Evaluation of the measured tomographic data

A tomographic data evaluation module assesses image quality before reconstruction, addressing delays in tomographic imaging by enabling immediate discharge and reacquisition decisions, thus optimizing patient flow and system efficiency.

JP7811906B2Active Publication Date: 2026-02-06KONINKLIJKE PHILIPS NV
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Patent Information

Application Number
JP2022527827
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-11-22
Filing Date
2020-11-17
Publication Date
2026-02-06
Estimated Expiration
2040-11-17

AI Technical Summary

Technical Problem

Tomographic imaging technologies, such as MRI and CT, require expensive systems and involve lengthy reconstruction processes that delay subject discharge and reduce imaging throughput.

Method used

A tomographic data evaluation module processes raw data before reconstruction to generate an image quality indicator, allowing assessment of image quality prior to full reconstruction, enabling immediate subject discharge and potential reacquisition if necessary.

Benefits of technology

This approach reduces patient wait times and increases system throughput by allowing quality assessment during data acquisition, facilitating efficient use of imaging resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

A medical instrument (100, 300, 400, 500) is disclosed that includes a memory storing machine-executable instructions, a tomography data evaluation module, and a processor configured to control the medical instrument. Execution of the machine-executable instructions causes the processor to receive measured tomography data (124). The measured tomography data is configured to be reconstructed into a tomography image (308) of the subject. Execution of the machine-executable instructions further causes the processor to receive an image quality indicator by inputting the measured tomography data to the tomography data evaluation module. The tomography data evaluation module is configured to generate the image quality indicator in response to input of the measured tomography data. Execution of the machine-executable instructions further causes the processor to provide the image quality indicator to an operator using an operator signaling system (108).
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Description

[Technical Field]

[0001] The present invention relates to tomographic imaging methods, in particular magnetic resonance imaging and computed tomography. [Background technology]

[0002] In tomographic imaging methods, data is acquired from a subject and reconstructed into a tomographic image. Tomographic imaging, such as magnetic resonance imaging or computed tomography, involves the use of expensive medical imaging systems.

[0003] International Patent Application WO 2018 / 220089 A1 discloses a raw diagnostic device for medical diagnosis of raw medical imaging data generated by the medical imaging device, as opposed to medical diagnosis of medical images conventionally reconstructed from the raw medical imaging data. In operation, the raw diagnostic engine implements a dimensionality reduction pre-processor for selecting or extracting one or more reduced-dimensionality feature vectors from the raw medical imaging data, and further includes a medical imaging diagnostic controller that implements a raw diagnostic artificial intelligence engine for rendering a diagnostic evaluation of the raw medical imaging data represented by the dimensionality reduced feature vectors. The medical imaging diagnostic controller can further control communication (e.g., display, print, email, text, etc.) of the diagnostic evaluation of the raw medical imaging data. Summary of the Invention [Problem to be solved by the invention]

[0004] The present invention provides a medical device, a method and a computer program product according to the independent claims. [Means for solving the problem]

[0005] Embodiments are set forth in the dependent claims.

[0006] As described above, tomographic imaging technology involves an expensive medical imaging system for acquiring the measured tomographic data. After the subject is imaged in the medical imaging system, the operator of the medical imaging system waits until a tomographic image is reconstructed from the measured tomographic data. The operator then inspects the tomographic image and determines whether the image is of sufficient quality. The operator then decides to discharge the subject or to reacquire the measured tomographic data. This causes delays for the subject and reduces the number of subjects that can be imaged by the medical imaging system.

[0007] Embodiments can provide a time-saving measure by inputting measured tomographic data into a tomographic data evaluation module prior to reconstruction of a tomographic image. That is, the evaluation module operates on measured (raw) tomographic data, such as k-space profiles for MRI or attenuation profiles for CT, and the measured data can be preprocessed to some extent in the appropriate data space. For example, the profiles may be denoised and pre-amplified, but reconstruction, e.g., with an inverse Fourier transform or filtered backprojection, is not performed prior to evaluation. In particular, the evaluation can focus on technically accurate acquisition of the measured data. Such evaluations can be, for example, statistical evaluations of the measured data or examinations of the structure of the measured data. However, the evaluation of the present invention does not require the use of image content reconstructed from the measured data. Accordingly, the measured tomographic data evaluation module provides, for example, an image quality indicator that can be used to predict the quality of the tomographic image when the tomographic image is reconstructed. Based on the image quality indicator, the operator can, for example, decide whether to eject the subject or reacquire the measured tomographic data. If the subject is released, the tomographic image can be reconstructed from the measured tomographic data at a later time.

[0008] In one aspect, the present invention provides a medical instrument comprising a memory storing machine-executable instructions and a tomography data evaluation module. The medical instrument further comprises a processor configured to control the medical instrument. Execution of the machine-executable instructions causes the processor to receive measured tomography data. The measured tomography data is configured to be reconstructed into a tomography image of the subject. Execution of the machine-executable instructions further causes the processor to receive an image quality indicator in response to inputting the measured tomography data to the tomography data evaluation module. The tomography data evaluation module is configured to generate an image quality indicator in response to inputting the measured tomography data.

[0009] As used herein, measured tomographic data encompasses measurement data from medical imaging systems. For example, the measured tomographic data can include measurement data from magnetic resonance imaging systems and computed tomography systems. Execution of the machine-executable instructions further causes the processor to provide an image quality indicator to an operator using an operator signaling system. In this embodiment, the image quality indicator acts directly on the measured tomographic data in some instances.

[0010] This embodiment may be beneficial because it may provide a means of assessing the quality of a tomographic image before the tomographic image is reconstructed. For example, if there is a long and complex reconstruction algorithm for reconstructing a tomographic image from the measured tomographic data, this may be time consuming. Therefore, the image quality indicator may be used to decide to reacquire the measured tomographic data without delay in the reconstruction of the tomographic image.

