Ultrasound image measurement method, apparatus, device, and storage medium

By creating a measurement graphics layer in the ultrasound image area, the image display and measurement areas are decoupled, generating different measurement windows and areas. This solves the problem of coupling between the image display area and measurement function in the prior art, and realizes the accuracy and convenience of ultrasound image measurement.

CN115886869BActive Publication Date: 2025-12-09WUHAN ZHONGQI BIOLOGICAL MEDICAL ELECTRONICS
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Patent Information

Application Number
CN202310018411.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-01-06
Publication Date
2025-12-09
Estimated Expiration
2043-01-06

AI Technical Summary

Technical Problem

In existing ultrasound image measurement methods, the image display area and measurement function are heavily coupled, resulting in inconvenient measurement and difficulty in performing detailed image measurements.

Method used

A measurement graphic layer is created on the image area of ​​the ultrasound image, and the measurement area is determined based on the image display area. By acquiring measurement parameters, conversion and calculation are performed to generate different measurement areas and windows to decouple image display and measurement.

Benefits of technology

It achieves precision and convenience in ultrasound image measurement, and can generate targeted measurement areas according to different imaging modes and detection parameters, thereby improving the accuracy and efficiency of measurement.

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Abstract

The application belongs to the technical field of ultrasound, and discloses an ultrasonic image measurement method, device, equipment and storage medium, the method comprising: creating a measurement graph layer according to an image area of an ultrasonic image, determining a measurement area of the measurement graph layer based on an image display area of the image area; obtaining a measurement parameter of the ultrasonic image in the measurement area, and converting to obtain a measurement physical coefficient; calculating the measurement result of the ultrasonic image according to the measurement physical coefficient; the application creates a measurement graph layer for measuring the ultrasonic image on the image area for ultrasonic detection, distinguishes the measurement image display area of the ultrasonic image, generates different measurement areas according to different imaging modes and different measurement parameters in the ultrasonic image, decouples the image display and the image measurement, measures according to the measurement parameters of different areas of the image, and can more conveniently measure the ultrasonic image to obtain accurate ultrasonic measurement results.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of ultrasound, in particular to an ultrasound image measurement method, device, equipment and storage medium. BACKGROUND

[0002] In the ultrasound device, real-time images, frozen images, enlarged images and playback images can be measured to assist clinical diagnosis. The ultrasound device has multiple imaging modes, such as basic imaging modes B, M, Color and PW; multiple window modes, including single, double and four window modes; and multiple examination modes, such as abdominal, kidney, heart and mid-late pregnancy examination modes. Different examination modes and imaging modes have different supported measurement items, and the ultrasound device has default corresponding measurement packages, and doctors can also select and match them.

[0003] Currently, the ultrasound image measurement can be entering the measurement to open the measurement package and directly measuring on the ultrasound image view where the measurement item is located. However, the measurement function of the image window is seriously coupled with the image window, which is not conducive to more detailed image measurement and is not convenient for code maintenance and expansion.

[0004] The above content is only used to assist in understanding the technical solutions of the present application and does not represent the acknowledgement of the above content as prior art. SUMMARY

[0005] The main purpose of the present application is to provide an ultrasound image measurement method, which aims to solve the technical problem that the image display area and the ultrasound image measurement are seriously coupled in the prior art, resulting in inconvenient ultrasound image measurement.

[0006] To achieve the above purpose, the present application provides an ultrasound image measurement method, which comprises the following steps:

[0007] creating a measurement graph layer according to an image area of an ultrasound image, and determining a measurement area of the measurement graph layer based on an image display area of the image area;

[0008] obtaining a measurement parameter of the ultrasound image in the measurement area, converting the measurement parameter to obtain a measurement physical coefficient;

[0009] calculating the measurement result of the ultrasound image according to the measurement physical coefficient.

[0010] Optionally, the step of creating a measurement graph layer according to an image area of an ultrasound image, and determining a measurement area of the measurement graph layer based on an image display area of the image area comprises:

[0011] creating a measurement graph layer according to the size and position of the image layer of the ultrasound image;

[0012] According to the image window and the image display area in the image layer, a measurement window and a measurement area are generated in the measurement graphic layer.

[0013] Optionally, the generating of the measurement window and the measurement area in the measurement graphic layer according to the image window and the image display area in the image layer comprises:

[0014] When the window image is a single window mode, one measurement window is generated in the measurement graphic layer.

