Ultrasound diagnostic device and method for controlling the ultrasound diagnostic device

The ultrasound diagnostic apparatus efficiently examines abnormalities by using a position sensor and boundary recognition to guide probe direction changes, ensuring complete coverage and reducing redundant scanning.

JP7730955B2Active Publication Date: 2025-08-28FUJIFILM CORP
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Patent Information

Application Number
JP2024089894
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-27
Filing Date
2024-06-03
Publication Date
2025-08-28
Estimated Expiration
2041-03-19

AI Technical Summary

Technical Problem

Ultrasound diagnostic devices struggle to efficiently and thoroughly examine abnormalities like pressure ulcers and edema, which have a three-dimensional spread, leading to incomplete scanning or excessive examination of normal areas.

Method used

An ultrasound diagnostic apparatus with a position sensor, boundary recognition unit, and instruction control unit that guides the probe to switch directions based on recognized boundaries, ensuring complete coverage of abnormal areas.

Benefits of technology

Enables thorough and efficient examination of abnormal areas by guiding the probe to switch directions at recognized boundaries, reducing redundant scanning and improving inspection efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an ultrasound diagnostic device that allows a user to sufficiently and efficiently inspect an abnormal part.SOLUTION: An ultrasound diagnostic device (1) includes an ultrasound probe (2), an image generating unit (22) that generates an ultrasound image, a monitor (24), a position sensor (14) that acquires position information of the ultrasound probe (2), a boundary recognizing unit (27) that analyzes the ultrasound image and recognizes a boundary between a normal part and an abnormal part of a subject, and an instruction control unit (28) that specifies a direction to scan on the basis of the position information of the ultrasound probe (2) and the recognized boundary and instructs a user on the direction to scan. When scanning the ultrasound probe in one of two directions mutually perpendicular to the abnormal part, if boundaries on both sides of the abnormal part are recognized, the instruction control unit (28) instructs the user to proceed to scanning in the other of the two directions.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an ultrasonic diagnostic apparatus for observing an abnormal part in a subject and a method for controlling the ultrasonic diagnostic apparatus. [Background technology]

[0002] Ultrasound diagnostic devices that can assist users in performing ultrasound diagnoses have been developed. For example, Patent Document 1 discloses an ultrasound diagnostic device that stores position information of regions of a subject's body that have been scanned by an ultrasound probe and displays regions that have not yet been examined, thereby assisting users in performing ultrasound diagnoses. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-225905 Summary of the Invention [Problem to be solved by the invention]

[0004] Ultrasound diagnostic devices are sometimes used to examine abnormalities, such as pressure ulcers and edema, a type of phlebitis, that have occurred in a subject. Because such abnormalities generally have a three-dimensional spread within the subject, it is difficult for a user to determine the extent of the spread at a glance. Therefore, even when using the technology disclosed in Patent Document 1, for example, it is difficult to grasp the boundary between the abnormal and normal areas. This can lead to repeated scanning of an area that has already been scanned, inability to thoroughly scan the area where the abnormality has spread, or careful examination of not only the abnormal area but also the normal area, resulting in insufficient and efficient examination of the abnormal area.

[0005] The present invention has been made to solve the above-mentioned problems of the conventional art, and an object of the present invention is to provide an ultrasonic diagnostic apparatus and a method for controlling an ultrasonic diagnostic apparatus that can inspect abnormal areas sufficiently and efficiently. [Means for solving the problem]

[0006] In order to achieve the above object, a first ultrasonic diagnostic apparatus according to the present invention comprises an ultrasonic probe, an image generation unit that generates an ultrasonic image by scanning an abnormal area of ​​a subject with an ultrasonic beam using the ultrasonic probe, a monitor that displays the ultrasonic image, a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe, a scanning direction instruction unit that instructs a user in the scanning direction of the ultrasonic probe, a boundary recognition unit that recognizes a boundary between a normal area and an abnormal area of ​​the subject by analyzing the ultrasonic image, and an instruction control unit that specifies the scanning direction of the ultrasonic probe based on the position information of the ultrasonic probe acquired by the position sensor and the boundary recognized by the boundary recognition unit and instructs the user in the specified scanning direction by the scanning direction instruction unit, and is characterized in that when scanning the ultrasonic probe in one of two directions perpendicular to the abnormal area, if boundaries on both sides of the abnormal area are recognized by the boundary recognition unit, the instruction control unit instructs the user by the scanning direction instruction unit to switch to scanning in the other of the two directions.

[0007] In this case, the instruction control unit can estimate the remaining boundary between the normal and abnormal parts of the subject based on the boundary recognized by the boundary recognition unit, and identify the direction to scan based on the estimated remaining boundary. The ultrasound diagnostic device may also include a memory that stores ultrasound images in association with position information of the ultrasound probe acquired by the position sensor, and a trajectory calculation unit that calculates the scanning trajectory of the ultrasound probe and displays it on a monitor. When a user designates an arbitrary position on the trajectory displayed on the monitor, an ultrasound image corresponding to the arbitrary position may be read from the memory and displayed on the monitor.

[0008] The second ultrasonic diagnostic apparatus according to the present invention is characterized by comprising: an ultrasonic probe; an image generating unit that generates an ultrasonic image by scanning an abnormal area of ​​a subject with an ultrasonic beam using the ultrasonic probe; a monitor that displays the ultrasonic image; a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe; a scanning direction instructing unit that instructs a user in the scanning direction of the ultrasonic probe; a boundary recognizing unit that recognizes a boundary between a normal area and an abnormal area of ​​the subject by analyzing the ultrasonic image; and an instruction control unit that estimates the remaining boundary between the normal area and the abnormal area of ​​the subject based on the boundary recognized by the boundary recognizing unit, specifies the scanning direction of the ultrasonic probe based on the position information of the ultrasonic probe acquired by the position sensor and the estimated remaining boundary, and instructs a user of the specified scanning direction by the scanning direction instructing unit.

[0009] In this case, the ultrasound diagnostic device may include a memory that stores ultrasound images in association with position information of the ultrasound probe acquired by the position sensor, and a trajectory calculation unit that calculates the scanning trajectory of the ultrasound probe and displays it on a monitor. When a user designates an arbitrary position on the trajectory displayed on the monitor, an ultrasound image corresponding to the arbitrary position may be read from the memory and displayed on the monitor.

[0010] a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe; a scanning direction instruction unit for instructing a user in the scanning direction of the ultrasonic probe; a boundary recognition unit for recognizing a boundary between a normal part and an abnormal part of the subject by analyzing the ultrasonic image; an instruction control unit for specifying the scanning direction of the ultrasonic probe based on the position information of the ultrasonic probe acquired by the position sensor and the boundary recognized by the boundary recognition unit and instructing the user in the specified scanning direction by the scanning direction instruction unit; a memory for storing ultrasonic images in association with the position information of the ultrasonic probe acquired by the position sensor; and a trajectory calculation unit for calculating the scanning trajectory of the ultrasonic probe and displaying it on the monitor, wherein when a user specifies an arbitrary position on the trajectory displayed on the monitor, an ultrasonic image corresponding to the arbitrary position is read from the memory and displayed on the monitor.

[0011] The scanning direction indicator is formed by an LED lamp attached to the ultrasound probe, and the indicator control unit can indicate the scanning direction by the color of light or blinking of the LED lamp. The scanning direction instruction unit may also be formed by a monitor, and the instruction control unit can display the direction to be scanned on the monitor. The ultrasonic probe may also include a vibration mechanism, the scanning direction instruction unit being formed by the vibration mechanism, and the instruction control unit being able to indicate the direction to be scanned by the vibration pattern of the vibration mechanism. The ultrasound probe may also be provided with a tablet terminal connected to the ultrasound probe, the tablet terminal including a vibration mechanism, the scanning direction indicator formed by the vibration mechanism, and the indicator control unit capable of indicating the direction to be scanned by the vibration pattern of the vibration mechanism.

[0012] The instruction control unit can identify a scanning direction that brings the ultrasonic probe closer to the scanned area when a gap occurs between the ultrasonic probe and the scanned area, based on the position information of the ultrasonic probe acquired by the position sensor. Furthermore, the instruction control unit can specify a scanning direction that reduces overlap with the scanned region based on the position information of the ultrasound probe acquired by the position sensor. Alternatively, the instruction control unit can specify a scanning direction that passes through the boundary recognized by the boundary recognition unit based on the position information of the ultrasound probe acquired by the position sensor. The ultrasound diagnostic device may also be provided with an unimaged portion extraction unit that identifies portions not depicted in the ultrasound image and displays them on a monitor when the ultrasound probe moves away from the subject's body surface, based on the ultrasound image and position information of the ultrasound probe.

