Imaging system and radiotherapy system
By fixing the radiation source and detector in the imaging system and adjusting the angle and position of the radiation source in combination with the movement of the diagnostic bed, the equipment complexity and angle fixation problems of the dual-flat-panel orthogonal imaging system are solved, and real-time multi-angle target area monitoring and high-precision imaging are achieved.
Patent Information
- Application Number
- CN202422670076.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-01
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-11-01
AI Technical Summary
The existing dual-flat panel orthogonal imaging system is complex, occupies a large space, has a fixed angle, is difficult to achieve multi-view imaging, cannot meet rapidly changing diagnostic needs, and has high requirements for the target object's body position.
The imaging system adopts a relatively fixed setting of the radiation source and the detector. The number and angle of the radiation source are adjustable. Combined with the movement of the diagnosis and treatment bed, real-time multi-angle monitoring of the target area is achieved. Multi-angle imaging is achieved by adjusting the central axis angle and installation position of the radiation source.
The device structure is simplified, imaging time is reduced, imaging accuracy and comprehensiveness are improved, the requirements for the target object's position are reduced, and real-time multi-angle target area monitoring is achieved to ensure treatment accuracy.
Smart Images

Figure CN223404293U_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to the medical field, in particular to the field of target imaging technology, and specifically to an imaging system and a radiotherapy system. Background Art
[0002] With the rapid development of computer and imaging technologies, image-guided therapy has played an increasingly important role in improving the precision of radiotherapy. These technologies improve the local control rate of tumors and reduce the radiation dose to surrounding normal tissues, thereby reducing damage to normal tissues.
[0003] In order to overcome positioning errors caused by organ movement (such as breathing) and changes in the position of the target object, and to accurately find tumor tissue, real-time or near-real-time imaging technology is used to locate the tumor during treatment, thereby reducing damage to healthy tissue and improving treatment efficacy.
[0004] Currently available image-guided imaging technologies mainly include cone-beam CT imaging, dual-panel orthogonal imaging, and magnetic resonance imaging. Dual-panel orthogonal imaging is quasi-three-dimensional imaging with low imaging dose and fast imaging speed. However, the existing dual-panel orthogonal system requires two detectors located on either side of the target object and two radiation sources arranged opposite the two detectors, which increases the complexity of the equipment and takes up a large amount of space. In terms of angle, the existing dual-panel orthogonal imaging system has a fixed angle, which not only limits the imaging angle, making it difficult to obtain multi-perspective information in complex anatomical structures, but also has a limited field of view, making it impossible to fully observe large lesions or anatomical areas, and easily miss important peripheral information, thus affecting the accuracy of diagnosis. In addition, because the angle of the existing dual-panel orthogonal imaging system cannot be adjusted, it lacks multi-angle real-time imaging support and cannot meet certain rapidly changing diagnostic needs. Moreover, when using the existing dual-panel orthogonal imaging system for imaging, the target object needs to maintain a specific posture more accurately, which places high demands on the target object's body position. Utility Model Content
[0005] The present disclosure provides an imaging system and a radiotherapy system. The imaging system of the present disclosure can reduce the complexity of the equipment, and can quickly and accurately obtain an image of the target area of a target object in motion, and can realize real-time, multi-angle monitoring of the position of the target area of the target object.
[0006] To achieve the above objectives, the present disclosure adopts the following technical solutions:
[0007] In a first aspect, the present disclosure provides an imaging system for imaging a target object, comprising:
[0008] a ray source, for emitting a beam toward a target object;
[0009] a detector, arranged opposite to the ray source;
[0010] A diagnostic bed, located between the radiation source and the detector, fixed relative to the detector, and used to carry and drive the target object to move;
[0011] During the movement of the diagnostic and treatment bed, the beam emitted by the ray source always partially or completely overlaps with the target area of the target object, and the beam passing through the target area of the target object can be received by the detector.
[0012] In some embodiments, there may be multiple ray sources.
[0013] Preferably, central axes of beams from the plurality of ray sources intersect at an imaging point.
[0014] Preferably, the angle formed between the central axes of the beams of the multiple ray sources, the installation positions, arrangement directions and excitation sequences of the multiple ray sources can all be adjusted.
[0015] Preferably, the plurality of ray sources are arranged along the head-to-foot direction of the target object.
[0016] In some embodiments, the linear distance between the detector and the radiation source is adjustable.
[0017] In some embodiments, the diagnostic and treatment bed includes a bed board and a bed base, the bed board is fixed on the bed base, and the positions of the bed board and the detector are relatively fixed.
[0018] Preferably, the detector is arranged on the bed board.
[0019] In some embodiments, the bed plate and the detector can respectively reciprocate along the X-axis, the Y-axis and the Z-axis in the IEC coordinate system.
[0020] In some embodiments, the imaging system may further include: an imaging control processing device, which is capable of controlling the imaging system as described above to perform imaging based on an imaging mode selected by a user.
[0021] Preferably, the imaging method may include tomography, KV imaging or CBCT imaging.
