Radiography control device, image processing control method and program

The radiography control device enhances image processing accuracy and speed by using real-time or pre-stored irradiation information to address inaccuracies and delays in scattered radiation correction, ensuring timely and error-free image display.

JP7739783B2Active Publication Date: 2025-09-17KONICA MINOLTA INC
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Patent Information

Application Number
JP2021105988
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-25
Publication Date
2025-09-17
Estimated Expiration
2041-06-25

AI Technical Summary

Technical Problem

Existing radiation imaging systems face inaccuracies and delays in scattered radiation correction processing due to changes in irradiation conditions, requiring manual input or reprocessing, and variable transmission times of irradiation information, leading to potential errors and delayed image display.

Method used

A radiography control device and method that acquires irradiation information before a specific timing to perform image processing, using either real-time data or pre-stored information based on fixed settings, ensuring accurate and timely image processing without manual intervention.

Benefits of technology

Improves image processing accuracy and reduces delays by allowing immediate or pre-stored data-based processing, minimizing the need for reprocessing and input errors, and ensuring prompt image display.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To improve accuracy of image processing without delaying image display and without requiring an operator to execute reprocessing or input information on the irradiation of a radioactive ray.SOLUTION: A control unit 21 of a console 2 executes control to execute image processing on the basis of the acquired information on the irradiation of a radioactive ray when acquiring the information on the irradiation of a radioactive ray by a communication unit 23 before a specific timing, and to execute image processing on the basis of fixed information stored in a storage unit 22 beforehand when not acquiring the information on the irradiation of a radioactive ray by the communication unit 23 before the specific timing.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present invention relates to a radiography control device, an image processing control method, and a program. [Background technology]

[0002] When capturing a radiographic image of a subject using radiation that has passed through the subject, the radiation scatters within the subject depending on the thickness of the subject, generating scattered rays, which can cause a problem of reduced contrast in the captured radiographic image. Therefore, scattered radiation correction processing is performed on radiographic images obtained by imaging (see, for example, Patent Documents 1 and 2). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2016-202219 [Patent Document 2] Japanese Patent Application Publication No. 2017-225525 Summary of the Invention [Problem to be solved by the invention]

[0004] As described in Patent Documents 1 and 2, scattered radiation correction processing uses information related to radiation irradiation (such as the imaging distance (SID) during imaging, exposure dose (tube current-time product), tube voltage, tube current, irradiation time, material of the radiation source target and filter, type of imaging table, irradiation field size, grid information, and type of radiation detector) as processing parameters. Conventionally, a radiation imaging control device stores, for example, irradiation conditions for each imaging region (such as the imaging distance, exposure dose, tube voltage, tube current, irradiation time, material of the radiation source target and filter, type of imaging table, irradiation field size, grid information, and type of radiation detector) in advance as fixed information in a storage unit. During imaging, the fixed information corresponding to the imaging region and other factors is read from the storage unit and set as the irradiation conditions in the radiation irradiator to perform imaging. However, depending on the subject's physique and other factors, radiation imaging may be performed using irradiation conditions that differ from the fixed information in the radiation irradiator. Conventionally, in a radiation imaging control device, fixed information was applied as the processing parameters for scattered radiation correction processing, so when the irradiation conditions were changed on the radiation irradiator side and imaging was performed, the scattered radiation correction processing was not performed accurately and the processing had to be performed again, which was time-consuming.In addition, when the irradiation conditions were changed on the radiation irradiator side and imaging was performed, it was possible for the operator to perform scattered radiation correction processing by inputting information about the radiation irradiation each time, but this was time-consuming and there was a possibility of input errors.

[0005] On the other hand, some radiation irradiation devices transmit information about the radiation irradiation to the radiation imaging control device after exposure. However, the time it takes to transmit the information about the radiation irradiation varies depending on the radiation irradiation device. Therefore, if the scattered radiation correction process were to be performed after the information about the radiation irradiation had uniformly arrived at the radiation imaging control device, there would be a delay in the timing of starting the scattered radiation correction process, and it would take a long time for the image to be displayed. Similar problems exist not only in scattered radiation correction processing but also in image processing that is performed using information related to radiation irradiation.

[0006] The present invention has been made in consideration of the above-mentioned problems, and aims to improve the accuracy of image processing without delaying image display and without requiring the operator to perform reprocessing or input information regarding radiation irradiation. [Means for solving the problem]

[0007] In order to solve the above problems, the radiography control device according to the present invention comprises: an acquisition means for acquiring information about radiation irradiation from a radiation irradiation device; an image processing means for performing image processing based on the information about the irradiation of the radiation acquired by the acquisition means; a display unit that displays the radiographic image that has been image-processed by the image processing means; A radiography control device comprising: The image processing means If the acquisition means acquires information about the radiation irradiation before a specific timing, image processing is performed based on the information about the radiation irradiation acquired by the acquisition means; If the acquisition means does not acquire information regarding the irradiation of the radiation before the specific timing, image processing is performed based on information stored in advance in the radiation imaging control device. 、 The specific timing is the timing to display a wipe image, a preview image, or a main image on the display unit, or the timing to start processing for displaying the image.