[0013] A first control method for an ultrasonic diagnostic apparatus according to the present invention generates an ultrasonic image by scanning an abnormal area of ​​a subject with an ultrasonic probe using an ultrasonic beam, acquires position information of the ultrasonic probe using a position sensor attached to the ultrasonic probe, recognizes the boundary between a normal area and an abnormal area of ​​the subject by analyzing the ultrasonic image, specifies the direction in which the ultrasonic probe should be scanned based on the acquired position information of the ultrasonic probe and the recognized boundary, and instructs a user about the specified scanning direction, and when scanning the ultrasonic probe in one of two directions perpendicular to the abnormal area, if boundaries on both sides of the abnormal area are recognized, switches to scanning in the other of the two directions.

[0014] A second control method for an ultrasonic diagnostic apparatus according to the present invention is characterized in that it generates an ultrasonic image by scanning an abnormal area of ​​a subject with an ultrasonic beam using an ultrasonic probe, acquires position information of the ultrasonic probe using a position sensor attached to the ultrasonic probe, recognizes the boundary between a normal area and an abnormal area of ​​the subject by analyzing the ultrasonic image, estimates the remaining boundary between the normal area and the abnormal area of ​​the subject based on the recognized boundary, identifies the scanning direction of the ultrasonic probe based on the acquired position information of the ultrasonic probe and the estimated remaining boundary, and instructs a user about the identified scanning direction.

[0015] A third control method of an ultrasonic diagnostic apparatus according to the present invention generates an ultrasonic image by scanning an abnormal area of ​​a subject with an ultrasonic beam using an ultrasonic probe, acquires position information of the ultrasonic probe using a position sensor attached to the ultrasonic probe, recognizes a boundary between a normal area and an abnormal area of ​​the subject by analyzing the ultrasonic image, specifies a scanning direction of the ultrasonic probe based on the acquired position information of the ultrasonic probe and the recognized boundary and instructs a user about the specified scanning direction, stores the ultrasonic image in memory in correspondence with the position information of the ultrasonic probe acquired by the position sensor, calculates and displays a trajectory of the ultrasonic probe, and when a user specifies an arbitrary position on the displayed trajectory, an ultrasonic image corresponding to the arbitrary position is read out from memory and displayed. [Effects of the Invention]

[0016] According to the present invention, an ultrasonic diagnostic apparatus includes an ultrasonic probe, an image generation unit that generates an ultrasonic image by scanning an abnormal area of ​​a subject with an ultrasonic beam using the ultrasonic probe, a monitor that displays the ultrasonic image, a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe, a scanning direction instruction unit that instructs a user in the scanning direction of the ultrasonic probe, a boundary recognition unit that recognizes a boundary between a normal area and an abnormal area of ​​the subject by analyzing the ultrasonic image, and an instruction control unit that specifies the scanning direction of the ultrasonic probe based on the position information of the ultrasonic probe acquired by the position sensor and the boundary recognized by the boundary recognition unit and instructs the user in the specified scanning direction by the scanning direction instruction unit.When the ultrasonic probe is scanned in one of two directions perpendicular to the abnormal area, if the boundary recognition unit recognizes boundaries on both sides of the abnormal area, the instruction control unit instructs the user by the scanning direction instruction unit to switch to scanning in the other of the two directions, thereby enabling the abnormal area to be examined thoroughly and efficiently. [Brief explanation of the drawings]

[0017] [Figure 1] 1 is a block diagram showing the configuration of an ultrasound diagnostic apparatus according to a first embodiment of the present invention. [Figure 2] 1 is a block diagram showing an internal configuration of a transmission / reception circuit according to a first embodiment of the present invention. [Figure 3] 3 is a diagram schematically illustrating an example of an LED lamp of the ultrasound probe according to the first embodiment. FIG. [Figure 4] FIG. 2 is a block diagram showing the internal configuration of an image generating unit according to the first embodiment of the present invention. [Figure 5] FIG. 1 is a diagram showing a schematic diagram of an unclear layer structure. [Figure 6] FIG. 1 is a diagram schematically illustrating a Cobblestone-like pattern. [Figure 7] FIG. 1 is a diagram schematically illustrating a cloud-like pattern. [Figure 8] FIG. 10 is a diagram schematically illustrating a pattern in which liquid accumulation is observed. [Figure 9] FIG. 2 is a diagram schematically showing the trajectory of one scan of an ultrasonic probe on an abnormal area. [Figure 10] FIG. 2 is a diagram schematically showing the trajectory of two scans of an ultrasonic probe on an abnormal area. [Figure 11] 4 is a flowchart showing the operation of the ultrasound diagnostic apparatus according to the first embodiment. [Figure 12] FIG. 2 is a diagram schematically showing the trajectory of three scans of an ultrasonic probe on an abnormal area. [Figure 13] FIG. 10 is a diagram schematically showing the trajectory of four scans of an ultrasonic probe on an abnormal area. [Figure 14] FIG. 10 is a diagram schematically illustrating another example of an LED lamp of the ultrasound probe according to the first embodiment. [Figure 15] 10A and 10B are diagrams illustrating an example of blinking of an LED lamp. [Figure 16] FIG. 10 is a block diagram showing the configuration of an ultrasound diagnostic apparatus according to a second embodiment. [Figure 17] FIG. 10 is a diagram schematically showing an example of instructions to a user displayed on a monitor in the second embodiment. [Figure 18] FIG. 10 is a diagram schematically showing a scanning line passing through an unscanned portion in an abnormal portion. [Figure 19] FIG. 10 is a block diagram showing the configuration of an ultrasound diagnostic apparatus according to a third embodiment. [Figure 20] FIG. 11 is a block diagram showing the configuration of an ultrasound diagnostic apparatus according to a modification of the third embodiment. [Figure 21] FIG. 10 is a block diagram showing the configuration of an ultrasound diagnostic apparatus according to a fourth embodiment. [Figure 22] FIG. 13 is a diagram showing a display example of an unimaged portion in the fourth embodiment. [Figure 23] FIG. 10 is a block diagram showing the configuration of an ultrasound diagnostic apparatus according to a fifth embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0018] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings. The following description of the components will be given based on a representative embodiment of the present invention, but the present invention is not limited to such an embodiment. In this specification, a numerical range expressed using "to" means a range that includes the numerical values ​​before and after "to" as the lower and upper limits. In this specification, the terms "same" and "identical" include a margin of error generally accepted in the technical field.

[0019] Embodiment 1 1 shows the configuration of an ultrasound diagnostic device 1 according to the first embodiment of the present invention. The ultrasound diagnostic device 1 includes an ultrasound probe 2 and a diagnostic device main body 3. The ultrasound probe 2 and the diagnostic device main body 3 are connected to each other via wireless communication.

[0020] The ultrasonic probe 2 includes a transducer array 11, to which a transmission / reception circuit 12 and a probe-side wireless communication unit 13 are sequentially connected. The ultrasonic probe 2 is also provided with a position sensor 14 and an LED (Light Emitting Diode) lamp 15, which are each connected to the probe-side wireless communication unit 13. The transmission / reception circuit 12 and the probe-side wireless communication unit 13 are also connected to a probe control unit 16.

[0021] The diagnostic device main body 3 has a main body side wireless communication unit 21, to which an image generation unit 22, a display control unit 23, and a monitor 24 are sequentially connected. The diagnostic device main body 3 also has a memory 25, to which a memory control unit 26 is connected. The memory control unit 26 is also connected to the image generation unit 22 and the display control unit 23. A boundary recognition unit 27 is also connected to the image generation unit 22, and an instruction control unit 28 is also connected to the boundary recognition unit 27. The instruction control unit 28 is connected to the main body side wireless communication unit 21.

[0022] A main body control unit 29 is connected to the main body side wireless communication unit 21, the image generation unit 22, the display control unit 23, the memory control unit 26, the boundary recognition unit 27, and the instruction control unit 28. An input device 30 is also connected to the main body control unit 29. The image generating unit 22, the display control unit 23, the memory control unit 26, the boundary recognizing unit 27, the instruction control unit 28, and the main body control unit 29 constitute a main body processor 31.

[0023] The transducer array 11 of the ultrasonic probe 2 shown in Fig. 1 has a plurality of transducers arranged one-dimensionally or two-dimensionally. These transducers transmit ultrasonic waves in accordance with drive signals supplied from the transmission / reception circuit 12, receive ultrasonic echoes from the subject, and output signals based on the ultrasonic echoes. Each transducer is configured by forming electrodes on both ends of a piezoelectric element made of, for example, a piezoelectric ceramic typified by PZT (Lead Zirconate Titanate), a polymer piezoelectric element typified by PVDF (Poly Vinylidene Di Fluoride), or a piezoelectric single crystal typified by PMN-PT (Lead Magnesium Niobate-Lead Titanate).

[0024] The transmission / reception circuit 12, under the control of the probe control unit 16, transmits ultrasonic waves from the transducer array 11 and generates sound ray signals based on reception signals acquired by the transducer array 11. As shown in Fig. 2, the transmission / reception circuit 12 has a pulser 32 connected to the transducer array 11, and an amplifier 33, an AD (Analog-to-Digital) converter 34, and a beamformer 35, which are connected in series from the transducer array 11 in this order.

