Radiation imaging device

The radiation imaging apparatus addresses burn-in artifacts by using pre-calibrated gain correction data to automatically adjust for sensitivity changes, enhancing throughput and reducing manual labor in correcting image artifacts.

JP7767557B2Active Publication Date: 2025-11-11CANON KK
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2024189504
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-02-24
Filing Date
2024-10-29
Publication Date
2025-11-11
Estimated Expiration
2043-08-14
Patent Text Reader

Abstract

To appropriately perform correction when bright burn occurs in detection means.SOLUTION: A radiation imaging apparatus has: acquisition means that acquires a radiation image photographed by detection means that detects incident radiation, and gain correction data; and gain correction means that corrects the radiation image by using the gain correction data. When bright burn in the detection means occurs, the gain correction means corrects the radiation image by using the gain correction data acquired by executing gain calibration after the occurrence of the bright burn.SELECTED DRAWING: Figure 9A
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a radiation imaging apparatus, a radiation imaging system, a control method for a radiation imaging apparatus, and a program Regarding grams. [Background technology]

[0002] X-ray imaging devices are used in medical diagnostic imaging and non-destructive testing. Flat Panel Detectors (FPDs) made of scintillators and semiconductor materials Radiation imaging devices using flat panel display (FPD) have become widespread. For example, in non-destructive testing, a radiation imaging device destroys objects such as printed circuit boards and pipes. It can be used to inspect for internal or surface damage or deterioration without the need for inspection.

[0003] However, for thick objects such as pipes, the scintillator is exposed to a large amount of X-rays. The sensitivity characteristics of the scintillator change depending on the radiation exposure. This phenomenon is also called "bright burn." This causes artifacts or residual images of the subject on the FPD image, but it takes time for the image to return to normal. Since this takes time, a correction method for removing burn-in is known.

[0004] As a correction method to remove image retention, remove the subject and take a white photo (hereinafter referred to as gain calibration) After updating the gain correction data, the updated gain correction data is used when taking a photograph. There is a technology to perform gain correction using data.

[0005] On the other hand, an afterimage phenomenon occurs when the scintillator continues to emit light even after the X-ray irradiation is stopped. Some of these are caused by afterglow due to other factors, such as residual light from the image sensor or residual image transfer. These are called FPN (Fixed Pattern Noise) afterimages, and this FP The aforementioned gain calibration is also an effective countermeasure against N-image retention.

[0006] However, this gain calibration itself is a time-consuming task, so it is recommended to perform it. There is a desire to keep this to a minimum.

[0007] In Patent Document 1, gain calibration was performed in advance as a countermeasure against FPN afterimages. The image taken without X-ray irradiation (hereinafter referred to as FPN image) and the FPN image taken just before the subject was photographed. A technology has been disclosed that determines the occurrence of FPN afterimages from images and takes measures to address them.

[0008] Patent Document 2 describes a comparison of the current burn-in image and the previous burn-in correction image and the burn-in correction image. A correction method is disclosed that uses an image in which parameters are calculated from an image with additional information. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] Patent No. 4468083 [Patent Document 2] Japanese Patent Application Laid-Open No. 2003-185752 Summary of the Invention [Problem to be solved by the invention]

[0010] When trying to determine the presence or absence of image burn-in from an image taken under X-ray irradiation, for example, After this, the object is moved and another image is obtained by irradiating it with X-rays. This requires the effort of determining whether or not image burn-in has occurred, which reduces inspection throughput. In the case of pipe inspections, the work of moving the object may require manual labor. This will cause unnecessary effort on the part of the user.

[0011] An object of the present disclosure is to make it possible to appropriately correct burn-in in a detection means when it occurs. [Means for solving the problem]

[0012] The radiation imaging apparatus includes an acquisition unit that acquires a radiation image captured by a detection unit that detects incident radiation and gain correction data, and a gain correction unit that corrects the radiation image using the gain correction data. a switching means for switching the gain correction data used for correction by the gain correction means; and a storage means for storing first gain correction data acquired when no burn-in occurs in the detection means. and the gain correction means Recorded baking When image sticking occurs, the radiographic image is corrected using the gain correction data obtained by performing gain calibration after the image sticking occurs. The switching means switches the gain correction data to be used to the first gain correction data stored in the storage means in accordance with at least one of the time elapsed since the occurrence of image sticking and the number of times of shooting. . [Effects of the Invention]

[0013] According to the present disclosure, when burn-in occurs in a detection unit, it can be appropriately corrected. [Brief explanation of the drawings]

[0014] [Figure 1] FIG. 1 is a diagram illustrating an example of the configuration of a radiation imaging system. [Figure 2] FIG. 1 is a diagram illustrating an example of the configuration of a radiation inspection system for non-destructive inspection. [Figure 3] 10 is a flowchart illustrating a control method for the radiation imaging system. [Figure 4] FIG. 10 is a diagram showing an example of an FPN image immediately after imaging when image sticking occurs. [Figure 5] FIG. 10 is a diagram illustrating an example of an in-plane pixel distribution in the X-axis direction. [Figure 6] FIG. 1 is a diagram illustrating an example of the configuration of a radiation imaging system. [Figure 7]FIG. 2 is a diagram illustrating an example of the hardware configuration of a control unit in the radiation imaging apparatus. [Figure 8] FIG. 1 is a diagram illustrating an example of the configuration of an inspection device. [Figure 9A] 10 is a flowchart illustrating an example of a process of updating and switching gain correction data. [Figure 9B] 10 is a flowchart illustrating an example of a process of updating and switching gain correction data. [Figure 9C] 10 is a flowchart illustrating an example of a process of updating and switching gain correction data. [Figure 9D] 10 is a flowchart illustrating an example of a process of updating and switching gain correction data. DETAILED DESCRIPTION OF THE INVENTION

[0015] Hereinafter, embodiments will be described with reference to the drawings. The embodiments do not limit the scope of the claims, nor do they limit the combination of features described in the embodiments. Not all of the combinations are necessarily essential as solutions. In this case, the radiation used is preferably X-rays, but is not limited to this. The radiation may be X-rays, α-rays, β-rays, γ-rays, or other radiations. Radiation is not limited to alpha rays, beta rays, gamma rays, particle rays, cosmic rays, etc. It shall be possible.

[0016] (First embodiment) 1 is a diagram showing an example of the arrangement of a radiation imaging system 120 according to the first embodiment. The radiation imaging system 120 includes a radiation imaging device 100, a radiation source 301, and a radiation generating device. a radiation generating device operation UI 302, a display unit 405, and a control device operation UI 40 6 and a control device 400.

[0017] The radiation source 301 emits radiation. The radiation generating device 300 controls the radiation source 301. The control device 400 controls the radiation imaging device 100 and the radiation generating device 300. A radiation imaging application capable of collecting and displaying radiation images from the radiation imaging device 100 It has 403.

[0018] The radiation imaging apparatus 100 includes a radiation detection unit 200, a control unit 101, and a power supply unit 113. The radiation detection unit 200 detects radiation and generates image data. The control unit 101 The radiation detection unit 200 is a two-dimensionally distributed imaging element and a scintillator. The scintillator converts radiation that reaches the radiation detection unit 200 into light. The imaging element has a photoelectric conversion element that converts the light converted by the scintillator into an electric charge. The radiation detection unit 200 generates multi-dimensional radiation image data. Here, we take a scintillator as an example. The image sensor emits light in proportion to the intensity of the radiation that reaches it, and the image sensor emits light in proportion to the intensity of the scintillator light. The higher pixel value is output.