[0022] In some embodiments, the size of the detector can be selected according to actual conditions. Preferably, the size of the detector is sufficient to cover the target area of the target object.
[0023] In a second aspect, the present disclosure provides a radiotherapy system, comprising: the imaging system as described above; and radiotherapy equipment.
[0024] In some embodiments, the area where the beam emitted by the ray source overlaps with the target area of the target object and the treatment area of the radiotherapy device always partially or completely overlap.
[0025] In some embodiments, during the movement of the diagnosis and treatment bed from the setup reference point of the radiotherapy device to the radiotherapy isocenter, the imaging system monitors the position of the target area of the target object, and the imaging point of the imaging system moves along the line connecting the setup reference point and the radiotherapy isocenter;
[0026] The line connecting the positioning reference point and the radiotherapy isocenter is parallel to the X-axis, Y-axis or Z-axis in the IEC coordinate system of the radiotherapy equipment.
[0027] In the imaging system provided by the present invention, the positions of the detector and the treatment bed are relatively fixed, which can achieve the purpose of reducing equipment complexity, saving space and lowering operational difficulty. In addition, during the movement of the treatment bed, the beam emitted by the radiation source always partially or completely overlaps with the target area of the target object, and the beam passing through the target area of the target object can be received by the detector. This can eliminate the problem of frequent movement or angle adjustment of the detector in the traditional double-plate orthogonal system, simplify the imaging operation and reduce the imaging time, and can quickly and accurately obtain an image of the target area of the target object in motion, and can realize real-time, multi-angle monitoring of the position of the target area of the target object.
[0028] On this basis, the ray sources can be arranged along the head and feet direction of the target object, which can effectively reduce the imaging blind area, improve the comprehensiveness of imaging, and reduce the requirements for the target object's body position; when there are multiple ray sources, multi-ray source tomographic imaging can be achieved by adjusting the angle formed between the central axes of the beams of multiple ray sources, the installation positions, arrangement directions and excitation sequences of multiple ray sources. Tomographic imaging can image the target area of the target object from different angles and improve the accuracy and detail display of the three-dimensional image; further, during the treatment process, the detector and the ray source can cooperate with each other to adjust the angle formed by the central axes of the multiple ray sources, the installation positions and arrangement directions of the multiple ray sources in real time according to the changes in the straight-line distance between the detector and the ray source, so as to realize real-time, multi-angle monitoring of the position of the target area of the target object and ensure the accuracy of treatment. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The accompanying drawings are provided to facilitate a better understanding of the present invention and do not constitute a limitation of the present disclosure.
[0030] Figure 1 A schematic diagram of a scene of an imaging system provided in an embodiment of the present disclosure.
[0031] Figure 2A schematic diagram of a radiotherapy system according to an embodiment of the present disclosure.
[0032] Figure 3 A schematic structural diagram of a radiotherapy system provided in an embodiment of the present disclosure.
[0033] Figure 4 A schematic diagram of a real-time imaging scenario provided by an embodiment of the present disclosure.
[0034] Figure 5 A schematic block diagram of an electronic device provided in an embodiment of the present disclosure. DETAILED DESCRIPTION
[0035] The following will be combined with the accompanying drawings in the embodiments of the present disclosure to clearly and completely describe the technical solutions in the embodiments of the present disclosure. Obviously, the embodiments described are only part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments of the present disclosure, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present disclosure.
[0036] The term "and / or" in this article is merely a description of the association relationship between associated objects, indicating that three relationships may exist. For example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone.
[0037] In the description herein, it should be understood that the terms "center," "length," "width," "upper," "lower," and the like, indicating positions or locations, are based on the positions or locations shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present disclosure. They are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present disclosure. In the description of the present disclosure, "plurality" means two or more, unless otherwise expressly and specifically defined.
[0038] In the description of this disclosure, the word "exemplary" is used to mean "serving as an example, illustration, or illustration." Any embodiment described in this disclosure as "exemplary" is not necessarily to be construed as being preferred or advantageous over other embodiments. The following description is given to enable any person skilled in the art to implement and use the present disclosure. In the following description, details are listed for the purpose of explanation. It should be understood that one of ordinary skill in the art will recognize that the present disclosure can be implemented without using these specific details. In other instances, well-known structures and processes are not elaborated in detail to avoid obscuring the description of the present disclosure with unnecessary details. Therefore, the present disclosure is not intended to be limited to the embodiments shown, but is to be consistent with the widest scope consistent with the principles and features disclosed herein.
[0039] It should be noted that since the method of the embodiment of the present disclosure is executed in an imaging control processing device, the processing objects of each imaging control processing device exist in the form of data or information. For example, time is actually time information. It can be understood that if size, quantity, position, etc. are mentioned in subsequent embodiments, the corresponding data exists so that the imaging control processing device can process them. The details will not be repeated here.
[0040] With the rapid development of computer and imaging technologies, image-guided therapy has played an increasingly important role in improving the precision of radiotherapy. These technologies have improved the local control rate of tumors and reduced the radiation dose to surrounding normal tissues, thereby reducing damage to normal tissues.