[0008] The image processing control method of the present invention further comprises: an acquiring step of acquiring information about radiation irradiation from a radiation irradiation device; an image processing step of performing image processing based on the information about the radiation irradiation acquired in the acquisition step; a display step of displaying the radiographic image processed by the image processing step on a display unit; An image processing control method comprising: The image processing step includes: In the acquiring step, if the information on the radiation irradiation is acquired before a specific timing, image processing is performed based on the acquired information on the radiation irradiation; If the information about the irradiation of radiation is not obtained before the specific timing, image processing is performed based on information previously stored in a storage means. stomach, The specific timing is the timing to display a wipe image, a preview image, or a main image on the display unit, or the timing to start processing for displaying the image.

[0009] The program of the present invention also includes: Computer, an acquisition means for acquiring information regarding radiation irradiation from the radiation irradiation device; an image processing means for performing image processing based on the information about the irradiation of radiation acquired by the acquisition means; a display means for displaying the radiation image processed by the image processing means; It functions as The image processing means If the acquisition means acquires information about the radiation irradiation before a specific timing, image processing is performed based on the information about the radiation irradiation acquired by the acquisition means; If the acquisition means does not acquire information about the irradiation of radiation before the specific timing, image processing is performed based on information previously stored in a storage means. 、 The specific timing is the timing to display a wipe image, a preview image, or a main image on the display means, or the timing to start processing for displaying the image. [Effects of the Invention]

[0010] According to the present invention, the accuracy of image processing can be improved without delaying image display and without requiring the operator to perform reprocessing or input information regarding radiation irradiation. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a block diagram illustrating an example of a radiation imaging system according to an embodiment of the present invention. [Figure 2] 2 is a block diagram showing the functional configuration of a console included in the radiation imaging system of FIG. 1. FIG. [Figure 3] FIG. 10 is a diagram illustrating an example of data storage in a fixed information table. [Figure 4] FIG. 10 is a diagram showing an example of an inspection screen. [Figure 5] 3 is a flowchart showing a scattered radiation correction control process executed by the control unit in FIG. 2. [Figure 6] FIG. 10 is a diagram showing an example in which a notification indicating whether or not information about radiation irradiation has been applied is displayed as an overlay on a captured image. [Figure 7] FIG. 10 is a diagram showing an example in which a notification indicating whether or not information about radiation irradiation has been applied is displayed as an icon on a captured image. [Figure 8] FIG. 10 is a diagram illustrating an example of a setting screen. [Figure 9] FIG. 10 is a diagram showing an example of a screen display during a waiting time until information about radiation irradiation is acquired. [Figure 10] 10A and 10B are diagrams illustrating an example of a screen display when information about radiation irradiation is acquired after image processing using fixed information as a processing parameter has started or while image processing is on standby. [Figure 11] FIG. 10 is a diagram showing an example of a screen for applying information regarding radiation irradiation as a processing parameter when information regarding radiation irradiation is acquired after the start of image processing in which fixed information is applied as a processing parameter, or while waiting for image processing. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, embodiments of the present invention will be described with reference to the drawings, but the technical scope of the present invention is not limited to the following embodiments and illustrated examples.

[0013] <1. Overview of the Radiography System> First, an overview of a radiation imaging system (hereinafter referred to as a system 100) according to this embodiment will be described. FIG. 1 is a block diagram illustrating an example of a system 100 .

[0014] As shown in FIG. 1, the system 100 includes a radiation detector (hereinafter, detector 1), a console 2, and a radiation irradiation device (hereinafter, irradiation device 3). The devices 1 to 3 are capable of communicating with each other via, for example, a communication network N (such as a local area network (LAN), a wide area network (WAN), or the Internet).

[0015] In addition, system 100 may be capable of communicating with a Hospital Information System (HIS), a Radiology Information System (RIS), a Picture Archiving and Communication System (PACS), an analysis device, etc., which are not shown.

[0016] [1-1. Radiation irradiation device] The irradiation device 3 is for irradiating radiation. The irradiation device 3 includes a generator 31 , an irradiation instruction switch 32 , and a radiation source 33 .

[0017] When the generator 31 receives the radiation R irradiation conditions (tube voltage, tube current, irradiation time, exposure dose, imaging distance (SID: distance between the radiation source 33 and the detector 1), grid information, material of the source target and filter, type of imaging table (e.g., standing / supine position), irradiation field size, type of detector, etc.) from the console 2, it sets the received irradiation conditions as the irradiation conditions to be used for radiography. The generator 31 may be connected to an imaging table (standing imaging table, supine imaging table, etc.) that holds the detector 1. In this case, the generator 31 moves the radiation source 33 to the front of the imaging table to be used for imaging based on the type of imaging table, or issues a warning if the detector 1 to be used is not loaded on the imaging table. In addition, an operation console (not shown) is connected to the generator 31, and when a change in the irradiation conditions is input from this operation console, the settings of the irradiation conditions are changed according to the input values. When the irradiation instruction switch 32 is operated, the generator 31 applies a voltage according to the set irradiation conditions to the radiation source 33 (tube), and also passes a current according to the irradiation conditions to the radiation source 33.

[0018] When a voltage is applied to the radiation source 33 from the generator 31 and a current is passed through it, the radiation source 33 generates and irradiates radiation R (e.g., X-rays) in a dose corresponding to the applied voltage and the passed current in a manner corresponding to the applied voltage and the passed current.

[0019] [1-2. Radiation detector] Although not shown, the detector 1 includes a sensor substrate on which pixels are arranged two-dimensionally (in a matrix), each pixel having a radiation detection element that generates an electric charge according to the dose when exposed to radiation R and a switch element that stores and releases the electric charge, a scanning circuit that switches each switch element on and off, a readout circuit that reads out the amount of electric charge released from each pixel as a signal value, a control unit that generates a radiographic image from the multiple signal values ​​read out by the readout circuit, and a communication unit that transmits data on the generated radiographic image and various signals to the outside and receives various information and signals.