[0019] The control unit 101 includes a radiation image acquisition unit 102, an image processing unit 103, a storage unit 106, The image acquisition unit 102 includes a burn-in estimation unit 111 and a communication unit 112. A radiation image is acquired from the output unit 200 .

[0020] The radiation image acquisition unit 102 reads out the charges from each image pickup element of the radiation detection unit 200 and When the readout of charges from all the image sensors is complete, the acquisition of the radiation image is complete. After the completion of the acquisition of the radiation image, the radiation image acquisition unit 102 stores the radiation image in each image pickup element of the radiation detection unit 200. The radiation image acquisition unit 102 performs a reset operation to read and discard the accumulated charge. The radiographic image 107 acquired from the unit 200 is stored in the storage unit 106.

[0021] The image processing unit 103 performs offset correction on the radiation image 107 stored in the storage unit 106. The offset correction unit 104 performs offset correction, and the gain correction unit 105 performs gain correction. However, the image processing unit 103 may also have a correction unit that performs correction processing other than these. The offset correction unit 104 may also execute a process for generating offset correction data 108. The gain correction unit 105 may also perform processing to generate gain correction data 109.

[0022] The storage unit 106 stores the radiation image 107 acquired by the radiation image acquisition unit 102 and the radiation image 108. The offset correction data 108 used when performing offset correction on the line image 107 is stored. Here, the offset correction data 108 is an image generated in advance before the image capture is performed. In addition, in the radiation imaging of each frame, the radiation image acquisition unit 102 may An image acquired under illumination may be used as the offset correction data 108. The correct data 108 is not limited to one, and may include, for example, the image size when photographing and the radiation accumulation time. Alternatively, the information may be stored for each time.

[0023] Furthermore, the storage unit 106 stores the gain correction data 109 generated in advance by the gain correction unit 105. The gain correction data 109 is not limited to one, and may be, for example, a number of images at the time of shooting. The storage unit 106 may store the radiation image data for each image size. The acquisition unit 102 acquires an FPN image immediately after imaging, which is an image captured under non-irradiation conditions immediately after radiation imaging. The image 110 is stored. FPN is a fixed pattern noise (FPN) oise).

[0024] The burn-in estimation unit 111 estimates the image quality based on the FPN image 110 acquired immediately after radiation imaging. Then, it is estimated whether or not burn-in has occurred in the scintillator during the immediately preceding radiation imaging. The sensitivity characteristics of the detector change depending on the radiation exposure, and the radiation is reflected as an afterimage. Afterglow occurs when the scintillator continues to emit light even after the irradiation of the X-rays is stopped, and This phenomenon may occur due to incomplete transfer of the image from the element. This phenomenon causes artifacts or A residual image of the subject will appear, but it will take time for the image to return to normal, so correction to remove the burn-in is necessary. The afterimage will decrease over time.

[0025] The control device 400 includes a communication control unit 401, a radiation imaging device control unit 402, and a radiation imaging device control unit 403. The radiation generating device includes an application 403, a radiation generating device control unit 404, and a power supply 407. The control unit 401 controls communication between the control device 400 and the radiation imaging device 100, and The radiation imaging device control unit 402 controls communication between the radiation imaging device 300 and the radiation generation device 300. It controls the timing and conditions for acquiring images from the radiological imaging device 100. The terminal 403 collects and displays radiation images from the radiation imaging device 100. The radiation generator control unit 404 controls the radiation irradiation conditions of the radiation generator 300. cormorant.

[0026] The display unit 405 displays a radiation image and imaging information. For example, a keyboard and a mouse are used as a UI for operating the control device 400. The radiation generating device operation UI 302 is, for example, a keyboard and a mouse. This is the UI for operating the 300.

[0027] Between the control device 400 and the radiation imaging device 100, and between the control device 400 and the radiation generating device The information is transmitted between the device 300 and the communication line, a dedicated signal line, and / or a wireless communication line. The communication line can be, for example, RS232C, USB, or local area network. The control device 400 and the radiation imaging device are connected to each other via a cable that conforms to the standards of the wireless LAN network. 100, for example, image data, image acquisition condition setting, device status acquisition, and other control communications. In addition, between the control device 400 and the radiation generating device 300, for example, the radiation irradiation conditions are It performs control communications such as setting conditions, acquiring device status, and actual irradiation information.

[0028] FIG. 2 is a diagram showing an example of the configuration of a radiation inspection system for non-destructive inspection. The system includes a radiation imaging system 120 shown in FIG. a conveyor belt 203, a subject 202, a radiation detection unit 200, and a display unit The radiation generating device 300 irradiates radiation 201. The subject 202 is The radiation is conveyed on a conveyor belt 203. The radiation detection unit 200 converts the incident radiation into an electrical signal. The display unit 405 displays the radiation image and imaging information. .

[0029] When photographing another subject after photographing the subject 202, the conveyor belt 203 Then, the subject 202 is moved and imaging is performed for a different subject. When this phenomenon occurs, the conveyor belt 203 is operated to move the object 202, and the radiation When the subject 202 is not present on the trajectory of the line 201, the radiation generating device 300 generates the radiation 2 01 and perform gain calibration. If there is an examination in which you do not want to perform gain calibration when a marking phenomenon occurs Alternatively, you can turn off the gain calibration function in the settings of the radiation generator 300. can.

[0030] FIG. 3 is a flowchart showing a method for controlling the radiation imaging system 120. The storage unit 106 stores offset correction data 108 and gain correction data 109 in advance. Therefore, if the storage unit 106 holds the offset correction data 108, If not, the operator first operates the control device 400 to set the offset. Similarly, if the memory unit 106 stores the gain correction data 109, If the operator does not have the device, he / she operates the control device 400 to The image correction data generation process is performed.

[0031] Although not shown, before step S301, the operator may operate the control device operation UI. 406, the examination object is set, the imaging method, etc. are selected. 2 is a control signal for the radiation imaging device (for example, a pre-set frame rate) based on the selection by the operator. Then, the communication control unit 401 generates a shooting mode number that determines the image size and the like. sends a radiation imaging apparatus control signal to the communication unit 112 of the radiation imaging apparatus 100.

[0032] The control unit 101 receives a radiation imaging apparatus control signal from the communication unit 112 and transmits the control signal to the radiation imaging apparatus. The radiation detector 200 is driven at a period corresponding to the frame rate of the control signal. The image acquisition unit 102 controls the radiation image acquisition unit 102. Perform the reset operation of 02.

[0033] The radiation generating device 300 is ready to irradiate radiation, and the radiation imaging device 100 is ready to detect radiation. After completion, the operator presses the switch of the radiation generator operation UI 302 to start the radiation generator. Under the control of the radiation generating device 300, the radiation source 301 starts irradiating radiation.

[0034] In step S301, the radiation image acquisition unit 102 detects radiation emitted from the radiation source 301. In this state (radiation irradiation state), the radiation image generated by the radiation detection unit 200 is The radiation image is acquired by reading out the electric charges from each image sensor of the radiation detection unit 200. is an image generated in a state where a subject is present. The obtained radiation image is stored as a radiation image 107 in the storage unit 106 .

[0035] Thereafter, the control unit 101 controls the offset correction unit 104 and the gain correction unit 105 of the image processing unit 103. 105 to perform offset correction and gain correction on the radiation image 107. At this time, the offset correction unit 104 uses the correction data stored in advance in the storage unit 106. Using the offset correction data 108, offset correction is performed on the radiation image 107. The gain correction unit 105 calculates the gain that is stored in advance in the storage unit 106 as correction data. Using the correction data 109, gain correction is performed on the radiation image 107. After performing image processing on image data 07, the control unit 101 controls the communication unit 112 to perform image processing. The radiographic image 107 thus obtained is transferred to the communication control unit 401 .

