Ultrasonic diagnostic device and method for evaluating physical properties of biological tissue
11490876 · 2022-11-08
Assignee
Inventors
Cpc classification
A61B8/485
HUMAN NECESSITIES
A61B8/0858
HUMAN NECESSITIES
International classification
Abstract
Provided is a technique for evaluating properties of a membranous tissue or a surface of the tissue in a biological body by ultrasonic waves. A method of the invention includes setting one or more measurement points on a surface of the biological tissue to be inspected; measuring, in a state in which an elastic wave propagates to the biological tissue, at least a surface wave of the elastic wave by measuring a displacement of the biological tissue at the measurement point by using an ultrasonic wave; and calculating an index value indicating physical properties of the biological tissue by using the measured displacement.
Claims
1. An ultrasonic diagnostic device comprising: a probe; a transmission beam former coupled to the probe; a reception beam former coupled to the probe; a display; and a controller, the controller coupled to the probe, the transmission beam former, the reception beam former and the display, the controller configured to: set four or more measurement points on a biological tissue to be inspected, the four or more measurement points include at least two first measurement points on a front surface of the biological tissue at a same first depth and at least two second measurement points on a back surface of the biological tissue at a same second depth, measure a first displacement of the biological tissue from at least one of the at least two first measurement points by using a measurement ultrasonic wave received by the probe and measure a second displacement of the biological tissue from at least one of the at least two second measurement points by using the measurement ultrasonic wave, calculate a first velocity of a first surface wave that propagates on the front surface of the biological tissue and a second velocity of a second surface wave that propagates on the back surface of the biological tissue, a ratio of the first velocity and the second velocity, and a phase difference of the first surface wave and the second surface wave based on the first displacement and the second displacement, wherein the first velocity and the second velocity are a first evaluation index and a second evaluation index, respectively, indicating a difference in a viscoelastic modulus, and the phase difference is a third evaluation index indicating a difference in physical properties of the biological tissue due to depth, wherein the controller is configured to: compare the first evaluation index, the second evaluation index and the third evaluation index to respective predetermined references values to determine respective determination results indicating whether the biological tissue functions properly, and superimpose and display the determination results for each of the four or more measurement points in a depth direction and a propagation direction of the biological tissue and respective magnitudes of the first evaluation index, the second evaluation index and the third evaluation index on an image of the biological tissue on the display by applying respective colors or patterns.
2. The ultrasonic diagnostic device according to claim 1, wherein the controller unit sets the at least four measurement points based on the image of the biological tissue.
3. The ultrasonic diagnostic device according to claim 1, wherein the transmission beam former is configured to transmit an ultrasonic wave to the biological tissue, wherein the reception beam former is configured to receive an echo returning from the biological tissue, wherein the transmission beam former transmits a first ultrasonic wave that generates radiation pressure in the biological tissue and a second ultrasonic wave, as the measurement ultrasonic wave, that is used to measure respective displacements of the at least two first measurement points and the at least two second measurement points, and wherein the controller is configured to measure the first displacement and the second displacement by using a reception signal of the reception beam former that receives an echo of the second ultrasonic wave.
4. The ultrasound diagnostic device according to claim 3, wherein the transmission beam former transmits a third ultrasonic wave that is used to generate the image of the biological tissue, wherein the controller is configured to: measure the first displacement and the second displacement by using a reception signal of the reception beam former, and generate the image of the biological tissue by using a reception signal output from the reception beam former unit that receives an echo of the third ultrasonic wave.