[0041] In order to overcome positioning errors caused by factors such as organ movement (such as breathing) and changes in the position of the target object, and accurately find tumor tissue, real-time or near-real-time imaging technology is used to locate the tumor during treatment, thereby reducing damage to healthy tissue and improving treatment efficacy.
[0042] Currently available image-guided imaging technologies mainly include cone-beam CT imaging, dual-panel orthogonal imaging, and magnetic resonance imaging. Dual-panel orthogonal imaging is quasi-three-dimensional imaging with low imaging dose and fast imaging speed. However, the existing dual-panel orthogonal system requires two detectors located on either side of the target object and two radiation sources arranged opposite the two detectors, which increases the complexity of the equipment and takes up a large amount of space. In terms of angle, the existing dual-panel orthogonal imaging system has a fixed angle, which not only limits the imaging angle, making it difficult to obtain multi-perspective information in complex anatomical structures, but also has a limited field of view, making it impossible to fully observe large lesions or anatomical areas, and easily miss important peripheral information, thus affecting the accuracy of diagnosis. In addition, because the angle of the existing dual-panel orthogonal imaging system cannot be adjusted, it lacks multi-angle real-time imaging support and cannot meet certain rapidly changing diagnostic needs. Moreover, when using the existing dual-panel orthogonal imaging system for imaging, the target object needs to maintain a specific posture more accurately, which places high demands on the target object's body position.
[0043] Based on the above technical problems, the present disclosure provides an imaging system. Figure 1 A schematic diagram of a scenario of an imaging system provided in an embodiment of the present disclosure, for imaging a target object 1, comprising: a ray source 2, for emitting a beam 201 toward the target object 1; a detector 3, disposed relative to the ray source 2; and a diagnostic bed 5, located between the ray source 2 and the detector 3 and fixed relative to the detector 3, for carrying and driving the target object 1 in motion. During the movement of the diagnostic bed 5, the beam 201 emitted by the ray source 2 always partially or completely overlaps with the target area of the target object 1, and the beam 201 that passes through the target area of the target object 1 can be received by the detector 3.
[0044] It should be noted that the movement process of the diagnosis and treatment bed 5 refers to the movement process of the diagnosis and treatment bed 5 from the positioning reference point to the radiotherapy center point.
[0045] It should be noted that by relatively fixing the positions of the diagnosis and treatment bed 5 and the detector 3, the complexity of the equipment can be reduced, the imaging operation can be simplified and the imaging time can be reduced, and the image of the target area of the target object 1 in motion can be obtained quickly and accurately, and the position of the target area of the target object 1 can be monitored in real time and from multiple angles.
[0046] In some embodiments, the movement modes of the diagnosis and treatment bed 5 and the detector 3 are not limited. The diagnosis and treatment bed 5 and the detector 3 can move simultaneously or separately, as long as the positions of the diagnosis and treatment bed 5 and the detector 3 are relatively fixed.
[0047] In some embodiments, the ray emitted by the ray source 2 may be a beam 201 (eg, X-ray), and the beam 21 passes through a target area of the target object 1 and is received by the detector 3 .
[0048] In some embodiments, the radiation source 2 is a conventional device in the art capable of emitting a radiation beam 201, such as a tube.
[0049] In some embodiments, there are multiple ray sources 2 , preferably, there are two ray sources 2 .
[0050] In some optional embodiments, there are multiple ray sources 2 , and the central axes of the beams 201 of the multiple ray sources 2 intersect at the imaging point 4 .
[0051] Preferably, the imaging point 4 coincides with the center point of the target area of the target object 1 .
[0052] In some optional embodiments, there are multiple radiation sources 2, and the angle formed between the central axes of the beams 201 of the multiple radiation sources 2, as well as the installation positions, arrangement directions, and excitation order of the multiple radiation sources 2, can be adjusted. The purpose of the aforementioned adjustments is to ensure that during the movement of the diagnostic bed 5, the beams 201 emitted by the radiation sources 2 always partially or completely overlap with the target area of the target object 1, and that the beams 201 that pass through the target area of the target object 1 can be received by the detector 3.
[0053] In some embodiments, the imaging system includes an adjustment device that can adjust one or more of the beam output angle, installation position, and arrangement direction of the radiation source 2. For example, the adjustment device can adjust the angle formed between the central axes of the beams 201 of the radiation source 2 by adjusting the beam output angle of the radiation source 2.
[0054] In some embodiments, the radiation sources 2 are distributed along the head and feet direction or the sides of the arms of the target subject 1. Preferably, the radiation sources 2 are arranged along the head and feet direction of the target subject 1. In this embodiment, the radiation sources 2 arranged along the head and feet direction of the target subject 1 can effectively reduce the imaging blind area, improve the comprehensiveness of the imaging, and reduce the requirements for the target subject's body position.
[0055] In some embodiments, the imaging system includes: a plurality of ray sources 2 and detectors 3 disposed opposite to the plurality of ray sources 2. In this embodiment, the rays from the plurality of ray sources 2 can be received by the same detector 3.