[0011] In another embodiment, the medical instrument further comprises a medical imaging system configured to acquire the measured tomographic data from the imaging zone, and the memory further comprises medical imaging system control commands configured to control the medical imaging system to acquire the measured tomographic data.

[0012] For example, a medical imaging system may include various components that must operate in a coordinated manner as a function of time. Medical imaging system control commands may be used to control these various components to acquire the tomographic data to be measured. A specific example is a pulse sequence or pulse sequence commands used by a magnetic resonance imaging system, where various components and amplifiers are controlled in a coordinated manner to acquire the tomographic data to be measured. Execution of the machine-executable instructions further causes the processor to acquire the tomographic data to be measured by controlling the medical imaging system with the medical imaging system control commands.

[0013] In another embodiment, the medical imaging system further includes a subject support for moving at least a portion of the subject within the imaging zone. Execution of the machine-executable instructions further causes the processor to control the subject support to move at least a portion of the subject within the imaging zone before controlling the medical imaging system to acquire the measured tomographic data. Execution of the machine-executable instructions further causes the processor to provide an image quality indicator to an operator using an operator signaling system while the subject is still at least partially supported within the imaging zone. This embodiment may be beneficial because it allows the measured tomographic data to be reacquired while the subject is still within the imaging zone. Using a tomographic data evaluation module makes it possible to evaluate the quality of the measured tomographic data while the subject is still within the medical imaging system. This provides an opportunity to reacquire the data if necessary.

[0014] In another embodiment, the medical imaging system is a magnetic resonance imaging system. The medical imaging system control commands are pulse sequence commands. The measured tomographic data is k-space data. The magnetic resonance imaging system acquires data in k-space, which is then Fourier transformed into a final tomographic image. In this example, the tomographic image is a magnetic resonance image. Reconstruction algorithms for reconstructing magnetic resonance images can be very time-consuming and computationally intensive. This embodiment can be beneficial because it provides an opportunity to evaluate whether the measured tomographic data is likely to result in a high-quality tomographic image. This allows the subject to be discharged from the hospital before the tomographic image is reconstructed. This results in a significant savings in the amount of time each subject uses for the magnetic resonance imaging system.

[0015] In another embodiment, a compressed sensing magnetic resonance imaging protocol is followed, in which pulse sequence commands are configured to acquire tomographic image data measured from multiple magnetic resonance imaging antennas. The tomographic data evaluation module is configured to provide the image quality indicator at least in part using magnetic resonance data from a single magnetic resonance antenna selected from the multiple magnetic resonance imaging antennas. In compressed sensing, data is acquired from multiple antenna elements or antenna elements, each of which is used to reconstruct an image. These images are then combined into a single magnetic resonance image or images using a coil sensitivity profile. This can reduce the amount of time required to reconstruct a trial image or inspect the data by using data from a single antenna. This can significantly accelerate the time used to generate the image quality indicator.

[0016] In another embodiment, the pulse sequence commands follow a self-navigating magnetic resonance imaging protocol that embeds self-navigation data within the k-space data. Often, a central region of k-space can be repeatedly measured or oversampled so that the data can be used as a self-navigator. This embodiment can be beneficial because it can be useful in measuring the extent of subject motion.

[0017] In another embodiment, the medical imaging system is a computed tomography imaging system. The measured tomographic image data includes a measured x-ray attenuation profile. This embodiment can also be beneficial because reconstruction algorithms for computed tomography can require a significant amount of time to generate a complete tomographic image. This is particularly true when the computed tomography system performs measurements at multiple x-ray tube voltages or x-ray energies.

[0018] In another embodiment, the tomography data evaluation module is configured to accelerate the generation of the image quality indicator by subsampling the measured tomography data. For example, the measured tomography data may be a very large data set acquired over a period of time. The amount of data required to perform the reconstruction may be reduced by only acquiring a portion of this measured tomography data. This may result, for example, in an image of lower quality or with lower contrast that contains less information but may still be useful in assessing the overall quality of the measured tomography data.

[0019] The tomographic data evaluation module is configured to accelerate the generation of the image quality indicator by reconstructing a low-resolution image from the measured tomographic data, the low-resolution image having a lower resolution than the tomographic image.

[0020] In another embodiment, generation of the image quality indicator is accelerated by reconstructing a single slice of a tomographic image from the tomographic data being measured, which is useful, for example, to reduce the amount of data required to derive the image quality indicator.

[0021] In another embodiment, the measured tomographic data includes redundant data. The tomographic data evaluation module is configured to use the redundant data to at least partially generate the image quality indicator. For example, the medical imaging system can be configured to perform the same measurement several times during the process of acquiring the measured tomographic data. These measurements can then be compared to each other to note things like image quality degradation or movement of the subject.

[0022] In another embodiment, the tomography data evaluation module is implemented as a neural network that is trained to receive measured tomography data as input and output an image quality indicator in response. In this embodiment, the neural network essentially receives raw (measured tomography data) data from the medical imaging system and then outputs an image quality indicator.

[0023] In another embodiment, the tomography data evaluation module is implemented as a logic module configured to receive the measured tomography data as input and to output an image quality indicator accordingly, the given logic module may for example be a rule-based module where an image quality indicator is assigned when a particular condition is present.

[0024] In another embodiment, the tomography data evaluation module is implemented as an operator control module configured to generate and display intermediate images for approval by an operator. For example, the operator control module can display a dialog box on a graphical user interface, which displays one or more image quality indicators on the display. The operator can then click, for example, to indicate whether the data or images are sufficient or acceptable.

[0025] In another embodiment, execution of the machine-executable instructions causes the processor to store the measured tomographic data in a tomographic data database system of a remote processing system if the image quality indicator meets a predetermined criterion. The predetermined criterion may be used to indicate that the measured tomographic data is acceptable. The remote processing system is configured to retrieve the measured tomographic data from the tomographic data database and then reconstruct a tomographic image from the measured tomographic data. In this embodiment, a different system reconstructs the tomographic image after the measured tomographic data is stored. This can allow, for example, the subject to be immediately ejected and then the tomographic image to be reconstructed at a later date or time.