[0025] The pulser 32 includes, for example, multiple pulse generators, and adjusts the delay amount of each drive signal and supplies it to the multiple transducers of the transducer array 11 so that the ultrasound waves transmitted from the multiple transducers form an ultrasound beam based on a transmission delay pattern selected in response to a control signal from the probe control unit 16. In this way, when a pulsed or continuous wave voltage is applied to the electrodes of the transducers of the transducer array 11, the piezoelectric material expands and contracts, and each transducer generates a pulsed or continuous wave ultrasound wave, and an ultrasound beam is formed from the composite wave of these ultrasound waves.

[0026] The transmitted ultrasonic beam is reflected by an object such as a part of the subject, and propagates toward the transducer array 11 of the ultrasonic probe 2. The ultrasonic echo propagating toward the transducer array 11 in this manner is received by each transducer constituting the transducer array 11. At this time, each transducer constituting the transducer array 11 expands and contracts upon receiving the propagating ultrasonic echo, generating received signals which are electrical signals, and outputs these received signals to the amplifier 33.

[0027] The amplifier 33 amplifies signals input from each transducer constituting the transducer array 11 and transmits the amplified signals to an AD converter 34. The AD converter 34 converts the signals transmitted from the amplifier 33 into digital reception data and transmits this reception data to a beamformer 35. The beamformer 35 performs so-called reception focusing processing by adding each piece of reception data converted by the AD converter 34 with a respective delay in accordance with the speed of sound or a distribution of sound speeds set based on the reception delay pattern selected in response to a control signal from the probe control unit 16. This reception focusing processing causes the reception data converted by the AD converter 34 to be phased and added, and a sound ray signal with a narrowed focus of the ultrasonic echo is acquired.

[0028] The probe-side wireless communication unit 13 is configured with circuits including an antenna for transmitting and receiving radio waves, and performs wireless communication with the main body-side wireless communication unit 21 of the diagnostic apparatus main body 3 under the control of the probe control unit 16. At this time, the probe-side wireless communication unit 13 generates a transmission signal representing the sound ray signal by modulating a carrier based on the sound ray signal generated by the transmission / reception circuit 12, and wirelessly transmits the generated transmission signal to the main body-side wireless communication unit 21 of the diagnostic apparatus main body 3. The probe-side wireless communication unit 13 also generates a transmission signal for the position information of the ultrasound probe 2 acquired by the position sensor 14 in the same manner, and wirelessly transmits the generated transmission signal to the main body-side wireless communication unit 21.

[0029] As a modulation method for the carrier, for example, ASK (Amplitude Shift Keying), PSK (Phase Shift Keying), QPSK (Quadrature Phase Shift Keying), or 16QAM (16 Quadrature Amplitude Modulation) is used.

[0030] The position sensor 14 is a sensor for detecting position information of the ultrasonic probe 2. The position sensor 14 is configured by, for example, an acceleration sensor, a gyro sensor, a magnetic sensor, and the like.

[0031] The LED lamp 15 is attached to the ultrasonic probe 2 so as to be visible to the user, and is used as a scanning direction indicator for instructing the user on the scanning direction of the ultrasonic probe 2. For example, as shown in Fig. 3, the LED lamp 15 is composed of a right lamp 15A and a left lamp 15B, and both the right lamp 15A and the left lamp 15B are arranged so that their light-emitting portions are located outside the housing H of the ultrasonic probe 2. In this case, for example, lighting up the right lamp 15A or the left lamp 15B can issue an instruction to move the ultrasonic probe 2 toward the right lamp 15A or toward the left lamp 15B.

[0032] The probe control unit 16 controls each part of the ultrasonic probe 2 based on a program stored in advance. Although not shown, the ultrasonic probe 2 also includes a built-in battery that supplies power to each part of the ultrasonic probe 2.

[0033] The body-side wireless communication unit 21 of the diagnostic apparatus main body 3 is configured with circuits and the like including an antenna for transmitting and receiving radio waves, similar to the probe-side wireless communication unit 13, and performs wireless communication with the probe-side wireless communication unit 13 of the ultrasound probe 2 under the control of the body control unit 29. At this time, the body-side wireless communication unit 21 demodulates the transmission signal wirelessly transmitted from the probe-side wireless communication unit 13 to obtain a sound ray signal and position information of the ultrasound probe 2. The body-side wireless communication unit 21 sends the obtained sound ray signal to the image generation unit 22, and sends the obtained position information of the ultrasound probe 2 to the memory 25 via the image generation unit 22 and the memory control unit 26.

[0034] Furthermore, the main body side wireless communication unit 21 generates a transmission signal representing the sound ray signal by modulating a carrier based on instruction information sent from the instruction control unit 28, and wirelessly transmits the generated transmission signal to the probe side wireless communication unit 13. As the modulation method for the carrier, similar to the modulation method used by the probe side wireless communication unit 13, for example, ASK, PSK, QPSK, 16QAM, or the like is used.

[0035] As shown in FIG. 4, the image generating unit 22 has a configuration in which a signal processing unit 36, a DSC (Digital Scan Converter) 37, and an image processing unit 38 are connected in series. The signal processing unit 36 ​​performs correction for attenuation due to distance on the sound ray signals sent from the main body side wireless communication unit 21 in accordance with the depth of the ultrasonic wave reflection position, and then performs envelope detection processing to generate a B-mode image signal, which is tomographic image information on the tissue within the subject.

[0036] The DSC 37 converts (raster converts) the B-mode image signal generated by the signal processing unit 36 ​​into an image signal that conforms to the scanning method of a normal television signal. The image processing unit 38 performs various necessary image processing such as gradation processing on the B-mode image signal input from the DSC 37, and then sends the B-mode image signal to the display control unit 23 and also to the memory 25 via the memory control unit 26. Hereinafter, the B-mode image signal that has been subjected to image processing by the image processing unit 38 will be simply referred to as an ultrasound image.

[0037] The memory 25 is a memory that stores a series of multiple frames of ultrasound images generated by the image generation unit 22 for each diagnosis, and position information of the ultrasound probe 2. As the memory 25, a recording medium such as a flash memory, an HDD (Hard Disc Drive), an SSD (Solid State Drive), an FD (Flexible Disc), an MO disk (Magneto-Optical disc), an MT (Magnetic Tape), a RAM (Random Access Memory), a CD (Compact Disc), a DVD (Digital Versatile Disc), an SD card (Secure Digital card), or a USB memory (Universal Serial Bus memory), or a server, etc., can be used.

[0038] The memory control unit 26 controls the saving and reading of data to the memory 25. Specifically, the memory control unit 26 stores the ultrasound image generated by the image generation unit 22 and the position information of the ultrasound probe 2 at the time the ultrasound image was captured in the memory 25 in association with each other. In addition, the memory control unit 26 reads out the ultrasound image and the position information of the ultrasound probe 2 saved in the memory 25 in accordance with an instruction from the main body control unit 29, and sends the read ultrasound image and position information to the display control unit 23 or sends them to the boundary recognition unit 27 via the image generation unit 22.

[0039] When an ultrasound image of a cross section including an abnormal area is generated by the image generation unit 22, the boundary recognition unit 27 analyzes the ultrasound image to recognize the boundary between a normal area of ​​the subject and an abnormal area of ​​the subject. Here, the abnormal area in the present invention refers to, for example, an area where a so-called bedsore has occurred, an area where edema has occurred around a bedsore, an area where edema, which is a type of phlebitis, has occurred, and the surrounding areas thereof.

[0040] Examples of structures that represent abnormal areas in ultrasound images include the unclear layer structure A1 shown in Fig. 5, the cobblestone-like pattern A2 shown in Fig. 6, the cloud-like pattern A3 shown in Fig. 7, and the pattern A4 with low brightness and in which fluid accumulation is observed as shown in Fig. 8. The unclear layer structure A1 shown in Fig. 5 corresponds to weak edema, the cobblestone-like pattern A2 shown in Fig. 6 corresponds to strong edema, the cloud-like pattern A3 shown in Fig. 7 corresponds to suspected necrosis, and the pattern A4 with accumulation shown in Fig. 8 corresponds to suspected abscess, hematoma, or edema.

[0041] 5 to 8 are present as abnormal areas of the subject, and the boundary recognition unit 27 recognizes the boundary between normal and abnormal areas. As a method for recognizing normal and abnormal areas, the boundary recognition unit 27 can use, for example, a deep learning method such as U-net, a template matching method, a machine learning method using SVM (Support Vector Machine) and adaboost, or the machine learning method described in Csurka et al.: Visual Categorization with Bags of Keypoints, Proc. of ECCV Workshop on Statistical Learning in Computer Vision, pp. 59-74 (2004), or the like.

[0042] For example, when the ultrasound probe 2 is scanned across the abnormal area J in the first direction D1, as shown by the trajectory C1 in the dotted line area in Figure 9, the boundary recognition unit 27 recognizes the boundaries B1 and B2 between the abnormal area J and the normal area N by analyzing multiple frames of ultrasound images obtained by this scan.