[0056] In some optional embodiments, the number of ray sources 2 is two, and the two ray sources 2 are arranged along the head-to-foot direction of the target object 1 .
[0057] The central axes of the beams 201 of the two ray sources 2 intersect at the imaging point 4.
[0058] Preferably, the imaging point 4 coincides with the center point of the target area of the target object 1. When the imaging point 4 coincides with the center point of the target area of the target object 1, the imaging accuracy is higher.
[0059] In some embodiments, the linear distance between the detector 3 and the radiation source 2 is adjustable. By adjusting the linear distance between the detector 3 and the radiation source 2, the relative positions of the detector 3 and the radiation source 2 can be fixed during the movement of the diagnosis and treatment bed 5.
[0060] In some embodiments, a side surface of the detector 3 that receives the beam 201 may be a plane or a curved surface, for example, a plane.
[0061] In some embodiments, the size of the detector 3 is not restricted. Preferably, it only needs to cover the target area of the target object 1 .
[0062] In some embodiments, the length of the detector 3 can be selected according to actual conditions, for example, 48 inches, or 121.92 cm.
[0063] In some embodiments, the width of the detector 3 can be selected according to actual conditions, for example, 17 inches, or 43.18 cm.
[0064] In some embodiments, the detector 3 is a Mercu 1748V flat panel detector or a Venu 1748V flat panel detector.
[0065] In some embodiments, the pixel size of the detector 3 can be selected according to actual conditions, for example, 139 μm.
[0066] In some embodiments, the number of detectors 3 can be selected according to actual conditions, for example, one.
[0067] In an optional embodiment, the imaging system includes: two radiation sources 2, for emitting a beam 201 to a target object 1; a detector 3, arranged opposite to the radiation source 2; a treatment bed 5, located between the radiation source 2 and the detector 3, and fixed relative to the detector 3, for carrying and driving the target object 1 to move; during the movement of the treatment bed 5, the beam 201 emitted by the radiation source 2 always partially or completely overlaps with the target area of the target object 1, and the beam 201 passing through the target area of the target object 1 can be received by the detector 3.
[0068] In the above embodiment, one detector 3 is used to replace the original dual-detector structure, which can achieve the effects of reducing equipment complexity, saving space and lowering operation difficulty.
[0069] In the above optional embodiment, the two radiation sources 2 can be arranged along the head and foot direction of the target object 1. When the radiation sources 2 are arranged in the head and foot direction of the target object 1 and are aligned with the same detector 3, longitudinal image acquisition can be achieved. Furthermore, by alternately exciting the head and tail radiation sources 2, multi-angle two-dimensional image data can be obtained.
[0070] In the above optional embodiment, the central axes of the beams 201 of the two ray sources 2 intersect at the imaging point 4 .
[0071] Preferably, the imaging point 4 coincides with the center point of the target area of the target object 1 .
[0072] In the above specific embodiment, the model of the detector 3 may be Mercu 1748V flat panel detector or Venu 1748V flat panel detector.
[0073] In some embodiments, the diagnosis and treatment bed 5 includes a bed board 501 and a bed base 502 . The bed board 501 is fixed on the bed base 502 , and the positions of the bed board 501 and the detector 3 are relatively fixed.
[0074] In some optional embodiments, the detector 3 is disposed on the bed board 501 . Preferably, the detector 3 is fixed to the surface of the bed board 501 or the detector 3 is embedded in the bed board 501 .
[0075] There is no limitation on the fixing method, for example, fixing by laminating is possible.
[0076] In the above optional embodiment, the detector 3 is arranged on the bed board 501 to ensure that the relative position of the detector 3 and the diagnostic bed 5 is always fixed during the movement of the diagnostic bed 5, and the detector 3 can move with the movement of the diagnostic bed 5.
[0077] In some embodiments, the bed plate 501 and the detector 3 can reciprocate along the X-axis, Y-axis, and Z-axis of the IEC coordinate system, respectively. The X-axis of the IEC coordinate system is parallel to the width of the bed 5, the Y-axis is parallel to the length of the bed 5, and the Z-axis is parallel to the height of the bed 5.
[0078] The bed plate 501 of the diagnosis and treatment bed 5 disclosed herein can reciprocate along the X-axis, Y-axis and Z-axis to meet the requirement of moving the target area of the target object 1 into the imaging area of the imaging system during imaging, and the detector 3 can reciprocate along the X-axis, Y-axis and Z-axis to meet the requirement of being relatively fixed in position with respect to the bed plate 501.
[0079] In the above embodiment, the angle formed between the central axes of the beams 201 of the radiation sources 2 of the imaging system, as well as the installation positions, arrangement directions, and excitation sequence of the multiple radiation sources 2, can be adjusted to ensure that, during the movement of the diagnostic bed 5, the beams 201 emitted by the radiation sources 2 always partially or completely overlap with the target area of the target object 1, and that the beams 201 that pass through the target area of the target object 1 can be received by the detector 3. This allows for real-time, multi-angle monitoring of the position of the target area of the target object during the movement of the diagnostic bed.
