Radiography system, radiography method, and radiography program
The radiographic imaging system addresses the lack of appropriate general imaging conditions by deriving them from fluoroscopic data, improving efficiency and dose management in radiographic systems.
Patent Information
- Application Number
- JP2023217393
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-12-22
- Publication Date
- 2025-07-03
AI Technical Summary
Existing radiographic imaging systems lack the ability to derive appropriate imaging conditions for general imaging after fluoroscopic imaging, which is necessary for improving imaging efficiency and adapting to subject-specific needs.
A radiographic imaging system capable of switching between fluoroscopic and general imaging that derives imaging conditions for general imaging based on dose control information from fluoroscopic imaging and pre-registered imaging orders, considering factors like subject age and physique.
Enables efficient switching between imaging modes with appropriate conditions for general imaging, enhancing imaging efficiency and ensuring optimal radiation dose management.
Smart Images

Figure 2025100195000001_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to a radiographic system, a radiographic method, and a radiographic program.
Background Art
[0002] Patent Document 1 discloses a technique for setting the tube voltage and mAs value in fluoroscopic imaging based on data showing the relationship between the thickness of a subject and the tube voltage in an X-ray fluoroscopic imaging apparatus. Note that the mAs value means a numerical value obtained by multiplying the tube current [mA] by the irradiation time [sec].
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the medical field, for example, fluoroscopic imaging is performed for the purpose of examinations such as a barium meal examination of the stomach and cystography, or for assisting in treatments such as plastic and reconstructive surgery. Also, even when the purpose is to assist in an examination or treatment, general imaging may be performed in addition to fluoroscopic imaging to leave one radiographic image for recording. In this case, it is preferable if one system can switch between and execute fluoroscopic imaging and general imaging of radiation, as this can improve imaging efficiency. Further, in this case, it is preferable that appropriate imaging conditions can be derived according to the subject and the imaging target site, etc. in general imaging. The technique described in Patent Document 1 does not consider the imaging conditions in general imaging. Note that fluoroscopic imaging means continuously capturing a plurality of radiographic images at a predetermined frame rate (i.e., moving image imaging). Also, general imaging means recording one radiographic image in response to an imaging instruction by a user such as a radiologic technologist (i.e., still image imaging).
[0005] The present disclosure has been made in view of the above circumstances, and an object thereof is to provide a radiation imaging system, a radiation imaging method, and a radiation imaging program capable of deriving appropriate imaging conditions for general imaging in a radiation imaging system capable of switching between fluoroscopic imaging and general imaging of radiation.
Means for Solving the Problems
[0006] A radiation imaging system according to a first aspect includes at least one processor, and is a radiation imaging system capable of switching between fluoroscopic imaging in which a plurality of radiation images are continuously captured at a predetermined frame rate and general imaging in which one radiation image is recorded. The processor derives imaging conditions for general imaging performed after fluoroscopic imaging based on information used for dose control of radiation irradiated from a radiation source to a radiation detector in fluoroscopic imaging and an imaging order including imaging conditions for general imaging registered in advance.
[0007] A radiation imaging system according to a second aspect is the radiation imaging system according to the first aspect, wherein the processor performs control to display the derived imaging conditions.
[0008] A radiation imaging system according to a third aspect is the radiation imaging system according to the first aspect or the second aspect, wherein the imaging order includes the age of the subject, and when the age of the subject is equal to or less than a first threshold value or equal to or greater than a second threshold value, the processor further derives imaging conditions in which the radiation dose is lower than the derived imaging conditions.
[0009] A radiation imaging system according to a fourth aspect is the radiation imaging system according to the first aspect or the second aspect, wherein the imaging order includes at least one of information on the age and physique of the subject, and the processor derives a plurality of imaging conditions according to at least one of the information on the age and physique of the subject.
[0010] In the radiographic imaging system according to the fifth aspect, in the radiographic imaging system according to any one of the first to fourth aspects, the processor derives the tube voltage as the imaging condition in the general imaging performed after the fluoroscopic imaging based on the index value representing the contrast of the radiographic image obtained by the fluoroscopic imaging.
[0011] In the radiographic imaging system according to the sixth aspect, in the radiographic imaging system according to any one of the first to fifth aspects, when the condition that the irradiation area of the radiation on the detection surface of the radiation detector is equal to or less than the maximum area capable of detecting the radiation in the radiation detector is satisfied, the processor sets the imaging mode to the fluoroscopic imaging mode.
[0012] In the radiographic imaging system according to the seventh aspect, in the radiographic imaging system according to the sixth aspect, the above condition is the condition that the distance from the radiation source to the detection surface is equal to or less than a set value.
[0013] In the radiographic imaging method according to the eighth aspect, a processor of a radiographic imaging system including at least one processor and capable of switching between fluoroscopic imaging for continuously imaging a plurality of radiographic images at a predetermined frame rate and general imaging for recording one radiographic image executes a process of deriving the imaging conditions in the general imaging performed after the fluoroscopic imaging based on the information used for dose control of the radiation irradiated from the radiation source to the radiation detector in the fluoroscopic imaging and the imaging order including the imaging conditions in the general imaging registered in advance.
[0014] In the radiographic imaging program according to the ninth aspect, a processor of a radiographic imaging system including at least one processor and capable of switching between fluoroscopic imaging for continuously imaging a plurality of radiographic images at a predetermined frame rate and general imaging for recording one radiographic image is caused to execute a process of deriving the imaging conditions in the general imaging performed after the fluoroscopic imaging based on the information used for dose control of the radiation irradiated from the radiation source to the radiation detector in the fluoroscopic imaging and the imaging order including the imaging conditions in the general imaging registered in advance.
Advantages of the Invention
[0015] According to the present disclosure, in a radiation imaging system capable of switching between fluoroscopic imaging and general imaging of radiation, appropriate imaging conditions for general imaging can be derived.
Brief Description of the Drawings
[0016]
Figure 1
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Modes for Carrying Out the Invention
[0017] Hereinafter, with reference to the drawings, embodiments for implementing the technology of the present disclosure will be described in detail.