5. A method for evaluating physical properties of a biological tissue, the method comprising: setting four or more measurement points on the biological tissue to be inspected, the four or more measurement points include at least two first measurement points on a front surface of the biological tissue at a same first depth and at least two second measurement points on a back surface of the biological tissue at a same second depth; measuring, a first displacement of the biological tissue at the at least two first measurement points by using a measurement ultrasonic wave, and measuring a second displacement of the biological tissue at the at least two second measurement points by using the measurement ultrasonic wave; and calculating a first velocity of a first surface wave that propagates on the front surface of the biological tissue and a second velocity of a second surface wave that propagates on the back surface of the biological tissue, a ratio of the first velocity and the second velocity, and a phase difference of the first surface wave and the second surface wave based on the first displacement and the second displacement, wherein the first velocity and the second velocity are a first evaluation index and a second evaluation index, respectively, indicating a difference in a viscoelastic modulus, and the phase difference is a third evaluation index indicating a difference in physical properties of the biological tissue due to depth, wherein the method further comprises: comparing the first evaluation index, the second evaluation index and the third evaluation index to respective predetermined references values to determine respective determination results indicating whether the biological tissue functions properly, and superimposing and displaying the determination results for each of the four or more measurement points in a depth direction and a propagation direction of the biological tissue and respective magnitudes of the first evaluation index, the second evaluation index and the third evaluation index on an image of the biological tissue on a display by applying respective colors or patterns.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(14) Embodiments of the present invention will be described below with reference to the drawings.
(15) In the present embodiment, an index value indicating physical properties is calculated and a membranous tissue or a surface of the tissue is evaluated by mainly measuring a surface wave of elastic waves propagating in a biological tissue.
(16)
(17) As shown in
(18) The biological tissue 100 is an elastic body, which receives vibration by some method or generates vibration due to spontaneous movement of the biological tissue 100. An elastic wave propagates in the biological tissue 100. The elastic wave has a plurality of types, in which shear waves propagate inside the biological tissue 100 and surface waves propagate on the surface of the biological tissue 100. The surface wave proceeds with characteristic vibration and an amplitude thereof, which is smaller than that of the shear wave, becomes larger as the thickness of the biological tissue becomes smaller. In addition, in modes of the surface wave, there is a mode in which a phase relationship is different between both surfaces of a membrane.
(19) In the present embodiment, since the measurement point setting unit 31 sets the measurement point 301 on the surface of the biological tissue 100, the displacement measuring unit 32 measures a displacement of the measurement points 301 and thereby the displacement caused by the surface wave can be measured. The physical property evaluation unit 33 calculates an index value indicating physical properties of the biological tissue 100 using the measured displacement.
(20) A velocity of an elastic wave (mainly a surface wave) propagating through the biological tissue 100, a difference in velocity of an elastic wave propagating through two or more measurement points, a phase difference of an elastic wave propagating through two or more measurement points, an elastic modulus of the biological tissue 100, and the like can be used as the index value indicating physical properties.
(21) In this manner, the ultrasonic diagnostic device according to the present embodiment can accurately evaluate physical properties by measuring the surface wave when the biological tissue 100 is a membranous tissue or when the surface of the biological tissue 100 is an evaluation object.
(22) The physical property evaluation unit 33 can determine tissue properties of the biological tissue 100 or whether an organ (for example, a heart or a bladder) constituted by the biological tissue 100 functions well by using the calculated index value indicating the physical properties.
(23) When the biological tissue 100 is in a form of a membrane or a wall, a difference in velocity or phase of an elastic wave (mainly surface wave) propagating through measurement points on both surfaces of the biological tissue 100 in the form of a membrane or a wall can be used as the index value indicating physical properties. In this case, the measurement point setting unit 31 sets at least one measurement point 301 and at least one measurement point 311 respectively on both sides of the biological tissue 100 in a form of a membrane or a wall as shown in
(24) In addition, in the present embodiment, tissue properties of the biological tissue include presence or absence of a bonding state (for example, adhesion) between the biological tissue and the surrounding tissue, and it is possible to determine whether the biological tissue is bonded to the surrounding tissue. In this case, as shown in
(25) As shown in a left side view of
(26) On the other hand, as shown in a right side view of
(27) Therefore, the physical property evaluation unit 33 determines the correlation degree between the displacement waveforms of the two measurement points 301 and 302 or the correlation degree of the index values indicating physical properties of the two measurement points 301 and 302, thereby determining presence or absence of the bonding state (for example, adhesion) of the two biological tissues by a magnitude of the correlation degree.