[0080] In some embodiments, the imaging system may further include: an imaging control processing device, which is capable of controlling the imaging system to perform imaging based on an imaging mode selected by a user.
[0081] In some optional embodiments, the imaging mode of the imaging system includes tomography, KV imaging or CBCT imaging.
[0082] The tomographic imaging is performed on the target area of the target object 1 in different directions.
[0083] The CBCT imaging is aimed at the target area of the target object 1 and is performed in different directions.
[0084] In some embodiments, the imaging control processing device may be operated by a computer system, wherein the computer system includes a processor, and the processor is configured to implement the imaging method implemented by the imaging control processing device.
[0085] In some embodiments, the imaging control and processing device is a computer device with a graphical user interface (GUI), comprising one or more processors, a memory, and one or more application programs. For example, the imaging control and processing device may include an imaging system application, and the processor of the imaging control and processing device executes the imaging system application to reconstruct multiple sub-projection images in the projection image corresponding to each group of focal light source groups to obtain a three-dimensional image of the target soft tissue.
[0086] In the embodiment of the present disclosure, the entity of the imaging control processing device can be a terminal or a server, which is not limited in the embodiment of the present application.
[0087] Optionally, the terminal may be at least one of a smart phone, a smart watch, a desktop computer, a laptop computer, a virtual reality terminal, an augmented reality terminal, a wireless terminal, and a laptop computer.
[0088] Optionally, the above-mentioned server can be an independent physical server, or a server cluster or distributed file system composed of multiple physical servers, or at least one of the cloud servers that provide basic cloud computing services such as cloud services, cloud databases, cloud computing, cloud functions, cloud storage, network services, cloud communications, middleware services, domain name services, security services, content distribution networks, and big data or artificial intelligence platforms, and the embodiments of the present disclosure are not limited to this. In some embodiments, the number of the above-mentioned servers can be more or less, and the embodiments of the present disclosure are not limited to this. Of course, the server can also include other functions to provide more comprehensive and diversified services.
[0089] According to an embodiment of the present disclosure, the present disclosure further provides a radiotherapy system, which includes: the aforementioned imaging system; and radiotherapy equipment.
[0090] Figure 2 A schematic diagram of a radiotherapy system according to an embodiment of the present disclosure is provided below. Figure 2 The radiotherapy system of the present disclosure will be described.
[0091] In some embodiments, the area where the beam 201 emitted by the ray source 2 of the imaging system overlaps with the target area of the target object 1 and the treatment area of the radiotherapy device 6 always partially or completely overlaps.
[0092] In some embodiments, during the movement of the diagnosis and treatment bed 5 from the setup reference point of the radiotherapy device 6 to the radiotherapy isocenter 601, the imaging system monitors the position of the target area of the target object 1, and the imaging point 4 of the imaging system moves along the line connecting the setup reference point and the radiotherapy isocenter 601;
[0093] The line connecting the positioning reference point and the radiotherapy isocenter 601 is parallel to the X axis, Y axis or Z axis in the IEC coordinate system of the radiotherapy device 6 .
[0094] It should be noted that during the movement of the diagnosis and treatment bed 5, the imaging system monitors the position of the target area of the target object 1 by imaging the target area of the target object 1 multiple times at a certain frequency. Each imaging has a corresponding imaging point 4. During the movement of the diagnosis and treatment bed 5, the imaging point 4 moves along the line connecting the positioning reference point and the radiotherapy isocenter 601.
[0095] The X-axis in the IEC coordinate system is parallel to the width direction of the diagnosis and treatment bed 5 , the Y-axis is parallel to the length direction of the diagnosis and treatment bed 5 , and the Z-axis is parallel to the height direction of the diagnosis and treatment bed 5 .
[0096] In some embodiments, when the radiotherapy device 6 is a gamma knife device, the radiotherapy isocenter 601 of the radiotherapy device 6 coincides with the nuclear physics center point, and the imaging point 4 of the imaging system moves along the line connecting the positioning reference point and the nuclear physics center point. The nuclear physics center refers to the center point of the focal area of the radiation of the radiotherapy device 6 during treatment.
[0097] In the present disclosure, the radiotherapy device 6 may be a conventional device in the art that can be equipped with the aforementioned imaging system, and the specific type is not described in detail herein.
[0098] In some embodiments, the radiation source 2 in the imaging system is installed on the fixed part or the rotating part of the radiotherapy equipment 6. Preferably, the radiation source 2 is installed on the fixed part, for example, on the fixed part of the rack or equipment frame of the radiotherapy equipment 6.
[0099] For example, Figure 3 This is a structural diagram of a radiotherapy system provided by an embodiment of the present disclosure, the radiotherapy system comprising: an imaging system; a radiotherapy device 6;
[0100] The radiotherapy device 6 includes a frame 603 and a radiotherapy host 602 disposed on the frame 603 .
[0101] Optionally, the rack 603 is a frame structure, and the radiotherapy main unit 602 is supported and fixed by the rack 603 .