[0020] The detector 1 stores and releases electric charges and reads out signal values ​​in synchronization with the timing at which radiation R is irradiated from the irradiation device 3, thereby generating a radiological image corresponding to the dose of the irradiated radiation R. The detector 1 is not limited to an FPD (Flat Panel Detector), but may be a CR cassette with a built-in photostimulable phosphor plate.

[0021] [1-3. Console] The console 2 serves as a radiography control device and is composed of a PC, dedicated devices, etc. Based on examination order information received from an HIS, RIS, etc. (not shown), the console 2 sets irradiation conditions for the irradiation device 3 and sets image reading conditions for the detector 1. It also performs image processing, including scattered radiation correction, on the radiographic images sent from the detector 1 and displays the processed images. Details of this console 2 will be described later.

[0022] <2. Console details> Next, the console 2 included in the system 100 will be described in detail. FIG. 2 is a block diagram showing the console 2.

[0023] [2-1. Specific console configuration] As shown in FIG. 2, the console 2 includes a control unit 21, a storage unit 22, a communication unit 23, a display unit 24, and an operation unit 25. The units 21 to 25 are electrically connected by a bus or the like.

[0024] The control unit 21 is composed of a CPU (Central Processing Unit), RAM (Random Access Memory), etc. The CPU of the control unit 21 reads out various programs stored in the storage unit 22, loads them into the RAM, executes various processes in accordance with the loaded programs, and centrally controls the operations of each unit of the console 2.

[0025] The storage unit 22 is configured by a non-volatile memory, a hard disk, or the like. The storage unit 22 also stores various programs executed by the control unit 21, parameters required for executing the programs, and the like.

[0026] In this embodiment, the storage unit 22 stores a fixed information table 221 in which default (standard) imaging conditions for each imaging region are stored. Fig. 3 is a diagram showing an example of the fixed information table 221. As shown in Fig. 3, the fixed information table 221 stores imaging conditions including irradiation conditions such as tube voltage, tube current, irradiation time, exposure dose, imaging distance, grid information, material of the target and filter of the radiation source, type of imaging table, irradiation field size, type of radiation detector, etc., in association with each imaging region (for example, frontal head, frontal chest, frontal abdomen, etc.). The above-mentioned fixed information table 221 is set by a service technician when the console 2 is installed.

[0027] The storage unit 22 also stores test order information received from the HIS, RIS, and the like.

[0028] The memory unit 22 also stores the processed radiographic images in association with an irradiation history flag indicating whether information regarding radiation irradiation was applied as a processing parameter, processing parameters, patient information, examination information, etc.

[0029] The communication unit 23 is configured with a communication module, etc. The communication unit 23 transmits and receives various signals and various data to and from other devices (the detector 1, the irradiation device 3, etc.) connected via a communication network N in a wired or wireless manner.

[0030] The display unit 24 is configured by, for example, an LCD (Liquid Crystal Display), a CRT (Cathode Ray Tube), or the like, and displays various screens in response to image signals received from the control unit 21.

[0031] The operation unit 25 is, for example, a keyboard (cursor keys, numeric input keys, various function keys, etc.), a pointing device (mouse, etc.), a touch panel laminated on the surface of the display unit 24, etc. The operation unit 25 outputs a control signal to the control unit 21 in accordance with an operation performed by the user.

[0032] In addition, the console 2 may not be equipped with a display unit 24 or an operation unit 25, and may instead receive control signals from an input device provided separately from the console 2, for example, via a communication unit 23, or output image signals to a display device (monitor) provided separately from the console 2.

[0033] [2-2. Console Operation] The control unit 21 of the console 2 configured as above operates as follows. For example, when the control unit 21 receives test order information from an HIS, RIS, or the like (not shown) via the communication unit 23, it stores the received test order information in the memory unit 22 and displays it on an test list screen (not shown) on the display unit 24. The test order information includes the test ID, test date, patient information, and information on each image captured in the test (imaged body part, image direction, body position, etc.). When test order information for the test to be performed is selected from the test list screen, the control unit 21 displays an test screen 241 on the display unit 24.

[0034] Fig. 4 is a diagram showing an example of the examination screen 241. As shown in Fig. 4, the examination screen 241 is provided with an imaging condition button 241a, a thumbnail display area 241b, an image display area 241c, a patient information display area 241d, an image adjustment menu area 241e, an examination end button 241i, and the like. The imaging condition button 241a is a button corresponding to each imaging included in the examination order information, and is a button for setting imaging conditions (irradiation conditions and image reading conditions) corresponding to each imaging in the irradiation device 3 and the detector 1. The imaging condition button 241a displays, for example, the imaging region of each imaging in order to identify each imaging included in the examination order information. The thumbnail display area 241b is an area for displaying thumbnail images of radiographic images acquired by radiography performed in response to pressing of the adjacent radiography condition button 241a. The image display area 241c is an area for displaying a radiographic image acquired by radiography. The patient information display area 241d is an area for displaying patient information of the patient (subject) to be examined. The image adjustment menu area 241e is an area where an image adjustment menu for the radiation image displayed in the image display area 241c is displayed. The examination end button 241i is a button for the operator to instruct the end of the examination.