[0018] First, referring to FIG. 1, the configuration of the radiographic system 2 will be described. As shown in FIG. 1, the radiographic system 2 is a system that irradiates a patient P, which is an example of a subject, with radiation R such as X-rays or γ-rays to capture a radiographic image of the patient P, and is operated by an operator such as a radiologic technologist. The radiographic system 2 is capable of switching between fluoroscopic imaging, which continuously captures a plurality of radiographic images at a predetermined frame rate, and general imaging, which records one radiographic image, and executing them. The radiographic system 2 includes a radiation source 10, a radiation detector 11, a voltage generator 12, a control device 13, a console 14, an upright examination table 15S, a supine examination table 15L, an image processing device 16, and a display 17. The radiation source 10, the radiation detector 11, the voltage generator 12, the control device 13, the upright examination table 15S, the supine examination table 15L, and the display 17 are installed, for example, in a radiographic room of a medical facility. On the other hand, the console 14 and the image processing device 16 are installed, for example, in a control room adjacent to the radiographic room. One radiation source 10 and one radiation detector 11 are prepared respectively, and the upright examination table 15S and the supine examination table 15L are used interchangeably.
[0019] The radiation source 10 includes an X-ray tube 20 that emits radiation R and an irradiation field limiter (also referred to as a collimator) 21 that limits the irradiation field of the radiation R. The X-ray tube 20 is provided with, for example, a filament, a target, and a grid electrode. A voltage is applied from the voltage generator 12 between the filament, which is the cathode, and the target, which is the anode. The voltage applied between this filament and the target is called the tube voltage. The filament emits thermoelectrons corresponding to the applied tube voltage toward the target. The target emits radiation R due to the collision of the thermoelectrons emitted from the filament. The grid electrode is disposed between the filament and the target. The grid electrode changes the flow rate of the thermoelectrons traveling from the filament toward the target according to the voltage applied from the voltage generator 12. The flow rate of the thermoelectrons traveling from the filament toward the target is called the tube current.
[0020] The irradiation field limiter 21 is formed with an incident opening through which the radiation R from the radiation tube 20 enters and an exit opening through which the radiation R exits. Near the exit opening, four shielding plates are provided. The shielding plates are formed of a material that shields the radiation R, such as lead. The shielding plates are arranged on each side of the square, in other words, assembled in a checkered pattern, and form a square irradiation opening through which the radiation R passes. The irradiation field limiter 21 changes the size of the irradiation opening by changing the position of each shielding plate, thereby changing the irradiation field of the radiation R.
[0021] The radiation source 10 is suspended from the ceiling of the radiography room by a support column 22. The support column 22 is attached to a rail running along the ceiling via wheels. The support column 22, and thus the radiation source 10, can be moved horizontally within the radiography room by the rail and the wheels. Further, the support column 22 is telescopable in the height direction, whereby the radiation source 10 can be moved in the height direction. Furthermore, the radiation source 10 is rotatable with respect to the support column 22 about an axis orthogonal to the plane of the paper as a rotation axis.
[0022] Also, the radiation source 10 includes a position sensor that detects the position of the radiation source 10. For example, the position sensor includes a variable resistor and detects the position of the radiation source 10 based on the resistance value of the variable resistor that changes according to the position of the radiation source 10. The position of the radiation source 10 is represented, for example, in a Cartesian coordinate system constituted by three axes of an X-axis, a Y-axis, and a Z-axis that are orthogonal to each other. The position of the radiation source 10 detected by the position sensor is transmitted to the control device 13.
[0023] The radiation detector 11 is portable, detects the radiation R that has passed through the patient P, and outputs a radiation image of the patient P. The radiation detector 11 transmits the radiation image to the image processing device 16. The radiation detector 11 is housed and used in the standing imaging table 15S or the lying imaging table 15L. In addition, the radiation detector 11 can be used in a state where it is removed from the standing imaging table 15S or the lying imaging table 15L in the radiation imaging room and held by the patient P, or in a state where it is placed under the patient P lying supine on the bed in the ward. Note that FIG. 1 illustrates a state of taking a radiation image of the chest of the patient P positioned in front of the standing imaging table 15S.
[0024] The voltage generator 12 generates the tube voltage applied to the X-ray tube 20. The voltage generator 12 and the X-ray tube 20 are connected by a voltage cable. Through this voltage cable, the tube voltage generated in the voltage generator 12 is supplied to the X-ray tube 20.
[0025] The control device 13 controls the operation of the radiation source 10 via the voltage generator 12 according to the irradiation conditions of the radiation R. The irradiation conditions include the tube voltage, tube current, and irradiation time of the radiation R applied to the X-ray tube 20. Note that instead of the tube current and irradiation time, the product of the tube current and irradiation time, so-called mAs value, may be used as the irradiation condition. In fluoroscopic imaging, the control device 13 determines the irradiation conditions for the next frame based on the dose of the radiation R that has reached the radiation detector 11 derived from the radiation image of the previous frame. Thereby, in fluoroscopic imaging, the control device 13 performs dose control of the radiation R for each frame during the irradiation of the radiation R.
[0026] An instruction to start radiation imaging is input to the control device 13 by the operator through an irradiation switch (not shown). The irradiation switch is installed in at least one of the control room and the imaging room. The irradiation switch may be a switch operated by hand or a switch operated by foot. When the start instruction is input, the control device 13 operates the voltage generator 12 according to the irradiation conditions and causes the X-ray tube 20 to emit the radiation R.
[0027] Further, the control device 13 derives the distance from the radiation source 10 to the detection surface of the radiation detector 11 housed in the standing position holder 27S or the lying position holder 27L (hereinafter referred to as "SID (Source to Image receptor Distance)"). As described above, the control device 13 acquires the position of the radiation source 10 transmitted from the position sensor. Also, the positions of the standing position holder 27S and the lying position holder 27L are known. Therefore, the control device 13 can derive the SID when the radiation detector 11 is housed in the standing position holder 27S based on the position of the radiation source 10 and the position of the standing position holder 27S. Further, the control device 13 can derive the SID when the radiation detector 11 is housed in the lying position holder 27L based on the position of the radiation source 10 and the position of the lying position holder 27L. Hereinafter, it is assumed that the SID is known by the control device 13 deriving the SID each time the radiation source 10 is moved.
[0028] The console 14 is, for example, a personal computer. An imaging order 66 described later is registered in advance in the console 14.
[0029] The standing position imaging table 15S includes a stand 25, a connection part 26, a standing position holder 27S, and the like. The stand 25 is composed of a pedestal 28 installed on the floor surface of the imaging room and a column 29 extending in the height direction from the pedestal 28. The connection part 26 connects the standing position holder 27S to the stand 25. The connection part 26, and thus the standing position holder 27S, can move in the height direction with respect to the column 29, enabling height adjustment according to the height of the patient P or the imaging site.
[0030] The standing position holder 27S is box-shaped and houses the radiation detector 11 inside. Most of the standing position holder 27S is formed of a conductive material having electromagnetic wave shielding properties, such as aluminum and stainless steel. Also, the front surface of the standing position holder 27S facing the radiation source 10 is formed of a material that transmits the radiation R, such as carbon.