[0036] In step S302, the control unit 101 in the radiation imaging apparatus 100 determines whether to continue imaging. At this time, the control unit 101 checks, for example, the communication unit 112 and determines whether the control device 40 By checking whether or not there is a communication of a request to stop imaging from the radiation imaging device control unit 402 in If there is no communication requesting to stop shooting, the control unit 101 determines to continue shooting. If there is a communication requesting that the image capture be stopped, it is determined that the image capture will not be continued. If it is determined that the image capture should be continued, the process proceeds to step S303. Return to step S301.

[0037] In step S301, the radiation image acquisition unit 102 controls the radiation detection unit 200 to The radiation detection unit 20 detects the next frame of a radiographic image based on the radiation irradiated from the radiation source 301. The radiographic image acquisition unit 102 then acquires the radiographic image by reading out the electric charges from each of the image pickup elements 100. The acquired radiographic image is stored in the storage unit 106 as a radiographic image 107. The control unit 101 again performs image processing on the radiation image 107, and outputs the processed radiation image. The line image 107 is transferred to the communication control unit 401. After that, the control unit 101 again performs step S In step 302, it is determined whether or not to continue imaging. , a plurality of frames of radiation images 107 are acquired.

[0038] In step S303, the communication unit 112 in the radiation imaging apparatus 100 This means that the radiography stop request communication has been received from the radiation imaging device control unit 402. The radiation imaging application 403 then requests the radiation generation device 300 to stop irradiating radiation. This means that the radiation source 301 is not emitting radiation. do.

[0039] In a state where radiation is not being irradiated (non-irradiation state), the radiation image acquisition unit 102 The radiation detection unit 200 is controlled to reset the radiation detection unit 200 before starting the reset operation. The image generated by the line detection unit 200 is acquired. This image is obtained when no radiation is irradiated. The control unit 101 controls the FPN image immediately after capturing this image. The image is stored in the storage unit 106 as a PN image 110 .

[0040] When acquiring the FPN image 110 immediately after imaging, the radiation image acquisition unit 102 performs the following steps in step S30 The radiation detection unit 200 is controlled under the same operating conditions as when imaging was performed in 1, and FP Alternatively, the radiation image acquisition unit 102 acquires the N image 110 in step S301. The radiation detection unit 200 is controlled under different operating conditions from when the above was performed, and an FPN image is obtained immediately after imaging. An image 110 may be acquired.

[0041] The sooner the FPN image 110 is acquired after the shooting, the Therefore, the presence or absence of burn-in can be estimated with high accuracy in the burn-in estimation in step S304 described later. Therefore, as an example of changing the operating conditions when acquiring the FPN image 110 immediately after imaging, for example, The frame rate can be increased. Then, the radiation image acquisition unit 102 starts the reset operation of the radiation detection unit 200.

[0042] As described above, the reset operation of the radiation detection unit 200 is performed by the radiation image The acquisition of the FPN image 110 immediately after the image capture in step S303 is not performed between the acquisition of the FPN image 107 and the acquisition of the FPN image 110 immediately after the image capture in step S303. , immediately after imaging, after the FPN image 110 is acquired.

[0043] In addition, in order to generate the FPN image 110 immediately after imaging by the radiation detection unit 200 in step S303, The operating conditions for generating the radiation image 107 of the radiation detection unit 200 in step S301 are as follows: The operating conditions are the same as those for the first step S303. The frame rate for generating the PN image 110 is set by the radiation detection unit 20 in step S301. The frame rate may be faster than the frame rate for generating the radiation image 107 of 0.

[0044] The FPN image 110 obtained here immediately after capture is, as shown in FIG. 4, a blurred image due to burn-in. The FPN image 110 immediately after the image capture shows a blank area 411 where there was no subject, and a remaining area where there was a subject. The image is a distribution of residual image areas 412. The residual image area 411 is The control unit 101 stores the FPN image 110 in the storage unit 106 immediately after capturing. After saving, the process proceeds to step S304.

[0045] In step S304, the burn-in estimation unit 111 performs the burn-in estimation on the image acquired in step S303. Based on the FPN image 110 immediately after the exposure, it is possible to estimate whether or not the scintillator of the radiation detection unit 200 has burned in. Here, first, the burn-in estimation unit 111 estimates the in-plane image of the FPN image 110 immediately after capture. As a method for calculating the in-plane pixel distribution, for example, as shown in Figure 4, Scanning the FPN image 110 along horizontal scan lines 413 is performed vertically row by vertical row 414. This is performed to calculate the in-plane pixel distribution.

[0046] Here, in the horizontal axis scanning line 415 having the blank area 411 and the residual image area 412, When calculating the pixel distribution of the horizontal scanning line 415, as shown in FIG. 5, the pixel distribution is divided into a blank area 411 and a remaining area. The pixel values ​​fluctuate greatly between the image area 412 and the FPN image 11 immediately after capture. In the in-plane pixel distribution of 0, if there is an area where the fluctuation value of the pixel value is equal to or greater than a specific threshold, The burn-in estimation unit 111 detects the image quality of the radiation detection unit 200 in the immediately preceding step S301. In this case, the process proceeds to step S305. In addition, the burn-in estimation unit 111 determines whether the image quality is good in the in-plane pixel distribution of the FPN image 110 immediately after capture. If there is no area where the fluctuation value of pixel values ​​is equal to or greater than the specific threshold, the radiation detection unit 200 It is assumed that there is no burn-in of the scintillator, and the process proceeds to step S306.

[0047] As described above, the burn-in estimation unit 111 detects whether the difference in pixel values ​​in the FPN image 110 immediately after capture is equal to or greater than the threshold value. If the image is above the threshold, it is assumed that the scintillator has burned in, and the FPN image 110 immediately after imaging is If the difference in pixel values ​​in is not greater than the threshold, it is assumed that there is no scintillator burn-in. If it is estimated that there is burn-in of the scintillator, the process proceeds to step S305. If it is estimated that there is no burn-in of the scintillator, the process proceeds to step S306. .

[0048] In step S305, the radiation image acquisition unit 102 controls the radiation detection unit 200 to perform the following: The gain calibration is performed as follows. In the radiation irradiation setting, the radiation generating device 300 controls the radiation irradiation of the radiation source 301. The radiation image acquisition unit 102 detects the radiation from the radiation detection unit 200 when there is no subject and radiation is being applied. Then, the gain correction unit 105 acquires a plurality of radiation-exposed images generated by the above. Gain correction data is generated based on the average image of the multiple radiation exposure images acquired. The gain correction data is updated as the gain correction data 109 in the storage unit 106. The process proceeds to step S306.

[0049] In step S306, the control unit 101 in the radiation imaging apparatus 100 At this time, the control unit 101 checks the communication unit 112, for example. In response to a request to start imaging of another subject from the radiation imaging device control unit 402 in the control device 400, The control unit 101 makes the above determination by checking whether or not there is a request for communication. If there is a shooting start request communication for another subject, it is determined that shooting of another subject will be performed, and If there is no communication requesting the start of photography for the subject, it is determined that photography for another subject will not be performed. do.

[0050] If it is determined that a different object is to be photographed, the process returns to step S301. The radiation image acquisition unit 102 again performs the operation of reading out the charges of each image pickup element of the radiation detection unit 200. If it is determined that imaging of another subject will not be performed, Then, the processing of the flowchart in FIG. 3 ends.

[0051] As described above, according to this embodiment, the radiation imaging system 120 can detect the sympathetic nerve impinging on the patient by irradiating a large amount of radiation. When burn-in occurs in the sensor, the occurrence of burn-in is estimated and the correction data is updated. The radiation image is corrected using the correction data. 20 allows you to continue shooting while reducing the effects of burn-in.