[0026] In another embodiment, the remote processing system is implemented at a location separate from the medical device, for example, the remote processing system may be implemented as a cloud or virtual system.

[0027] In another embodiment, the operator signaling system further comprises a computer display configured to display the image quality indicator. Execution of the machine-executable instructions further causes the processor to perform the operation of displaying a message to the operator to reacquire the data if the image quality indicator does not meet a predetermined criterion. For example, the image quality indicator may be assigned a binary value of insufficient image quality classification. In this case, a message is relayed to the operator to reacquire the measured tomographic data.

[0028] In another embodiment, execution of the machine-executable instructions causes the processor to display a message to an operator to release the subject if the image quality indicator meets a predetermined criterion. For example, if the image quality indicator is a binary value indicating that the measured tomographic data meets or has a sufficient image quality indicator, the subject may be ejected. The message to release the subject may, for example, instruct the operator to release the subject from the medical imaging system.

[0029] In another embodiment, the memory further comprises an instruction database containing operator instructions describing how to improve the measured tomographic data quality. Execution of the machine-executable instructions causes the processor to further retrieve operator instructions from the instruction database when a message to reacquire data is displayed. Execution of the machine-executable instructions causes the processor to further display operator instructions on the display when a message to reacquire data is displayed on the display.

[0030] In another embodiment, the image quality indicator is a binary indicator indicating sufficient and poor image quality. Medical treatments can be readily assigned based on this binary value. The predetermined criteria for evaluating the binary indicator is a selected state of the binary indicator.

[0031] In another embodiment, the image quality indicator is a numerical indicator, for example, the image quality index may be assigned a numerical value, and the predetermined criteria for evaluating the numerical indicator is a value selected for use as a threshold.

[0032] In another embodiment, the image quality indicator is an image with lower contrast and / or lower resolution than the tomographic image. The image quality indicator may be used by a machine algorithm or a human to assess the quality of the measured tomographic data. For example, a trained neural network or other machine learning algorithm may be used to assess the image quality indicator and compare it to a predetermined standard.

[0033] In another embodiment, the image quality indicator includes an operator-provided rating. For example, a box may be displayed on the user interface, which is then checked or rated by the operator. Binary indicators, image quality indicators, and / or numeric indicators can be displayed for evaluation by the operator.

[0034] In another aspect, the present invention provides a method of operating a medical instrument. The method includes receiving measured tomographic data. The measured tomographic data is configured to be reconstructed into a tomographic image of the subject. The method further includes receiving an image quality indicator by inputting the measured tomographic data to a tomographic data evaluation module. The tomographic data evaluation module is configured to generate the image quality indicator in response to input of the measured tomographic data. The method further includes providing the image quality indicator to an operator using an operator signaling system.

[0035] In another aspect, the present invention provides a computer program product comprising machine-executable instructions and a tomography data evaluation module. Execution of the machine-executable instructions causes a processor to receive measured tomography data. The measured tomography data is configured to be reconstructed into a tomography image of the subject. The machine-executable instructions further cause the processor to receive an image quality indicator by inputting the measured tomography data to the tomography data evaluation module. The tomography data evaluation module is configured to generate the image quality indicator in response to input of the measured tomography data. Execution of the machine-executable instructions further causes the processor to provide the image quality indicator to an operator using an operator signaling system.

[0036] It will be understood that one or more of the above-described embodiments of the present invention may be combined, provided that the combined embodiments are not mutually exclusive.

[0037] For example, the following embodiments, which are set out as clauses and labeled with letters, can be freely combined singly or in multiple combinations to form the features of the dependent claims. A. the pulse sequence commands follow a compressed detection magnetic resonance imaging protocol configured to acquire the measured tomographic data from a plurality of magnetic resonance imaging antennas, and the tomographic data evaluation module is configured to provide the image quality indicator at least in part using magnetic resonance data from a single magnetic resonance antenna selected from the plurality of magnetic resonance imaging antennas; B. the pulse sequence commands are in accordance with a self-navigated magnetic resonance imaging protocol that embeds self-navigation data within the k-space data, and the tomography data evaluation module is configured to provide, at least in part, an image quality indicator using the self-navigation data; C. the tomography data evaluation module is configured to accelerate the generation of the image quality indicator by subsampling the measured tomography data; D. the tomography data evaluation module is configured to accelerate generation of the image quality indicator by reconstructing a low-resolution image from the measured tomography data, the low-resolution image having a lower resolution than the tomography image; E. the tomography data evaluation module is configured to accelerate the generation of the image quality indicator by reconstructing a single slice of the tomography image from the measured tomography data; F. the tomography data evaluation module is implemented as a neural network that is trained to receive as input the tomography data to be measured and output an image quality indicator accordingly; G. the tomography data evaluation module is implemented as a predetermined logic module configured to receive the tomography data to be measured as input and to output an image quality indicator accordingly; H. the tomography data evaluation module is implemented as an operator control module configured to generate and display intermediate images or values ​​for approval by an operator; I. The image quality indicator is a binary indicator that indicates sufficient and insufficient image quality; J. The image quality indicator is a numerical indicator; K. Image quality indicator is an image with lower contrast and / or lower resolution than a tomographic image; L. the image quality indicator is an operator-provided rating; M. Any combination including one or more of the above features A through L.

[0038] As will be appreciated by those skilled in the art, aspects of the present invention may be embodied as an apparatus, a method, or a computer program product. Additionally, aspects of the present invention may take the form of a computer program product embodied in one or more computer-readable medium(s) having computer-executable code embodied thereon. Aspects of the present invention may take the form of an entirely hardware implementation, an entirely software implementation (including firmware, resident software, microcode, etc.), or an implementation combining software and hardware aspects, all of which may be generally referred to herein as a "circuit," "module," or "system."