[0031] The supine imaging table 15L has a pedestal 30, a connecting part 31, a top plate 32, a supine holder 27L, etc., which are installed on the floor surface of the imaging room. The connecting part 31 connects the top plate 32 to the pedestal 30. The pedestal 30 is of a lift type, whereby the top plate 32 and the supine holder 27L can be adjusted in height. The top plate 32 is a rectangular plate having a length and a width that allow the patient P to lie supine, and is formed of a material that transmits radiation R such as carbon.
[0032] The supine holder 27L is arranged in the space between the pedestal 30 and the top plate 32 formed by the connecting part 31. The supine holder 27L is box-shaped with its upper part covered by the top plate 32, and houses the radiation detector 11 inside. The supine holder 27L is formed of a conductive material having electromagnetic wave shielding properties such as aluminum or stainless steel. The supine holder 27L is slidable in the direction along the long side direction of the top plate 32 by a slide mechanism.
[0033] The image processing device 16 includes a first image processing device 16A and a second image processing device 16B. The first image processing device 16A is a general-purpose computer such as a personal computer, and performs image processing on the radiation image obtained by general imaging. The second image processing device 16B is a computer dedicated to fluoroscopic imaging, and performs image processing on the radiation image obtained by fluoroscopic imaging.
[0034] The display 17 is a liquid crystal display or an EL (Electro Luminescence) display. The display 17 is installed on a display cart with casters and is movable within the radiation imaging room. The display 17 is connected to the image processing device 16.
[0035] As shown in FIG. 2, the radiation detector 11 includes a housing 40 and a detection panel 41. The housing 40 has a flat substantially rectangular parallelepiped shape with a rectangular planar shape, and houses the detection panel 41 therein. Most of the front surface of the housing 40 is formed of a material that transmits radiation R such as carbon. The radiation detector 11 is set on the standing position holder 27S or the lying position holder 27L in a posture where the front surface of the housing 40 faces the radiation source 10.
[0036] The detection panel 41 has a configuration in which a plurality of pixels that generate signal charges in response to radiation R or visible light converted from radiation R by a scintillator are arranged. In addition to the detection panel 41, the housing 40 incorporates a control device 18 described later. The housing 40 also incorporates a communication unit and a battery or the like that supplies power to each part. Note that the radiation detector 11 may be a so-called CR (Computed Radiography) cassette in which an imaging plate is incorporated instead of the detection panel 41.
[0037] The surface of the housing 40 irradiated with the radiation R corresponds to the detection surface of the radiation detector 11. In the present embodiment, the area of the detection surface composed of all the pixels in the detection panel 41 is the maximum area capable of detecting the radiation R in the radiation detector 11.
[0038] Next, with reference to FIG. 3, the hardware configurations of the control device 13, the console 14, the first image processing device 16A, the second image processing device 16B, and the control device 18 will be described. As shown in FIG. 3, the control device 13 includes a CPU (Central Processing Unit) 50, a memory 51 as a temporary storage area, and a non-volatile storage unit 52. The CPU 50 is an example of a processor.
[0039] The storage unit 52 is implemented by an HDD (Hard Disk Drive), an SSD (Solid State Drive), a flash memory, or the like. A control program 53 is stored in the storage unit 52 as a storage medium. The CPU 50 reads the control program 53 from the storage unit 52, expands it in the memory 51, and executes the expanded control program 53.
[0040] The console 14 includes a CPU 60, a memory 61 as a temporary storage area, a non-volatile storage unit 62, an input device 64 such as a keyboard and a mouse, and a display 65 such as a liquid crystal display or an EL display. The CPU 60 is an example of a processor.
[0041] The storage unit 62 is implemented by an HDD, an SSD, a flash memory, or the like. An information processing program 63 is stored in the storage unit 62 as a storage medium. The CPU 60 reads the information processing program 63 from the storage unit 62, expands it in the memory 61, and executes the expanded information processing program 63.
[0042] In addition, a pre-registered imaging order 66 is stored in the storage unit 62. The imaging order 66 includes an irradiation condition of radiation R as an example of imaging conditions for a radiation image in general imaging and an irradiation condition of radiation R as an example of imaging conditions for a radiation image in fluoroscopic imaging. The imaging order 66 also includes patient information such as the age of the patient P, information regarding the build of the patient P, and the imaging site.
[0043] The first image processing device 16A includes a CPU 70, a memory 71 as a temporary storage area, and a non-volatile storage unit 72. The CPU 70 is an example of a processor. The storage unit 72 is implemented by an HDD, an SSD, a flash memory, or the like. An image processing program 73 is stored in the storage unit 72 as a storage medium. The CPU 70 reads the image processing program 73 from the storage unit 72, expands it in the memory 71, and executes the expanded image processing program 73.
[0044] The second image processing device 16B includes an FPGA (Field Programmable Gate Array) 80, a memory 81 as a temporary storage area, and a non-volatile storage unit 82. The FPGA 80 is an example of a processor. The storage unit 82 is implemented by an HDD, an SSD, a flash memory, or the like. The FPGA 80 includes a logic circuit in which the logic of image processing performed on the radiation image is pre-programmed.
[0045] The control device 18 includes a CPU 90, a memory 91 as a temporary storage area, a non-volatile storage unit 92, and an image memory 94. The CPU 90 is an example of a processor. The storage unit 92 is implemented by an HDD, an SSD, a flash memory, or the like. A control program 93 is stored in the storage unit 92 as a storage medium. The CPU 90 reads the control program 93 from the storage unit 92, expands it in the memory 91, and executes the expanded control program 93. The image memory 94 has a storage capacity capable of storing a predetermined number of radiation images.
[0046] Next, with reference to FIG. 4, the functional configuration of the console 14 will be described. As shown in FIG. 4, the console 14 includes an acquisition unit 100, a first transmission unit 102, a reception unit 104, a derivation unit 105, a display control unit 106, a reception unit 107, and a second transmission unit 108. When the CPU 60 executes the information processing program 63, it functions as the acquisition unit 100, the first transmission unit 102, the reception unit 104, the derivation unit 105, the display control unit 106, the reception unit 107, and the second transmission unit 108.
[0047] The acquisition unit 100 acquires the imaging order 66 from the storage unit 62. The first transmission unit 102 transmits the irradiation conditions in fluoroscopic imaging corresponding to the imaging order 66 acquired by the acquisition unit 100 to the control device 13.