[0015] An imaging mode of the image display area is acquired, and a measurement area is generated in the measurement window according to the imaging mode.

[0016] Optionally, the acquiring of the imaging mode of the image display area and the generating of the measurement area in the measurement window according to the imaging mode comprises:

[0017] The imaging mode of the image display area is acquired.

[0018] When the imaging mode has multiple different image parameters, multiple measurement areas are generated according to the image parameters.

[0019] When the imaging mode has the same image parameter, one measurement area is generated in the measurement window.

[0020] Optionally, the generating of the measurement window and the measurement area in the measurement graphic layer according to the image window and the image display area in the image layer further comprises:

[0021] When the window image is a double window mode, the imaging mode of the image display area is acquired.

[0022] A measurement window and a measurement area are generated in the measurement graphic layer according to the imaging mode.

[0023] Optionally, the generating of the measurement window and the measurement area in the measurement graphic layer according to the imaging mode comprises:

[0024] When the imaging modes of the two window images in the double window mode have the same image parameter, one cross-window measurement window is generated in the measurement graphic layer, and one cross-window measurement area is generated in the cross-window measurement window.

[0025] When the imaging modes of the two window images in the double window mode have different image parameters, one measurement window is generated in each of the two window images, and one measurement area is generated in each measurement window.

[0026] Optionally, the calculating according to the measured physical coefficient to obtain the measurement result of the ultrasound image comprises:

[0027] According to the measured physical value coefficient, a measurement item is executed, and according to the measurement item, a pixel measurement value of a measurement region is detected;

[0028] According to the pixel measurement value, a physical detection value is calculated, and according to the physical detection value, the measurement result of the ultrasound image is obtained.

[0029] In addition, to achieve the above-mentioned purpose, the application further provides an ultrasound image measurement device, which comprises:

[0030] In addition, to achieve the above-mentioned purpose, the application further provides an ultrasound image measurement device, which comprises a memory, a processor and an ultrasound image measurement program stored in the memory and executable on the processor, and the ultrasound image measurement program is configured to implement the steps of the ultrasound image measurement method as described above.

[0031] In addition, to achieve the above-mentioned purpose, the application further provides a storage medium, which stores an ultrasound image measurement program, and the ultrasound image measurement program implements the steps of the ultrasound image measurement method as described above when executed by a processor.

[0032] The application creates a measurement layer for detecting the ultrasound image in addition to the image area for ultrasound detection. Compared with the existing method of unified detection directly in the image display area of the image area, the application distinguishes the measurement of the ultrasound image from the image display area of the ultrasound image, generates different measurement areas according to different imaging modes of the image display area and different detection parameters in the ultrasound image, decouples the image display and the image measurement, measures according to the measurement parameters of different regions of the image, and more accurately measures the ultrasound image to obtain an accurate ultrasound detection result. BRIEF DESCRIPTION OF DRAWINGS

[0033] Figure 1 is a structural schematic diagram of an ultrasound image measurement device of a hardware running environment related to an embodiment scheme of the application;

[0034] Figure 2 is a flowchart of a first embodiment of the ultrasound image measurement method of the application;

[0035] Figure 3 is an image area layer schematic diagram of an embodiment of the ultrasound image measurement method of the application;

[0036] Figure 4Flow chart of the second embodiment of the ultrasound image measurement method of the present application;

[0037] Figure 5 Single-window same measurement parameter measurement layer diagrammatic view of the first embodiment of the ultrasound image measurement method of the present application;

[0038] Figure 6 Single-window different measurement parameter measurement layer diagrammatic view of the first embodiment of the ultrasound image measurement method of the present application;

[0039] Figure 7 Flow chart of the third embodiment of the ultrasound image measurement method of the present application;

[0040] Figure 8 Double-window same measurement parameter measurement layer diagrammatic view of the first embodiment of the ultrasound image measurement method of the present application;

[0041] Figure 9 Double-window different measurement parameter measurement layer diagrammatic view of the first embodiment of the ultrasound image measurement method of the present application;

[0042] Figure 10 Structure block diagram of the first embodiment of the ultrasound image measurement device of the present application.

[0043] The implementation, functional features and advantages of the present application will be further explained with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION

[0044] It should be understood that the specific embodiments described herein are merely illustrative of the present application and do not limit the present application.