[0052] The offset correction data 108 and the FPN image immediately after capture 110 can be obtained even with a single image. Alternatively, an average image of multiple images may be used.

[0053] In step S304, the burn-in estimation unit 111 calculates the burn-in probability based on the FPN image 110 immediately after capture. When estimating the presence or absence of burn-in, the burn-in estimation unit 111 performs the following on the FPN image 110 immediately after capture: Alternatively, image processing may be performed and the presence or absence of burn-in may be estimated based on the image after image processing. The burn-in estimation unit 111 controls the offset correction unit 104 to generate the FPN image 11 immediately after capture. 0, offset correction is performed using the offset correction data 108, and the corrected image By doing so, the control unit 101 can estimate whether or not burn-in occurs based on the Since an image with reduced noise components can be generated from the PN image 110, burn-in estimation can be performed. Improved accuracy.

[0054] Furthermore, when performing gain calibration in step S305, the control unit 101 , and controls the communication unit 112 to transmit a burn-in occurrence notification signal to the control device 400. The communication unit 112 may function as a notification unit, and may notify the user of the occurrence of burn-in. The control device 400 is notified of the occurrence of burn-in. After the control unit 401 receives the burn-in occurrence notification signal, the radiation imaging application 403 An alert screen for the occurrence of a lock is displayed on the display unit 405.

[0055] At this time, the radiation imaging application 403 also performs gain calibration. A selection screen for whether or not to perform the process may be displayed on the display unit 405, allowing the user to make a selection. At this time, the user operates the control device operation UI 406 to perform gain calibration. The radiography application 403 transmits the result of the selection to the radiography device. The control unit 101 of the radiation imaging device 100 transmits the signal to the communication unit 112 of the radiation imaging device 100. The unit 112 checks the received selection result, and if the gain calibration execution instruction is selected, If so, perform gain calibration in step S305, and then Proceed to S306. If it is selected not to perform gain calibration, The control unit 101 does not perform gain calibration and proceeds to step S306. That's fine.

[0056] Here, the burn-in occurrence notification signal has been used as an example of a means of notifying the user. The radiation imaging apparatus 100 may use a notification UI (for example, an LED or a buzzer, not shown) to In addition, the radiation imaging application 403 displays an alert screen when burn-in occurs. Instead of displaying the information on the display unit 405, the information is output as audio using an audio output unit (not shown) of the control device 400. Notification may be given by telephone.

[0057] As described above, according to this embodiment, the burn-in estimation unit 111 estimates the image quality based on the FPN image 110 immediately after capture. The gain correction unit 1 estimates whether or not the scintillator is burned in due to a large amount of radiation exposure. 05 updates the gain correction data 109 only if there is image sticking, and This allows for correction using the image data 109. This reduces the effects of image burn-in while still allowing for accurate shooting. You can continue.

[0058] (Second embodiment) In the first embodiment, during inspection, the offset generated in advance before imaging is used for each frame. In the second embodiment, the offset correction is performed using the offset correction data 108. 101 generates offset correction data 108 for each frame and performs offset correction. In this case, the control unit 101 controls the control unit 102 to control the image data generated by the radiation detection unit 200 in the radiation irradiation state. One frame of a radiation image is acquired, and the radiation image is stored in the storage unit 106 as a radiation image 107. After that, the control unit 101 controls the radiation detection unit 200 to detect the radiation intensity in the non-irradiation state. The image of one frame generated by the offset correction data is acquired, and the image is stored in the storage unit 106. After that, the control unit 101 stores the offset correction data 108 of the image processing unit 103. The offset correction unit 104 controls the frame rate of the offset correction data 108. Based on the frame, offset correction is performed on the frame of the radiation image 107.

[0059] In this case, if it is determined in step S302 that the image capturing should be continued, the control unit 101 The acquisition of the radiographic image 107 and the acquisition of the offset correction data 108 are repeated multiple times. If it is determined in S302 that the image capturing will not be continued, step S303 is not performed. You may proceed to step S304.

[0060] In step S304, the radiation image acquisition unit 102 executes the reset operation of the radiation detection unit 200. The reset operation of the radiation detection unit 200 starts after the acquisition of the radiation image 107. The offset correction data 108 is not acquired multiple times, and the offset correction data The burn-in estimation unit 111 performs the burn-in estimation after the acquisition of the final frame of the image data 108. Instead of the PN image 110, the offset correction data 108 acquired in the final frame Based on this, the presence or absence of burn-in is estimated. Since the time lapse from the end of the image is shorter in the FPN image, the area 411 in Figure 5 is The pixel value fluctuation between the image-retaining area 412 and the image-retaining area 413 becomes larger, and the accuracy of the image-retaining estimation improves. do.

[0061] In this case, in step S304, the burn-in estimation unit 111 calculates the offset correction data 1 When estimating burn-in based on the offset correction data 1008, the burn-in estimation unit 111 8, and the presence or absence of burn-in may be estimated based on the image after image processing. .

[0062] For example, although not shown, the radiation image acquisition unit 102 may perform a preliminary Therefore, an image generated by the radiation detection unit 200 in a non-irradiated state is acquired, and the image is The offset correction data before photography is stored in the storage unit 106. The data is not offset correction data immediately after shooting, so there is no burn-in. In step S304, the burn-in estimation unit 111 controls the offset correction unit 104. The set correction unit 104 stores the final frame of the offset correction data 108 in the storage unit 1 By subtracting the pre-shooting offset correction data stored in 06, the offset correction Then, the burn-in estimation unit 111 estimates the burn-in based on the image after the offset correction. The pre-photography offset correction data is a pre-photography FPN image. As in the case of the offset correction data 108 of the first embodiment, the offset correction data 108 is obtained without irradiation of radiation. It may be a single image or an average image of multiple images.

[0063] This process can also be applied to the first embodiment. The FPN image 110 is subjected to subtraction processing of the above-mentioned pre-photographing offset correction data. Next, we estimate whether or not the scintillator has burned in.

[0064] (Third embodiment) In the method disclosed in Patent Document 2, imaging is performed by irradiating a large amount of radiation, as in non-destructive testing. If the raw value is saturated, it is not possible to accurately estimate the amount of burn-in from the image. If the gain of the flat panel detector is not corrected, artifacts due to burn-in or It may not be possible to remove the afterimage of the photograph immediately.

[0065] The third embodiment is a method for accurately correcting gain even when burn-in occurs in a radiation imaging apparatus. According to the third embodiment, the radiation imaging apparatus Therefore, even if burn-in occurs, accurate gain correction can be performed.

[0066] 6 is a diagram showing an example of the arrangement of a radiation imaging system according to the third embodiment. The imaging system includes a radiation imaging device 600 having a radiation detection unit 601 and a radiation irradiating device 602. A radiation generating device 630 for controlling a radiation source 631, a radiation imaging device 600 and a radiation generating device 632 for controlling a radiation source 631, and a control device 640 that controls the image generating device 630.

[0067] The radiation imaging device 600 includes a radiation detection unit 601, a control unit 602, and a power supply unit 617. The radiation detection unit 601 detects incident radiation and outputs a signal in accordance with the detected radiation dose. The radiation detection unit 601 converts incident radiation into light (e.g., a photodetector) and generates image data. The scintillator (phosphor) converts the light generated by the scintillator into an electrical signal. A plurality of pixels each having a conversion element including a photoelectric conversion element that converts light into electricity are arranged in a two-dimensional array. It is distributed.

