed may be displayed via graphics and / or text.

[0171] In some embodiments, the current posture information of the subject associated with the positioning requirement may be displayed in text.

[0172] In some embodiments, foreign matter that affects the imaging may be displayed by text or graphics. It is understandable that the foreign matter is displayed only when there is a foreign matter.

[0173] In some embodiments, step S130 generates and displays a positioning quality control image, and the positioning quality control image includes an auxiliary image. The auxiliary image can be a positioning image or a schematic image obtained based on the positioning image. The schematic image obtained based on the positioning image can be, for example, obtaining the contours of the subject and the detector on the basis of the positioning image, and then displaying an image with the contours of the subject and the detector as the above-mentioned schematic image. In some embodiments, the positioning quality control image includes one or more of the positioning focus items. In some embodiments, the positioning quality control image includes a position matching degree. In some embodiments, the positioning quality control image includes the subject's body position to be photographed.

[0174] For example, one or more of the region of interest, the imaging surface region, the irradiation field region, and the detection field region are displayed by superimposing a schematic graphic on the auxiliary image; in some embodiments, the schematic graphic includes a region defined by lines. In order to distinguish different regions (e.g., the region of interest, the imaging surface region, and the irradiation field region, etc.), different regions can be defined by lines of different types and / or different colors. The type of line refers to a solid line, a dotted line, and the like.

[0175] Furthermore, the position matching degree can be displayed on the positioning quality control image by marking the deviation size of the area defined by the lines.

[0176] In some embodiments, when there is a foreign object that affects the imaging, the foreign object can be displayed by drawing or circling the foreign object on the auxiliary image included in the positioning quality control image.

[0177] In some embodiments, step S130 displays at least one of the positioning concern item and the position matching degree by projection. For example, step S130 displays the region of interest by projection onto the subject, wherein the region of interest displayed by projection is consistent with the position of the actual region of interest of the subject. For example, step S130 displays the imaging surface area by projection onto the subject, wherein the imaging surface area displayed by projection is consistent with the position of the actual imaging surface area of ​​the detector. For example, step S130 displays the irradiation field area by projection onto the subject, wherein the irradiation field area displayed by projection is consistent with the position of the actual irradiation field area of ​​the radiation source. For example, step S130 displays the detection field area by projection onto the subject, wherein the detection field area displayed by projection is consistent with the position of the actual detection field area of ​​the dose estimation unit. For example, step S130 displays the position matching degree by projection onto the subject.

[0178] In the example of displaying some positioning focus items by projection, it can be understood that the processor 30 can send the projection information to the projection device connected to the device, or the device itself can include the projection device.

[0179] In some embodiments, the technician can select the body position of the subject to be photographed on the human-computer interaction interface. Fig.11 In some embodiments, the radioactive ray imaging method further includes step S180: displaying the subject's photographable body positions on the human-computer interaction interface; and step S190: determining the subject's to-be-photographed body position from the photographable body positions in response to an instruction to select the photographable body positions.

[0180] Please refer to Fig.12 In some embodiments, the radioactive ray imaging method may further include step S140: motion detection after positioning. Step S140: acquiring a positioning image after positioning is completed, determining whether the subject is moving based on the positioning image after positioning is completed and the positioning image acquired thereafter, and generating prompt information for indicating the motion state if the subject is moving.

[0181] For example, step S140 identifies the positions of features (such as contours and key points, etc.) in the image based on the positioning images of different frames, and compares their position changes in the positioning images of different frames, so as to obtain the moving distance and moving speed, and then form a moving trajectory, etc.; it can also determine the difference between the matching pixel points in a certain area of ​​the image in a time period, and then obtain the moving distance and speed, etc.