[0045] Reference Figure 1 , Figure 1 Structure diagram of the ultrasound image measurement device of the hardware running environment involved in the embodiment scheme of the present application.

[0046] As Figure 1As shown, the ultrasonic image measurement device may include: a processor 1001, such as a central processing unit (CPU), a communication bus 1002, a user interface 1003, a network interface 1004, and a memory 1005. The communication bus 1002 is used to enable communication between these components. The user interface 1003 may include a display screen and an input unit such as a keyboard; optionally, the user interface 1003 may also include a standard wired interface or a wireless interface. The network interface 1004 may optionally include a standard wired interface or a wireless interface (such as a Wi-Fi interface). The memory 1005 may be a high-speed random access memory (RAM) or a stable non-volatile memory (NVM), such as a disk storage device. The memory 1005 may also optionally be a storage device independent of the aforementioned processor 1001.

[0047] Those skilled in the art will understand that Figure 1 The structure shown does not constitute a limitation on the ultrasound imaging measurement device and may include more or fewer components than shown, or combine certain components, or have different component arrangements.

[0048] like Figure 1 As shown, the memory 1005, which serves as a storage medium, may include an operating system, a network communication module, a user interface module, and an ultrasound image measurement program.

[0049] exist Figure 1 In the ultrasonic image measurement device shown, the network interface 1004 is mainly used for data communication with the network server; the user interface 1003 is mainly used for data interaction with the user; the processor 1001 and the memory 1005 in the ultrasonic image measurement device of the present invention can be set in the ultrasonic image measurement device. The ultrasonic image measurement device calls the ultrasonic image measurement program stored in the memory 1005 through the processor 1001 and executes the ultrasonic image measurement method provided in the embodiment of the present invention.

[0050] This invention provides an ultrasound image measurement method, referring to... Figure 2 , Figure 2 This is a flowchart illustrating the first embodiment of an ultrasonic image measurement method according to the present invention.

[0051] In this embodiment, the ultrasound image measurement method includes the following steps:

[0052] Step S10: creating a measurement graphic layer according to the image area of the ultrasound image, and determining a measurement area of the measurement graphic layer based on the image display area of the image area.

[0053] It can be understood that the image area of the ultrasound image can be the image displayed on the display screen when the instrument performs ultrasound detection on the biological object to be detected.

[0054] It should be understood that in the existing ultrasound detection, the biological object to be detected is detected by the probe, and the detection image is displayed on the display screen, and at the same time, the physical coefficient measurement is directly performed according to the ultrasound image displayed on the display screen, and the measurement result of the ultrasound image of the entire display screen is obtained.

[0055] It should be understood that if the image in the ultrasound image display screen is the ultrasound image of the same part at this time, different detection parameters can be used in the ultrasound detection process due to the need for detection imaging, and the detection parameters of the same image are different, but the finally generated ultrasound image is only one measurement parameter in the display screen, and the ultrasound image cannot be measured differently according to different detection parameters.

[0056] It should be noted that the image area of the ultrasound image can include an image area, an image window, and an image display area, which can be referred to in detail in Figure 3 , wherein the image display area is in the image display window, the image display window is in the image area, the entire image area can be displayed in the display screen, and the current measurement method of the ultrasound image is to measure the image area generated in the image window. The image display area in each image window shares the same detection parameter, and even if the detection parameters in the two image windows are the same, the two windows will still be displayed separately and detected separately.

[0057] It should be further noted that the determination of the measurement area of the measurement image layer based on the image display area of the image area can be to newly create a measurement graphic layer above the image area, and the size and position of the measurement graphic layer can be the same as those of the image area. The measurement graphic layer can include a measurement window and a measurement area, and the measurement window and the measurement area can be generated according to the image window and the image display area of the image area.

[0058] It should be emphasized that the measurement area can be one or multiple, which can be obtained according to the image window and the image display area of the image area. The measurement graphic layer, the measurement window, and the measurement area can be established above the image area, and the ultrasound image of the image area can not be covered and blocked.

[0059] Step S20: obtaining the measurement parameter of the ultrasonic image in the measurement region, converting the measurement parameter to obtain the measurement physical coefficient.

[0060] It can be understood that the measurement parameter can be a corresponding parameter when the detection device detects the biological body by ultrasonic detection. The measurement parameter can be image depth, speed, and range.

[0061] It should be understood that the measurement parameter of the ultrasonic image in the measurement region can be understood as different measurement parameters in different measurement regions, and the measurement range is also different. The measurement region can be one or more.