[0039] Any combination of one or more computer-readable media may be utilized. The computer-readable medium may be a computer-readable signal medium or a computer-readable storage medium. As used herein, "computer-readable storage medium" encompasses any tangible storage medium capable of storing instructions executable by a processor of a computing device. The computer-readable storage medium may also be referred to as a computer-readable non-transitory storage medium. The computer-readable storage medium may also be referred to as a tangible computer-readable medium. In some embodiments, the computer-readable storage medium may store data accessible by the processor of a computing device. Examples of computer-readable storage media include, but are not limited to, floppy disks, magnetic hard disk drives, solid-state hard disks, flash memory, USB thumb drives, random access memory, read-only memory (ROM), optical disks, magneto-optical disks, and processor register files. Examples of optical disks include compact discs (CDs) and digital versatile discs (DVDs), such as CD-ROM, CD-RW, CD-R, DVD-ROM, DVD-RW, or DVD-R discs. The term computer-readable storage medium also refers to various types of storage media that can be accessed by a computer device over a network or communications link. For example, data can be retrieved via a modem, over the Internet, or over a local area network. Computer-executable code embodied on a computer-readable medium can be transmitted using any suitable medium, including, but not limited to, wireless, wired, fiber optic cable, RF, etc., or any suitable combination of the foregoing.

[0040] A computer-readable signal medium may include a propagated data signal in which computer-executable code is embodied, for example, in baseband or as part of a carrier wave. Such a propagated signal may take any of a variety of forms, including, but not limited to, magnetic, optical, or any suitable combination thereof. A computer-readable signal medium is not a computer-readable storage medium but may be any computer-readable medium that can communicate, propagate, or transport a program for use by or in connection with an instruction execution system, apparatus, or device.

[0041] "Computer memory" or "memory" is an example of a computer-readable storage medium. Computer memory is any memory directly accessible to a processor. "Computer storage" or "storage" is a further example of a computer-readable storage medium. Computer storage is any non-volatile computer-readable storage medium. In some embodiments, computer storage may be computer memory, or vice versa.

[0042] As used herein, "processor" encompasses an electronic component capable of executing a program or machine-executable instructions or computer-executable code. References to a computing device including "processor" should be interpreted as possibly including multiple processors or processing cores. A processor may be, for example, a multi-core processor. A processor may also refer to a collection of processors within a single computer system or distributed among multiple computer systems. The term computing device should be interpreted as potentially referring to a processor or a collection or network of individual computing devices that make up a processor. Computer-executable code may be executed by multiple processors, which may be within the same computing device or may be distributed across multiple computing devices.

[0043] Computer-executable code may include machine-executable instructions or programs that cause a processor to perform aspects of the present invention. Computer-executable code for performing operations for aspects of the present invention may be written in any combination of one or more programming languages, including object-oriented programming languages ​​such as Java, Smalltalk, C++, and conventional procedural programming languages, such as the "C" programming language or similar programming languages, that are compiled into machine-executable instructions. In some cases, the computer-executable code may be in a high-level language or pre-compiled form, or may be used with an interpreter that generates machine-executable instructions on the fly.

[0044] The computer executable code may run on the user's computer, partially on the user's computer, as a stand-alone software package, partially on the user's computer, partially on a remote computer, or entirely on a remote computer or server. In the latter scenario, the remote computer may be connected to the user's computer via any type of network, including a local area network (LAN) or a wide area network (WAN), or may be connected to an external computer (e.g., via the Internet using an Internet Service Provider).

[0045] Aspects of the present invention are described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the invention. It will be understood that each block or portion of a block in the flowcharts, illustrations, and / or block diagrams can, where applicable, be implemented by computer program instructions in the form of computer-executable code. Furthermore, it will be established that combinations of blocks in different flowcharts, illustrations, and / or block diagrams can be combined, if not mutually exclusive.

[0046] These computer program instructions can be provided to a processor of a general purpose computer, special purpose computer, or other programmable data processing apparatus to produce an apparatus such that the instructions, executed by the processor of the computer or other programmable data processing apparatus, create means for performing the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams.

[0047] These computer program instructions may also be stored on a computer-readable medium that can instruct a computer, other programmable data processing apparatus, or other device to function in a particular manner, such that the instructions stored on the computer-readable medium produce an article of manufacture including instructions that implement the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams.

[0048] The computer program instructions may also be loaded into a computer, other programmable data processing apparatus, or other device to generate a computer-implemented process such that a series of operational steps are executed on the computer, other programmable apparatus, or other device to provide a process for implementing the functions / operations specified in one or more blocks of the flowcharts and / or block diagrams. As used herein, a "user interface" is an interface that allows a user or operator to interact with a computer or computer system.

[0049] A "user interface," also known as a "human interface device," can provide information or data to an operator and / or receive information or data from an operator. A user interface can allow input from an operator to be received by a computer and can provide output from the computer to a user. In other words, a user interface allows an operator to control or manipulate a computer, and the interface may allow the computer to show the effects of the operator's control or manipulation. Displaying data or information on a display or graphical user interface is an example of providing information to an operator. Receiving data via a keyboard, mouse, trackball, touchpad, pointing stick, graphics tablet, joystick, gamepad, webcam, headset, pedals, wired gloves, remote control, and accelerometer are all examples of user interface components that allow receiving information or data from an operator.

[0050] As used herein, a "hardware interface" includes an interface that allows a processor of a computer system to interact with and / or control external computing devices and / or equipment. A hardware interface may allow a processor to send control signals or instructions to external computing devices and / or equipment. A hardware interface may also allow a processor to exchange data with external computing devices and / or equipment. Examples of hardware interfaces include, but are not limited to, a universal serial bus, an IEEE 1394 port, a parallel port, an IEEE 1284 port, a serial port, an RS-232 port, an IEEE 488 port, a Bluetooth connection, a wireless local area network connection, a TCP / IP connection, an Ethernet connection, a control voltage interface, a MIDI interface, an analog input interface, and a digital input interface.