[0048] The receiving unit 104 receives the radiation image obtained by general imaging transmitted from the first image processing device 16A. Further, the receiving unit 104 receives the radiation image obtained by fluoroscopic imaging transmitted from the second image processing device 16B. Hereinafter, when distinguishing between the radiation image obtained by general imaging and the radiation image obtained by fluoroscopic imaging, the radiation image obtained by general imaging is referred to as the "first radiation image", and the radiation image obtained by fluoroscopic imaging is referred to as the "second radiation image".
[0049] In addition, the receiving unit 104 receives information (hereinafter referred to as "arrival dose information") representing the dose of the radiation R (hereinafter referred to as the "arrival dose") that is irradiated from the radiation source 10 in fluoroscopic imaging and reaches the detection surface of the radiation detector 11, which is transmitted from the second image processing device 16B.
[0050] The derivation unit 105 derives the irradiation conditions in the general imaging performed after the fluoroscopic imaging based on the arrival dose information received by the receiving unit 104 and the imaging order 66. Hereinafter, a specific example of the derivation process of the irradiation conditions by the derivation unit 105 will be described.
[0051] The irradiation conditions in the general imaging and the irradiation conditions in the fluoroscopic imaging included in the imaging order 66 are not conditions specific to the patient P, but are general conditions according to the type of examination, the imaging site, etc. In contrast, since the arrival dose information derived by the second image processing device 16B described later is based on the second radiation image obtained by fluoroscopic imaging, it may vary from patient P to patient P due to the influence of the size of the imaging site and the body thickness of the patient P. Therefore, the derivation unit 105 derives at least one of the tube current and the irradiation time of the radiation R as the irradiation conditions so that the arrival dose estimated from the irradiation conditions in the fluoroscopic imaging included in the imaging order 66 matches the arrival dose indicated by the arrival dose information received by the receiving unit 104. For example, when the arrival dose estimated from the irradiation conditions in the fluoroscopic imaging is less than the arrival dose indicated by the arrival dose information received by the receiving unit 104, the derivation unit 105 derives the tube current and the irradiation time of the radiation R so that the radiation dose corresponding to the irradiation conditions in the fluoroscopic imaging increases.
[0052] Then, the derivation unit 105 multiplies the ratio obtained by dividing the derived tube current by the tube current in fluoroscopic imaging included in the imaging order 66 by the tube current in general imaging included in the imaging order 66. Further, the derivation unit 105 multiplies the ratio obtained by dividing the derived irradiation time by the irradiation time in fluoroscopic imaging included in the imaging order 66 by the irradiation time in general imaging included in the imaging order 66. Thereby, the derivation unit 105 derives the tube current and the irradiation time according to the patient P as the irradiation conditions in general imaging performed after fluoroscopic imaging. Note that the derivation unit 105 may derive a plurality of irradiation conditions in general imaging performed after fluoroscopic imaging based on the dose information reached and the imaging order 66.
[0053] In addition, when the age of the patient P included in the imaging order 66 is less than or equal to the first threshold value or greater than or equal to the second threshold value, the derivation unit 105 further derives irradiation conditions in which the dose of the radiation R is lower than the derived irradiation conditions. As the first threshold value, for example, a value determined as the upper limit value of the age range of young children such as infants can be mentioned. As the second threshold value, for example, a value determined as the lower limit value of the age range of the elderly can be mentioned. That is, the derivation unit 105 derives a plurality of irradiation conditions according to the age of the patient P.
[0054] Note that the derivation unit 105 may derive a plurality of irradiation conditions according to the information regarding the physique of the patient P included in the imaging order 66. For example, when the body thickness of the patient P is thicker than the average body thickness, the derivation unit 105 may further derive irradiation conditions in which the dose of the radiation R is higher than the derived irradiation conditions. Further, the derivation unit 105 may derive a plurality of irradiation conditions according to both the age of the patient P and the information regarding the physique of the patient P.
[0055] Further, the derivation unit 105 may derive the tube voltage as the imaging condition in the general imaging performed after the fluoroscopic imaging based on the index value representing the contrast of the radiation image obtained by the fluoroscopic imaging. Examples of the index value representing the contrast include the contrast ratio. For example, the derivation unit 105 derives the contrast ratio of the second radiation image of the last frame after the completion of the fluoroscopic imaging. Then, the derivation unit 105 derives the tube voltage obtained by changing the tube voltage in the general imaging included in the imaging order 66 so that the derived contrast ratio matches the target value of the contrast ratio. In this case, the derivation unit 105 may derive the contrast ratio based on the average image of the second radiation images of the last plurality of frames.
[0056] The display control unit 106 performs control to display the first radiation image received by the reception unit 104 on the display 65. Further, the display control unit 106 performs control to display a plurality of second radiation images continuously received by the reception unit 104 on the display 65 according to the frame rate.
[0057] Further, the display control unit 106 performs control to display the irradiation conditions derived by the derivation unit 105 on the display 65. FIG. 5 shows an example of an irradiation condition display screen displayed on the display 65 by this control. FIG. 5 shows an example of the irradiation condition display screen when the age of the patient P is equal to or less than the first threshold value. As shown in FIG. 5, in this example, the irradiation conditions included in the imaging order 66, the irradiation conditions based on the result of the fluoroscopic imaging derived by the derivation unit 105, and the low-dose irradiation conditions considering that the age of the patient P is equal to or less than the first threshold value are displayed. Note that the display control unit 106 may perform control to display a plurality of irradiation conditions derived by the derivation unit 105 on the display 65.
[0058] Based on the irradiation condition display screen, the operator inputs the irradiation conditions for general photography. The operator may input the irradiation conditions by selecting any of the irradiation conditions displayed on the irradiation condition display screen. Alternatively, the operator may input the irradiation conditions by referring to the irradiation conditions displayed on the irradiation condition display screen and inputting the numerical values representing the irradiation conditions. The reception unit 107 receives the irradiation conditions for general photography input by the operator. The second transmission unit 108 transmits the irradiation conditions received by the reception unit 107 to the control device 13.
[0059] Next, with reference to FIG. 6, the functional configuration of the control device 13 will be described. As shown in FIG. 6, the control device 13 includes a determination unit 110, a setting unit 112, a notification unit 114, a reception unit 116, a reception unit 118, and an irradiation control unit 120. When the CPU 50 executes the control program 53, it functions as the determination unit 110, the setting unit 112, the notification unit 114, the reception unit 116, the reception unit 118, and the irradiation control unit 120.