[0035] The operator presses the imaging condition button 241a corresponding to the next radiation imaging to be performed on the examination screen 241 to prepare for imaging. When the operator operates the operation unit 25 to press one of the imaging condition buttons 241a on the examination screen 241, the control unit 21 reads out the imaging condition corresponding to the pressed imaging condition button 241a from the fixed information table 221 in the storage unit 22, and transmits the irradiation conditions (e.g., tube voltage, tube current, irradiation time, exposure dose, imaging distance, grid information, material of the target and filter of the radiation source, type of imaging table, irradiation field size, type of radiation detector, etc.) from the read fixed information to the generator 31 of the irradiation device 3 via the communication unit 23. In addition, the control unit 21 transmits the image reading conditions from the read fixed information to the detector 1 via the communication unit 23. The generator 31 of the irradiation device 3 sets the irradiation conditions received from the console 2 as the irradiation conditions for the next radiation imaging to be performed. The detector 1 sets the image reading conditions received from the console 2 as the image reading conditions for the next radiation imaging to be performed.

[0036] The operator positions the subject S by placing it between the radiation source 33 and the detector 1. If necessary depending on the physique of the subject S, the operator inputs changes to the irradiation conditions from an operation console connected to the generator 31 of the irradiation device 3. When the changes to the irradiation conditions are input, the generator 31 changes the settings of the irradiation conditions in accordance with the input. When the operator has completed preparations for imaging, he or she operates the irradiation instruction switch 32. When the irradiation instruction switch 32 is operated, the generator 31 of the irradiation device 3 causes the radiation source 33 to irradiate the subject S with radiation under the set irradiation conditions. The generator 31 also transmits information about the radiation irradiation, which is the irradiation conditions used for radiation irradiation during imaging, to the console 2. Here, the information about radiation irradiation transmitted to the console 2 includes at least one of the tube voltage, tube current, irradiation time, exposure dose, imaging distance, grid information, material of the radiation source target and filter, type of imaging table, irradiation field size, type of radiation detector, etc. during imaging. The detector 1 stores and reads out the irradiated radiation in synchronization with the irradiation device 3, generates image data of the radiation image, and transmits it to the console 2.

[0037] In the console 2, when the communication unit 23 receives the radiographic image from the detector 1, the control unit 21 performs image processing on the radiographic image and displays it in the image display area 241c and thumbnail display area 241b of the examination screen 241. Specifically, the control unit 21 generates a wipe image, a preview image, and a main image from the received radiographic image in this order, and immediately displays the generated images in the image display area 241c of the display unit 24. The main image is an image obtained by performing predetermined image processing such as scattered radiation correction processing, gradation processing, and frequency processing on the radiographic image without thinning out pixels, and is an image displayed for diagnosis as the result of capturing the radiographic image. The preview image is an image displayed before the main image is displayed, and is, for example, an image that has been subjected to simpler image processing than the main image. The wipe image is an image that has not been processed or has been subjected to simpler image processing than the preview image, and is displayed before the preview image. In this embodiment, the control unit 21 generates a main image by performing image processing such as scattered radiation correction, gradation processing, and frequency processing on the preview image. In other words, the scattered radiation correction starts after the preview image is generated, approximately at the timing when the preview image is displayed.

[0038] In the scattered radiation correction process, at least the tube voltage, exposure dose, and imaging distance among the above-mentioned information about radiation irradiation are used as processing parameters. Furthermore, there is also a method of using other information about radiation irradiation as processing parameters. The memory unit 22 stores a fixed information table 221, and conventionally, scattered radiation correction was performed using the irradiation conditions of the fixed information transmitted to the irradiation device 3 as processing parameters. However, when fixed information is used, if the irradiation conditions are changed on the radiation irradiator side and imaging is performed, the scattered radiation correction process is not performed accurately, and reprocessing is required, which is time-consuming. Furthermore, when the irradiation conditions are changed on the radiation irradiator side and imaging is performed, it is possible for the operator to perform scattered radiation correction by inputting the information about radiation irradiation each time, but this is time-consuming and there is a risk of input errors.

[0039] On the other hand, some radiation irradiation devices transmit information about radiation irradiation to a radiation imaging control device after exposure. However, the time it takes to transmit information about radiation irradiation varies depending on the radiation irradiation device. Therefore, if the scattered radiation correction process is performed after waiting for the information about radiation irradiation to arrive at the radiation imaging control device, the timing for starting the scattered radiation correction process may be delayed, and it may take a long time before the image (main image) is displayed.

[0040] Therefore, in the console 2 of this embodiment, the control unit 21 executes the scattered radiation correction control process shown in Fig. 5 in cooperation with the program stored in the storage unit 22, for example, at the timing when the scattered radiation correction process is to be performed. If the communication unit 23 receives (acquires) information about radiation irradiation from the irradiation device 3 (information about radiation irradiation at the time of capturing the radiological image) before a specific timing, the control unit 21 executes the scattered radiation correction process based on the acquired information about radiation irradiation, and if the communication unit 23 does not receive (acquire) information about radiation irradiation from the irradiation device 3 before the specific timing, the control unit 21 controls the scattered radiation correction process to be executed based on pre-stored fixed information. In this embodiment, the specific timing is described as the timing at which a preview image of a radiographic image is displayed. This is because, if information about radiation irradiation can be obtained by the time the preview image is displayed, the actual image can be displayed after accurate scattered radiation correction processing based on the information about radiation irradiation without delaying the display of the actual image from the conventional timing. Note that the specific timing may also be the timing at which processing for displaying the preview image is started, which is approximately the same timing as the timing at which the preview image of the radiographic image is displayed.