[0182] Please refer to Fig.13In some embodiments, the method of radioactive ray imaging may further include step S150: generating and outputting a guidance item. For example, step S150 generates a guidance item based on the positioning concern item and / or the position matching degree, and outputs the guidance item. In some embodiments, the guidance item is a prompt for guiding the subject. In some embodiments, the guidance item includes at least one of the following: guiding the subject to move so that the range and / or position of the region of interest and the imaging surface area meet the requirements; guiding the subject to move so that the range and / or position of the region of interest and the irradiation field area meet the requirements; guiding the positioning posture of the subject so that the body position of the subject is the body position to be photographed of the subject; guiding the positioning posture of the subject so that the current posture information of the subject meets the posture required by the positioning requirements associated with the body position to be photographed of the subject.

[0183] The guidance item may be outputted by display and / or voice playback.

[0184] In some embodiments, the positioning image is an image acquired in real time, and when the positioning image changes, the positioning focus items and the position matching degree are updated in real time.

[0185] In some embodiments of the present invention, a method for radioactive ray imaging is provided, in which, before taking a radiographic image of a subject, an image of the subject at a shooting position between a detector and a radiation source is obtained through a camera, and based on the image, items of concern such as the subject's area of ​​interest, the imaging surface area of ​​the detector, the irradiation field area of ​​the radiation source, the detection field area of ​​the dose estimation unit, the subject's body position presented in the positioning image, the positioning requirements, the subject's current posture information associated with the positioning requirements, and foreign objects that affect imaging are identified and displayed on a component with a display function; a technician can determine whether the positioning needs to be readjusted and how to adjust the positioning based on the above-identified positioning items of concern. Furthermore, after confirming that the positioning is complete, the device determines whether the subject is moving by comparing the positioning image captured by the real-time camera, and issues a prompt.

[0186] Here are some examples.

[0187] Please refer to Figure 14(a), which is a schematic diagram of a positioning image. The chest of the subject is close to the detector 20 and is located at the shooting position between the detector 20 and the radiation source 10 (not shown in the figure). Figure 14(b) is an example of a positioning quality control image 100. The positioning quality control image 100 includes an auxiliary image, which is the positioning image or its schematic diagram; the region of interest, imaging surface area, irradiation field area and detection field area are superimposed on the auxiliary image, wherein the area 01 defined by the solid line frame represents the region of interest, the area 02 defined by the dotted dashed line frame represents the imaging surface area of ​​the detector 20, the area 03 defined by the linear dashed line frame represents the irradiation field area of ​​the radiation source 10, and the gray-filled rectangular area 04 represents the detection field area of ​​the dose estimation unit 23. The figure shows three detection field areas of the dose estimation units 23; in the positioning quality control image Image 100 also displays the body position of the subject presented in the positioning image, the body position to be photographed of the subject, the position matching degree, the positioning requirements and the current posture information of the subject associated with the positioning requirements; wherein the item "body position in the image" refers to the body position of the subject presented in the positioning image, and the item "body position to be photographed" refers to the body position of the subject that actually needs to be tested, for example, the body position to be photographed selected by the technician for the subject through the human-computer interaction interface; in the positioning quality control image 100, the "center difference (120,30)" between the region of interest and the imaging surface area refers to the difference in coordinates between the center of the region of interest and the imaging surface area. The coordinate difference of the X-axis is 120, and the coordinate difference of the Y-axis is 30, both in millimeters. The "edge gap (54, 60, 184, 20)" between the region of interest and the imaging surface area refers to the distance between the corresponding boundaries of the region of interest and the imaging surface area. Since the two are rectangular in the figure, there are four corresponding boundaries: top, bottom, left, and right. Therefore, the edge / boundary gaps are 54, 60, 184, and 20, respectively, and the units are all millimeters. Similarly, in the positioning quality control image 100, the "center gap (120, 30)" between the region of interest and the irradiation field area refers to the difference in coordinates of the centers of the region of interest and the irradiation field area. The coordinate difference of the X-axis is 120, and the coordinate difference of the Y-axis is 30, both in millimeters; the "edge gap (54, 60, 184, 10)" between the region of interest and the irradiation field area refers to the distance between the corresponding boundaries of the region of interest and the irradiation field area. Since the two are rectangular in the figure, there are four corresponding boundaries: top, bottom, left, and right, so the edge / boundary gaps are 80, 30, 133, and 10, respectively, and the units are all in millimeters; it should be noted that these values ​​in the figure are only used for schematic examples; in the positioning quality control image 100, the "current positioning posture" item refers to the current posture information of the subject associated with the positioning requirement.