(28) As shown in
(29) The measurement point setting unit 31 may set the measurement point 301 and the like on the surface of the biological tissue based on an image of the biological tissue 100. For example, the measurement point setting unit 31 can detect the surface of the biological tissue 100 or the boundary between the biological tissues 100-1 and 100-2 and set the measurement point 301 and the like by processing the image of the biological tissue 100.
(30) As shown in
(31) The physical property evaluation unit 33 may calculate the capacity of the space 100a at a plurality of time points during a period in which the biological tissue 100 stores liquid or gas in or discharges liquid or gas from the space 100a, calculate the index value indicating physical properties of the biological tissue 100 at the plurality of times, and determine whether the organ constituted by the biological tissue 100 functions well based on the capacity of the space 100a and a change in the index value. For example, as shown in
(32) Hereinafter, the configuration of the ultrasonic diagnostic device 1 according to the present embodiment will be described in more details. In the following description, a case where the biological tissue 100 is irradiated with focused ultrasonic waves to generate shear waves by acoustic radiation pressure will be described as an example.
(33) As shown in
(34) The control unit 30 includes the measurement point setting unit 31, the displacement measuring unit 32, the physical property evaluation unit 33, and an image generation unit 34. A memory 16 is connected to the control unit 30.
(35) In the control unit 30, functions of the measurement point setting unit 31, the displacement measuring unit 32, the physical property evaluation unit 33, and the image generation unit 34 may be implemented by software, or a part or all of the functions may be implemented by hardware. When implemented by software, the control unit 30 includes a computer system including a processor such as a Central Processing Unit (CPU) and a Graphics Processing Unit (GPU) and the CPU or the like reads and executes a program stored in advance in the memory 16 to implement functions of the measurement point setting unit 31, the displacement measuring unit 32, the physical property evaluation unit 33, and the image generation unit 34. When implemented by hardware, the control unit 30 includes a custom IC such as an Application Specific Integrated Circuit (ASIC) or a programmable IC such as an Field-Programmable Gate Array (FPGA) and a circuit may be designed to implement at least operations of the measurement point setting unit 31, the displacement measuring unit 32, the physical property evaluation unit 33, and the image generation unit 34.
First Embodiment
(36) An operation example of each unit of the ultrasound diagnostic device according to the first embodiment will be described with reference to
(37) As shown in
(38) The control unit 30 receives a position of a measurement range 300 of the biological tissue 100 from a user via the external input unit 13 as shown in
(39) The measurement point setting unit 31 extracts an external shape of the membranous biological tissue 100 and sets the measurement point 301 and the like in the vicinity of the surface by performing image processing such as binarization processing in the measurement range 300 of the image generated by the image generation unit 34 (Step 804). Here, two or more measurement points 301-1, 301-2, 311-1, and 311-2 are set respectively on both surfaces (front surface and back surface) of the membranous biological tissue 100 in order to calculate a surface wave velocity on both surfaces of the membranous biological tissue 100 as an evaluation value indicating physical properties. In addition to the velocity, a phase difference between surface waves propagating on both surfaces is also obtained as an evaluation value indicating physical properties.
(40) Next, as shown in
(41) The displacement measuring unit 32 transmits a measurement ultrasonic wave 24 to and receives the measurement ultrasonic wave 24 from the transmission and reception control unit 20, and measures a displacement of the tissue at positions such as the measurement points 301-1, 301-2, 311-1, and 311-2 disposed on both surfaces of the membranous biological tissue 100 (Steps 806 and 807). Accordingly, as shown in
(42) In
(43) The physical property evaluation unit 33 obtains velocities of elastic waves (mainly surface waves) V.sub.z0, V.sub.z1 propagating on a front surface side (depth z=z.sub.0) and a back surface side (z=z.sub.1) respectively, a ratio V.sub.z0/V.sub.z1, and a phase difference δ of elastic waves on the front surface side and the back surface side using the displacement of the measurement point 301 and the like on the front surface side and the back surface side obtained in Step 807. The measurement result of the displacement is three-dimensional information in a propagation direction x, a depth direction z, and a time direction t. The velocities can be calculated from a change in the propagation direction x and the time direction t, and the phase difference δ can be calculated by cross-correlation calculation between the depth direction z and the time direction t. The velocity V is an evaluation index indicating a difference in a viscoelastic modulus E, and the phase difference δ is an evaluation index indicating a difference in physical properties due to depth.