[0062] It should be noted that the measurement physical coefficient can be understood as time, distance, speed, and the like obtained by the probe detection.

[0063] In a specific implementation, at this time, the neck blood vessel of a person is detected by an ultrasonic probe. The probe depth A millimeters during detection, the ultrasonic detection frequency is B, and the detection range is C. The corresponding measurement parameter can be generated according to the parameter during detection based on the ultrasonic image generated after detection.

[0064] Step S30: calculating the measurement result of the ultrasonic image according to the measurement physical coefficient.

[0065] It can be understood that the measurement item is executed in the measurement region, and the measurement result is calculated based on the measurement physical coefficient.

[0066] It should be understood that the measurement item is executed based on the measurement calculation physical value coefficient, the measurement region pixel measurement value is obtained based on the execution of the measurement item, the physical detection value is calculated based on the pixel measurement value, and the measurement result of the ultrasonic image is obtained based on the physical detection value.

[0067] In a specific implementation, in order to obtain the blood vessel wall thickness during ultrasonic detection of the blood vessel of a patient, the measurement parameter of the measurement region is obtained according to the image display region in the image region. The measurement parameter is probe depth 50 millimeters, and the detection frequency is 12 MHz. According to the measurement parameter, the depth of the image in the image display region is 50 millimeters. According to the pixel point distance from one side of the blood vessel wall to the other side in the measurement item, the actual thickness of the blood vessel wall is calculated according to the actual size of each pixel point.

[0068] The embodiment creates a measurement layer for measuring the ultrasound image on the image area where the ultrasound detection is performed. Compared with the prior art which can only uniformly detect in the image display area of the image area, the application distinguishes the measurement of the ultrasound image from the image display area of the ultrasound image, generates different measurement areas according to different imaging modes of the image display area and different detection parameters in the ultrasound image, decouples the image display and the image measurement, can measure according to the measurement parameters of different areas of the image, and thus more accurately measures the ultrasound image to obtain accurate ultrasound detection results.

[0069] Reference Figure 4 , Figure 4 The flowchart of the second embodiment of the ultrasound image measurement method of the application is shown.

[0070] Based on the first embodiment, the ultrasound image measurement method of the embodiment further includes the following steps in step S10.

[0071] Step S11: creating a measurement graphic layer according to the size and position of the image layer of the ultrasound image.

[0072] It can be understood that the size and position of the measurement graphic layer are the same as those of the image layer of the ultrasound image.

[0073] It should be understood that the measurement graphic layer separates the ultrasound image measurement of the image display area from the image display area in the image area.

[0074] Step S12: generating a measurement window and a measurement area in the measurement graphic layer according to the image window in the image layer and the image display area.

[0075] It can be understood that the image window in the image layer is determined according to the examination mode selected by the doctor according to the examination mode, and the corresponding window mode is obtained according to the examination mode. The examination mode and the window mode have a predetermined corresponding relationship. For example, the window mode corresponding to the A mode is a window mode. When the doctor selects the A mode, the image window of the image area obtains the image window corresponding to the a window mode.

[0076] It should be understood that the image display area is an area for displaying the ultrasound image generated in the image window. The image display area can be understood as the area where the image obtained by ultrasound detection according to different imaging modes corresponding to each measurement item is finally displayed.

[0077] It should be noted that the window mode can include a single window mode, a double window mode, and a four window mode. The imaging mode can be understood as a 3D mode, an M mode (two-dimensional view + spectrum view), a B mode (two-dimensional imaging mode), and a C mode.

[0078] It is emphasized that the measurement window and the measurement area are generated in the measurement graphic layer according to the image window and the image display area in the image layer.

[0079] Further, when the image window is a single-window mode, one measurement window is generated in the measurement graphic layer, and the imaging mode of the image display area is obtained, and a measurement area is generated in the measurement window according to the imaging mode.

[0080] The specific measurement manner can refer to Figure 5 In the actual application, the measurement graphic layer is established above the image area, and the image area-measurement graphic layer, the image window-measurement window, and the image display area-measurement area are in one-to-one correspondence. Figure 5 The image window in the image area shown in the embodiment is a single-window mode, and the imaging mode of the image display area in the image area can be a B mode. Therefore, the image window corresponds to only one image display area, the detection parameters in the image display area are the same, the measurement parameters of the corresponding measurement area are the same, and one measurement window and one measurement area are generated.