[0188] Fig.15Another example of the positioning quality control image 100 is shown. On the positioning image included in the positioning quality control image 100, the region of interest, the imaging surface region and the irradiation field region are displayed by the region defined by the lines, and the position matching degree is displayed by marking the deviation size of the region defined by the lines. It can be seen in the figure that the person being tested stands directly in front of the detector 20. There are two upper dotted boxes in the figure. The small dotted box represents the irradiation field region, the large dotted box represents the imaging surface region, and the solid box represents the region of interest. It can be seen in the figure that the center positions of the irradiation field region and the imaging surface region coincide, and the center position of the region of interest is 120 mm away from the center positions of the two, the left boundary of the region of interest is 54 mm away from the left boundary of the imaging surface region, and the left boundary of the region of interest is 104 mm away from the left boundary of the irradiation field region.

[0189] Fig.16 This is an example of displaying positioning requirements. The positioning requirements can be explained by displaying a standard positioning diagram and providing text descriptions.

[0190] FIG17(a) and FIG17(b) are two examples of motion detection after positioning in step S140. In FIG17(a), an image of the correct posture after positioning is completed is obtained and displayed, and then the real-time positioning image can be displayed separately or simultaneously, and motion detection is performed, and the corresponding motion information is displayed next to the real-time positioning image, including displacement and / or speed, such as the horizontal displacement and vertical displacement of the subject (the unit can be millimeters), and the motion speed of the subject, such as the horizontal speed and vertical speed of the subject. FIG17(b) is similar to FIG17(a). In addition to displaying the motion information such as the displacement and speed of the subject next to the real-time positioning image, this information can also be displayed on the subject, for example, by using arrows on the subject to indicate the direction of displacement and speed, and marking the corresponding speed and displacement information.

[0191] Fig.18 This is an example of displaying the positioning focus item by projection. In the figure, the region of interest is directly projected onto the subject, and the region of interest displayed by the projection is consistent with the position of the actual region of interest of the subject.

[0192] This document is described with reference to various exemplary embodiments. However, those skilled in the art will recognize that changes and modifications may be made to the exemplary embodiments without departing from the scope of this document. For example, various operating steps and components for performing the operating steps may be implemented in different ways (e.g., one or more steps may be deleted, modified, or incorporated into other steps) depending on the specific application or considering any number of cost functions associated with the operation of the system.

[0193] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. In addition, as understood by those skilled in the art, the principles of this article can be reflected in a computer program product on a computer-readable storage medium, which is pre-installed with a computer-readable program code. Any tangible, non-temporary computer-readable storage medium can be used, including magnetic storage devices (hard disks, floppy disks, etc.), optical storage devices (CD to ROM, DVD, Blu Ray disks, etc.), flash memory and / or the like. These computer program instructions can be loaded onto a general-purpose computer, a special-purpose computer or other programmable data processing device to form a machine, so that these instructions executed on a computer or other programmable data processing device can generate a device that implements a specified function. These computer program instructions can also be stored in a computer-readable memory, which can instruct a computer or other programmable data processing device to operate in a specific manner, so that the instructions stored in the computer-readable memory can form a manufactured product, including an implementation device that implements a specified function. Computer program instructions can also be loaded onto a computer or other programmable data processing device, so that a series of operating steps are performed on a computer or other programmable device to generate a computer-implemented process, so that the instructions executed on a computer or other programmable device can provide steps for implementing a specified function.

[0194] Although the principles of this invention have been shown in various embodiments, many modifications of structures, arrangements, proportions, elements, materials and components particularly suitable for specific environments and operational requirements can be used without departing from the principles and scope of this invention. The above modifications and other changes or amendments will be included in the scope of this invention.