[0102] Optionally, the ray source 2 of the imaging system is fixed on the gantry 603 , and the ray source 2 is arranged along the head-to-foot direction of the target object 1 .
[0103] Optionally, the diagnosis and treatment bed 5 includes a bed board 501 and a bed base 502, the bed board 501 is fixed on the bed base 502, and the positions of the detector 3 and the bed board 501 are relatively fixed. Preferably, the detector 3 is arranged on the bed board 501, and more preferably, the detector 3 is fixed on the bed board 501.
[0104] Optionally, the detector of the imaging system is a flat panel detector.
[0105] Optionally, the bed plate 501 of the diagnosis and treatment bed 5 and the detector 3 can respectively reciprocate along the X-axis, the Y-axis and the Z-axis in the IEC coordinate system.
[0106] Optionally, during the movement of the diagnosis and treatment bed 5 from the setup reference point of the radiotherapy device 6 to the radiotherapy isocenter 601, the imaging system monitors the position of the target area of the target object 1, and the imaging point 4 of the imaging system moves along the line connecting the setup reference point and the radiotherapy isocenter 601;
[0107] The line connecting the positioning reference point and the radiotherapy isocenter 601 is parallel to the X axis, Y axis or Z axis in the IEC coordinate system of the radiotherapy device 6 .
[0108] According to an embodiment of the present disclosure, the present disclosure further provides an imaging method, which is applied to the aforementioned imaging system, and the method includes:
[0109] The radiation source 2 is adjusted so that during the movement of the diagnostic bed 5, the beam 201 emitted by the radiation source 2 always partially or completely overlaps with the target area of the target object 1, and the beam 201 passing through the target area of the target object 1 can be received by the detector 3 to generate image data.
[0110] The imaging method provided by the embodiment of the present disclosure can be applied to Figure 1 Imaging systems in Figure 2 and Figure 3 The following is based on the radiotherapy system Figure 1 The imaging system shown, Figure 2 and Figure 3 The radiotherapy system shown introduces the imaging method provided by the embodiment of the present disclosure.
[0111] In the embodiment of the present disclosure, the linear distance between the flat panel detector 3 and the radiation source 2 can be adjusted by the reciprocating motion of the diagnosis and treatment bed 5 .
[0112] In some embodiments, adjustments to the radiation sources 2 may include one or more of the following: adjusting the number of radiation sources 2, adjusting the installation position of radiation sources 2, adjusting the arrangement of radiation sources 2, adjusting the firing order of radiation sources 2, and adjusting the angle formed between the central axes of the beams 201 of multiple radiation sources 2. Because the relative position of the diagnostic bed 5 and the detector 3 is fixed, adjusting the position of the diagnostic bed 5 ensures that the radiation beams 201 emitted by the radiation sources 2 always partially or completely overlap with the target area of the target object 1 during the movement of the diagnostic bed 5. Furthermore, the radiation beams 201 that pass through the target area of the target object 1 can be received by the detector 3 to generate image data. In this case, the acquired image data can be reconstructed to obtain a three-dimensional image of the target area of the target object.
[0113] In some embodiments, the imaging method of the present disclosure can be applied to a radiotherapy system to monitor the position of the target area of the target object 1 in real time during radiotherapy, such as Figure 4 As shown, Figure 4 A schematic diagram of a real-time imaging scenario provided in an embodiment of the present disclosure, wherein the imaging method includes:
[0114] The diagnosis and treatment bed 5 carries and drives the bed plate 501 of the target object 1 to move upward until the target area of the target object 1 partially or completely overlaps with the treatment area of the radiotherapy device 6; during the movement of the bed plate 501, the radiation source 2 is synchronously adjusted so that during the movement of the diagnosis and treatment bed 5, the beam 201 emitted by the radiation source 2 always partially or completely overlaps with the target area of the target object 1.
[0115] Optionally, the imaging point 4 of the imaging system coincides with the center of the target area of the target object 1 .
[0116] Preferably, during the movement of the diagnosis and treatment bed 5 from the setup reference point of the radiotherapy device 6 to the radiotherapy isocenter 601, the imaging system monitors the position of the target area of the target object 1, and the imaging point 4 of the imaging system moves along the line connecting the setup reference point and the radiotherapy isocenter 601;
[0117] The line connecting the positioning reference point and the radiotherapy isocenter 601 is parallel to the X axis, Y axis or Z axis in the IEC coordinate system of the radiotherapy device 6 .
[0118] In the above embodiment, by setting up multiple ray sources 2, image data from multiple angles is collected, and the detector 3 and the ray source 2 are coordinated to adjust the angle, installation position and arrangement order of the central axis of the beam 201 of the ray source 2 in real time according to the height change of the detector 3, the position of the target area of the target object 1 can be monitored to ensure the accuracy of treatment.
[0119] Furthermore, by sequentially or simultaneously exciting the ray source 2 in different directions (angles), image data in multiple directions (angles) can be obtained, and a tomographic image can be obtained after tomographic reconstruction. Tomographic imaging can image the internal tissues of the target object 1 from different levels, thereby improving the accuracy and detail display of the three-dimensional image.