(44) Specifically, when positions of the measurement points 301-1 and 301-2 on the front surface side (depth z=z.sub.0) in an in-plane direction x of the biological tissue 100 are x=x.sub.0 and x=x.sub.1 respectively, the velocity V.sub.z0 of the elastic wave propagating on the front surface side is expressed by Equation (1) if the displacement u at a time point t is expressed by u (x.sub.0, z.sub.0, t) and u (x.sub.1, z.sub.0, t) respectively. In Equation (1), Δ[a, b] indicates a difference between a and b, or a result of the cross-correlation calculation.
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(46) Similarly, when positions of the measurement points 311-1 and 311-2 on the back surface side (depth z=z.sub.1) of the biological tissue 100 in the direction x are x=x.sub.0 and x=x.sub.1 respectively, the displacement u of the measurement points 311-1 and 311-2 on the back surface side at the time point t is represented by u (x.sub.0, z.sub.1, t) and u (x.sub.1, z.sub.1, t) respectively, and the velocity V.sub.z1 of the elastic wave propagating on the back surface side is expressed by Equation (2).
(47)
(48) The physical property evaluation unit 33 obtains the velocities V.sub.z0 and V.sub.z1 of elastic waves on the front surface side and the back surface side from the Equations (1) and (2), and further calculates the speed ratio V.sub.z0/V.sub.z1 (Steps 808 and 809). The physical property evaluation unit 33 may obtain the elastic modulus E by Equation (3).
E=3ρV.sup.2 (3)
(49) In Equation (3), v is a velocity obtained by Equation (1) or Equation (2), and ρ is a predetermined density.
(50) As shown in
δ=Δ[u(x.sub.0,z.sub.0,t),u(x.sub.0,z.sub.1,t)] (4)
(51) The physical property evaluation unit 33 determines whether the organ constituted by the biological tissue 100 functions well using the calculated index value (speed V, speed ratio, phase difference δ) indicating physical properties (Step 812). For example, whether the organ constituted by the biological tissue 100 functions well is determined by comparing a predetermined reference value for each organ with the calculated index value. For example, in an organ in which the tissue is preferably soft and likely to be deformed, when the viscoelastic modulus E obtained from the velocity V indicates that the tissue is softer than the reference value, it is determined that the organ functions well, and conversely, when the viscoelastic modulus E indicates that the tissue is harder than the reference value, it is determined that the organ does not function well. As shown in
(52) Further, when the biological tissue 100 is an organ having the space 100a therein, in Step 812, the physical property evaluation unit 33 may acquire the image generated in step 802 in time series, obtain the capacity by obtaining an area of the space 100a, and plot the index value (for example, speed V) at each time point and the capacity as shown in
(53) As described above, the ultrasonic diagnostic device according to the first embodiment can obtain and display an index value indicating physical properties of the membranous biological tissue 100. Furthermore, it is possible to determine and display whether the organ constituted by the biological tissue 100 functions well.