[0041] The scattered radiation correction control process will be described below with reference to FIG. First, the control unit 21 determines whether or not information regarding radiation irradiation has been received (acquired) from the irradiation device 3 by the communication unit 23 before a specific timing, i.e., the timing for displaying a preview image of the radiation image received from the detector 1 (step S1).

[0042] In step S1, if it is determined that information regarding radiation irradiation has been received by the communication unit 23 from the irradiation device 3 before a specific timing (step S1; YES), the control unit 21 determines whether the received information regarding radiation irradiation includes at least one of information regarding tube voltage, exposure dose, and shooting distance (step S2). Since the exposure dose is the tube current x irradiation time, the judgment in step S2 may be performed using the tube current and irradiation time instead of the exposure dose.

[0043] When it is determined that the received information regarding radiation irradiation includes at least one of information regarding tube voltage, exposure dose, and shooting distance (step S2; YES), the control unit 21 determines whether the received information regarding radiation irradiation includes all of information regarding tube voltage, exposure dose, and shooting distance (step S3). As explained in step S2, the exposure dose is the tube current x irradiation time, so the judgment in step S3 may be made using the tube current and irradiation time instead of the exposure dose.

[0044] If it is determined that the received information regarding radiation irradiation includes all of the information regarding tube voltage, exposure dose, and shooting distance (step S3; YES), the control unit 21 applies the received information regarding radiation irradiation as processing parameters, performs scattered radiation correction processing on the received radiographic image (step S4), and proceeds to step S6. In this embodiment, scattered radiation correction processing is performed on the preview image generated from the radiation image.

[0045] When it is determined that the received information on radiation irradiation does not include all of the information on tube voltage, exposure dose, and shooting distance (there is missing information) (step S3; NO), the control unit 21 applies the information included in the received information on radiation irradiation as a processing parameter, and applies the fixed information transmitted to the irradiation device 3 as the irradiation conditions for the radiographic image as a processing parameter for the information not included in the received information on radiation irradiation, thereby performing scattered radiation correction processing on the radiographic image (step S5), and proceeds to step S6. Note that with regard to information not included in the received information on radiation irradiation but obtained by calculating the information included in the received information on radiation irradiation, the values ​​determined by the calculation may be applied as processing parameters.

[0046] As a scattered radiation correction processing method, for example, known methods described in JP 2019-126524 A, JP 2019-129988 A, etc. can be used. For example, the body thickness of the subject S is estimated based on the tube voltage, exposure dose, and shooting distance, and the scattered radiation components of each pixel of the radiographic image are estimated based on the estimated body thickness and removed (subtracted) from the radiographic image. Note that radiation correction processing may also be performed using other information included in the information regarding radiation irradiation, such as grid information.

[0047] Here, the control unit 21 performs a consistency check on the received information related to radiation irradiation before performing scattered radiation correction processing. Since the scattered radiation correction processing uses the exposure dose (tube current x irradiation time) as a processing parameter, for example, if the received information related to radiation irradiation is a method of specifying irradiation conditions using three values ​​of tube voltage, tube current, and irradiation time (3-point method), the control unit 21 converts it to a method of specifying irradiation conditions using two values ​​of tube voltage and exposure dose (2-point method). As a result, even information related to radiation irradiation received from the irradiation device 3 that transmits irradiation conditions using the 3-point method can be used as a processing parameter.

[0048] In step S6, the control unit 21 associates the radiation image (processing result) that has undergone scattered radiation correction processing with an irradiation history flag of "applied", which indicates that information related to radiation irradiation has been applied as a processing parameter (step S6), associates the processing result with the irradiation history flag, the applied processing parameters, patient information, examination information, etc., and stores them in the memory unit 22 (step S9), and terminates the scattered radiation correction control processing.

[0049] On the other hand, in step S1, if it is determined that the communication unit 23 has not received information regarding radiation irradiation from the irradiation device 3 before the specific timing, i.e., the timing at which a preview image of the radiation image received from the detector 1 is displayed (step S1; NO), or if it is determined that the received information regarding radiation irradiation does not include any of the information regarding the tube voltage, exposure dose, or shooting distance (step S2; NO), the control unit 21 applies the fixed information transmitted to the irradiation device 3 as the irradiation conditions for the radiation image as processing parameters, and performs scattered radiation correction processing on the radiation image (step S7). Then, the control unit 21 associates the radiation image (processing result) that has undergone scattered radiation correction processing with an irradiation history flag of "not applied," which indicates that information regarding radiation irradiation has not been applied (step S8), associates the processing result with the irradiation history flag, applied processing parameters, patient information, examination information, etc., and stores them in the memory unit 22 (step S9), and terminates the scattered radiation correction control processing.