[0120] Optionally, the image data acquired from the detector 3 may be pre-processed (eg, image correction) before reconstruction to obtain noise-reduced image data.
[0121] In some embodiments, the imaging method disclosed herein can also be applied to a radiotherapy system to position the target object 1. The imaging method includes: adjusting the position of the target object 1 so that the beam 201 emitted by the ray source 2 partially or completely overlaps with the target area of the target object 1, exciting the ray source 2 to emit the beam 201, and the detector 3 detecting the beam passing through the target area of the target object 1 to generate image data.
[0122] According to an embodiment of the present disclosure, the present disclosure also provides an electronic device, comprising at least one processor; and a memory communicatively connected to the at least one processor; wherein the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor to enable the at least one processor to execute the imaging method provided by the present disclosure.
[0123] Figure 5 A schematic block diagram of an example electronic device 7 that can be used to implement an embodiment of the present disclosure is shown. The electronic device is intended to represent various forms of digital computers, such as laptop computers, desktop computers, workstations, personal digital assistants, servers, blade servers, mainframe computers, and other suitable computers. The electronic device can also represent various forms of mobile devices, such as personal digital assistants, cellular phones, smart phones, wearable devices, and other similar computing devices. The components shown herein, their connections and relationships, and their functions are merely examples and are not intended to limit the implementation of the present disclosure described and / or required herein. In some embodiments, the electronic device can be the aforementioned imaging control processing device.
[0124] like Figure 5As shown, the electronic device 7 includes a computing unit 701, which can perform various appropriate actions and processes according to a computer program stored in a read-only memory 702 or a computer program loaded from a storage unit 708 into a random access memory 703. In the random access memory (RAM) 703, various programs and data required for the operation of the electronic device 7 can also be stored. The computing unit 701, the read-only memory (ROM) 702, and the RAM 703 are connected to each other via a bus 704. An input / output (I / O) interface 705 is also connected to the bus 704.
[0125] Multiple components in the electronic device 7 are connected to the input / output interface 705, including: an input unit 706, such as a keyboard, a mouse, etc.; an output unit 707, such as various types of displays, speakers, etc.; a storage unit 708, such as a magnetic disk, an optical disk, etc.; and a communication unit 709, such as a network card, a modem, a wireless communication transceiver, etc. The communication unit 709 allows the electronic device 7 to exchange information / data with other devices via a computer network such as the Internet and / or various telecommunication networks.
[0126] The computing unit 701 can be a variety of general and / or special processing components with processing and computing capabilities. Some examples of the computing unit 701 include, but are not limited to, a central processing unit, a graphics processing unit (GPU), various dedicated artificial intelligence (AI) computing chips, various computing units that run machine learning model algorithms, digital signal processors, and any appropriate processors, controllers, microcontrollers, etc. The computing unit 701 performs the various methods and processes described above, such as the data matching method. For example, in one embodiment, the data matching method can be implemented as a computer software program that is tangibly included in a machine-readable medium, such as the storage unit 708.
[0127] According to an embodiment of the present disclosure, the present disclosure further provides a non-transitory computer-readable storage medium storing computer instructions, wherein the computer instructions are used to enable an electronic device to execute the imaging method provided by the present disclosure.
[0128] According to an embodiment of the present disclosure, the present disclosure further provides a computer program product, including a computer program, which implements the imaging method provided by the present disclosure when executed by a processor.
[0129] In one embodiment, part or all of the computer program can be loaded and / or installed on the electronic device 7 via the ROM 702 and / or the communication unit 709. When the computer program is loaded into the RAM 703 and executed by the computing unit 701, one or more steps of the data matching method described above can be performed. Alternatively, in other embodiments, the computing unit 701 can be configured to perform the data matching method in any other appropriate manner (e.g., by means of firmware).
[0130] Various embodiments of the systems and techniques described herein can be implemented in digital electronic circuit systems, integrated circuit systems, field programmable gate arrays, application specific integrated circuits, application specific standard parts (ASSPs), system on chip systems (SOCs), complex programmable logic devices (CPLDs), computer hardware, firmware, software, and / or combinations thereof. These various embodiments can include being implemented in one or more computer programs that are executable and / or interpreted on a programmable system that includes at least one programmable processor, which can be a special purpose or general purpose programmable processor that can receive data and instructions from a storage system, at least one input device, and at least one output device, and transmit data and instructions to the storage system, the at least one input device, and the at least one output device.
[0131] The program code for implementing the method of the present disclosure can be written in any combination of one or more programming languages. These program codes can be provided to a processor or controller of a general-purpose computer, a special-purpose computer, or other programmable data processing device so that when the program code is executed by the processor or controller, the functions / operations specified in the flow chart and / or block diagram are implemented. The program code can be executed entirely on the machine, partially on the machine, as a stand-alone software package, partially on the machine and partially on a remote machine, or entirely on a remote machine or server.