[0051] As used herein, "display" or "display device" encompasses an output device or user interface adapted to display images or data. A display can output visual, audio, and / or tactile data. Examples of displays include, but are not limited to, computer monitors, television screens, touch screens, tactile electronic displays, Braille screens, Braille tubes (CRTs), storage tubes, bi-stable displays, electronic paper, vector displays, flat panel displays, vacuum fluorescent displays (VFs), light-emitting diode (LED) displays, electroluminescent displays (ELDs), plasma display panels (PDPs), liquid crystal displays (LCDs), organic light-emitting diode displays (OLEDs), projectors, and head-mounted displays. The operator signaling system may be a display.

[0052] As used herein, measured tomographic data encompasses measurement signals recorded during tomographic imaging techniques, examples of which include magnetic resonance imaging and computed tomography.

[0053] K-space data is defined herein as the recorded measurement of radio frequency signals emitted by atomic spins using the antenna of a magnetic resonance imaging device during a magnetic resonance imaging scan. K-space data is an example of measured tomographic data. An MRI (magnetic resonance imaging) image or MR image is defined herein as a reconstructed, 2-, 3-, or standardized visualization of the dissected data contained in k-space data, and is an example of a tomographic image. This visualization can be performed using a computer.

[0054] Similarly, an X-ray attenuation profile is defined herein as the recorded measurements of X-ray attenuation measurements made during a computed tomography scan. An X-ray attenuation profile is an example of measured tomographic data. A computed tomography (CT) image is defined herein as a reconstructed two-dimensional or three-dimensional visualization of anatomical data from an X-ray attenuation profile. This visualization may also be performed using a computer. BRIEF DESCRIPTION OF THE DRAWINGS Preferred embodiments of the present invention will now be described, by way of example only, with reference to the drawings, in which: [Brief explanation of the drawings]

[0055] [Figure 1] 1 shows an example of a medical device. [Figure 2] 2 shows a flow chart illustrating a method of operating the medical instrument of FIG. 1. [Figure 3] 1 shows a further example of a medical device. [Figure 4] 1 shows a further example of a medical device. [Figure 5] 1 shows a further example of a medical device. [Figure 6] 6 shows a flow chart illustrating a method of operating the medical device of FIG. 3, 4 or 5. DETAILED DESCRIPTION OF THE INVENTION

[0056] Like numbered elements in these figures are either equivalent elements or perform the same function. An element described above is not necessarily described in a subsequent figure if the function is equivalent.

[0057] FIG. 1 illustrates an example of a medical instrument 100. The medical instrument is shown as comprising a computer 102 having a processor 106 connected to a hardware interface 104, a user interface 108, and a memory 110. The hardware interface 104 may include components that allow the processor 106 to communicate or control them. The hardware interface 104 may also include one or more network interfaces. The processor 106 may represent one or more processors and / or processing cores. The user interface 108 may provide a means for an operator to interact with the computer 102. Thus, the user interface 108 may provide a display or other operator signaling system. The memory 110 may be any combination of memory accessible for use by the processor 106.

[0058] The memory 110 is shown as including machine-executable instructions 120. The machine-executable instructions 120 include instructions that enable the processor 106 to control the functions of the medical instrument 100 as well as perform various computational and data processing tasks. The memory 110 is further shown as including a tomography data evaluation module 122. The tomography data evaluation module receives raw or measured tomography data 124 as input and then outputs an image quality indicator 126. The memory 110 is shown as including the measured tomography data 124 and also includes the image quality indicator 126 as an output from the tomography data evaluation module 122. The memory 110 is further shown as including a rendering of the image quality indicator 128 that can be used or displayed using the user interface 108.

[0059] Figure 2 shows a flowchart illustrating a method of operation of the medical device 100 of Figure 1. First, in step 200, the measured tomography data 124 is received. Next, in step 202, the measured tomography data 124 is input to the tomography data evaluation module 122, and an image quality indicator 126 is received in response. Then, finally, in step 204, the image quality indicator 126 is provided to an operator. In this example, a rendering of the image quality indicator 128 can be displayed using the user interface 108.

[0060] The current workflow for an MRI or CT scan consists of the following steps: 1. Place the patient in the scanner. 2. A scan is performed. 3. The raw data from the scanner is reconstructed into an image. 4. If the scan is successful, the operator performs a quality check based on the reconstructed image. 5.a. If the scan is not successful, another scan should be performed. 5.b. If the scan is successful, the reconstructed image is stored in the hospital's Picture Archiving and Communication System (PACS). 6. The radiologist retrieves the images from the PACS system at a later stage and writes up a report of his findings / diagnosis. Alternatively, the images from the PACS system can be received in the scanner room while the patient is still in the medical imaging system.

[0061] A drawback of the above workflow is that the reconstruction process (step 3) can take a considerable amount of time. During this time, the operator and patient are waiting. This can be very inconvenient for the patient, as they are in an uncomfortable position and / or, especially in the case of MRI, in a noisy and / or claustrophobic environment. The operator, while under time pressure, may feel that they are wasting their time.

[0062] The computer for the above workflow should be as powerful as possible to keep the reconstruction time as short as possible.

[0063] As an example, the current time-consuming reconstruction (step 3 in the workflow above) can be replaced with an algorithm that determines whether the scan was successful or not based on the raw data (measured tomographic data), which may require significantly less time than the actual reconstruction of the tomographic image from the measured tomographic data.

[0064] Based on the evaluation of the algorithm (image quality indicator), the patient can be rejected, so the patient and operator no longer have to wait.

[0065] The actual reconstruction of the tomographic images may be performed at a later time, but still in time for the radiologist to prepare the images when needed. Because reconstruction time is no longer a time-critical step in the workflow, the computer performing the reconstruction may now be less powerful.