[0081] Further, the imaging mode of the image display area is obtained, and when the imaging mode has multiple different image parameters, multiple measurement areas are generated according to the image parameters, and when the imaging mode has the same image parameters, one measurement area is generated in the measurement window.

[0082] The specific measurement manner can refer to Figure 6 The image window in the image area shown in the embodiment is a single-window mode, and the imaging mode of the image display area in the image area can be a B mode. Therefore, the image window corresponds to only one image display area, the detection parameters in the image display area are the same, the measurement parameters of the corresponding measurement area are the same, and one measurement window and one measurement area are generated.

[0083] The embodiment generates the corresponding measurement window in the measurement layer through the image window and the corresponding window mode and imaging mode of the image display area in the image layer. When the image window is a single-window mode, whether different detection parameters exist in the image display area is obtained according to different imaging modes. When multiple detection parameters exist, the corresponding measurement window is generated in the measurement graphic layer, the corresponding measurement parameters are converted based on the different detection parameters to measure the corresponding ultrasonic image in the measurement window, the different details of the ultrasonic image can be measured more targetedly, and therefore, more accurate measurement results can be obtained.

[0084] Reference Figure 7 , Figure 7 Flowchart of a second embodiment of an ultrasound image measurement method.

[0085] Based on the second embodiment, the step S12 of the ultrasound image measurement method of the present embodiment further comprises:

[0086] Step S121: When the window images are in a dual window mode, the imaging mode of the image display region is acquired.

[0087] It can be understood that when the image windows of the image region are in a dual window mode, the measurement image layer does not directly generate two measurement windows, but first acquires the imaging mode of the image display region.

[0088] It should be understood that the image window can be understood as a window generated for displaying each detection region, and the detection parameters of the image display region in each window can be the same or different.

[0089] Step S122: generating measurement windows and measurement regions in the measurement image layer according to the imaging mode.

[0090] It should be noted that when the imaging modes of the two window images in the dual window mode have the same image parameters, a cross-window measurement window is generated in the measurement image layer, and a cross-window measurement region is generated in the cross-window measurement window.

[0091] It should be further noted that for ease of understanding, reference can be made to Figure 8 , the image windows in the image region shown in the figure are in a dual window mode, at this time the imaging mode of the image display region in the image region is B mode, the detection parameters in the B mode are the same, and the two image windows in the dual window mode generate one image display region respectively, but the two image display regions are ultrasound images of the same region under the same detection parameters; therefore, when the window mode of the image region is a dual window mode and the imaging mode of the image display region is a B imaging mode, only one measurement window and one measurement region are generated in the measurement image layer, and the ultrasound images of the two image display regions are measured according to the same measurement parameter, a single window can display a larger detection part, two windows can be displayed by splicing, and the whole measurement of two spliced windows can be supported.

[0092] It should be emphasized that when the imaging modes of the two window images in the dual window mode have different image parameters, a measurement window is generated in each of the two window images, and a measurement region is generated in each measurement window.

[0093] It should be further noted that for ease of understanding, reference can be made toFigure 9 The image windows in the image area shown in the figure are in a double-width window mode, but the corresponding detection parameters in the two image windows are different, so two measurement windows and two measurement areas are generated in the measurement image layer according to the image windows, and the ultrasound images of the two image display areas are measured.

[0094] The embodiment generates corresponding measurement windows in the measurement image layer through the image windows in the image layer and the window mode and imaging mode corresponding to the image display areas, and when the image windows are in a double-width window mode, the measurement windows and measurement areas in the measurement image layer are determined according to the imaging mode of the image display areas. When the detection parameters in the image display areas are the same, a plurality of image windows are combined to generate one measurement window and one measurement area, and the ultrasound images of the two image display areas are measured according to the same measurement parameter, which can more quickly measure the ultrasound images with the same detection parameters and does not affect the measurement accuracy.

[0095] In addition, the embodiment of the present application also provides a storage medium, wherein the storage medium stores an ultrasound image measurement program, and the ultrasound image measurement program is executed by a processor to realize the steps of the ultrasound image measurement method described above.

[0096] Reference Figure 10 , Figure 10 is a structural block diagram of the first embodiment of the ultrasound image measurement device of the present application.