[0068] The control unit 602 controls the imaging and communication operations of the radiation imaging device 600. 02 includes an image acquisition unit 603, an image processing unit 604, a first storage unit 606, a second storage unit 607, and a 9, a switching processing unit 612, a switching time estimation unit 613, a communication unit 614, and an internal clock 615. do.

[0069] The image acquisition unit 603 acquires radiation image data corresponding to the irradiation of radiation from the radiation detection unit 601. The image acquisition unit 603 acquires image data including the gain correction data from the radiation detection unit 601. The image processing unit 604 includes a gain correction data acquisition unit 616 that acquires the correct data. Image processing is performed on the image acquired from the line detection unit 601. The radiographic image obtained by the above-described method is corrected by a gain correction unit 605 using gain correction data. do.

[0070] The first storage unit 606 stores the acquired radiation image data 607 and the burn-in prevention gain correction data. The burn-in-free gain correction data 608 is stored in the memory. By irradiating radiation and taking a photograph in a state where the subject is not present, The second storage unit 609 stores the gain correction data with burn-in. The gain correction data with burn-in is stored as 610 and the attenuation data with burn-in is stored as 611. The image sensor 610 is irradiated with radiation when image burn-in occurs and when no object is present. This is gain correction data obtained by shooting with the lens illuminated. 611 is the decay of burn-in measured at the time of factory inspection or installation of the radiation imaging device 600. The first storage unit 606 and the second storage unit 609 are data showing the amount of data. It may be configured as a memory unit.

[0071] The switching processing unit 612 selects the gain correction data used for gain correction of the captured radiographic image. The switching processing unit 612 switches the gain correction data to be used. The gain correction data is switched depending on the result of the judgment. For example, The switching processing unit 612 determines whether a predetermined switching condition is satisfied, and if the switching condition is satisfied, If it is determined that the time is satisfied, the gain correction data to be used is switched. The gain is calculated based on the burn-in attenuation amount data 611 stored in the second storage unit 609. The communication unit 614 communicates with the control device 640. The internal clock 615 acquires the shooting time, elapsed time, etc. The power supply unit 617 controls Power is supplied to each part in the radiological imaging device 600.

[0072] The control unit 602 reads out, for example, a program stored in the first storage unit 606. The entire radiation imaging apparatus 600 may be controlled based on the read program or the like. Alternatively, the radiation imaging device 600 may be controlled by a control signal generating circuit such as an ASIC. Alternatively, the entire radiation imaging apparatus 600 may be controlled by both the program and the control circuit. This may be done.

[0073] The radiation generating device 630 controls the radiation source 631. The radiation source 631 generates radiation. The radiation generating device 630 controls the radiation imaging device 600 to emit radiation. 630 includes an operation UI 632 for operating the radiation generating device 630. The operation UI 632 includes a keyboard, a mouse, etc. The user can use the operation UI 632 to, for example, Sets the irradiation conditions and irradiates the radiation.

[0074] The control device 640 includes an imaging device control unit 641, a communication unit 642, and a radiation imaging application. The imaging device control unit includes a power supply unit 643, a power supply unit 644, a display unit 645, and an operation UI 646. The communication unit 641 controls the timing and conditions of image acquisition by the radiation imaging device 600. 42 controls communication with the radiation imaging device 600 and the radiation generating device 630. The image application 643 collects, displays, and processes images captured by the radiation imaging device 600. The power supply unit 644 controls the reception of orders and the registration of imaging information. Power is supplied to each component. The display unit 645 displays the captured image and capture information. Operation UI 64 6 is a user interface for operating the radiography application. The UI 646 includes a keyboard, a mouse, and the like.

[0075] Here, the communication between the control device 640 and the radiation imaging device 600, and the Communication with the radiation generating device 630 is performed via, for example, RS232C, USB, or Ethernet ( The control device 640 may be a cable connection communication device using a standard such as IEEE 802.11b / g (registered trademark). and the radiation imaging device 600, and the control device 640 and the radiation generation device 630. The communication between the control device 640 may be communication using a dedicated signal line or wireless communication. and the radiation imaging device 600, and the control device 640 and the radiation generation device 630. The communication between the control device 640 and the radiation imaging device may be a combination of these. For example, image data, image acquisition condition settings, and device status acquisition are exchanged between the device 600 and the Communicate.

[0076] FIG. 7 is a diagram showing an example of the hardware configuration of the control unit 602 of the radiation imaging apparatus 600. As shown in FIG. The control unit 602 includes a CPU 701, a ROM 702, a RAM 703, a storage device 704, an input unit 705, a communication unit 706, and a bus 707. 703, a storage device 704, an input unit 705, and a communication unit 706 communicate with each other via a bus 707. possible connected.

[0077] The CPU (Central Processing Unit) 701 is The control program stored in the (Ad Only Memory) 702 is read out and various processes are performed. It executes the process and controls the entire radiation imaging apparatus 600. The ss Memory 703 is a temporary storage area such as the main memory and work area of ​​the CPU 701. The storage device 704 is, for example, an HDD or SSD, and is used to store various data and The input unit 705 stores the radiation image data obtained by imaging and The gain correction data is input to the communication unit 706. The communication unit 706 performs communication processing with the control device 640.

[0078] For example, the CPU 701 reads the program stored in the ROM 702 or the storage device 704. By reading out the program and executing the read program, the functions of the control unit 602 described above are realized. This allows the functions and processing described below to be realized.

[0079] FIG. 8 is a diagram showing an example of the configuration of an inspection apparatus to which the radiation imaging system according to this embodiment is applied. In FIG. 8, the components having the same functions as those shown in FIG. 6 are denoted by the same symbols. In FIG. 8, 801 denotes a radiation such as X-rays emitted from a radiation source 631. 802 is the object to be inspected, and 803 controls the position of the object 802. The conveyor belt is capable of moving the object 802. The device is designed to prevent burn-in from occurring in a captured image based on image data acquired from the radiation detection unit 601. In this case, the conveyor belt 803 is operated to send radiation 803 to a position where the subject 802 is not present. 01 and adjust the gain. You can also select whether to adjust the gain. This is possible, and there are some examinations where you do not want to adjust the gain if image burn-in occurs in the captured image. In some cases, the gain adjustment function can be turned off in the settings of the radiation generator 630. do.

[0080] Referring to the flowchart shown in FIG. 9A, the gain correction data is updated in this embodiment. An example of the switching process will be described.

[0081] In step S901, the gain correction data acquisition unit 616 of the image acquisition unit 603 Gain calibration is performed under the condition that no noise occurs, and the first gain correction device The gain correction data acquisition unit 616 acquires and stores the radiation data in a state where there is no subject. By irradiating and photographing, first gain correction data is obtained, and the obtained first gain correction The data is stored in the first storage unit 606 as burn-in-free gain correction data 608 .

[0082] In step S902, the control unit 602 sets the number of times of shooting N to an initial value. In this example, the number of times N is taken is set to 1 as the initial value, and is incremented by 1 each time a photograph of the subject is taken. The number of entries shall be counted up.

[0083] In step S903, radiation is irradiated onto the subject to start imaging, and the radiation imaging device 60 After the Nth shooting is completed, the process of step S904 is performed. is executed.

[0084] In step S904, the switching processing unit 612 selects the radiation A determination is made as to whether or not burn-in occurs in an image based on image data obtained from the line detection unit 601. For example, based on visual confirmation of the captured image or a dark image (an image not exposed to radiation), Based on the result, the switching processing unit 612 selects whether or not burn-in occurs in the image. If the switching processing unit 612 determines that there is no burn-in, (NO in step S904), the gain correction data to be used is not switched, and step On the other hand, if the switching processing unit 612 determines that burn-in occurs, If so (YES in step S904), the state is changed to switch the gain correction data to be used. Then, the process of step S908 is executed.