[0066] 3 shows a further example of a medical instrument 300. Additionally, a remote processing system 302 is shown. In some cases, the remote processing system 302 can be part of the medical instrument 300. The medical instrument 300 is shown as including a computer 102. The items in FIG. 3 are functionally arranged. The medical instrument 300 is further shown as comprising a medical imaging system 310 that is used to acquire the tomography data 124 to be measured. This is then input into a tomography data evaluation module 122. In this case, the tomography evaluation module 122 is used to provide either a sufficient image quality indicator 126′ or an insufficient image quality indicator 126″.

[0067] Once a sufficient image quality indicator 126' is provided, a message to release the subject 314 is displayed. Furthermore, the raw data or measured tomography data 124 is transferred or transmitted to the remote processing system 302. The measured tomography data 124 is stored in a tomography data database 306 for subsequent processing. The remote processing system 302 includes a computer 304. The computer is configured to retrieve the measured tomography data 124 from the tomography data database 306 and construct a tomography image 308 therefrom. The advantage of this is that the subject can leave the medical imaging system 310 immediately and the measured tomography data 124 can be processed later, possibly days later. This alleviates the need for more computing power in the computer 102 and also allows more patients to pass through the medical imaging system 310 per hour.

[0068] If an insufficient image quality indicator 126'' is provided, the operator may display a message 312 to reacquire the data. The operator may then reacquire the measured tomographic data 124. In some cases, the reacquisition of the measured tomographic data 124 may be automated.

[0069] The workflow with delayed reconfiguration as shown in Figure 3 can be summarized as follows: 1. Place the patient in the scanner. 2. A scan is performed. 3. The raw data from the scanner is used for an automated quality check a. 4.a. If the scan is not successful, another scan should be performed. 4.b. If the scan is successful, the raw data is saved. 5. Then, a tomographic image is reconstructed from the measured tomographic data, and the reconstructed image (tomographic image) is stored in the hospital's Picture Archiving and Communication System (PACS). 6. The radiologist later retrieves the images from the PACS system and writes up a report of his findings / diagnosis.

[0070] An example of an algorithm in step 3 is to reconstruct only a single slice without any advanced processing. Another option is to add additional raw data (a small amount) that the scanner can use to perform a fast check. Next to the scanner output, the algorithm can take advantage of additional sensors (cameras) attached to the scanner. For example, if the patient does not move during the scan, the scan is likely to be successful.

[0071] All these options can be used to judge the image quality with full reconstruction and determine if a rescan is necessary or if the patient can be dismissed.

[0072] Figure 4 shows a further example of a medical device 400. The example shown in Figure 4 is similar to the examples shown in Figures 1 and 3, except that the medical device 400 further comprises a magnetic resonance imaging system 402.

[0073] The magnetic resonance imaging system 402 includes a magnet 404. The magnet 404 is a superconducting cylindrical magnet with a bore 406 extending therethrough. Different types of magnets are possible, including both split cylindrical magnets and so-called open magnets. Split cylindrical magnets are similar to standard cylindrical magnets except that the cryostat is divided into two sections to allow access to the magnet's isosurface. Such magnets may be used, for example, in conjunction with charged particle beam therapy. Open magnets have two magnet sections spaced apart enough to accommodate the subject, with a two-section arrangement between them similar to a Helmholtz coil. Open magnets are popular because they are not confined to the subject. Inside the cylindrical magnet's cryostat is a collection of superconducting coils.

[0074] Within the bore 406 of the cylindrical magnet 404 is an imaging zone 408 having sufficient strength and uniformity to perform magnetic resonance imaging. The magnetic resonance data acquired is typically acquired over a field of view.

[0075] Also present within the magnet bore 406 is a set of magnetic field gradient coils 410, which are used for preliminary magnetic resonance data acquisition to spatially encode magnetic spins within the imaging zone 408 of the magnet 404. The magnetic field gradient coils 410 are connected to a magnetic field gradient coil power supply 412. The magnetic field gradient coils 410 are intended to be representative. Typically, the magnetic field gradient coils 410 include three separate sets of coils for spatial encoding in three orthogonal spatial directions. The magnetic field gradient power supply supplies current to the magnetic field gradient coils 410. The current supplied to the magnetic field gradient coils 410 is controlled as a function of time and may be ramped or pulsed.

[0076] Adjacent to the imaging zone 408 is a radio frequency coil 414 for manipulating the direction of magnetic spins within the imaging zone 408 and for receiving radio transmissions from the spins within the imaging zone 408. A radio frequency antenna may include multiple coil elements. A radio frequency antenna is sometimes referred to as a channel or antenna. The radio frequency coil 414 is connected to a radio frequency transceiver 416. The radio frequency coil 414 and the radio frequency transceiver 416 may be replaced with separate transmit and receive coils and separate transmitters and receivers. It is understood that the radio frequency coil 414 and the radio frequency transceiver 416 are representative. The radio frequency coil 414 is also intended to represent a dedicated transmit antenna and a dedicated receive antenna. Similarly, the transceiver 416 can also represent a separate transmitter and receiver. Also, the radio frequency coil 414 may have multiple receive / transmit elements, and the radio frequency transceiver 416 may have multiple receive / transmit channels. For example, if a parallel imaging technique such as detection is performed, the radio frequency 414 may have multiple coil elements.

[0077] The transceiver 416 and tilt controller 412 are shown connected to the hardware interface 404 of the computer system 402 .

[0078] Memory 110 is further shown as including pulse sequence commands 330. The pulse sequence commands may include, for example, labels that can be compared to subject posture labels 142. This can be used as a quality control check. In this example, pulse sequence commands 430 can be considered a protocol.

[0079] In this example, the measured tomographic data is now k-space data 124'. Memory 110 is further shown as including pulse sequence commands 430. Pulse sequence commands are an example of medical imaging system control commands.

[0080] The image quality indicator 126 can be used to determine whether k-space data 124' is transferred to the remote processing system 302. The remote processing system 302 is also shown to include a computer 304, as well as a hardware interface 104', a processor 106, a user interface 108', and a memory 110'. The memory 110' is further shown to include machine-executable instructions 450. The memory 110' is further shown to include a tomography data database 306. The memory 110' is further shown to include k-space data 124' transferred from the computer 102. The k-space data 124' may be stored in or retrieved from the tomography image data database 306, for example. The machine-executable instructions 450 enable the processor 106' to reconstruct a tomography image 308 from the k-space data 124'.