[0060] The determination unit 110 determines whether the irradiation area of the radiation R on the detection surface of the radiation detector 11 satisfies the condition that it is equal to or less than the maximum area capable of detecting the radiation R in the radiation detector 11. The irradiation area of the radiation R is determined according to the SID and the area of the irradiation aperture of the irradiation field limiter 21. In the present embodiment, the determination unit 110 determines whether the above condition is satisfied by determining whether the SID is equal to or less than the first set value and the area of the irradiation aperture is equal to or less than the second set value. The first set value and the second set value are determined according to the standard according to the numerical value (for example, 19 inches, etc.) representing the area of the detection surface of the radiation detector 11 used for fluoroscopic photography. For example, the determination unit 110 performs the above determination when the position of the radiation source 10 is changed or when the positions of the four shielding plates of the irradiation field limiter 21 are changed.
[0061] In addition, when the positions of the four shielding plates of the irradiation field limiter 21 are fixed, that is, when the area of the irradiation aperture is a fixed value, the determination unit 110 may use only the first set value among the first set value and the second set value. In this case, the determination unit 110 determines whether the above conditions are satisfied by determining whether the SID is less than or equal to the first set value. Further, the determination unit 110 may perform the above determination at predetermined time intervals.
[0062] Also, the first set value and the second set value may be, for example, specifiable by an operator. In this case, the CPU 50 receives the specification of the first set value and the second set value by the operator.
[0063] When it is determined by the determination unit 110 that the conditions are satisfied, the setting unit 112 sets the imaging mode to the fluoroscopic imaging mode. In this case, the setting unit 112 transmits an instruction to set the imaging mode to the fluoroscopic imaging mode to the control device 18, and the CPU 90 of the control device 18 sets the imaging mode to the fluoroscopic imaging mode.
[0064] Also, when it is determined by the determination unit 110 that the conditions are not satisfied, the setting unit 112 sets the imaging mode to the general imaging mode. In this case, the setting unit 112 transmits an instruction to set the imaging mode to the general imaging mode to the control device 18, and the CPU 90 of the control device 18 sets the imaging mode to the general imaging mode. In the present embodiment, the general imaging mode is set as the initial imaging mode at the time of system startup, that is, the default imaging mode.
[0065] The process of setting the imaging mode to either the general imaging mode or the fluoroscopic imaging mode is performed, for example, by setting the value representing the imaging mode stored in the storage unit of each device to a value representing either the general imaging mode or the fluoroscopic imaging mode. Note that the value representing the imaging mode may be stored in a shared storage unit accessible from each device. Also, the imaging mode may be set by a physical switch.
[0066] When the determination unit 110 determines that the conditions are satisfied, the notification unit 114 notifies that the conditions are satisfied. For example, the notification unit 114 notifies that the conditions are satisfied by blinking a display provided on the radiation source 10. Note that the notification unit 114 may notify that the conditions are satisfied by voice output via a speaker. Further, the notification unit 114 may notify that the conditions are satisfied by making the radiation source 10 immovable, such as locking the moving mechanism of the radiation source 10.
[0067] Further, the notification unit 114 may output instruction information indicating an instruction to notify to the first image processing device 16A. In this case, the CPU 70 of the first image processing device 16A may notify that the conditions are satisfied by performing control to display a message indicating that the conditions are satisfied on the display 17. Further, the notification unit 114 may output instruction information indicating an instruction to notify to the console 14. In this case, the CPU 60 of the console 14 may notify that the conditions are satisfied by performing control to display a message indicating that the conditions are satisfied on the display 65.
[0068] The receiving unit 116 receives the irradiation conditions in general imaging and the irradiation conditions in fluoroscopic imaging transmitted from the console 14. The receiving unit 116 also receives the dose information reaching from the second image processing device 16B. The reception unit 118 receives an instruction to start radiation imaging via an irradiation switch.
[0069] The irradiation control unit 120 controls the operation of the radiation source 10. Specifically, when the reception unit 118 receives an instruction to start radiation imaging and the imaging mode is the general imaging mode, the irradiation control unit 120 operates the voltage generator 12 according to the irradiation conditions in general imaging received by the reception unit 116, and causes the radiation tube 20 to emit radiation R. Further, when the reception unit 118 receives an instruction to start radiation imaging and the imaging mode is the fluoroscopic imaging mode, the irradiation control unit 120 operates the voltage generator 12 according to the irradiation conditions in fluoroscopic imaging received by the reception unit 116, and causes the radiation tube 20 to emit radiation R.
[0070] In addition, the irradiation control unit 120 outputs an irradiation start signal for notifying the start of irradiation of the radiation R and an irradiation end signal for notifying the end of irradiation of the radiation R to the control device 18.
[0071] In addition, the irradiation control unit 120 controls the dose of the radiation R in the next frame using the arrival dose information derived based on the second radiation image of each frame in fluoroscopic imaging. Hereinafter, a specific example of dose control by the irradiation control unit 120 will be described.
[0072] As described above, the irradiation conditions in fluoroscopic imaging included in the imaging order 66 are general conditions, not conditions specific to the patient P. In contrast, since the arrival dose information derived by the second image processing device 16B described later is based on the second radiation image obtained by fluoroscopic imaging, it may vary from patient P to patient P due to the influence of the size of the imaging site and the body thickness of the patient P. Therefore, as dose control, the irradiation control unit 120 controls at least one of the tube current and the irradiation time of the radiation R in the next frame so that the arrival dose estimated from the irradiation conditions of the immediately preceding frame matches the arrival dose indicated by the arrival dose information.
[0073] Next, referring to FIG. 7, the functional configuration of the control device 18 will be described. As shown in FIG. 7, the control device 18 includes a receiving unit 130, a detector control unit 132, and a transmitting unit 134. When the CPU 90 executes the control program 93, it functions as the receiving unit 130, the detector control unit 132, and the transmitting unit 134.
[0074] The receiving unit 130 receives the irradiation start signal and the irradiation end signal transmitted from the control device 13. The detector control unit 132 controls the operation of the radiation detector 11. Specifically, when the imaging mode is the fluoroscopic imaging mode, the detector control unit 132 causes the radiation detector 11 to start a process of continuously acquiring images at a predetermined frame rate regardless of whether an instruction to start irradiation of the radiation R has been received.
[0075] That is, when the imaging mode of the radiation detector 11 is set to the fluoroscopic imaging mode, the detector control unit 132 causes the radiation detector 11 to start a process of continuously acquiring images by repeatedly performing a charge accumulation operation and a charge readout operation on the detection panel 41 according to the frame rate. Therefore, when the imaging mode is the fluoroscopic imaging mode, image acquisition is started even before the start of irradiation of the radiation R. The acquired image can be used as an offset correction image. Also, by starting image acquisition even before the start of irradiation of the radiation R, saturation of the temperature rise of the detection panel 41 can be promoted.