[0050] 5, if the communication unit 23 receives (acquires) information about radiation irradiation from the irradiation device 3 at a specific timing, for example, before the timing at which a preview image of a radiographic image is displayed, the communication unit 23 controls to perform scattered radiation correction processing based on the acquired information about radiation irradiation. Therefore, if information about radiation irradiation is received before the specific timing, scattered radiation correction processing can be performed accurately based on information about the irradiation conditions actually used for radiography without delaying image display (display of the actual image). This saves the operator the trouble of reprocessing and inputting information about radiation irradiation every time the irradiation conditions are changed during radiography, and also prevents input errors. On the other hand, if the communication unit 23 does not receive (acquire) information about radiation irradiation from the irradiation device 3 at a specific timing, for example, before the timing of displaying a preview image of a radiographic image, the scattered radiation correction process is controlled to be executed based on pre-stored fixed information. This prevents a delay in the timing of starting the scattered radiation correction process and a long delay before the image (main image) is displayed. In other words, the scattered radiation correction control process shown in Figure 5 can improve the accuracy of image processing without delaying image display (display of the actual image) and without the operator having to perform reprocessing or input information about radiation irradiation. Furthermore, since the console 2 can obtain information regarding radiation irradiation from the irradiation device 3, when installing the irradiation device 3, there is no need to set up detailed imaging condition keys (fixed information such as irradiation conditions for each imaging area) on the console 2 as was previously required, which reduces the labor required by service personnel.

[0051] After the scattered radiation correction control process is completed, the control unit 21 performs other image processing that has not yet been performed on the radiographic image to generate a main image. The main image is then displayed in the image display area 241c of the examination screen 241 displayed on the display unit 24. A thumbnail image of the main image is also displayed in the thumbnail display area 241b.

[0052] Here, the control unit 21 notifies the operator (user) whether or not the information related to radiation irradiation has been applied to the scattered radiation correction process. For example, as shown in Fig. 6, a notification indicating whether or not the information related to radiation irradiation (irradiation results) has been applied may be displayed as an overlay A1 on a captured image or thumbnail image, or as an icon A2 as shown in Fig. 7. A1 in Fig. 6 and A2 in Fig. 7 are examples indicating that the information related to radiation irradiation has been applied. Furthermore, notification is not limited to a display, and notification may also be made by an audio signal, an optical signal, or the like. This allows the operator to know whether or not information about radiation irradiation has been applied as a processing parameter in the scattered radiation correction process for the displayed radiation image.

[0053] (Variation) Modifications of the above embodiment will now be described. In the above embodiment, information regarding radiation irradiation is used as a processing parameter for scattered radiation correction processing. However, the information may also be used as a processing parameter for other image processing besides scattered radiation correction processing, such as edge enhancement processing, structure enhancement processing, noise suppression processing, incident surface dose processing, body thickness estimation processing, frequency processing, or grid moiré removal processing. For example, the body thickness of the subject can be estimated as described above based on the tube voltage, exposure dose, and imaging distance, which are information related to radiation irradiation, and the estimated body thickness value can be used to perform scattered radiation correction processing and incident surface dose calculation processing (processing to obtain dose values ​​on the body surface).Furthermore, a body thickness estimation processing that outputs the estimated body thickness value itself can be performed, and statistical processing of radiation exposure doses for each patient's body type can also be performed. Furthermore, information about radiation exposure, such as tube voltage, exposure dose, and shooting distance, can be used not only to estimate body thickness, but also as a guide to measure the S / N ratio and granularity of radiographic images. This can be useful for optimizing image processing, as it allows the intensity of frequency processing and noise suppression processing to be changed based on the S / N ratio and granularity of the radiographic images. Furthermore, the information regarding radiation irradiation may include grid information, which can be used for processing according to the grid during scattered radiation correction processing or for grid moire removal processing, etc. Then, when applying information regarding radiation irradiation as a processing parameter and performing the other image processing described above other than the scattered radiation correction processing, control similar to the scattered radiation correction control processing shown in Figure 5 (control in which the scattered radiation correction processing is replaced with other image processing) may be performed.

[0054] Furthermore, in the above embodiment, the timing for displaying a preview image of a radiographic image is set to a specific timing, and if information regarding radiation irradiation is received before the specific timing, image processing is performed by applying the received irradiation conditions, and if information regarding radiation irradiation is not received before the specific timing, image processing is performed by applying fixed information pre-stored in the storage unit 22. However, the specific timing is not limited to the timing for displaying a preview image of a radiographic image. For example, the specific timing may be the timing for displaying a wipe image, preview image, or actual image on the display unit 24, or the timing for starting processing for displaying the image, the timing for performing other image processing different from the image processing to which the information regarding radiation irradiation is applied, or the timing for ending the examination (the timing for ending the examination related to the acquired information regarding radiation irradiation, for example, the timing for pressing the end examination button 241i), etc. For example, when the image processing involves calculation of the incident surface dose, the timing of the end of the examination can be specified as the specific timing because the image is not affected. Also, when the image processing involves frequency processing, the timing of the preceding image processing (for example, grid moiré removal processing) can be specified as the specific timing.

[0055] In addition, the console 2 may be configured so that the user (operator) can set whether to apply information regarding radiation irradiation as a processing parameter to perform image processing such as scattered radiation correction processing, or to apply fixed information previously stored in the memory unit 22 as a processing parameter to perform image processing. 8 on the display unit 24 in response to a display instruction operation of the operation unit 25 for the setting screen, and when a check mark is entered in the check box 242a for "Apply irradiation records to image processing," the control unit 21 stores in the storage unit 22 setting information indicating that image processing will be performed by applying information about radiation irradiation as a processing parameter. When the check box 242a is not checked or the check mark is deleted, the control unit 21 stores in the storage unit 22 setting information indicating that image processing will be performed by applying fixed information as a processing parameter. When performing predetermined image processing such as scattered radiation correction processing, if the setting is to apply information about radiation irradiation, the control unit 21 performs control processing similar to the scattered radiation correction control processing of FIG. 5, and if the setting is to apply fixed information, the control unit 21 performs image processing by applying the fixed information regardless of whether information about radiation irradiation has been received (acquired). In addition, the setting of whether to apply information regarding radiation irradiation as a processing parameter to perform image processing such as scattered radiation correction processing, or to apply fixed information previously stored in memory unit 22 as a processing parameter to perform image processing, may be configured so that it can be set by the user for each shooting mode (e.g., simple shooting, long-length shooting, video shooting, etc.) or for each shooting condition.