[0081] The memory 110 is further shown as optionally including an operator instruction database 422. The operator instruction database 422 includes instructions that can be used to provide to an operator to improve the acquisition of the tomographic image data when reacquired. The memory 110 is further shown as including operator instructions 424 that are retrieved from the operator instruction database 422 in response to the image quality indicator 126 being unsatisfactory and that retrigger the reacquisition of the measured tomographic data 124'.

[0082] Figure 5 shows a further example of a medical device 500. The example of Figure 5 is similar to the example of Figure 4, except that the magnetic resonance imaging system 402 of Figure 4 is replaced with a CT or computed tomography system 502 of Figure 5.

[0083] The CT system 502 includes a rotating gantry 504. The gantry 504 rotates about an axis of rotation 506. A subject 418 is positioned on a subject support 420. Within the gantry 504 is an x-ray tube 510.

[0084] The subject support 420 is shown as being supported by an optional subject support actuator 522. For example, the subject 418 can be brought into the image zone 516. The subject support actuator 522 can hold the subject 418 there until the image quality indicator 126 meets a predetermined criterion, allowing the tomographic data to be transferred to the remote processing system 302.

[0085] X-ray tube 510 produces x-rays 514 that pass through object 418 and are received by detector 512. Within the area of ​​box 516 is an imaging zone where CT or computed tomography images of object 418 can be produced. CT system 502 is shown as being controlled by computer system 102. Hardware interface 104 allows processor 106 to exchange messages and control CT system 502.

[0086] In FIG. 5, the measured tomographic image data is an X-ray attenuation profile 124″, and similar to FIG. 5, the X-ray attenuation profile 124″ may be transferred to a remote processing system 302. The functionality of the tomographic data database 306 is similar to that of FIG. 4. The computer 304 can then reconstruct the X-ray attenuation profile 124″ into a tomographic image 308.

[0087] The remote processing system 302 of FIGS. 4 and 5 may sometimes be part of the medical instrument 400 or 500.

[0088] FIG. 6 shows a flowchart illustrating a method of operating the medical device shown in FIG. 3, 4 or 5. First, in step 600, the medical device is controlled to acquire the measured tomography data 124, 124′ or 124″. Next, steps 200 to 204 are performed as shown in FIG. 2. After step 204, step 206 is performed, which is a decision box. The question is, “Does the imaging quality indicator meet a predetermined criterion?” If the answer is yes, the method proceeds to box 604. In box 604, a message is displayed informing the operator to release the subject. Step 604 is optional. After step 604, step 606 is performed. In step 606, the measured tomography data 124, 124′, 124″ is stored in the tomography data database 306. After step 606, step 608 is performed. In this step, the tomographic data 124, 124', 124'' are retrieved from the tomographic data database 306 and after step 608 in step 610, the tomographic image 308 is reconstructed from the measured tomographic data 124, 124', 124''.

[0089] Returning to decision box 602, if the image quality indicator 126 does not meet the predetermined criteria, the method proceeds to step 612. Step 612 is optional. In step 612, a measured tomography data message is displayed to the operator. This informs the operator that the data from the acquisition should be reacquired. Steps 614 and 616 are also optional. In step 614, in response to the image quality indicator 126 not meeting the predetermined criteria, operator instructions 434 are retrieved from the instructions database 432. This information may help the operator reacquire the data with higher quality. After steps 612, 614, and 616 are performed, the method returns to step 600, and the system reacquires the measured tomography data 124, 124', 124''. If steps 612, 614, or 616 are not performed, the method proceeds directly from step 602 to step 600.

[0090] While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive, and the invention is not limited to the disclosed embodiments.

[0091] Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word "comprise" does not exclude other elements or steps, and the indefinite articles "a" or "an" do not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in the claims. The mere fact that certain means are recited in mutually different dependent claims does not indicate that a combination of these means cannot be used to advantage. A computer program can be stored / distributed on a suitable medium, such as an optical storage medium or a solid-state medium, supplied together with or as part of other hardware, but can also be distributed in other forms, such as via the Internet or other wired or wireless telecommunications systems. Any reference signs in the claims should not be construed as limiting the scope. [Explanation of symbols]

[0092] 100 Medical equipment 102 Computer 104 Hardware Interface 104' Hardware Interface 106 processors 106-inch processor 108 User Interface (Operator Signaling System) 110 memory 110' Memory 120 machine-executable instructions 122 Tomography Data Evaluation Module 124 Measured Tomography Data 124' k-space data 124'' X-ray attenuation profile 126 Image Quality Indicator 126' Sufficient image quality indicator 126'' Poor Image Quality Indicator 128 Rendering Quality Indicators 200 Receive measured tomography data 202 receiving an image quality indicator by inputting the measured tomography data into a tomography data evaluation module in response to inputting the measured tomography data; 204 Operator signaling system is used to provide image quality indicators to the operator 300 Medical equipment 302 Remote Processing System 304 Computer 306 Tomography Data Database 308 Tomographic Images 310 Medical Imaging Systems 312 Display a message to re-acquire data 314 Display a message to release the subject 400 Medical equipment 402 Magnetic Resonance Imaging System 404 Magnet 406 Magnet Bore 408 Imaging Zone 409 Field of view 410 Magnetic Gradient Coil 412 Magnetic field gradient coil power supply 414 High Frequency Coil 416 Walkie-Talkie 418 Subject 420 Subject support 422 Operator Instructions Database 424 Operator Instructions 430 Pulse Sequence Commands (Examples of Medical Imaging System Control Commands) 432 Instruction Database 434 Operator's Commands 450 machine-executable instructions 500 Medical equipment 502 CT system 504 Gantry 506 Rotational Axis 510 X-ray tube 512 detector 514 X-ray 516 Imaging Zone 520 Subject Support Accutator 530 CT System Control Commands (Examples of Medical Imaging System Control Commands) 600. Acquire measured tomographic data by controlling the medical imaging system using a medical imaging system control command. 602 Does the image quality indicator meet the specified standards? 604 If the image quality indicator does not meet the predetermined criteria, a message to release the subject is displayed to the operator. 606 The measured tomography data is stored in the tomography data database system of the remote processing system. 608 Obtaining measured tomography data from the tomography data database 610 Reconstructing a tomographic image from measured tomographic data 612 If the image quality indicator does not meet the predetermined criteria, a message is displayed to the operator to reacquire the data. 614 If a message to re-acquire data appears, retrieve the operator instructions from the instruction database. 616 Display operator instructions