[0195] The foregoing specific description has been described with reference to various embodiments. However, those skilled in the art will recognize that various modifications and changes can be made without departing from the scope of the present disclosure. Therefore, the consideration of the present disclosure will be illustrative rather than restrictive, and all these modifications will be included in its scope. Similarly, the advantages, other advantages and solutions to the problems of various embodiments have been described above. However, the benefits, advantages, solutions to the problems and any elements that can produce these, or make them more clear, should not be interpreted as critical, necessary or necessary. The term "include" and any other variants used in this article are all non-exclusive inclusions, so that the process, method, article or device including the list of elements not only includes these elements, but also includes other elements that are not explicitly listed or do not belong to the process, method, system, article or device. In addition, the term "coupled" and any other variants used in this article refer to physical connections, electrical connections, magnetic connections, optical connections, communication connections, functional connections and / or any other connections.

[0196] Those skilled in the art will appreciate that many changes may be made to the details of the above-described embodiments without departing from the basic principles of the invention. Therefore, the scope of the present invention should be determined solely by the claims.

Claims

1. A method for radioactive ray imaging, applied to a radioactive ray imaging device, characterized in that: The method comprises: Displaying the photographic body positions of the subject on the human-computer interaction interface; In response to an instruction for selecting the photographable body positions, determining a body position of the subject to be photographed from the photographable body positions; Acquire a positioning image, wherein the positioning image is an image of the subject at a shooting position between the radiation source and the detector; Acquiring positioning focus items on the image based on the positioning image, the positioning focus items including the region of interest of the subject, the imaging surface area of ​​the detector, the irradiation field area of ​​the radiation source irradiating the subject, and the body position of the subject presented by the positioning image; Calculating a position matching degree based on the positioning focus item, the position matching degree including: a position matching degree between the region of interest and the imaging surface area, and a position matching degree between the region of interest and the irradiation field area; The region of interest, the imaging surface area, the irradiation field area, the position matching degree, the body position of the subject presented by the positioning image, and the body position of the subject to be photographed are displayed.

2. The method according to claim 1, characterized in that The positioning focus items also include a detection field area of ​​a dose estimation unit; the method also includes displaying the detection field area.

3. The method according to claim 1 or 2, characterized in that Based on the setup image, the setup focus items and the position matching degree, a setup quality control image is generated and displayed; the setup quality control image includes an auxiliary image, and includes the region of interest, the imaging surface area, the irradiation field area and the position matching degree; the auxiliary image is the setup image or a schematic image obtained based on the setup image; Preferably, the positioning quality control image further includes the body position of the subject presented by the positioning image and / or the body position of the subject to be photographed.

4. The method according to claim 3, characterized in that The positioning quality control image displays the region of interest, the imaging surface area and the irradiation field area by superimposing a schematic diagram on the auxiliary image contained therein; preferably, the schematic diagram includes an area defined by lines.

5. The method according to claim 4, characterized in that The position matching degree is displayed on the positioning quality control image by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the boundary, the deviation size of the corner point and the deviation size of the center.

6. The method according to claim 4, characterized in that The positioning quality control image is superimposed on the auxiliary image contained therein to display the detection field area.

7. The method according to claim 3, characterized in that The region of interest, the imaging surface area and the irradiation field area are displayed in the positioning quality control image in the form of text and coordinates; and / or the position matching degree is displayed in the form of text and coordinates in the positioning quality control image.

8. The method according to claim 1, characterized in that The acquiring of the positioning focus items on the image based on the positioning image includes: displaying the positioning image, and receiving a region selection instruction from a user on the positioning image to determine the region of interest; or, identifying an anatomical structure associated with the body position to be photographed of the subject from the positioning image, and generating the region of interest based on the anatomical structure.

9. The method according to claim 1, characterized in that The positioning focus item also includes current posture information of the detected person associated with the positioning requirement; the method also includes displaying the current posture information of the detected person associated with the positioning requirement.