[0097] As Figure 10 shown, the ultrasound image measurement device provided by the embodiment of the present application comprises:

[0098] The measurement area generation module 10 is configured to create a measurement image layer according to an image area of an ultrasound image, and determine a measurement area of the measurement image layer based on an image display area of the image area.

[0099] The parameter acquisition module 20 is configured to acquire a measurement parameter of the ultrasound image in the measurement area, and convert the measurement parameter to obtain a measurement physical coefficient.

[0100] The image measurement module 30 is configured to calculate the measurement result of the ultrasound image according to the measurement physical coefficient.

[0101] The embodiment distinguishes the measurement of the ultrasound image and the image display area of the ultrasound image by additionally creating a measurement layer for detecting the ultrasound image on the image area where the ultrasound detection is performed, generates different measurement areas according to different imaging modes of the image display area and different detection parameters in the ultrasound image, decouples the image display and the image measurement, can measure according to the measurement parameters of different areas of the image, and can more accurately measure the ultrasound image to obtain accurate ultrasound detection results.

[0102] In an embodiment, the measurement area generation module 10 is further configured to create the measurement graph layer according to the size and position of the image layer of the ultrasound image.

[0103] The measurement window and the measurement area are generated in the measurement graph layer according to the image window in the image layer and the image display area.

[0104] In an embodiment, the measurement area generation module 10 is further configured to generate one measurement window in the measurement graph layer when the window image is a single window mode.

[0105] The imaging mode of the image display area is acquired, and the measurement area is generated in the measurement window according to the imaging mode.

[0106] In an embodiment, the measurement area generation module 10 is further configured to acquire the imaging mode of the image display area.

[0107] When the imaging mode has multiple different image parameters, multiple measurement areas are generated according to the image parameters.

[0108] When the imaging mode has the same image parameters, one measurement area is generated in the measurement window.

[0109] In an embodiment, the measurement area generation module 10 is further configured to acquire the imaging mode of the image display area when the window image is a double window mode.

[0110] The measurement window and the measurement area are generated in the measurement graph layer according to the imaging mode.

[0111] In an embodiment, the measurement area generation module 10 is further configured to generate one cross-window measurement window in the measurement graph layer when the imaging modes of the two window images in the double window mode have the same image parameters, and generate one cross-window measurement area in the cross-window measurement window.

[0112] When the imaging modes of the two window images in the dual-width window mode have different image parameters, a measurement window is generated in each of the two window images, and a measurement region is generated in each measurement window.

[0113] In an embodiment, the image measurement module 30 is further configured to calculate a physical value coefficient according to the measurement, and perform a measurement item according to the measurement item, and detect a pixel measurement value of the measurement region according to the detection.

[0114] Calculate a physical detection value according to the pixel measurement value, and obtain a measurement result of the ultrasound image according to the physical detection value.

[0115] It should be understood that the above is only illustrative, and does not constitute any limitation on the technical solutions of the present application. In specific applications, those skilled in the art can set up according to the needs, and the present application does not limit this.

[0116] It should be noted that the above-described workflow is only illustrative and does not limit the scope of protection of the present application. In actual applications, those skilled in the art can select part or all of them to achieve the purpose of the embodiment scheme according to actual needs, which is not limited here.

[0117] In addition, it should be noted that in this paper, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or system including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or system. Without more limitations, the element defined by the statement "includes a" does not exclude the presence of another identical element in the process, method, article or system that includes the element.

[0118] The above-mentioned embodiment numbers of the present application are only for description, and do not represent the advantages and disadvantages of the embodiments.

[0119] From the above description of the embodiments, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be realized by software and necessary general hardware platform, of course, they can also be realized by hardware, but in many cases the former is a better embodiment. Based on such understanding, the technical solutions of the present application can be embodied in the form of software product, which is stored in a storage medium (such as read only memory (Read Only Memory, ROM) / RAM, magnetic disc, optical disc), including a plurality of instructions for making a terminal device (which can be a mobile phone, computer, server, or network device, etc.) execute the methods described in various embodiments of the present application.

[0120] The above merely provides the preferred embodiments of the present application, and is not intended to limit the patent scope of the present application. Any equivalent structure or equivalent flowchart transformation, or direct or indirect application in other related technical fields, which is made based on the contents of the present application specification and drawings, shall be included in the patent protection scope of the present application.