[0043] The instruction control unit 28 determines the direction in which the ultrasonic probe 2 should scan relative to the current position of the ultrasonic probe 2 based on the current position information of the ultrasonic probe 2 acquired by the position sensor 14 and the boundary between the normal part N and the abnormal part J of the subject recognized by the boundary recognition unit 27.

[0044] The instruction control unit 28 further instructs the user on the identified scanning direction using the LED lamp 15 of the ultrasonic probe 2. At this time, the instruction control unit 28 generates instruction information representing instructions to the user and wirelessly communicates the generated instruction information to the probe-side wireless communication unit 13 of the ultrasonic probe 2 via the main body-side wireless communication unit 21. The instruction information received by the probe-side wireless communication unit 13 is sent to the LED lamp 15, and the LED lamp 15 blinks in accordance with the instruction information.

[0045] For example, consider a case where the ultrasonic probe 2 is scanned so as to cross the abnormal area J along a first direction D1, as shown by a trajectory C1 indicated by a dotted line area in Fig. 9, and then the ultrasonic probe 2 is scanned along a second direction D2 perpendicular to the first direction D1. In this case, the instruction control unit 28 specifies a direction passing through the boundary B1 or B2 of the abnormal area J recognized in the first scan as the direction in which the ultrasonic probe 2 should be scanned in the second scan.

[0046] 10 , in the second scan, when the ultrasonic probe 2 is scanned so as to move along the second direction D2 from a state in which the ultrasonic probe 2 is placed at position P1, the instruction control unit 28 specifies the left direction as the scanning direction, with the moving direction of the ultrasonic probe 2 facing forward, so as to pass through the boundary B1. In this case, the instruction control unit 28 generates instruction information instructing the ultrasonic probe 2 to scan leftward, and transmits the generated instruction information to the LED lamp 15 via the main body wireless communication unit 21 and the probe wireless communication unit 13 of the ultrasonic probe 2.

[0047] 3, the instruction control unit 28 turns on the right lamp 15A, which is located on the left side of the right lamp 15A and left lamp 15B constituting the LED lamp 15 when the traveling direction of the ultrasonic probe 2 is the front, to instruct the user on the direction in which to scan with the ultrasonic probe 2. By moving the ultrasonic probe 2 in accordance with the blinking of the LED lamp 15 without changing the orientation of the ultrasonic probe 2, the user can scan the ultrasonic probe 2 along the trajectory C2 shown in FIG.

[0048] The main body control unit 29 controls each part of the diagnostic device main body 3 based on a control program stored in advance. The input device 30 is used by the user to perform input operations, and can be configured to include a keyboard, a mouse, a trackball, a touchpad, a touch panel, and the like.

[0049] Under the control of the main body control unit 29, the display control unit 23 performs predetermined processing on the ultrasound image etc. generated by the image generation unit 22 and displays it on the monitor 24. The monitor 24 performs various displays under the control of the display control unit 23. The monitor 24 includes a display device such as an LCD (Liquid Crystal Display) or an organic EL display (Organic Electroluminescence Display).

[0050] The main body side processor 31 having the image generation unit 22, display control unit 23, memory control unit 26, boundary recognition unit 27, instruction control unit 28 and main body control unit 29 is composed of a CPU (Central Processing Unit) and a control program for causing the CPU to perform various processes, but may also be composed using an FPGA (Field Programmable Gate Array), a DSP (Digital Signal Processor), an ASIC (Application Specific Integrated Circuit), a GPU (Graphics Processing Unit) or other ICs (Integrated Circuits), or a combination of these.

[0051] In addition, the image generation unit 22, display control unit 23, memory control unit 26, boundary recognition unit 27, instruction control unit 28 and main body control unit 29 of the main body processor 31 can be partially or entirely integrated into a single CPU or the like.

[0052] The basic operation of the ultrasound diagnostic device 1 of the first embodiment will be described in detail below using the flowchart shown in FIG. First, in step S1, the user places the ultrasound probe 2 on the body surface of the subject to capture an ultrasound image of the abnormal area J. From this state, the ultrasound probe 2 is moved along the first direction D1 to capture an ultrasound image, as shown in FIG.

[0053] At this time, ultrasonic beams are transmitted into the subject from the multiple transducers of the transducer array 11 in accordance with a drive signal from the pulser 32 of the transmission / reception circuit 12, and a received signal is output from each transducer that receives an ultrasonic echo from the subject to the amplifier section 33 of the transmission / reception circuit 12.

[0054] The received signals are amplified by the amplifier 33, AD converted by the AD converter 34, and then phased and added by the beam former 35 to generate sound ray signals. These sound ray signals are wirelessly transmitted from the probe-side wireless communication unit 13 to the main body-side wireless communication unit 21 and sent to the image generator 22. The sound ray signals are subjected to envelope detection processing in the signal processor 36 of the image generator 22 to become B-mode image signals, which are output to the display controller 23 via the DSC 37 and image processor 38, and an ultrasound image is displayed on the monitor 24 under the control of the display controller 23. The ultrasonic image thus generated is stored in the memory 25 via the memory control unit 26.

[0055] Next, in step S2, the position sensor 14 acquires position information of the ultrasonic probe 2. The memory control unit 26 stores the acquired position information in the memory 25 in association with the ultrasonic image generated in step S1.

[0056] In the following step S3, it is determined whether or not scanning of the ultrasonic probe 2 along the first direction D1 shown in Fig. 9 has ended. For example, although not shown, if a command to end scanning is input by the user via the input device 30, it is determined that scanning of the ultrasonic probe 2 has ended, and if a command to end scanning is not input, it is determined that scanning of the ultrasonic probe 2 will continue.

[0057] If it is determined in step S3 that scanning of the ultrasonic probe 2 along the first direction D1 will not end but will continue, the process returns to step S1, where a new ultrasonic image is generated and stored in the memory 25. In the following step S2, new position information of the ultrasonic probe 2 is acquired, and this position information is associated with the ultrasonic image generated in the immediately preceding step S1 and stored in the memory 25. In this way, the processes of steps S1 to S3 are repeated as long as it is determined in step S3 that scanning of the ultrasonic probe 2 will continue. If it is determined in step S3 that scanning of the ultrasonic probe 2 along the first direction D1 has ended, the process proceeds to step S4.

[0058] In step S4, the boundary recognition unit 27 analyzes multiple frames of ultrasound images stored in the memory 25 by repeating steps S1 to S3, thereby recognizing boundaries B1 and B2 between the normal part N and the abnormal part J of the subject, as shown in Figure 9.

[0059] In the following step S5, it is determined whether or not the next scan, i.e., the second scan, will be performed by the ultrasonic probe 2. For example, if an instruction to perform the next scan is input by the user via the input device 30, it is determined that the next scan will be performed, and if an instruction not to perform the next scan is input, it is determined that the next scan will not be performed. If it is determined in step S5 that the next scan is to be performed, the process proceeds to step S6, where the second scan is started.

[0060] In step S6, the user places the ultrasonic probe 2 at position P1 on the body surface of the subject to perform scanning while moving the ultrasonic probe 2 along the second direction D2, as shown in Fig. 10 for example. In this state, an ultrasonic image is generated while the ultrasonic probe 2 is moved. The generated ultrasonic image is stored in memory 25.

[0061] Next, in step S7, the position sensor 14 acquires position information of the ultrasonic probe 2. The memory control unit 26 stores the acquired position information of the ultrasonic probe 2 in the memory 25 in association with the ultrasonic image generated in step S6.

[0062] In the following step S8, the instruction control unit 28 determines the direction in which the ultrasonic probe 2 should scan based on the boundaries B1, B2 between the normal part N and the abnormal part J of the subject recognized in step S4 and the current position information of the ultrasonic probe 2 acquired in step S7.

[0063] Here, when the ultrasonic probe 2 scans along the second direction D2 different from the first direction D1, which is the direction of the first scan, it is considered that by scanning the ultrasonic probe 2 so as to pass through the boundary B1 or B2 recognized in the first scan, it is more likely that scanning will be possible so as to pass through a boundary that was not recognized in the first scan. Therefore, the instruction control unit 28 specifies the left direction, with the second direction D2, which is the traveling direction of the ultrasonic probe 2, as the direction in which the ultrasonic probe 2 should scan, so as to pass through the boundary B1, which is closer to the current position P1 of the ultrasonic probe 2, of the two boundaries B1 and B2 recognized in the first scan.

[0064] Next, in step S9, the instruction control unit 28 indicates the identified scanning direction to the user by blinking the LED lamp 15 attached to the ultrasonic probe 2. Currently, the left direction with the traveling direction of the ultrasonic probe 2 facing forward is identified as the scanning direction, so the instruction control unit 28 generates instruction information instructing to move the ultrasonic probe 2 in this left direction and transmits the generated instruction information to the probe-side wireless communication unit 13 of the ultrasonic probe 2 via the main body-side wireless communication unit 21. Furthermore, the instruction information transmitted to the probe-side wireless communication unit 13 is sent to the LED lamp 15.