[0056] 5 (including the case where the scattered radiation correction process is replaced with another image process), if information regarding radiation irradiation is acquired after image processing is performed by applying pre-stored fixed information as processing parameters, control unit 21 may perform reprocessing by applying the acquired information regarding radiation irradiation as processing parameters. After the reprocessing, the image displayed on display unit 24 may be replaced with the reprocessed image.

[0057] Furthermore, the control unit 21 may wait for image processing until information related to radiation irradiation is acquired. During this wait, for example, as shown in FIG. 9, a dialog 241f is displayed displaying a message notifying that information related to radiation irradiation is being waited for. Once the information related to radiation irradiation is acquired, the acquired information may be applied as processing parameters to perform image processing on the radiographic image. Alternatively, a cancel button B1 may be displayed on the dialog 241f, and when the cancel button B1 is pressed, the wait may be interrupted and fixed information may be applied to perform image processing on the radiographic image. This allows image processing to be performed according to the user's needs, whether they want to prioritize image quality or processing speed.

[0058] Furthermore, the control unit 21 may be configured to preset a waiting time for image processing, and if information regarding radiation irradiation is acquired before the end of the set waiting time, apply the information regarding radiation irradiation as processing parameters to perform image processing on the radiographic image, and if the irradiation conditions at the time of imaging are not acquired before the end of the set waiting time, apply fixed information as processing parameters to perform image processing on the radiographic image. In other words, the specific timing may be the end of the preset waiting time. The standby time may be variable (automatically set by the control unit 21) depending on the specifications of the connected irradiation device 3 or console 2 itself, the image transfer time, etc. Alternatively, a fixed time designated by the user may be set as the standby time. For example, the control unit 21 displays a setting screen 242 as shown in FIG. 8 in response to an instruction to display the setting screen by the operation unit 25, and when a standby time is input in the standby time input field 242b, the control unit 21 stores the input standby time in the storage unit 22 as setting information. The timing at which the waiting time starts may be, for example, the timing at which the console 2 receives an exposure end signal transmitted from the irradiation device 3 after the radiation exposure (irradiation) is completed, or the timing at which the waiting time starts is the timing at which the radiation image is received from the detector 1, or any other timing may be the timing at which the waiting time starts.

[0059] Furthermore, the control unit 21 may notify the user when it acquires information about radiation irradiation after starting image processing to which the fixed information is applied as a processing parameter, or while waiting for image processing. 10, the control unit 21 notifies the user that information regarding radiation irradiation has been received, and causes the display unit 24 to display a message dialog 241g containing a message inquiring whether or not to apply the information regarding radiation irradiation to image processing, an OK button B2, and a Cancel button B3. If the user operates the OK button B2, image processing is performed using the received information regarding radiation irradiation as processing parameters. If the user operates the Cancel button B3, image processing using the fixed information as processing parameters or standby is continued. Alternatively, the control unit 21 displays or outputs an audio signal as a message notifying that information regarding radiation irradiation has been received, and displays on the display unit 24 a reapplication dialog 241h (see Figure 11) or the like, which displays a fixed button (e.g., the irradiation history acquisition button B4) that instructs the acquisition of information regarding radiation irradiation, and when the irradiation history acquisition button B4 and the apply button B5 are pressed, performs image processing applying the received information regarding radiation irradiation as processing parameters. Alternatively, if information regarding radiation irradiation is acquired after the start of image processing in which fixed information is applied as a processing parameter, or while image processing is in standby, the control unit 21 may automatically perform image processing in which the acquired information regarding radiation irradiation is applied as a processing parameter as soon as it is acquired. When the information regarding radiation irradiation is acquired in parts, image processing is put on hold until all or some of the parameters required for processing can be acquired.

[0060] Furthermore, even if information about radiation irradiation is acquired before a specific timing, fixed information may be applied as a processing parameter depending on the type of image processing. The image processing to which fixed information is applied may be configured so that the user can set the image processing to which fixed information is applied in advance using the operation unit 25.

[0061] Furthermore, if the control unit 21 is unable to acquire information about radiation irradiation due to an error in communication between the console 2 and the irradiation device 3 or an error in the irradiation device 3 itself, the control unit 21 notifies the user that the application of image processing to the information about radiation irradiation has failed. For example, the notification may be displayed on the examination screen 241 of the display unit 24 as a message dialog such as "Application of image processing to irradiation results has failed," or may be output as a voice message.

[0062] Furthermore, if a radiographic image is damaged and needs to be re-photographed, the control unit 21 may store the acquired information regarding radiation irradiation in the RAM or the memory unit 22, and apply the stored information regarding radiation irradiation as processing parameters to the re-photographed radiographic image to perform image processing. Furthermore, when copying an image, the control unit 21 may store information regarding the radiation irradiation of the original image in the copied radiographic image (duplicate image) (for example, by storing it in supplementary information, etc.), and apply the stored information regarding the radiation irradiation to the copied radiographic image as a processing parameter to perform image processing. This means that if the imaging is performed without changing the irradiation conditions from when the original / copy source was photographed, image processing can be applied in advance without waiting for information about radiation irradiation to be obtained.