10. The method according to claim 9, characterized in that The acquiring the positioning focus item on the image based on the positioning image includes: Acquiring a positioning requirement associated with the body position to be photographed of the subject; Identifying, from the positioning image, an anatomical structure associated with the body position to be photographed of the subject; Based on the positioning requirement and the identified anatomical structure, current posture information of the subject associated with the positioning requirement is determined.

11. The method according to claim 1, characterized in that The method further includes: acquiring and displaying a positioning requirement associated with the body position of the subject to be photographed.

12. The method according to claim 1, characterized in that The positioning concern items also include foreign matter that affects imaging; the method also includes displaying the foreign matter when the foreign matter exists.

13. The method according to claim 12, characterized in that The acquiring of the positioning focus items on the image based on the positioning image includes: displaying the positioning image, receiving a foreign body selection instruction from a user on the positioning image, and determining the foreign body that affects imaging in the image; or automatically identifying the foreign body that affects imaging from the positioning image.

14. The method according to claim 1, wherein: The method further includes: acquiring a positioning image after the positioning is completed, determining whether the subject is moving based on the positioning image after the positioning is completed and a positioning image acquired thereafter, and if moving, generating prompt information for indicating the moving state.

15. The method according to claim 1 or 2, characterized in that: Displaying the region of interest by projecting onto the subject, wherein the region of interest displayed by projection is consistent with the position of the actual region of interest of the subject; and / or, Displaying the imaging surface area by projecting onto the subject, wherein the imaging surface area displayed by projection is consistent with the position of the actual imaging surface area of ​​the detector; and / or, The irradiation field area is displayed by projecting onto the subject, wherein the irradiation field area displayed by the projection is consistent with the position of the actual irradiation field area of ​​the radiation source; and / or, Displaying the detection field area by projecting it onto the subject, wherein the detection field area displayed by the projection is consistent with the position of the actual detection field area of ​​the dose estimation unit; and / or, The position matching degree is displayed by projecting onto the detected person.

16. The method according to any one of claims 1 to 15, characterized in that The positioning image is an image acquired in real time. When the positioning image changes, the positioning focus item and the position matching degree are updated in real time.

17. The method according to any one of claims 1 to 15, characterized in that The device has a display screen, and the method includes: displaying, through the display screen, the region of interest, the imaging surface area, the irradiation field area, the position matching degree, the body position of the subject presented by the positioning image, the body position of the subject to be photographed, the detection field area, the positioning requirement associated with the body position of the subject to be photographed, the current posture information of the subject associated with the positioning requirement, and one or more of the foreign matter.

18. The method according to any one of claims 1 to 15, characterized in that The method further includes generating a guidance item based on the positioning concern item and / or the position matching degree, and outputting the guidance item; the guidance item is a prompt for guiding the subject; preferably, the guidance item includes at least one of the following: Guiding the subject to move so that the range and / or position of the region of interest and the imaging surface area meet the requirements; guiding the subject to move so that the range and / or position of the region of interest and the irradiation field area meet the requirements; Guiding the subject to position the posture so that the subject's body position is the subject's body position to be photographed; The positioning posture of the detected person is guided so that the current posture information of the detected person meets the posture required by the positioning requirement associated with the body position to be photographed of the detected person.

19. A method of radioactive ray imaging, characterized in that: include: Acquire a positioning image, wherein the positioning image is an image of the subject at a shooting position between the radiation source and the detector; Acquire positioning focus items on the image based on the positioning image, the positioning focus items including one or more of the subject's region of interest, the imaging surface area of ​​the detector, the irradiation field area of ​​the radiation source irradiating the subject, the detection field area of ​​the dose estimation unit, the subject's body position presented by the positioning image, the positioning requirement, the subject's current posture information associated with the positioning requirement, and foreign matter affecting imaging; Calculating a position matching degree based on the positioning focus item, the position matching degree including: a position matching degree between the region of interest and the imaging surface area, and / or a position matching degree between the region of interest and the irradiation field area, and / or a position matching degree between the imaging surface area and the irradiation field area; At least one of the positioning focus item and the position matching degree is displayed.