[0065] 3, the instruction control unit 28 turns on the right lamp 15A, which is located on the left side of the right lamp 15A and left lamp 15B constituting the LED lamp 15 when the traveling direction of the ultrasonic probe 2 is in front, to instruct the user on the scanning direction of the ultrasonic probe 2. By moving the ultrasonic probe 2 in accordance with the blinking of the LED lamp 15 without changing the orientation of the ultrasonic probe 2, the user can scan the ultrasonic probe 2, for example, along the trajectory C2 shown in FIG. 10 so as to pass through the boundary B1 recognized in step S4.

[0066] In this way, the user can scan the ultrasonic probe 2 so as to pass through the boundary B1, thereby ensuring that unscanned areas of the abnormal part J are scanned, thereby improving the efficiency of inspecting the abnormal part J.

[0067] In step S10, similarly to step S3, it is determined whether the second scan has been completed. If it is determined in step S10 that the second scan is not completed and will continue, the process returns to step S6. In step S6, a new ultrasound image is generated and stored in memory 25. In the following step S7, new position information of the ultrasound probe 2 is acquired and stored in memory 25 in association with the ultrasound image generated in the immediately preceding step S6.

[0068] Furthermore, in step S8, a new direction in which the ultrasonic probe 2 should scan is identified based on the boundaries B1, B2 between the normal part N and the abnormal part J of the subject recognized in step S4 and the current position information of the ultrasonic probe 2 newly acquired in step S7. In the following step S9, the LED lamp 15 is used to indicate to the user the direction to be scanned that has been newly specified in step S8.

[0069] In this manner, as long as it is determined in step S10 that the second scan has not ended and will continue, the processes of steps S6 to S10 are repeated.

[0070] In addition, when steps S6 to S10 are repeated and the ultrasonic probe 2 is moved by the user, and the direction of travel of the ultrasonic probe 2, i.e., the second direction D2, is identified as the direction to be scanned in step S8, the instruction control unit 28 can instruct the user in step S9 that the direction to be scanned is the second direction D2, for example, by turning off all of the right lamps 15A and left lamps 15B of the LED lamps 15 or by turning on all of them.

[0071] If it is determined in step S10 that the second scan has been completed, the process returns to step S4.

[0072] In step S4, the boundary recognition unit 27 recognizes the boundary between the normal area N and the abnormal area J located on the trajectory C2 shown in Figure 10 by analyzing multiple frames of ultrasound images stored in the memory 25 by repeating steps S6 to S10. In the following step S5, it is determined whether the next scan, i.e., the third scan, is to be performed. If it is determined in step S5 that the next scan is to be performed, the process proceeds to step S6, where the third scan is started.

[0073] In step S6, the user places the ultrasonic probe 2 at position P2 on the body surface of the subject to perform scanning while moving the ultrasonic probe 2 along the first direction D1, as shown in Fig. 12 for example. In this state, an ultrasonic image is generated while the ultrasonic probe 2 is moved. The generated ultrasonic image is stored in memory 25. In step S7, the position sensor 14 acquires current position information of the ultrasonic probe 2. The acquired position information is stored in the memory 25 in association with the ultrasonic image generated in step S6.

[0074] In step S8, the instruction control unit 28 determines the direction in which the ultrasonic probe 2 should scan based on the boundary between the normal area N and the abnormal area J recognized in step S4 after the first scan and the second scan, respectively, and the current position information of the ultrasonic probe 2 acquired in the immediately preceding step S7.

[0075] Here, the current position P2 of the ultrasonic probe 2 is near the position where the ultrasonic probe 2 was placed at the start of the first scan. If scanning were to be performed straight from position P2 along the first direction D1, the scanning would be performed on a trajectory that is almost identical to the trajectory C1 of the first scan, which would be inefficient as an examination. Therefore, the instruction control unit 28 specifies a scanning direction that reduces overlap with the trajectory C1 of the first scan as the direction in which the ultrasonic probe 2 should scan. In the example of Fig. 12, the instruction control unit 28 specifies the left direction, with the first direction D1, which is the traveling direction of the ultrasonic probe 2, as the forward direction, as the direction in which the ultrasonic probe 2 should scan.

[0076] In the following step S9, the instruction control unit 28 instructs the user to move in the direction to be scanned identified in step S8, i.e., the left direction with the first direction D1, which is the direction of travel of the ultrasound probe 2, facing forward, by blinking the LED lamp 15. This allows the user to move the ultrasonic probe 2 in accordance with the blinking of the LED lamp 15 without changing the orientation of the ultrasonic probe 2, thereby allowing the ultrasonic probe 2 to scan, for example, along the trajectory C3 shown in FIG. 12.

[0077] In this way, the user can scan the ultrasonic probe 2 so as to minimize overlap with the trajectory C1 that has already been scanned, thereby preventing the user from repeatedly scanning the same area that has already been scanned, thereby improving the efficiency of the examination while still being able to sufficiently scan the abnormal area J.

[0078] When the process of step S9 is completed, the process proceeds to step S10, where it is determined whether the third scan has been completed. If it is determined in step S10 that the third scan has not been completed and will continue, the process returns to step S6. In this way, steps S6 to S10 are repeated as long as it is determined in step S10 that the third scan has not been completed and will continue. If it is determined in step S3 that the third scan has been completed, the process returns to step S4.

[0079] In step S4, the boundary recognition unit 27 recognizes the boundary between the normal area N and the abnormal area J located on the trajectory C3 shown in Figure 12 by analyzing multiple frames of ultrasound images stored in the memory 25 by repeating steps S6 to S10 during the third scan. In the following step S5, it is determined whether the next scan, i.e., the fourth scan, is to be performed. If it is determined in step S5 that the next scan is to be performed, the process proceeds to step S6, where the fourth scan is started.

[0080] In step S6, the user places the ultrasonic probe 2 at position P3 on the body surface of the subject to perform scanning while moving the ultrasonic probe 2 along the second direction D2, as shown in Fig. 13 for example. In this state, an ultrasonic image is generated while the ultrasonic probe 2 is moved. The generated ultrasonic image is stored in memory 25. In step S7, the position sensor 14 acquires current position information of the ultrasonic probe 2. The acquired position information is stored in the memory 25 in association with the ultrasonic image generated in step S6.

[0081] In step S8, the instruction control unit 28 determines the scanning direction in which the ultrasonic probe 2 should scan, that is, the scanning direction that passes through the already recognized boundary between the normal area N and the abnormal area J, based on the boundary between the normal area N and the abnormal area J recognized in step S4 after the first to third scans are completed and the current position information of the ultrasonic probe 2 acquired in the immediately preceding step S7. In the example of FIG. 13, the instruction control unit 28 specifies the direction to be scanned as the right direction with the traveling direction of the ultrasonic probe 2, that is, the second direction D2, as the front.

[0082] In the following step S9, the instruction control unit 28 instructs the user to move the ultrasonic probe 2 in the right direction, which is the scanning direction identified in step S8, that is, the second direction D2, which is the traveling direction of the ultrasonic probe 2, by blinking the LED lamps 15. For example, the instruction control unit 28 instructs the user to move the ultrasonic probe 2 in this right direction by turning on the left lamp 15B, which is located on the right side of the traveling direction of the ultrasonic probe 2, of the right lamp 15A and left lamp 15B shown in FIG.

[0083] This allows the user to move the ultrasonic probe 2 in accordance with the blinking of the LED lamp 15 without changing the orientation of the ultrasonic probe 2, thereby allowing the ultrasonic probe 2 to scan, for example, along the trajectory C4 shown in FIG. 13.

[0084] When the process of step S9 is completed, the process proceeds to step S10, where it is determined whether the fourth scan has been completed. If it is determined in step S10 that the fourth scan has not been completed and will continue, the process returns to step S6. In this way, steps S6 to S10 are repeated as long as it is determined in step S10 that the fourth scan has not been completed and will continue. If it is determined in step S3 that the fourth scan has been completed, the process returns to step S4.

[0085] In step S4, the boundary recognition unit 27 recognizes the boundary between the normal area N and the abnormal area J located on the trajectory C4 shown in Figure 13 by analyzing multiple frames of ultrasound images stored in the memory 25 by repeating steps S6 to S10 during the fourth scan.

[0086] In the following step S5, it is determined whether the next scan, i.e., the fifth scan, is to be performed. If it is determined in step S5 that the next scan is to be performed, the process proceeds to step S6, where the fifth scan is started. If the user determines that the examination of the abnormal part J has been sufficiently performed and inputs an instruction not to perform the next scan via the input device 30, it is determined that the next scan will not be performed. In this case, the operation of examining the abnormal part J using the ultrasound diagnostic device 1 ends.

[0087] As described above, according to the ultrasound diagnostic device 1 of the first embodiment of the present invention, the user is guided in the scanning direction of the ultrasound probe 2 so as to scan the unscanned area of ​​the abnormal part J, thereby improving the efficiency of the examination while sufficiently scanning the abnormal part J.

[0088] In the first embodiment, the image generation unit 22 is provided in the diagnostic device main body 3, but it may be provided in the ultrasound probe 2 instead of in the diagnostic device main body 3. In this case, the ultrasound image generated by the image generation unit 22 is wirelessly transmitted from the probe side wireless communication unit 13 to the main body side wireless communication unit 21, and further sent from the main body side wireless communication unit 21 to the display control unit 23, the memory control unit 26, and the boundary recognition unit 27.