Claims

1. A medical device, a memory storing machine-executable instructions; a processor configured to control the medical instrument; wherein execution of the machine-executable instructions causes the processor to: receiving tomographic data to be reconstructed into a completed tomographic image of the subject; generating a quality indicator based on the tomographic data prior to reconstruction of the completed tomographic image, the quality indicator being used to predict quality of the completed tomographic image; presenting the image quality indicator to an operator of the medical instrument; Execute medical equipment.

2. 2. The medical device of claim 1, wherein the medical device further comprises a medical imaging system configured to acquire the tomographic data from an imaging zone, the memory further comprises medical imaging system control commands configured to control the medical imaging system to acquire the tomographic data, and execution of the machine-executable instructions further causes the processor to acquire the tomographic data by controlling the medical imaging system using the medical imaging system control commands.

3. The medical imaging system further comprises a subject support configured to move at least a portion of the subject within the imaging zone, and execution of the machine-executable instructions further causes the processor to: controlling the subject support to move at least a portion of the subject within the imaging zone before controlling the medical imaging system to acquire the tomographic data; using an operator signaling system to present the image quality indicator to the operator while the subject is still at least partially supported within the imaging zone.

3. The medical device of claim 2.

4. 4. The medical instrument of claim 2 or 3, wherein the medical imaging system is a magnetic resonance imaging system, the medical imaging system control commands are pulse sequence commands, and the tomography data is k-space data.

5. the medical instrument further comprises a tomography data evaluation module; the pulse sequence commands follow a compressed detection magnetic resonance imaging protocol configured to acquire the tomography data from a plurality of magnetic resonance imaging antennas, and the tomography data evaluation module is configured to present the image quality indicator at least in part using magnetic resonance data from a single magnetic resonance antenna selected from the plurality of magnetic resonance imaging antennas; or the pulse sequence commands follow a self-navigated magnetic resonance imaging protocol that embeds self-navigation data within the k-space data, and the tomography data evaluation module is configured to present the image quality indicator at least in part using the self-navigation data; or Is it a combination of those? 5. The medical device according to claim 4, wherein the medical device is any one of the following:

6. 4. The medical device of claim 2, wherein the medical imaging system is a computed tomography imaging system and the tomography data comprises an X-ray attenuation profile.

7. The tomography data evaluation module includes: subsampling the tomography data; reconstructing a low-resolution image from the tomographic data, the low-resolution image having a lower resolution than the tomographic image; reconstructing a single slice of the tomographic image from the tomographic data; 6. The medical instrument of claim 5, configured to accelerate generation of the image quality indicator using any one of:

8. 8. The medical instrument of claim 5 or 7, wherein the tomographic data includes redundant data, the redundant data being acquired by making identical measurements several times during the course of acquiring the tomographic data, and the tomographic data evaluation module is configured to use the redundant data to at least partially generate the image quality indicator.

9. The tomography data evaluation module includes: a neural network that is trained to receive the tomography data as input and to output the image quality indicator in response thereto; a predetermined logic module configured to receive the tomography data as input and to output the image quality indicator in response thereto; an operator control module configured to generate and display intermediate images or values ​​for approval by the operator; A combination of these 9. The medical device of claim 5, 7, or 8, implemented as any one of:

10. Execution of the machine-executable instructions further causes the processor to store the tomography data in a tomography data database system of a remote processing system if the image quality indicator meets a predetermined criterion; The remote processing system includes: retrieving the tomography data from a tomography data database; Reconstructing the tomographic image from the tomographic data.

10. The medical device according to claim 1, configured to:

11. The operator signaling system further comprises a computer display configured to display the image quality indicator, and execution of the machine-executable instructions further causes the processor to: if the image quality indicator does not meet a predetermined standard, displaying a message to the operator to reacquire data; If the image quality indicator meets the predetermined criteria, displaying a message to the operator to release the subject. The medical device of claim 3 .

12. The memory further comprises an instruction database having operator instructions describing how to improve the quality of the tomography data, execution of the machine-executable instructions further causing the processor to: retrieving the operator instructions from the instruction database when a message to reacquire the data is displayed; causing said operator instructions to be displayed on said computer display; 12. The medical device of claim 11.

13. The image quality indicator is a binary indicator of sufficient and insufficient image quality; A numerical indicator; an image having lower contrast and / or resolution than the tomographic image; a rating provided by the operator; and A combination of these 13. The medical device according to any one of claims 1 to 12, wherein:

14. 1. A method of operating a medical instrument, the method comprising: receiving tomographic data to be reconstructed into a completed tomographic image of the subject; generating a quality indicator based on the tomographic data prior to reconstruction of the completed tomographic image, the quality indicator being used to predict quality of the completed tomographic image; presenting the image quality indicator to an operator of the medical instrument; A method comprising:

15. 1. A computer program product comprising machine-executable instructions, execution of which causes a processor to: receiving tomographic data to be reconstructed into a completed tomographic image of the subject; generating a quality indicator based on the tomographic data prior to reconstruction of the completed tomographic image, the quality indicator being used to predict quality of the completed tomographic image; presenting said image quality indicator to an operator of the medical instrument; A computer program product that causes the

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