[0085] In step S905, the gain correction unit 605 of the image processing unit 604 performs the process in step S901. The radiation image taken in step S903 is corrected using the first gain correction data acquired in step S904. Correct the image.

[0086] In step S906, the control unit 602 determines whether or not there is a next photograph to be taken. If it is determined that there is a next photograph to be taken (NO in step S906), step S902 After counting up the number of times of photography N by 1 in step S907, the process returns to step S903. If the control unit 602 determines that no image is being captured (YES in step S906), the process shown in FIG. 9A is The process shown is then completed.

[0087] In step S908, the gain correction data acquisition unit 616 of the image acquisition unit 603 Perform gain calibration while the signal is being distorted to obtain the second gain correction data. The gain correction data acquisition unit 616 acquires and stores the data. The second gain correction data is obtained by shooting the image with the object. The data is stored in the second storage unit 609 as gain correction data 610 for the burn-in state.

[0088] In step S909, the gain correction unit 605 of the image processing unit 604 performs the process in step S908. The radiation image taken in step S903 is corrected using the second gain correction data acquired in step S904. Correct the image.

[0089] In step S910, the control unit 602 counts up the number of times of shooting N by one.

[0090] In step S911, radiation is irradiated onto the subject to start imaging, and the radiation imaging device 60 0 performs the Nth shooting. After the Nth shooting is completed, the process of step S912 is executed.

[0091] In step S912, the switching processing unit 612 selects the radiation A determination is made as to whether or not burn-in occurs in an image based on image data obtained from the line detection unit 601. In step S912, the switching processing unit 612 determines whether or not the image has been previously determined to be burn-in. If there is new image sticking, it is judged whether there is new image sticking that is different from the previous one. If the switching processing unit 612 determines that the gain compensation is correct (YES in step S912), The process of step S913 is executed to switch the correct data. If the switching processing unit 612 determines that there is no The process of 415 is executed.

[0092] In step S913, the gain correction data acquisition unit 616 of the image acquisition unit 603 Perform gain calibration while the signal is being distorted to obtain the third gain correction data. The gain correction data acquisition unit 616 acquires and stores the data. The third gain correction data is obtained by shooting the image with the object. The data is stored in the second storage unit 609 as gain correction data 610 for the burn-in state.

[0093] In step S914, the gain correction unit 605 of the image processing unit 604 performs the process in step S913. The radiation image taken in step S911 is corrected using the third gain-corrected data obtained in step S912. After the process in step S914 is completed, the process proceeds to step S919. nothing.

[0094] In step S915, the switching processing unit 612 determines whether the gain correction data has been changed by a certain amount since the previous acquisition of the gain correction data. Determine whether time has passed. A certain amount of time has passed since the previous gain correction data was acquired. For example, if the switching processing unit 612 determines that the The process of step S916 is executed to switch the gain correction data. If the switching processing unit 612 determines that a certain time has not elapsed since the acquisition of the correction data, If the answer is NO in step S915, the process proceeds to step S918.

[0095] In step S916, the switching processing unit 612 switches the gain correction data to be used from the first recording data. The first gain correction data stored in the memory unit 606 is used instead.

[0096] In step S917, the gain correction unit 605 of the image processing unit 604 performs the first gain correction The data is used to correct the radiographic image captured in step S911. After the process in step S917 is completed, the process proceeds to step S919.

[0097] In step S918, the gain correction unit 605 of the image processing unit 604 calculates the most recently acquired gain. The radiographic image captured in step S911 is corrected using the in-correction data. After the process in step S918 is completed, the process proceeds to step S919.

[0098] In step S919, the control unit 602 determines whether or not there is a next photograph to be taken. If it is determined that there is a next photograph to be taken (NO in step S919), step S9 On the other hand, if the control unit 602 determines that there is no next photograph to be taken (step S91 If the answer is YES in step 9, the process shown in FIG. 9A is terminated.

[0099] According to this embodiment, when image sticking occurs, gain calibration is performed. The radiological image is then corrected using the newly acquired gain correction data. By correcting the image, accurate gain correction can be performed immediately after image sticking occurs. When a certain time has passed since the occurrence of the burn-in, the gain compensation data stored in advance is used to prevent the burn-in. By switching to the corrector and correcting the radiographic image, accurate gain correction is possible even after the image retention has disappeared. You can set a certain amount of time to allow the image to disappear. This can prevent an inverted image from being seen.

[0100] In the above explanation, if a certain time has passed since the previous gain correction data was acquired, The gain correction data to be used is switched to the first gain correction data. Alternatively, the switching may be performed when a certain time has elapsed since the occurrence of the attachment.

[0101] In the process shown in the flowchart of FIG. 9A, the radiation When correcting an image, the most recently acquired gain correction data is used as is to correct the radiological image. This is not limiting, but for example, the most recently acquired gain correction data may be used to attenuate burn-in. The radiological image may be corrected using gain correction data adjusted based on the amount of Processing when adjusting the most recently acquired gain correction data based on the amount of burn-in attenuation An example is shown in Figure 9B. In Figure 9B, the steps that perform the same processing as the steps shown in Figure 9A are are denoted by the same reference numerals.

[0102] The process shown in the flowchart of FIG. 9B is different from the process shown in the flowchart of FIG. 9A. The process in step S918 shown in FIG. 9A becomes the process in step S921 shown in FIG. 9B. The process other than this step is the same, so the explanation will be omitted.

[0103] In the process shown in FIG. 9B, in step S921, the gain correction unit 604 605 is a fourth gain correction data obtained by adjusting the most recently acquired gain correction data based on the burn-in attenuation amount. The radiographic image captured in step S911 is corrected using the gain correction data. Specifically, the first gain correction data without burn-in and the second gain correction data with burn-in were obtained. Or, the amount of burn-in is calculated from the time when the third gain correction data is acquired. The amount of attenuation of image sticking is measured at the time of installation of the radiation imaging device 600, etc. The data shown in FIG. 6 is stored in the second storage unit 609 as burn-in attenuation amount data 611. The gain correction unit 605 compares the stored burn-in attenuation data 611 with the second or third Correct the radiographic image using the fourth gain correction data calculated using the gain correction data. In this way, the radiation image is corrected using the gain correction data adjusted based on the amount of attenuation. By correcting the problem, the remaining image will disappear (after a certain period of time). Accurate gain correction can be performed according to the amount.

[0104] In the processing example shown in FIG. 9A, a certain time has passed since the previous acquisition of gain correction data. When the image is burned in, the gain correction data acquired after the image burn-in occurs is converted to the first gain correction data. However, the present invention is not limited to this. For example, the switching may be performed based on the amount of burn-in attenuation. The switching may be performed after a time estimated to be sufficient for the image burn-in to disappear. For example, the number of images taken since the last gain correction data was acquired or since image retention occurred. It may be possible to switch the image quality when the number of shadows exceeds a certain number. When the time has elapsed when it is estimated that burn-in will disappear, An example is shown in Figure 9C. Also, the gain correction data may be changed from the previous acquisition or when burn-in occurs. Figure 1 shows an example of a process for switching when the number of times of shooting after birth exceeds a certain number. Shown in 9D.

[0105] The process shown in the flowchart of FIG. 9C is different from the process shown in the flowchart of FIG. 9A. The process in step S915 shown in FIG. 9A becomes the process in step S941 shown in FIG. 9C. The process other than this step is the same, so the explanation will be omitted.