[0076] In addition, when the imaging mode is the general imaging mode, the detector control unit 132 causes the detection panel 41 to perform a charge accumulation operation when the receiving unit 130 receives the irradiation start signal. Also, when the imaging mode is the general imaging mode, the detector control unit 132 causes the detection panel 41 to perform a charge readout operation when the receiving unit 130 receives the irradiation end signal. Thereby, in the general imaging mode, one radiation image is acquired.
[0077] When the shooting mode is the general shooting mode, the transmission unit 134 transmits the first radiation image obtained under the control of the detector control unit 132 to the first image processing device 16A. Also, when the shooting mode is the fluoroscopic imaging mode, the transmission unit 134 sequentially transmits the second radiation images obtained at a predetermined frame rate under the control of the detector control unit 132 to the second image processing device 16B.
[0078] Next, with reference to FIG. 8, the functional configuration of the first image processing device 16A will be described. As shown in FIG. 8, the first image processing device 16A includes a reception unit 140, an image processing unit 142, and a transmission unit 144. The CPU 70 functions as the reception unit 140, the image processing unit 142, and the transmission unit 144 by executing the image processing program 73.
[0079] The reception unit 140 receives the first radiation image transmitted from the radiation detector 11. The image processing unit 142 performs various image processes such as offset correction processing, sensitivity correction processing, and defective pixel correction processing on the first radiation image received by the reception unit 140.
[0080] The offset correction processing is a process of subtracting, on a pixel-by-pixel basis, the offset correction image obtained in a state where no radiation R is irradiated from the radiation image. The sensitivity correction processing is a process of correcting variations in sensitivity of each pixel of the detection panel 41 of the radiation detector 11 and variations in output characteristics of the circuit for reading out signal charges, etc., based on the sensitivity correction data. The defective pixel correction processing is a process of linearly interpolating the pixel value of a defective pixel with the pixel values of surrounding normal pixels based on information on defective pixels with abnormal pixel values generated at the time of shipment or during regular inspections.
[0081] The transmission unit 144 transmits the first radiation image that has undergone the image processing by the image processing unit 142 to the console 14.
[0082] Next, referring to FIG. 9, the functional configuration of the second image processing apparatus 16B will be described. As shown in FIG. 9, the second image processing apparatus 16B includes a receiving unit 150, an image processing unit 152, a deriving unit 153, and a transmitting unit 154. By the FPGA 80 executing a pre-programmed logic, it functions as the receiving unit 150, the image processing unit 152, the deriving unit 153, and the transmitting unit 154.
[0083] The receiving unit 150 receives the second radiation image transmitted from the radiation detector 11. The image processing unit 152 performs various image processes such as offset correction processing, sensitivity correction processing, and defective pixel correction processing on the second radiation image received by the receiving unit 150.
[0084] The deriving unit 153 derives the reaching dose information in fluoroscopic imaging based on the second radiation image that has undergone the image processing by the image processing unit 152. Note that the deriving unit 153 may derive the reaching dose information in fluoroscopic imaging based on the second radiation image before undergoing the image processing by the image processing unit 152. The second radiation image is an example of information used for dose control of the radiation R irradiated from the radiation source 10 to the radiation detector 11 in the fluoroscopic imaging according to the disclosed technology. Hereinafter, a specific example of the deriving process of the irradiation conditions by the deriving unit 153 will be described.
[0085] The dose received varies according to the size and body thickness of the imaging region of patient P. Specifically, the larger the imaging region, the smaller the dose received. Also, the thicker the body, the smaller the dose received. Further, the higher the dose received, the higher the density of the second radiation image. Therefore, the derivation unit 153 according to the present embodiment derives the density histogram of the second radiation image and derives dose received information using the derived density histogram. The relationship between the density histogram and the dose received is obtained in advance based on, for example, statistical values of past radiation image imaging data. The derivation unit 153 derives dose received information based on the second radiation image of each frame during irradiation of the radiation R in fluoroscopic imaging. Also, the derivation unit 153 derives dose received information based on the second radiation image of the last frame after completion of fluoroscopic imaging. Note that the derivation unit 153 may derive dose received information based on a plurality of second radiation images after completion of fluoroscopic imaging. In this case, the derivation unit 153 may derive dose received information based on the average image of the second radiation images of the last plurality of frames.
[0086] The transmission unit 154 transmits the second radiation image that has undergone image processing by the image processing unit 152 to the console 14. Also, the transmission unit 154 transmits the dose received information derived by the derivation unit 153 during irradiation of the radiation R in fluoroscopic imaging to the control device 13. Also, the transmission unit 154 transmits the dose received information derived by the derivation unit 153 after completion of fluoroscopic imaging to the console 14.
[0087] As described above, the CPU 70, which is a first processor that performs image processing on the first radiation image obtained when the imaging mode is the general imaging mode, and the FPGA 80, which is a second processor that performs image processing on the second radiation image obtained when the imaging mode is the fluoroscopic imaging mode, are different processors. For the second radiation image, since image processing is performed at high speed by the FPGA 80, which is a processor dedicated to fluoroscopic imaging with logic programmed in advance, a high frame rate can be realized.
[0088] Next, with reference to FIGS. 10 and 11, the operation of the radiographic system 2 will be described. FIGS. 10 and 11 are sequence diagrams showing an example of a radiographic image capturing process executed by the radiographic system 2. Here, as an example, the processing flow when general imaging is performed after fluoroscopic imaging will be described.
[0089] When the imaging order 66 is registered, in step S10, the acquisition unit 100 acquires the imaging order 66 from the storage unit 62. Then, the first transmission unit 102 transmits the irradiation conditions in the fluoroscopic imaging corresponding to the imaging order 66 acquired by the acquisition unit 100 to the control device 13. The reception unit 116 receives the irradiation conditions in the fluoroscopic imaging transmitted from the console 14 in step S10.
[0090] The operator positions the patient P in front of the standing imaging table 15S or lies the patient P supine on the top plate 32 of the lying imaging table 15L according to the imaging order 66. Then, the operator adjusts the position of the radiation source 10. In response to the adjustment of the position of the radiation source 10 by the operator, the determination unit 110 determines whether the irradiation area of the radiation R on the detection surface of the radiation detector 11 satisfies the condition that it is equal to or less than the maximum area capable of detecting the radiation R in the radiation detector 11. When it is determined by the determination unit 110 that the condition is satisfied, in step S12, the setting unit 112 sets the imaging mode to the fluoroscopic imaging mode as described above. Next, in step S14, the notification unit 114 notifies that the condition has been satisfied as described above.
[0091] When the imaging mode is set to the fluoroscopic imaging mode, in step S16, the detector control unit 132 causes the radiation detector 11 to start the process of continuously acquiring images at a predetermined frame rate as described above.