20. The method of claim 19, wherein: The displaying of the positioning concern items includes: generating and displaying a positioning quality control image, the positioning quality control image including an auxiliary image, the positioning quality control image also including the positioning concern items and / or the position matching degree; wherein the auxiliary image is the positioning image or a schematic image obtained based on the positioning image.

21. The method of claim 20, wherein: The positioning quality control image displays the region of interest, the imaging surface area and the irradiation field area by superimposing a schematic diagram on the auxiliary image contained therein; preferably, the schematic diagram includes an area defined by lines; and / or, displaying the region of interest, the imaging surface area and the irradiation field area in the positioning quality control image in the form of text and coordinates; And / or, the position matching degree is displayed in the positioning quality control image in the form of text and coordinates.

22. The method according to claim 21, characterized in that The position matching degree is displayed on the positioning quality control image by marking the deviation size of the area defined by the lines, and the deviation size includes one or more of the deviation size of the boundary, the deviation size of the corner point and the deviation size of the center.

23. The method of claim 19, wherein: The acquiring of the positioning focus items on the image based on the positioning image includes: displaying the positioning image, and receiving a region selection instruction from a user on the positioning image to determine the region of interest; or, identifying an anatomical structure associated with the body position to be photographed of the subject from the positioning image, and generating the region of interest based on the anatomical structure.

24. The method of claim 19, wherein: The acquiring the positioning focus item on the image based on the positioning image includes: Acquiring a positioning requirement associated with the body position to be photographed of the subject; Identifying, from the positioning image, an anatomical structure associated with the body position to be photographed of the subject; Based on the positioning requirement and the identified anatomical structure, current posture information of the subject associated with the positioning requirement is determined.

25. The method of claim 19, wherein: The method further includes: acquiring a positioning image after the positioning is completed, determining whether the subject is moving based on the positioning image after the positioning is completed and a positioning image acquired thereafter, and if moving, generating prompt information for indicating the moving state.

26. The method of claim 19, wherein: The displaying of the positioning focus item includes: displaying by projection, wherein: Displaying the region of interest by projecting onto the subject, wherein the region of interest displayed by projection is consistent with the position of the actual region of interest of the subject; and / or, Displaying the imaging surface area by projecting onto the subject, wherein the imaging surface area displayed by projection is consistent with the position of the actual imaging surface area of ​​the detector; and / or, The irradiation field area is displayed by projecting onto the subject, wherein the irradiation field area displayed by the projection is consistent with the position of the actual irradiation field area of ​​the radiation source; and / or, Displaying the detection field area by projecting it onto the subject, wherein the detection field area displayed by the projection is consistent with the position of the actual detection field area of ​​the dose estimation unit; and / or, The position matching degree is displayed by projecting onto the detected person.

27. The method of claim 19, wherein: The positioning image is an image acquired in real time, and when the positioning image changes, the positioning focus item is updated in real time.

28. The method according to any one of claims 19 to 27, characterized in that The method further includes generating a guidance item based on the positioning concern item and / or the position matching degree, and outputting the guidance item; the guidance item is a prompt for guiding the subject; preferably, the guidance item includes at least one of the following: Guiding the subject to move so that the range and / or position of the region of interest and the imaging surface area meet the requirements; guiding the subject to move so that the range and / or position of the region of interest and the irradiation field area meet the requirements; Guiding the subject to position the posture so that the subject's body position is the subject's body position to be photographed; The positioning posture of the detected person is guided so that the current posture information of the detected person meets the posture required by the positioning requirement associated with the body position to be photographed of the detected person.

29. A radioactive ray imaging device, characterized in that: include: A radiation source, used for emitting radioactive rays to the person being tested; A detector for receiving radioactive rays transmitted through the subject; as well as, A processor for executing the method according to any one of claims 1 to 28.