[0106] In the process shown in FIG. 9C, in step S941, the switching processing unit 612 Based on the amount of decay, it is determined whether or not the time estimated for the burn-in to disappear has passed. If the switching processing unit 612 determines that the estimated time has elapsed (step S941 (YES in the case of the first memory unit 606), the gain correction data to be used is stored in the first memory unit 606. The process of step S916 is executed to switch to the gain correction data. If the switching processing unit 612 determines that the time has not elapsed (NO in step S941), O), the process of step S918 is executed.

[0107] In step S941, for example, the switching time estimation unit 613 calculates the amount of image sticking that has occurred and the second Based on the attenuation amount data 611 of the burn-in stored in the storage unit 609, Then, the switching processing unit 612 estimates the time when the burn-in will disappear. If it is determined that the estimated time has elapsed, the process proceeds to step 416. Then, the gain correction data to be used is switched to the first gain correction data. This allows the gain correction data to be switched to the first one after a predetermined period of time has elapsed. This allows you to accurately estimate the time it will take for image retention to disappear, preventing the appearance of inverse images. It is possible.

[0108] The process shown in the flowchart of FIG. 9D is the same as the process shown in the flowchart of FIG. 9A. The process in step S915 shown in FIG. 9A is the same as the process in step S961 shown in FIG. 9D. The process is the same except for this step, so the explanation will be omitted.

[0109] In the process shown in FIG. 9D, in step S961, the switching processing unit 612 If the number of shots taken since the image correction data was acquired or since image retention occurred exceeds a certain number, If the switching processing unit 612 determines that the number of times of shooting has exceeded a certain number of times, (YES in step S961), the gain correction data to be used is stored in the first storage unit 606. The process of step S916 is executed to switch to the first gain correction data stored in the memory. On the other hand, if the switching processing unit 612 determines that the number of times of shooting exceeds a certain number (step If the answer is NO in step S961, the process of step S918 is executed. In an inspection where the shooting scenario (shooting mode and number of shots) is fixed, time information and burn-in Accurate gain correction can be performed without performing complex processing such as estimating the amount of attenuation. This makes it possible to prevent an inverted image from being seen.

[0110] In the examples shown in FIGS. 9C and 9D, when correcting the radiographic image in step S918, The most recently acquired gain correction data is used as is, but as shown in Figure 9B As described above, the gain correction data adjusted based on the amount of attenuation may be used. , switching from the gain correction data acquired after the burn-in occurrence to the first gain correction data The conditions are not limited to the conditions shown in FIGS. 9A, 9C, and 9D, but may be any of the conditions shown in FIGS. 9A, 9B, and 9C. 9C and 9D may be selectively combined.

[0111] (Other embodiments) The present disclosure provides a program that realizes one or more functions of the above-described embodiments, over a network or It is supplied to a system or device via a storage medium and is then used by the computer of that system or device. It can also be realized by a process in which one or more processors in the It can also be realized by a circuit (for example, an ASIC) that realizes one or more functions.

[0112] It should be noted that the above-described embodiments are merely examples of how the present disclosure may be implemented. These are merely examples, and the technical scope of the present disclosure should not be interpreted as being limited by them. It can be implemented in various forms without departing from its technical idea or main features. can.

[0113] The disclosure of this embodiment includes the following configurations, methods, etc. (Configuration 1) It contains a scintillator that converts radiation into light and a photoelectric conversion element that converts light into an electric charge, and displays an image a radiation detection unit that generates A first image generated by the radiation detection unit is acquired in a radiation irradiation state, and then an acquisition unit that acquires a second image generated by the radiation detection unit in a state where radiation is not irradiated; an estimation unit that estimates the presence or absence of burn-in of the scintillator based on the second image; A radiation imaging apparatus comprising: (Configuration 2) The reset operation of the radiation detection unit is performed after the first image is acquired and the second image is acquired. and is performed after the acquisition of the second image. Radiation imaging device. (Configuration 3) When the difference between pixel values ​​in the second image is equal to or greater than a threshold, the estimation unit It is assumed that there is burn-in of the chiller, and the difference in pixel values ​​in the second image is not equal to or greater than a threshold value. In this case, it is estimated that there is no burn-in of the scintillator. The radiation imaging apparatus according to claim 1. (Configuration 4) The image processing device further includes a first correction unit that corrects the first image using first correction data. death, The first correction unit corrects the scintillator burn-in when the estimation unit estimates that the scintillator burn-in occurs. In this case, the first correction data is updated. Item 1. A radiation imaging apparatus according to item 1. (Configuration 5) When the estimation unit estimates that burn-in of the scintillator occurs, the acquisition unit a third image generated by the radiation detection unit in a state where there is no subject and where radiation is being applied; Acquire an image, The first correction unit corrects the scintillator burn-in when the estimation unit estimates that the scintillator burn-in occurs. If the third image is detected, the first correction data is updated based on the third image. 5. The radiation imaging apparatus according to claim 4. (Configuration 6) the acquisition unit acquires a plurality of third images; The first correction unit updates the first correction data based on the plurality of third images. 6. The radiation imaging device according to configuration 5. (Configuration 7) The operating conditions for generating the second image of the radiation detection unit are set to Any of the configurations 1 to 6, characterized in that the operating conditions are the same as those for generating the first image. 1. The radiation imaging device according to claim 1. (Configuration 8) The frame rate for generating the second image of the radiation detection unit is Configurations 1 to 6, characterized in that the frame rate for generating the first image is faster than the frame rate for generating the second image. 10. The radiation imaging apparatus according to claim 9, wherein: (Configuration 9) The estimation unit estimates the burn-in of the scintillator based on the image obtained after image processing of the second image. 9. The radiation imaging apparatus according to any one of the first to eighth configurations, wherein the radiation imaging apparatus estimates whether or not there is a defect. . (Configuration 10) When the estimation unit estimates that burn-in of the scintillator has occurred, a notification is given. 4. The radiation imaging device according to any one of configurations 1 to 3, further comprising a notification unit. Device. (Configuration 11) The image processing device further includes a first correction unit that corrects the first image using first correction data. death, When an instruction corresponding to the notification from the notification unit is received, the first correction unit 11. The radiation imaging apparatus according to configuration 10, wherein the correction data is updated. (Configuration 12) 12. Any one of the first to 11 configurations, wherein the first image is an image of a plurality of frames. 1. The radiation imaging device according to claim 1. (Configuration 13) the first image and the second image are each a single frame image, The acquisition unit acquires the frames of the first image and the frames of the second image. Repeat multiple times, The estimation unit estimates the burn-in of the scintillator based on the final frame of the second image. 12. The radiation imaging device according to any one of configurations 1 to 11, characterized in that the presence or absence is estimated. (Configuration 14) a second correction unit that corrects the frame of the first image based on the frame of the second image; 14. The radiation imaging apparatus according to claim 13, further comprising: (Configuration 15) The reset operation of the radiation detection unit is performed by resetting the first image and the second image. It is not performed during multiple iterations, but is performed after the acquisition of the final frame of the second image. 15. The radiation imaging device according to configuration 13 or 14, (Configuration 16) The estimation unit estimates the second image in advance on the radiation detection unit in a non-irradiated state. Based on the image obtained by subtracting the fourth image generated by the 16. The radiation imaging device according to any one of configurations 1 to 15, wherein the absence is estimated. (Configuration 17) A radiation image captured by a detection means for detecting incident radiation and gain correction data are acquired. A profitable acquisition method and a gain correction means for correcting the radiographic image using the gain correction data; When burn-in occurs in the detecting means, the gain correcting means The gain correction data obtained by performing gain calibration on the A radiation imaging apparatus characterized by correcting a radiation image. (Configuration 18) A switching means for switching the gain correction data used for correction in the gain correction means Step by step, a storage means for storing the first gain correction data obtained when no burn-in occurs; and The switching means changes the image quality depending on at least one of the time elapsed since the image sticking occurred and the number of times of photographing. The gain correction data to be used is the first gain correction data stored in the storage means. 18. The radiation imaging apparatus according to configuration 17, wherein the data is switched to the data. (Configuration 19) The switching means is configured to switch the gain correction data after a predetermined time has elapsed since the image sticking occurred and the gain correction data was acquired. When the time has elapsed, the gain correction data to be used is switched to the first gain correction data. 19. The radiation imaging apparatus according to configuration 18, wherein the radiation imaging apparatus is configured to switch between the two. (Configuration 20) The switching means selects a display to be used when a predetermined time has elapsed since image sticking occurred. The gain correction data is switched to the first gain correction data. 19. A radiation imaging apparatus according to 18 or 19. (Configuration 21) The switching means selects a mode to be used when a time estimated from the amount of burn-in attenuation has elapsed. The gain correction data is switched to the first gain correction data. 21. The radiation imaging device according to any one of items 18 to 20. (Configuration 22) The switching means switches the image capturing mode to be used when the number of times of photographing after image sticking has occurred exceeds a predetermined number. the gain correction data is switched to the first gain correction data. 22. The radiation imaging device according to any one of configurations 18 to 21. (Configuration 23) The gain correction means performs gain calibration after the occurrence of image sticking. The gain correction data obtained by performing the above-mentioned operation is adjusted based on the amount of attenuation of image sticking. Configurations 17 to 2, characterized in that the radiographic image is corrected using the gain correction data. 2. A radiation imaging device according to any one of claims 1 to 11. (Configuration 24) When burn-in occurs in the detecting means, the gain calibration is performed. 24. The method according to claim 17, wherein the user can select whether or not to apply the method. Radiography equipment. (Configuration 25) a radiation imaging device according to any one of configurations 1 to 24; a radiation source that emits radiation; A radiation imaging system comprising: (Method 1) It contains a scintillator that converts radiation into light and a photoelectric conversion element that converts light into an electric charge, and displays an image A method for controlling a radiation imaging apparatus having a radiation detection unit that generates A first image generated by the radiation detection unit is acquired in a radiation irradiation state, and then an acquisition step of acquiring a second image generated by the radiation detection unit in a state where radiation is not irradiated; and, an estimation step of estimating the presence or absence of burn-in of the scintillator based on the second image; A method for controlling a radiation imaging apparatus, comprising: (Method 2) A method for controlling a radiation imaging apparatus having a detection unit that detects incident radiation, comprising: an acquisition step of acquiring a radiographic image and gain correction data captured by the detection means; , and a gain correction step of correcting the radiation image using the gain correction data. death, In the gain correction step, when burn-in occurs in the detection means, Using the gain correction data obtained by performing gain calibration after the occurrence A method for controlling a radiation imaging apparatus, comprising correcting the radiation image. (Program 1) A computer of a radiation imaging device having a detection means for detecting incident radiation, an acquisition step of acquiring a radiographic image and gain correction data captured by the detection means; , and performing a gain correction step of correcting the radiation image using the gain correction data. Let them go, In the gain correction step, when burn-in occurs in the detection means, Using the gain correction data obtained by performing gain calibration after the occurrence A program for executing the process of correcting the radiation image. [Explanation of symbols]