[0092] Upon receiving the notification in step S14, the operator inputs an instruction to start the radiation imaging via the irradiation switch. The reception unit 118 receives the instruction to start the radiation imaging via the irradiation switch. When the start instruction is received by the reception unit 118, in step S18, the irradiation control unit 120 operates the voltage generator 12 according to the irradiation conditions in the fluoroscopic imaging received by the reception unit 116, and causes the radiation tube 20 to emit radiation R. Thereby, the irradiation of the radiation R is started.
[0093] In step S20, the transmission unit 134 sequentially transmits the second radiation image obtained at a predetermined frame rate under the control of the detector control unit 132 to the second image processing device 16B. The reception unit 150 receives the second radiation image transmitted from the radiation detector 11 in step S20.
[0094] In step S22, the image processing unit 152 performs various image processes on the second radiation image received by the reception unit 150 as described above. In step S24, the transmission unit 154 transmits the second radiation image that has undergone the image processing in step S22 to the console 14. The reception unit 104 receives the second radiation image transmitted from the second image processing device 16B in step S24. In step S26, the display control unit 106 controls to display a plurality of second radiation images continuously received by the reception unit 104 on the display 65 according to the frame rate.
[0095] In step S28, as described above, the derivation unit 153 derives the dose information at the point of arrival in fluoroscopic imaging based on the second radiation image that has undergone the image processing in step S24. Then, the transmission unit 154 transmits the dose information at the point of arrival derived by the derivation unit 153 to the control device 13. The reception unit 116 receives the dose information at the point of arrival transmitted from the second image processing device 16B in step S28. In step S30, as described above, the irradiation control unit 120 controls the dose of the radiation R in the next frame using the dose information at the point of arrival received by the reception unit 116. By repeatedly executing the processes from step S20 to step S30 according to the frame rate of the fluoroscopic imaging, a moving image obtained by the fluoroscopic imaging is displayed on the display 65 of the console 14. Furthermore, the dose of the radiation R in each frame is appropriately controlled according to the dose at the point of arrival in the immediately preceding frame.
[0096] The operator terminates the fluoroscopic imaging by terminating the irradiation of the radiation R. In step S32, the transmission unit 154 transmits the dose information at the point of arrival derived by the derivation unit 153 based on the second radiation image of the last frame in the fluoroscopic imaging to the console 14. The reception unit 104 receives the dose information at the point of arrival transmitted from the second image processing device 16B in step S32.
[0097] Also, when the fluoroscopic imaging is completed, the operator adjusts the position of the radiation source 10 according to the general imaging. In response to the adjustment of the position of the radiation source 10 by the operator, the determination unit 110 determines whether or not the condition that the irradiation area of the radiation R on the detection surface of the radiation detector 11 is equal to or less than the maximum area capable of detecting the radiation R in the radiation detector 11 is satisfied. When it is determined by the determination unit 110 that the condition is not satisfied, in step S34, the setting unit 112 sets the imaging mode to the general imaging mode as described above.
[0098] In step S36, as described above, the derivation unit 105 derives the irradiation conditions for general imaging performed after fluoroscopic imaging based on the dose information of the radiation received by the reception unit 104 and the imaging order 66. At this time, as described above, when the age of the patient P included in the imaging order 66 is less than or equal to the first threshold value or greater than or equal to the second threshold value, the derivation unit 105 further derives irradiation conditions in which the dose of the radiation R is lower than the derived irradiation conditions.
[0099] In step S38, the display control unit 106 performs control to display the irradiation conditions derived in step S36 on the display 65. The operator inputs the irradiation conditions for general imaging based on the irradiation condition display screen displayed by this control. The reception unit 107 receives the irradiation conditions for general imaging input by the operator. In step S40, the second transmission unit 108 transmits the irradiation conditions received by the reception unit 107 to the control device 13. The reception unit 116 receives the irradiation conditions for general imaging transmitted from the console 14 in step S40.
[0100] Next, the operator inputs an instruction to start radiation imaging via the irradiation switch. The reception unit 118 receives the instruction to start radiation imaging via the irradiation switch. When the start instruction is received by the reception unit 118, in step S42, the irradiation control unit 120 operates the voltage generator 12 according to the irradiation conditions for general imaging received by the reception unit 116, and emits the radiation R from the radiation tube 20. Thereby, the irradiation of the radiation R is started. Then, the irradiation control unit 120 outputs an irradiation start signal for notifying the start of the irradiation of the radiation R to the control device 18. The reception unit 130 receives the irradiation start signal transmitted from the control device 13 in step S42.
[0101] When the reception unit 130 receives the irradiation start signal, in step S44, the detector control unit 132 causes the detection panel 41 to perform a charge accumulation operation. When the irradiation time of the radiation R started in step S42 has elapsed, in step S46, the irradiation control unit 120 terminates the irradiation of the radiation R from the radiation tube 20. Then, the irradiation control unit 120 outputs an irradiation end signal notifying the end of the irradiation of the radiation R to the control device 18. The reception unit 130 receives the irradiation end signal transmitted from the control device 13 in step S46.
[0102] When the reception unit 130 receives the irradiation end signal, in step S48, the detector control unit 132 causes the detection panel 41 to perform a charge readout operation. Then, the transmission unit 134 transmits the first radiation image obtained by this readout operation to the first image processing device 16A. The reception unit 140 receives the first radiation image transmitted from the radiation detector 11 in step S48.
[0103] In step S50, as described above, the image processing unit 142 performs various image processes on the first radiation image received by the reception unit 140. In step S52, the transmission unit 144 transmits the first radiation image that has undergone the image processing in step S50 to the console 14. The reception unit 104 receives the first radiation image transmitted from the first image processing device 16A in step S52. In step S54, the display control unit 106 performs control to display the first radiation image received by the reception unit 104 on the display 65.
[0104] As described above, according to the present embodiment, in a radiation imaging system capable of switching between fluoroscopic imaging and general imaging of radiation, the imaging efficiency can be improved.
[0105] In addition, in the above embodiment, in the fluoroscopic imaging mode, the operator may be able to input an instruction to capture a still image. In this case, when the imaging mode is the fluoroscopic imaging mode and an instruction to capture a still image is received, the CPU 60 of the console 14 may generate a single radiographic still image using one or more first radiographic images obtained by fluoroscopic imaging. For example, the CPU 60 may generate one radiographic still image by generating an average image of a plurality of first radiographic images obtained by fluoroscopic imaging. Further, the process of generating this radiographic still image may be executed by a processor of a device other than the console 14, such as the FPGA 80 of the second image processing device 16B, for example.