[0132] In the context of the present disclosure, a machine-readable medium may be a tangible medium that may contain or store a program for use by or in conjunction with an instruction execution system, device, or apparatus. A machine-readable medium may be a machine-readable signal medium or a machine-readable storage medium. A machine-readable medium may include, but is not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or apparatus, or any suitable combination of the foregoing. More specific examples of machine-readable storage media may include an electrical connection based on one or more wires, a portable computer disk, a hard disk, a random access memory, a read-only memory, an erasable programmable read-only memory, an optical fiber, a portable compact disk read-only memory, an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
[0133] To provide interaction with a user, the systems and techniques described herein can be implemented on a computer having: a display device for displaying information to the user, such as a cathode ray tube (CRT) or a liquid crystal display (LCD) monitor; and a keyboard and pointing device (such as a mouse or trackball) through which the user can provide input to the computer. Other types of devices can also be used to provide interaction with the user; for example, the feedback provided to the user can be any form of sensory feedback (such as visual feedback, auditory feedback, or tactile feedback); and input from the user can be received in any form (including acoustic input, voice input, or tactile input).
[0134] The systems and techniques described herein can be implemented in a computing system that includes back-end components (e.g., as a data server), or a computing system that includes middleware components (e.g., an application server), or a computing system that includes front-end components (e.g., a user computer having a graphical user interface or a web browser through which a user can interact with implementations of the systems and techniques described herein), or a computing system that includes any combination of such back-end components, middleware components, or front-end components. The components of the system can be interconnected by any form or medium of digital data communication (e.g., a communication network). Examples of communication networks include a local area network (LAN), a wide area network (WAN), and the Internet.
[0135] A computer system may include a client and a server. The client and server are generally remote from each other and typically interact through a communication network. The client-server relationship arises through computer programs running on the respective computers and having a client-server relationship with each other. The server may be a cloud server, a server in a distributed system, or a server integrated with a blockchain.
[0136] It should be understood that the various forms of the processes shown above can be used to reorder, add, or delete steps. For example, the steps described in this disclosure can be performed in parallel, sequentially, or in a different order, as long as the desired results of the technical solutions of this disclosure can be achieved. This is not a limitation herein.
[0137] The above specific embodiments do not constitute a limitation on the scope of protection of this disclosure. Those skilled in the art will appreciate that various modifications, combinations, sub-combinations, and substitutions may be made based on design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this disclosure shall be included within the scope of protection of this disclosure.
Claims
1. An imaging system, characterized in that: Used to image target objects, including: a ray source, for emitting a beam toward a target object; a detector, arranged opposite to the ray source; A diagnostic bed, located between the radiation source and the detector, fixed relative to the detector, and used to carry and drive the target object to move; During the movement of the diagnostic and treatment bed, the beam emitted by the ray source always partially or completely overlaps with the target area of the target object, and the beam passing through the target area of the target object can be received by the detector.
2. The imaging system according to claim 1, wherein: There are multiple ray sources.
3. The imaging system according to claim 2, wherein: The central axes of the beams of the multiple ray sources intersect at an imaging point.
4. The imaging system according to claim 2, wherein: The angle formed between the central axes of the beams of the multiple ray sources, the installation positions, arrangement directions and excitation sequences of the multiple ray sources can all be adjusted.
5. The imaging system according to claim 2, wherein: The plurality of ray sources are arranged along the head-to-foot direction of the target object.
6. The imaging system according to claim 1, wherein: The straight-line distance between the detector and the ray source is adjustable.
7. The imaging system according to claim 1, wherein: The diagnosis and treatment bed includes a bed plate and a bed base. The bed plate is fixed on the bed base, and the positions of the bed plate and the detector are relatively fixed.
8. The imaging system according to claim 7, wherein: The detector is arranged on the bed board.
9. The imaging system according to claim 7, wherein: The bed plate and the detector can respectively reciprocate along the X-axis, the Y-axis and the Z-axis in the IEC coordinate system.
10. The imaging system according to claim 1, wherein: include: An imaging control processing device, wherein the imaging control processing device can control the imaging system according to any one of claims 1 to 9 to perform imaging based on an imaging mode selected by a user.
11. The imaging system according to claim 10, wherein: The imaging method includes tomography, KV imaging or CBCT imaging.
12. The imaging system according to claim 1, wherein: The size of the detector can cover the target area of the target object.
13. A radiotherapy system, characterized in that: It includes: The imaging system according to any one of claims 1 to 12; Radiation therapy equipment.
14. The radiotherapy system according to claim 13, wherein: The area where the beam emitted by the ray source overlaps with the target area of the target object and the treatment area of the radiotherapy device always partially or completely overlap.
15. The radiotherapy system according to claim 13, wherein: During the movement of the diagnosis and treatment bed from the setup reference point of the radiotherapy device to the radiotherapy isocenter, the imaging system monitors the position of the target area of the target object, and the imaging point of the imaging system moves along the line connecting the setup reference point and the radiotherapy isocenter; The line connecting the positioning reference point and the radiotherapy isocenter is parallel to the X-axis, Y-axis or Z-axis in the IEC coordinate system of the radiotherapy equipment.