[0089] Furthermore, as an example of the LED lamp 15, as shown in FIG. 3, the LED lamp 15 is described as being configured with a right lamp 15A and a left lamp 15B, but the configuration of the LED lamp 15 is not limited to this.

[0090] For example, as shown in Fig. 14, the LED lamp 15 may be arranged on the surface of the housing H facing the traveling direction of the ultrasonic probe 2, and may be configured as a single light source having a plurality of light-emitting regions R1 to R5 in the left and right directions with the traveling direction of the ultrasonic probe 2 as the front. In the example of Fig. 14, the LED lamp 15 has five light-emitting regions R1 to R5. In this case, the instruction control unit 28 can instruct the user on the scanning direction by sequentially illuminating the five light-emitting regions R1 to R5 one by one along the right or left direction with the traveling direction of the ultrasonic probe 2 as the front, as shown in Fig. 15, for example.

[0091] Furthermore, the method of instructing the user on the scanning direction is not limited to blinking the LED lamp 15. For example, the LED lamp 15 may be configured with light sources of multiple colors, and the instruction control unit 28 may change the light emission color of the LED lamp 15 to instruct the user on the scanning direction.

[0092] Furthermore, although scanning of the ultrasonic probe 2 along the first direction D1 and scanning of the ultrasonic probe 2 along the second direction D2 are alternately performed, the scanning method of the ultrasonic probe 2 is not particularly limited to this. For example, after scanning along the first direction D1 is completed, scanning along the first direction D1 may be performed as the next scan, and after scanning along the second direction D2 is completed, scanning along the second direction D2 may be performed as the next scan.

[0093] 9, when the boundary recognition unit 27 recognizes both boundaries B1 and B2 of the abnormal area J in a single scan of the ultrasonic probe 2 along the first direction D1, the instruction control unit 28 can instruct the user to transition to scanning along the second direction D2, for example, by blinking the LED lamp 15 for a certain period of time. In this way, when the ultrasonic probe 2 scans along a certain direction and the boundaries of the abnormal area J are recognized, transitioning to scanning along a direction perpendicular to the certain direction makes it easier for the user to grasp the entire image of the abnormal area J, including the unscanned portions of the abnormal area J, and enables more efficient inspection of the abnormal area J.

[0094] Furthermore, the instruction control unit 28 can also estimate the remaining boundary between the normal region N and the abnormal region J of the subject, i.e., the unscanned boundary, based on the boundary recognized by the boundary recognition unit 27, and specify the direction in which scanning should be performed based on the estimated remaining boundary. In this case, the instruction control unit 28 can specify, for example, the direction in which the ultrasound probe 2 approaches the estimated remaining boundary as the direction in which scanning should be performed. This allows the ultrasound probe 2 to be guided to the unscanned region of the abnormal region J, thereby improving the efficiency of the examination while still sufficiently scanning the abnormal region J.

[0095] Furthermore, when there is a gap between the current position of the ultrasonic probe 2 and the scanned area, the instruction control unit 28 can also specify, as the scanning direction, a scanning direction that brings the ultrasonic probe 2 closer to the scanned area, based on the position information of the ultrasonic probe 2 acquired by the position sensor 14. This makes it possible to prevent unscanned areas from occurring, and therefore to scan the abnormal area J efficiently and without omission.

[0096] Furthermore, an ultrasound image is generated in step S1, and position information of the ultrasound probe 2 is acquired in step S2. However, if the ultrasound image and the position information of the ultrasound probe 2 are stored in memory 25 in correspondence with each other, step S2 may be performed before step S1, or step S1 and step S2 may be performed in parallel.

[0097] Furthermore, for example, when all boundaries of the abnormal area J have been recognized by the boundary recognition unit 27, the instruction control unit 28 can notify the user of this fact using the LED lamp 15. At this time, the instruction control unit 28 can notify the user by, for example, flashing the LED lamp 15 in a certain flashing pattern. This allows the user to know that the abnormal area J has been sufficiently scanned, preventing the ultrasound probe 2 from scanning more than necessary and allowing the abnormal area J to be inspected more efficiently.

[0098] Embodiment 2 In the first embodiment, the instruction control unit 28 uses the LED lamp 15 to instruct the user in the direction in which the ultrasonic probe 2 should scan, but the method for instructing the direction in which the ultrasonic probe 2 should scan is not limited to this.

[0099] 16 shows the configuration of an ultrasonic diagnostic apparatus 1A according to embodiment 2. The ultrasonic diagnostic apparatus 1A has an ultrasonic probe 2A and a diagnostic apparatus main body 3A.

[0100] The ultrasonic probe 2A is the ultrasonic probe 2 according to the first embodiment shown in FIG. 1, except that the LED lamp 15 is removed and the probe control unit 16 is replaced with a probe control unit 16A. The diagnostic device main body 3A is the diagnostic device main body 3 in embodiment 1, except that it has a main body control unit 29A instead of the main body control unit 29, and the instruction control unit 28 is connected to the display control unit 23 instead of the main body side wireless communication unit 21.

[0101] In the ultrasonic diagnostic apparatus 1A, the monitor 24 of the diagnostic apparatus main body 3A is used as a scanning direction instruction unit for instructing the user on the direction in which the ultrasonic probe 2 should scan. Specifically, the instruction control unit 28 generates instruction information for instructing the scanning direction of the ultrasound probe 2A based on the current position information of the ultrasound probe 2A acquired by the position sensor 14 and the boundary between the normal part N and the abnormal part J of the subject recognized by the boundary recognition unit 27, and sends the generated instruction information to the display control unit 23. The display control unit 23 displays the scanning direction on the monitor 24 in accordance with the instruction information from the instruction control unit 28.

[0102] 17, for example, the instruction control unit 28 displays a right direction indication mark M1 and a left direction indication mark M2 for indicating the scanning direction to the user together with the ultrasound image U displayed on the monitor 24. At this time, the instruction control unit 28 highlights and displays the right direction indication mark M1 when the scanning direction is the left side with the traveling direction of the ultrasound probe 2A as the front, and highlights and displays the left direction indication mark M2 when the scanning direction is the right side with the traveling direction of the ultrasound probe 2A as the front.

[0103] Here, highlighting the right direction indication mark M1 or the left direction indication mark M2 means changing the display color of the right direction indication mark M1 or the left direction indication mark M2, displaying it in a flashing manner, or otherwise changing the display mode of the right direction indication mark M1 or the left direction indication mark M2 from the normal display mode.

[0104] As described above, even when the scanning direction is displayed on the monitor 24 to instruct the user, the scanning direction of the ultrasonic probe 2A can be guided to the direction in which the unscanned area of ​​the abnormal part J should be scanned, just as in the case of instructing the user using the LED lamp 15 in the first embodiment, so that the abnormal part J can be inspected sufficiently and efficiently.

[0105] As shown in FIG. 18, when there is an unscanned portion K where the contour of the abnormal portion J is broken, the instruction control unit 28 can detect this unscanned portion K based on the boundary already recognized by the boundary recognition unit 27, and specify the scanning line L along which the ultrasonic probe 2 should scan so as to pass through the detected unscanned portion K, and display the specified scanning line on the monitor 24. This prevents the abnormal portion J from being overlooked in inspection, and improves inspection efficiency.

[0106] Embodiment 3 The direction in which the ultrasonic probe 2 should scan can also be indicated to the user by, for example, vibrating the ultrasonic probe 2 . 19 shows the configuration of an ultrasonic diagnostic apparatus 1B according to embodiment 3. The ultrasonic diagnostic apparatus 1B is configured by including an ultrasonic probe 2B instead of the ultrasonic probe 2 in the ultrasonic diagnostic apparatus 1 according to embodiment 1 shown in FIG.

[0107] Moreover, the ultrasonic probe 2B is configured such that the LED lamp 15 of the ultrasonic probe 2 in the first embodiment is replaced with a vibration mechanism 39, and the probe control unit 16 is replaced with a probe control unit 16B.

[0108] The vibration mechanism 39 is configured by a small so-called vibration motor or the like, and slightly vibrates the ultrasonic probe 2B based on the instruction information generated by the instruction control unit .

[0109] For example, to indicate to the user that the ultrasonic probe 2B should be moved to the left with the traveling direction of the ultrasonic probe 2B facing forward, the instruction control unit 28 can vibrate the ultrasonic probe 2B only once within a certain period of time using the vibration mechanism 39, and to indicate to the user that the ultrasonic probe 2B should be moved to the right with the traveling direction of the ultrasonic probe 2B facing forward, the instruction control unit 28 can vibrate the ultrasonic probe 2B twice consecutively within a certain period of time using the vibration mechanism 39. In this way, the instruction control unit 28 can instruct the user on the direction to scan by vibrating the ultrasonic probe 2B with a vibration pattern determined according to the direction to scan.