[0106] Also, each functional unit in the above embodiment may be provided in a device different from the device in which the functional unit is provided in the above embodiment. Further, each functional unit in the above embodiment may be realized by a single computer.
[0107] Also, in the above embodiment, the case where the CPU 60 of the console 14 performs control to display the derived irradiation conditions in general imaging on the display 65 has been described, but the disclosed technology is not limited to this aspect. For example, the CPU 60 may transmit the derived irradiation conditions in general imaging to the control device 13. In this case, when the CPU 50 of the control device 13 receives an instruction to start radiographic imaging and the imaging mode is the general imaging mode, the CPU 50 may operate the voltage generator 12 according to the irradiation conditions in general imaging transmitted from the console 14 and cause the radiation tube 20 to emit radiation R.
[0108] Also, in the above embodiment, for example, as the hardware structure of a processing unit that executes various processes such as each functional unit of each device, the following various processors can be used. Among the above various processors, as described above, in addition to the CPU which is a general-purpose processor that executes software (program) and functions as various processing units, there is a programmable logic device (PLD) which is a processor whose circuit configuration can be changed after manufacturing such as an FPGA, and a dedicated electric circuit which is a processor having a circuit configuration specifically designed to execute specific processes such as an ASIC (Application Specific Integrated Circuit).
[0109] One processing unit may be composed of one of these various processors, or may be composed of a combination of two or more processors of the same type or different types (for example, a combination of multiple FPGAs, or a combination of a CPU and an FPGA). Also, a plurality of processing units may be composed of one processor.
[0110] As an example of configuring a plurality of processing units with one processor, firstly, as represented by computers such as clients and servers, there is a form in which one processor is configured by a combination of one or more CPUs and software, and this processor functions as a plurality of processing units. Secondly, as represented by a system on chip (SoC) etc., there is a form in which a processor that realizes the functions of the entire system including a plurality of processing units with one IC (Integrated Circuit) chip is used. Thus, various processing units are configured using one or more of the above various processors as the hardware structure.
[0111] Furthermore, more specifically, as the hardware structure of these various processors, an electric circuit (circuitry) combining circuit elements such as semiconductor elements can be used.
[0112] In addition, in the above embodiment, a mode in which various programs are pre-stored (installed) in the storage unit has been described, but the present invention is not limited to this. The various programs may be provided in a form recorded on a recording medium such as a CD-ROM (Compact Disc Read Only Memory), a DVD-ROM (Digital Versatile Disc Read Only Memory), or a USB (Universal Serial Bus) memory. Further, the various programs may be in a form downloaded from an external device via a network.
Explanation of Signs
[0113] 2 Radiation imaging system 10 Radiation source 11 Radiation detector 12 Voltage generator 13, 18 Control device 14 Console 15L Horizontal imaging table 15S Upright imaging table 16 Image processing device 16A First image processing device 16B Second image processing device 17, 65 Display 20 X-ray tube 21 Irradiation field limiter 22, 29 Support column 25 Stand 26, 31 Connection part 27L Holder for horizontal position 27S Holder for upright position 28, 30 Pedestal 32 Top plate 40 Housing 41 Detection panel 50, 60, 70, 90 CPU 51, 61, 71, 81, 91 Memory 52, 62, 72, 82, 92 Storage unit 53, 93 Control program 63 Information processing program 64 Input device 66 Shooting order 73 Image processing program 80 FPGA 94 Image memory 100 Acquisition unit 102 First transmission unit 104, 116, 130, 140, 150 Receiving unit 105, 153 Derivation unit 106 Display control unit 107, 118 Reception unit 108 Second transmission unit 110 Judgment unit 112 Setting unit 114 Notification unit 120 Irradiation control unit 132 Detector control unit 134, 144, 154 Transmission unit 142, 152 Image processing unit P Patient R Radiation
Claims
1. A fluoroscopic imaging system comprising at least one processor and capable of switching between and executing fluoroscopic imaging for continuously capturing a plurality of radiation images at a predetermined frame rate and general imaging for recording one radiation image, wherein the processor, derives imaging conditions for general imaging to be performed after fluoroscopic imaging based on information used for dose control of radiation irradiated from a radiation source to a radiation detector in fluoroscopic imaging and an imaging order including imaging conditions for general imaging registered in advance. A radiation imaging system.
2. The processor according to claim 1, performs control to display the derived imaging conditions. The radiation imaging system according to claim 1.
3. The imaging order includes the age of the subject, and the processor, when the age of the subject is less than or equal to a first threshold value or greater than or equal to a second threshold value, further derives imaging conditions in which the radiation dose is lower than the derived imaging conditions. The radiation imaging system according to claim 1 or claim 2.
4. The imaging order includes at least one of information regarding the age and physique of the subject, and the processor, derives a plurality of the imaging conditions according to at least one of the information regarding the age and physique of the subject. The radiation imaging system according to claim 1 or claim 2.
5. The processor according to claim 1, derives the tube voltage as an imaging condition for general imaging to be performed after fluoroscopic imaging based on an index value representing the contrast of the radiation image obtained by fluoroscopic imaging. The radiation imaging system according to claim 1 or claim 2.
6. The processor according to claim 1, sets the imaging mode to the fluoroscopic imaging mode when a condition that the irradiation area of radiation on the detection surface of the radiation detector is less than or equal to the maximum area capable of detecting radiation in the radiation detector is satisfied. The radiation imaging system according to claim 1 or claim 2.
7. The condition is a condition that the distance from the radiation source to the detection surface is less than or equal to a set value. The radiation imaging system according to claim 6.
8. The processor of a radiation imaging system comprising at least one processor and capable of switching between and executing fluoroscopic imaging for continuously capturing a plurality of radiation images at a predetermined frame rate and general imaging for recording one radiation image, Based on the information used for dose control of the radiation irradiated from the radiation source to the radiation detector in fluoroscopic imaging and the imaging order including the imaging conditions in general imaging registered in advance, derive the imaging conditions in general imaging performed after fluoroscopic imaging. A radiation imaging method for executing the process.
9. In the processor of a radiation imaging system capable of switching between fluoroscopic imaging that includes at least one processor and continuously captures a plurality of radiation images at a predetermined frame rate, and general imaging that records one radiation image, Based on the information used for dose control of the radiation irradiated from the radiation source to the radiation detector in fluoroscopic imaging and the imaging order including the imaging conditions in general imaging registered in advance, derive the imaging conditions in general imaging performed after fluoroscopic imaging. A radiation imaging program for causing the execution of the process.
Citation Information
Patent Citations
X-ray fluoroscopic apparatus
JP2011147615A