[0114] 100: Radiation imaging device, 101: Control unit, 102: Radiation image acquisition unit, 103: Image processing processing unit, 104: offset correction unit, 105: gain correction unit, 106: memory unit, 107: radio wave Radiation image, 108: offset correction data, 109: gain correction data, 110: image capture data Post-FPN image, 111: Burn-in estimation unit, 112: Communication unit, 200: Radiation detection unit, 30 0: Radiation generator, 301: Radiation source, 400: Control device

Claims

1. an acquisition means for acquiring a radiographic image captured by a detection means for detecting incident radiation and gain correction data; a gain correction means for correcting the radiographic image using the gain correction data; a switching means for switching the gain correction data used for correction in the gain correction means; a storage means for storing first gain correction data acquired when no burn-in occurs in the detection means; and When the burn-in occurs, the gain correction means corrects the radiographic image using the gain correction data obtained by performing gain calibration after the burn-in occurs; The switching means switches the gain correction data to be used to the first gain correction data stored in the storage means in accordance with at least one of the time elapsed since the occurrence of image sticking and the number of times of shooting. A radiation imaging apparatus characterized by:

2. 2. The radiation imaging apparatus according to claim 1, wherein the switching means switches the gain correction data to be used to the first gain correction data when a predetermined time has elapsed since the gain correction data was acquired after image sticking occurred.

3. 2. The radiation imaging apparatus according to claim 1, wherein the switching means switches the gain correction data to be used to the first gain correction data when a predetermined time has elapsed since image sticking occurred.

4. 2. The radiation imaging apparatus according to claim 1, wherein the switching means switches the gain correction data to be used to the first gain correction data when a time estimated from an attenuation amount of image sticking has elapsed.

5. 2. The radiation imaging apparatus according to claim 1, wherein the switching means switches the gain correction data to be used to the first gain correction data when the number of times of imaging after image sticking has occurred exceeds a predetermined number.

6. 2. The radiation imaging device according to claim 1, wherein, after image sticking occurs, the gain correction means corrects the radiation image using gain correction data obtained by performing gain calibration after the image sticking has occurred and adjusting the gain correction data based on an amount of attenuation of the image sticking.

7. 2. The radiation imaging apparatus according to claim 1, wherein it is possible to select whether or not to perform the gain calibration when burn-in occurs in the detecting means.

8. The radiation imaging device according to any one of claims 1 to 7, a radiation source that emits radiation; A radiation imaging system comprising:

9. A method for controlling a radiation imaging apparatus having a detection unit that detects incident radiation, comprising: an acquisition step of acquiring the radiographic image captured by the detection means and gain correction data; a gain correction step of correcting the radiographic image using the gain correction data; a switching step of switching the gain correction data used for correction in the gain correction step; a storage step of storing first gain correction data acquired when no burn-in occurs in the detection means; and In the gain correction step, when the burn-in occurs, the radiographic image is corrected using the gain correction data obtained by performing gain calibration after the burn-in occurs; In the switching step, the gain correction data to be used is switched to the first gain correction data stored in the storing step in accordance with at least one of the time elapsed since the occurrence of image sticking and the number of times of shooting.

2. A method for controlling a radiation imaging apparatus comprising:

10. A computer of a radiation imaging device having a detection means for detecting incident radiation, an acquisition step of acquiring the radiographic image captured by the detection means and gain correction data; a gain correction step of correcting the radiographic image using the gain correction data; a switching step of switching the gain correction data used for correction in the gain correction step; a storage step of storing first gain correction data acquired when no burn-in occurs in the detection means; Execute In the gain correction step, when the burn-in occurs, the radiographic image is corrected using the gain correction data obtained by performing gain calibration after the burn-in occurs; In the switching step, the gain correction data to be used is switched to the first gain correction data stored in the storing step in accordance with at least one of the time elapsed since the occurrence of image sticking and the number of times of shooting. A program for executing a process.

Citation Information

Patent Citations

  • Method for eliminating image persistence of vision of flat panel detector and flat panel detector

    CN106097282A

  • X-ray diagnostic equipment

    JP2002204793A

  • Method and device for correcting image of radiation detector, and radiation imaging device using the same

    JP2003185752A

  • Radiographic apparatus

    JP2004305480A

  • Radiation image imaging device and sensitivity deterioration level summing system

    JP2016125910A