[0110] As described above, even when the direction of scanning is indicated to the user by vibrating the ultrasonic probe 2B, the scanning direction of the ultrasonic probe 2A can be guided to the direction of scanning in the unscanned area of ​​the abnormal part J, just as in the case of indicating to the user using the LED lamp 15 in embodiment 1, so that the abnormal part J can be inspected sufficiently and efficiently.

[0111] It should be noted that instead of vibrating the ultrasonic probe 2B, the diagnostic device main body 3 can be vibrated to instruct the user on the direction to be scanned. 20 shows the configuration of an ultrasonic diagnostic apparatus 1C according to a modification of Embodiment 3. The ultrasonic diagnostic apparatus 1C has an ultrasonic probe 2C and a diagnostic apparatus main body 3C.

[0112] The ultrasonic probe 2C is the ultrasonic probe 2 of the first embodiment shown in FIG. 1, except that the LED lamp 15 is removed and the probe control unit 16 is replaced with a probe control unit 16C. The diagnostic device main body 3C is the diagnostic device main body 3 of the first embodiment, to which a vibration mechanism 40 has been added, and which is provided with a main body control unit 29C instead of the main body control unit 29. Also, a main body processor 31C including the main body control unit 29C is configured instead of the main body processor 31. Also, the instruction control unit 28 is connected to the vibration mechanism 40 instead of being connected to the main body wireless communication unit 21.

[0113] The vibration mechanism 40 is configured by a small vibration motor or the like, and slightly vibrates the diagnostic device main body 3B based on the instruction information generated by the instruction control unit .

[0114] For example, the instruction control unit 28 can vibrate the diagnostic device main body 3B only once within a certain period of time using the vibration mechanism 40 to indicate to the user that the ultrasonic probe 2B should be moved leftward with the traveling direction of the ultrasonic probe 2B facing forward, and can vibrate the diagnostic device main body 3B twice consecutively within a certain period of time using the vibration mechanism 40 to indicate to the user that the ultrasonic probe 2B should be moved rightward with the traveling direction of the ultrasonic probe 2B facing forward. In this way, the instruction control unit 28 can instruct the user on the direction to scan by vibrating the diagnostic device main body 3B with a vibration pattern determined according to the direction to scan.

[0115] Although not shown, not only the diagnostic device main body 3C is provided with the vibration mechanism 40, but also the ultrasound probe 2C may be provided with a vibration mechanism 39. In this case, the instruction control unit 28 can vibrate either the ultrasound probe 2C or the diagnostic device main body 3C depending on the direction to be scanned, for example.

[0116] The instruction control unit 28 can determine the correspondence between the vibration of the ultrasound probe 2C or the diagnostic apparatus main body 3C and the scanning direction, for example, based on device holding information indicating whether the ultrasound probe 2C or the diagnostic apparatus main body 3C is held in the user's right hand or left hand. The device holding information can be input by the user via the input device 30, for example.

[0117] Furthermore, for example, by providing the ultrasound probe 2C or the diagnostic device main body 3C with a holding hand recognition unit (not shown) that reads the user's fingerprint and recognizes whether the ultrasound probe 2C or the diagnostic device main body 3C is being held in the user's right hand or left hand, the instruction control unit 28 can determine the correspondence between the vibration of the ultrasound probe 2C or the diagnostic device main body 3C and the scanning direction based on the recognition result of the holding hand recognition unit.

[0118] Embodiment 4 During the examination of the abnormal part J, for example, the ultrasound probe 2 may become separated from the body surface of the subject, and the cross-sectional surface inside the subject may not be visualized in the ultrasound image. In this case, the user can be informed of the part not visualized in the ultrasound image, thereby preventing omissions in the examination.

[0119] 21 shows the configuration of an ultrasonic diagnostic apparatus 1D according to embodiment 4. The ultrasonic diagnostic apparatus 1D is configured by replacing the diagnostic apparatus main body 3 in the ultrasonic diagnostic apparatus 1 of embodiment 1 shown in FIG. 1 with a diagnostic apparatus main body 3D. In addition, instead of the main body processor 31, a main body processor 31D including a main body control unit 29D and an unimaged portion extraction unit 41 is configured.

[0120] The diagnostic device main body 3D is the same as the diagnostic device main body 3 in the first embodiment except that an unimaged portion extracting section 41 is added and the main body control section 29 is replaced with a main body control section 29D. In the diagnostic apparatus main body 3D, the image generating section 22 is connected to the non-imaged portion extracting section 41, and the non-imaged portion extracting section 41 is connected to the display control section .

[0121] The non-imaged portion extraction unit 41 identifies portions that are not depicted in the ultrasound image U due to the ultrasound probe 2 moving away from the subject's body surface based on the ultrasound image U generated by the image generation unit 22 and the position information of the ultrasound probe 2 acquired by the position sensor 14, and displays the identified portions on the monitor 24.

[0122] At this time, the non-imaged portion extraction unit 41 analyzes the multiple frames of ultrasound images U generated by the image generation unit 22 to identify ultrasound images U in which the internal tomographic planes of the subject are not imaged, and based on the position information of the ultrasound probe 2 corresponding to the ultrasound images U, can identify portions of the already scanned region on the body surface of the subject in which the subject's tomographic planes are not imaged in the ultrasound images U. Furthermore, the non-imaged portion extraction unit 41 can display on the monitor 24, as shown in Fig. 22, for example, a non-imaged portion F in which the subject's tomographic planes are not imaged in the ultrasound images U, in an emphasized manner relative to other portions.

[0123] As described above, the ultrasound diagnostic apparatus 1D according to the fourth embodiment displays on the monitor 24 the unimaged portion F, where the cross section of the subject is not imaged in the ultrasound image U, allowing the user to grasp the position of the unimaged portion F and determine whether or not it is necessary to rescan the position of the unimaged portion F. This makes it possible to improve the efficiency of the examination while preventing the omission of an abnormal portion J from being examined.

[0124] When the user selects an unimaged portion F displayed on the monitor 24 via the input device 30, the instruction control unit 28 can specify the scanning direction of the ultrasound probe 2 so that the direction passes through the unimaged portion F selected by the user. This allows the position of the unimaged portion F to be scanned reliably, preventing any part of the unimaged portion F from being overlooked during the examination.

[0125] Fifth embodiment The trajectory of the scan made by the user with the ultrasonic probe 2 can be displayed on the monitor 24, allowing the user to visually grasp the area that has already been scanned. 23 shows the configuration of an ultrasonic diagnostic apparatus 1E according to embodiment 5. The ultrasonic diagnostic apparatus 1E is configured by replacing the diagnostic apparatus main body 3 of the ultrasonic diagnostic apparatus 1 according to embodiment 1 shown in FIG. 1 with a diagnostic apparatus main body 3E.

[0126] The diagnostic device main body 3E is configured by adding a trajectory calculation unit 42 to the diagnostic device main body 3 in embodiment 1, and by providing a main body control unit 29E instead of the main body control unit 29. Also, a main body side processor 31E including the main body control unit 29E and the trajectory calculation unit 42 is configured instead of the main body side processor 31. In the diagnostic device main body 3E, the trajectory calculation unit 42 is connected to the image generation unit 22, and the trajectory calculation unit 42 is connected to the display control unit 23.

[0127] The trajectory calculation unit 42 calculates the scanning trajectories C1 to C4 of the ultrasound probe 2, for example, as shown in Fig. 13, and displays the calculated trajectories C1 to C4 on the monitor 24. This allows the user to inspect the abnormal area J while easily understanding the areas on the body surface of the subject that have already been scanned.

[0128] Furthermore, when the user specifies any position on the trajectories C1 to C4 displayed on the monitor 24 via the input device 30, the main body control unit 29E controls the memory control unit 26 to read out the ultrasound image U corresponding to the position specified by the user from the memory 25 and display it on the monitor 24. The user can proceed with the examination of the abnormal part J while checking the ultrasound image U displayed on the monitor 24 in this manner.

[0129] As described above, according to the ultrasound diagnostic apparatus 1E of embodiment 5, the scanning trajectories C1 to C4 of the ultrasound probe 2 are displayed on the monitor 24, and the ultrasound image U corresponding to the position on the trajectories C1 to C4 specified by the user is read from the memory 25 and displayed on the monitor 24, so that the user can efficiently perform the examination while easily understanding the status of the examination. [Explanation of symbols]

[0130] 1, 1A, 1B, 1C, 1D, 1E Ultrasound diagnostic device, 2, 2A, 2B, 2C Ultrasound probe, 3, 3A, 3C, 3D, 3E Diagnostic device main body, 11 Transducer array, 12 Transmitting / receiving circuit, 13 Probe side wireless communication unit, 14 Position sensor, 15 LED lamp, 15A Right lamp, 15B Left lamp, 16, 16A, 16B, 16C Probe control unit, 21 Main body side wireless communication unit, 22 Image generation unit, 23 Display control unit, 24 Monitor, 25 Memory, 26 Memory control unit, 27 Boundary recognition unit, 28 Instruction control unit, 29, 29A, 29C, 29D, 29E Main body control unit, 30 Input device, 31, 31A, 31C, 31D, 31E Main body side processor, 32 Pulser, 33 Amplification unit, 34 AD conversion unit, 35 Beam former, 36 Signal processing unit, 37 DSC, 38 Image processing unit, 39, 40 Vibration mechanism, 41 Unimaged area extraction unit, 42 Trajectory calculation unit, A1 Unclear layer structure, A2 Cobblestone-like pattern, A3 Cloud-like pattern, A4 Pattern, B1, B2 Boundary, C1 to C4 Trajectory, D1 First direction, D2 Second direction, F Unimaged area, H Housing, J Abnormal area, L Scan line, M1 Right direction indicator, M2 Left direction indicator, N Normal area, P1 to P3 Position, R1 to R5 Emission area, U Ultrasound image.