[0063] Furthermore, when examination order information includes imaging of multiple regions, imaging of each region is generally performed according to the order, but sometimes, for example, depending on the patient's condition or imaging efficiency, imaging of each region may be performed in an imaging order different from the order, and the region change may be registered later on the console 2. In such cases, if information about radiation irradiation was acquired before a specific timing, the control unit 21 applies the acquired information about radiation irradiation as processing parameters to the radiographic image of the changed region and performs image processing (re-image processing), whereas if information about radiation irradiation was not acquired before the specific timing, the control unit 21 applies fixed information associated with the changed region as processing parameters and performs image processing (re-image processing).

[0064] Furthermore, when information regarding radiation irradiation is stored in association with a radiation image obtained in a previous imaging session, the control unit 21 may be configured to be able to overwrite fixed information in the fixed information table 221 that corresponds to the same imaging site as the radiation image with the information regarding radiation irradiation.

[0065] In addition, in the above embodiment, an example was described in which the irradiation device 3 has the functions of a radiation generating console, but a configuration in which a single console has the functions of the console 2 as a radiation imaging control device and the functions of a radiation generating console may also be used.

[0066] The above describes an embodiment and its variations of the present invention, but the contents described in the above embodiment and variations are preferred examples of a radiation imaging control device according to the present invention and are not limited to these.

[0067] For example, in the above description, examples have been disclosed in which a hard disk or a semiconductor nonvolatile memory is used as a computer-readable medium for the program according to the present invention, but the present invention is not limited to this example. Other computer-readable media include portable recording media such as CD-ROMs. Furthermore, carrier waves can also be used as a medium for providing data for the radiation image display program according to the present invention via a communication line.

[0068] In addition, the detailed configuration and detailed operation of each device constituting the radiation imaging control device can be modified as appropriate within the scope of the invention. [Explanation of symbols]

[0069] 100 Radiography System 1. Radiation detector 2 Console (radiography control device) 21 control unit (image processing means) 22 Memory section 221 Constants Table 23 Communication unit (acquisition means) 24 Display 25 Control section 3 Radiation irradiation equipment 31 Generator 32 Irradiation instruction switch 33 Radiation source N Communication Network R Radiation S Subject

Claims

1. an acquisition means for acquiring information about radiation irradiation from a radiation irradiation device; an image processing means for performing image processing based on the information about the irradiation of the radiation acquired by the acquisition means; a display unit that displays the radiographic image that has been image-processed by the image processing means; A radiography control device comprising: The image processing means If the acquisition means acquires information about the radiation irradiation before a specific timing, image processing is performed based on the information about the radiation irradiation acquired by the acquisition means; If the acquisition means does not acquire information regarding the irradiation of the radiation before the specific timing, image processing is performed based on information pre-stored in the radiation imaging control device; The specific timing is a timing to display a wipe image, a preview image, or a main image on the display unit, or a timing to start processing for displaying the image.

2. 2. The radiography control device according to claim 1, wherein the image processing is at least one of scattered radiation correction processing, edge enhancement processing, structure enhancement processing, noise suppression processing, incident surface dose processing, body thickness estimation processing, frequency processing, and grid moire removal processing.

3. 3. The radiation imaging control device according to claim 1, wherein the image processing means performs image processing based on information pre-stored in the radiation imaging control device when the information regarding the radiation irradiation acquired by the acquisition means does not include specific information.

4. 4. The radiography control device according to claim 3, wherein the specific information is at least one of information on tube voltage, radiation dose, imaging distance, tube current, and irradiation time.

5. 5. A radiation imaging control device according to claim 1, wherein a user can set whether image processing is performed based on information regarding the radiation irradiation acquired by the acquisition means, or based on the pre-stored information.

6. 6. The method according to claim 1, wherein the information about radiation irradiation is at least one of an imaging distance during imaging, an exposure dose, a tube voltage, an irradiation time, a tube current, a material of a target and a filter of a radiation source, a type of imaging table, a size of an irradiation field, grid information, and a type of a radiation detector. The radiography control device described above.

7. an acquiring step of acquiring information about radiation irradiation from a radiation irradiation device; an image processing step of performing image processing based on the information about the radiation irradiation acquired in the acquisition step; a display step of displaying the radiographic image processed by the image processing step on a display unit; An image processing control method comprising: The image processing step includes: In the acquiring step, if the information on the radiation irradiation is acquired before a specific timing, image processing is performed based on the acquired information on the radiation irradiation; If the information regarding the irradiation of radiation is not acquired before the specific timing, image processing is performed based on information previously stored in a storage means; The image processing control method, wherein the specific timing is a timing to display a wipe image, a preview image, or a main image on the display unit, or a timing to start processing for displaying the image.

8. Computer, an acquisition means for acquiring information regarding radiation irradiation from the radiation irradiation device; an image processing means for performing image processing based on the information about the irradiation of radiation acquired by the acquisition means; functioning as a display means for displaying a radiographic image processed by the image processing means; The image processing means If the acquisition means acquires information about the radiation irradiation before a specific timing, image processing is performed based on the information about the radiation irradiation acquired by the acquisition means; If the acquisition means does not acquire information regarding the irradiation of the radiation before the specific timing, image processing is performed based on information previously stored in a storage means; The specific timing is a timing to display a wipe image, a preview image, or a main image on the display means, or a timing to start processing for displaying the image.

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