Second Embodiment
(54) An operation example of each unit of an ultrasound diagnostic device according to the second embodiment will be described with reference to
(55) Similar to Steps 801 to 803 in the flow of
(56) Next, similarly to Steps 805 to 806 in
(57) Similar to Steps 808 and 809 in
(58)
(59) Further, by the same processing as in Steps 810 and 811 of
δ.sub.i-j=Δ└u(x.sub.0,z.sub.it),u(x.sub.0,z.sub.i,t)┘ (6)
(60) Further, the physical property evaluation unit 33 obtains amplitudes A.sub.z0, A.sub.z1, and A.sub.z2 of the displacements u.sub.0 (x.sub.0, z.sub.0, t), u.sub.1 (x.sub.0, z.sub.1, t), and u.sub.2 (x.sub.0, z.sub.2, t) of the measurement points 301, 303, and 302 and obtains corresponding ratios A.sub.z0/A.sub.z1, A.sub.z0/A.sub.z2, and A.sub.z1/A.sub.z2 (Steps 1112 and 1113).
(61) The physical property evaluation unit 33 uses calculated index values (velocity V, velocity ratio, phase difference δ, amplitude A, and amplitude ratio) representing physical properties to determine whether the boundaries of the biological tissues 100-1 and 100-2 are adhered (the boundary layer 100-3 is a viscoelastic membrane) or not (the boundary layer 100-3 is a liquid membrane) (Step 1114). In the case of adhesion, since the measurement points 301, 303 and 302 are integrated, displacements of the measurement points are highly correlated, as shown in
(62) As shown in
(63) Elastic waves (mainly surface waves here) generated in the biological tissue 100 includes a reflected wave that is reflected by a structure such as fibers or fat of the biological tissue 100 and propagates in a direction opposite to a direction of interest, and a refracted wave, a diffracted wave, or a scattered wave that is refracted, diffracted, or scattered by the structure, in addition to a main component (a transmitted wave) propagating in the direction of interest. Therefore, when the velocity of the entire elastic wave is measured at the measurement point 301 or the like set on the surface, the reflected wave, the refracted wave, the diffracted wave, or the scattered wave causes the velocity of the main component to be underestimated. Therefore, the displacement measuring unit 32 may extract the main component to reduce the influence of the reflected wave, the refracted wave, the diffracted wave, and the scattered wave and measure the velocity of the main component with high accuracy.
(64) Specifically, the displacement measuring unit 32 obtains a frequency distribution of the displacement, and further selects a wave component having a predetermined intensity (amplitude) or more on a frequency basis. Therefore, the displacement measurement unit 32 can separate and extract the velocity component centering on the surface wave of the transmitted wave which is a main component from a reflected wave, a refracted wave, a diffracted wave, and a scattered wave.
(65) The processing will be described in more detail with reference to
(66) Next, the displacement measuring unit 32 performs a two-dimensional Fourier transform (2D-FFT) on the spatio-temporal data with the time t and the propagation direction (x direction) in
(67) The displacement measuring unit 32 selects a wave component having a predetermined intensity or more from the frequency power distribution in
(68) The wave component of the velocity centered on the transmitted wave which is the main component 61 of the frequency power distribution (
(69) Next, the displacement measuring unit 32 performs two-dimensional inverse Fourier transform (2D-IFFT) on the frequency power distribution (
(70) The displacement measuring unit 32 repeats the processing of
(71) According to the present embodiment described above, by measuring the surface wave, the membrane-like tissue in the biological body, properties of the surface of the tissue, and presence or absence of the function and bonding (for example, adhesion) of the organ constituted by the tissue can be evaluated with high accuracy by ultrasonic waves.
(72) By using the ultrasonic diagnostic device according to the present embodiment, a doctor can detect an abnormality of a bladder or a heart early. In addition, since it is possible to determine the presence or absence of bonding (for example, adhesion) in the biological body, a device route can be confirmed before the laparoscopic surgery and the physical burden on the patient can be reduced.
REFERENCE SIGN LIST
(73) 1 ultrasonic diagnostic device 10 probe 13 input unit 15 display unit 16 memory 20 transmission and reception control unit 21 transmission beam former 22 reception beam former 30 control unit 31 measurement point setting unit 32 displacement measuring unit 33 physical property evaluation unit 34 image generation unit 100 inspection object (biological tissue)