Claims

1. an ultrasound probe; an image generating unit that generates an ultrasound image by scanning an abnormal part of a subject with an ultrasound beam using the ultrasound probe; a monitor for displaying the ultrasound image; a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe; a scanning direction instruction unit for instructing a user on the direction in which the ultrasonic probe should scan; a boundary recognition unit that recognizes a boundary between a normal part and an abnormal part of the subject by analyzing the ultrasound image; an instruction control unit that specifies a direction in which the ultrasonic probe should be scanned based on position information of the ultrasonic probe acquired by the position sensor and the boundary recognized by the boundary recognition unit, and instructs the user on the specified scanning direction by the scanning direction instruction unit; Equipped with When the boundary recognition unit recognizes boundaries on both sides of the abnormal area when scanning the ultrasonic probe in one of two directions perpendicular to each other with respect to the abnormal area, the instruction control unit instructs the user, via the scanning direction instruction unit, to switch to scanning in the other of the two directions.

2. 2. The ultrasound diagnostic apparatus according to claim 1, wherein the instruction control unit estimates a remaining boundary between a normal part and an abnormal part of the subject based on the boundary recognized by the boundary recognition unit, and specifies the scanning direction based on the estimated remaining boundary.

3. a memory that stores the ultrasound image in association with position information of the ultrasound probe acquired by the position sensor; a trajectory calculation unit that calculates the trajectory of the scan of the ultrasonic probe and displays it on the monitor; Equipped with 3. The ultrasound diagnostic apparatus according to claim 1, wherein when the user designates an arbitrary position on the trajectory displayed on the monitor, the ultrasound image corresponding to the arbitrary position is read from the memory and displayed on the monitor.

4. an ultrasound probe; an image generating unit that generates an ultrasound image by scanning an abnormal part of a subject with an ultrasound beam using the ultrasound probe; a monitor for displaying the ultrasound image; a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe; a scanning direction instruction unit for instructing a user on the direction in which the ultrasonic probe should scan; a boundary recognition unit that recognizes a boundary between a normal part and an abnormal part of the subject by analyzing the ultrasound image; an instruction control unit that estimates the remaining boundary between the normal part and the abnormal part of the subject based on the boundary recognized by the boundary recognition unit, specifies a direction in which the ultrasonic probe should be scanned based on position information of the ultrasonic probe acquired by the position sensor and the estimated remaining boundary, and instructs the user of the specified scanning direction by the scanning direction instruction unit; An ultrasound diagnostic device comprising:

5. a memory that stores the ultrasound image in association with position information of the ultrasound probe acquired by the position sensor; a trajectory calculation unit that calculates the trajectory of the scan of the ultrasonic probe and displays it on the monitor; Equipped with 5. The ultrasonic diagnostic apparatus according to claim 4, wherein when the user designates an arbitrary position on the trajectory displayed on the monitor, the ultrasonic image corresponding to the arbitrary position is read from the memory and displayed on the monitor.

6. an ultrasound probe; an image generating unit that generates an ultrasound image by scanning an abnormal part of a subject with an ultrasound beam using the ultrasound probe; a monitor for displaying the ultrasound image; a position sensor attached to the ultrasonic probe and acquiring position information of the ultrasonic probe; a scanning direction instruction unit for instructing a user on the direction in which the ultrasonic probe should scan; a boundary recognition unit that recognizes a boundary between a normal part and an abnormal part of the subject by analyzing the ultrasound image; an instruction control unit that specifies a direction in which the ultrasonic probe should be scanned based on the position information of the ultrasonic probe acquired by the position sensor and the boundary recognized by the boundary recognition unit, and instructs the user about the specified scanning direction by the scanning direction instruction unit; a memory that stores the ultrasound image in association with position information of the ultrasound probe acquired by the position sensor; a trajectory calculation unit that calculates the trajectory of the scan of the ultrasonic probe and displays it on the monitor; Equipped with When the user designates an arbitrary position on the trajectory displayed on the monitor, the ultrasound image corresponding to the arbitrary position is read from the memory and displayed on the monitor.

7. the scanning direction indicator is formed by an LED lamp attached to the ultrasound probe, 7. The ultrasonic diagnostic apparatus according to claim 1, wherein the instruction control unit indicates the direction of scanning by the color of light emitted by the LED lamp or by blinking of the LED lamp.

8. the scanning direction indicator is formed by the monitor, 7. The ultrasonic diagnostic apparatus according to claim 1, wherein the instruction control unit displays the direction to be scanned on the monitor.

9. the ultrasonic probe includes a vibration mechanism; the scanning direction indicator is formed by the vibration mechanism, 7. The ultrasonic diagnostic apparatus according to claim 1, wherein the instruction control unit instructs the scanning direction by a vibration pattern of the vibration mechanism.

10. a tablet terminal connected to the ultrasound probe, the tablet terminal includes a vibration mechanism; the scanning direction indicator is formed by the vibration mechanism, 7. The ultrasonic diagnostic apparatus according to claim 1, wherein the instruction control unit instructs the scanning direction by a vibration pattern of the vibration mechanism.

11. The ultrasonic diagnostic apparatus according to any one of claims 1 to 10, wherein the instruction control unit, based on position information of the ultrasonic probe acquired by the position sensor, specifies a scanning direction that brings the ultrasonic probe closer to the scanned area when a gap occurs between the ultrasonic probe and the scanned area.

12. The ultrasound diagnostic apparatus according to any one of claims 1 to 11, wherein the instruction control unit specifies a scanning direction that reduces overlap with a scanned area based on position information of the ultrasound probe acquired by the position sensor.

13. The ultrasound diagnostic device according to any one of claims 1 to 11, wherein the instruction control unit specifies a scanning direction that passes through the boundary recognized by the boundary recognition unit based on position information of the ultrasound probe acquired by the position sensor.

14. The ultrasound diagnostic device according to any one of claims 1 to 13, further comprising an unrepresented portion extraction unit that identifies portions that are not depicted in the ultrasound image when the ultrasound probe moves away from the body surface of the subject, based on the ultrasound image and position information of the ultrasound probe, and displays the identified portions on the monitor.

15. generating an ultrasound image by scanning an ultrasound beam over an abnormal area of ​​the subject using an ultrasound probe; acquiring position information of the ultrasonic probe by a position sensor attached to the ultrasonic probe; By analyzing the ultrasound image, a boundary between a normal part and an abnormal part of the subject is recognized; Identifying a direction in which the ultrasonic probe should be scanned based on the acquired position information of the ultrasonic probe and the recognized boundary, and instructing a user on the identified scanning direction; A control method for an ultrasound diagnostic apparatus, wherein, when scanning the ultrasound probe in one of two directions perpendicular to the abnormal area, if boundaries on both sides of the abnormal area are recognized, the method switches to scanning in the other of the two directions.

16. generating an ultrasound image by scanning an ultrasound beam over an abnormal area of ​​the subject using an ultrasound probe; acquiring position information of the ultrasonic probe by a position sensor attached to the ultrasonic probe; By analyzing the ultrasound image, a boundary between a normal part and an abnormal part of the subject is recognized; estimating the remaining boundaries between the normal and abnormal areas of the subject based on the recognized boundaries; A control method for an ultrasound diagnostic apparatus, which specifies a direction in which the ultrasound probe should be scanned based on the acquired position information of the ultrasound probe and the estimated remaining boundary, and instructs a user about the specified scanning direction.

17. generating an ultrasound image by scanning an ultrasound beam over an abnormal area of ​​the subject using an ultrasound probe; acquiring position information of the ultrasonic probe by a position sensor attached to the ultrasonic probe; By analyzing the ultrasound image, a boundary between a normal part and an abnormal part of the subject is recognized; Identifying a direction in which the ultrasonic probe should be scanned based on the acquired position information of the ultrasonic probe and the recognized boundary, and instructing a user on the identified scanning direction; storing the ultrasonic image in a memory in association with the position information of the ultrasonic probe acquired by the position sensor; Calculating and displaying the trajectory of the ultrasonic probe; A method for controlling an ultrasonic diagnostic apparatus, wherein when the user designates an arbitrary position on the displayed trajectory, the ultrasonic image corresponding to the arbitrary position is read out from the memory and displayed.

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