Claims

1. An ultrasonic image measurement method characterized by, The ultrasonic image measurement method comprises: creating a measurement graphic layer according to an image area of an ultrasonic image, and determining a measurement area of the measurement graphic layer based on an image display area of the image area; acquiring a measurement parameter of the ultrasonic image in the measurement area, converting the measurement parameter to obtain a measurement physical coefficient; calculating the measurement result of the ultrasonic image according to the measurement physical coefficient; the method of creating a measurement graphic layer according to an image area of an ultrasonic image, and determining a measurement area of the measurement graphic layer based on an image display area of the image area, comprises: creating a measurement graphic layer according to the size and position of an image layer of an ultrasonic image; generating a measurement window and a measurement area in the measurement graphic layer according to an image window in the image layer and an image display area; the method of generating a measurement window and a measurement area in the measurement graphic layer according to an image window in the image layer and an image display area further comprises: when the image window is a dual-amplitude window mode, acquiring an imaging mode of the image display area; generating a measurement window and a measurement area in the measurement graphic layer according to the imaging mode; the method of generating a measurement window and a measurement area in the measurement graphic layer according to the imaging mode, comprises: when the imaging modes of the two image windows in the dual-amplitude window mode have the same image parameters, generating a cross-window measurement window in the measurement graphic layer, and generating a cross-window measurement area in the cross-window measurement window; when the imaging modes of the two image windows in the dual-amplitude window mode have different image parameters, generating a measurement window in each of the two image windows, and generating a measurement area in each measurement window.

2. The ultrasonic image measurement method of claim 1, wherein, the method of generating a measurement window and a measurement area in the measurement graphic layer according to an image window in the image layer and an image display area, comprises: when the image window is a single-amplitude window mode, generating a measurement window in the measurement graphic layer; acquiring an imaging mode of the image display area, and generating a measurement area in the measurement window according to the imaging mode.

3. The ultrasonic image measurement method of claim 2, wherein, the method of acquiring an imaging mode of the image display area, and generating a measurement area in the measurement window according to the imaging mode, comprises: acquiring an imaging mode of the image display area; when the imaging mode has multiple different image parameters, generating multiple measurement areas according to the image parameters; when the imaging mode has the same image parameters, generating a measurement area in the measurement window.

4. The ultrasonic image measurement method according to any one of claims 1 to 3, characterized by, the method of calculating the measurement result of the ultrasonic image according to the measurement physical coefficient, comprises: obtaining an execution measurement item according to the measurement physical coefficient, detecting according to the execution measurement item to obtain a pixel measurement value of the measurement area; calculating a physical detection value according to the pixel measurement value, and obtaining the measurement result of the ultrasonic image according to the physical detection value.

5. An ultrasound image measurement apparatus characterized by comprising: The ultrasonic image measurement device comprises: a measurement area generation module, configured to create a measurement graphic layer according to an image area of an ultrasonic image, and determine a measurement area of the measurement graphic layer based on an image display area of the image area; The parameter obtaining module is configured to obtain a measurement parameter of the ultrasound image in the measurement region, and convert the measurement parameter to obtain a measurement physical coefficient. The image measurement module is configured to calculate a measurement result of the ultrasound image according to the measurement physical coefficient. The measurement region generating module is further configured to create a measurement graphical layer according to a size and a position of an image layer of the ultrasound image, and generate a measurement window and a measurement region in the measurement graphical layer according to an image window in the image layer and an image display region. When the image window is a dual-amplitude window mode, the measurement region generating module is further configured to obtain an imaging mode of the image display region, and generate a measurement window and a measurement region in the measurement graphical layer according to the imaging mode. When imaging modes of the two image windows in the dual-amplitude window mode have the same image parameters, the measurement region generating module is further configured to generate one cross-window measurement window in the measurement graphical layer, and generate one cross-window measurement region in the cross-window measurement window.

6. An ultrasound image measurement apparatus characterized by comprising: When the imaging modes of the two image windows in the dual-amplitude window mode have different image parameters, the measurement region generating module is further configured to generate one measurement window in each of the two image windows, and generate one measurement region in each measurement window.

7. A storage medium, characterized by The device comprises a memory, a processor, and an ultrasound image measurement program stored in the memory and executable on the processor, and the ultrasound image measurement program is configured to implement the ultrasound image measurement method according to any one of claims 1 to 4. The storage medium stores an ultrasound image measurement program, and the ultrasound image measurement program is executed by the processor to implement the ultrasound image measurement method according to any one of claims 1 to 4.

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