CONVEX-LINEAR BI-PLANE PROBE AND ITS APPLICATION METHOD IN PROSTATE VOLUME CALCULATION
20230386040 · 2023-11-30
Assignee
Inventors
- Delai LI (Shantou, CN)
- Liexiang FAN (Shantou, CN)
- Jinhao LIN (Shantou, CN)
- Zehang CAI (Shantou, CN)
- Bin LI (Shantou, CN)
- Yu WANG (Shantou, CN)
- Shutian SU
- Zhonghong WU (Shantou, CN)
- Xurui ZENG (Shantou, CN)
- Peifeng CHEN (Shantou, CN)
Cpc classification
International classification
Abstract
Disclosed are a convex-linear bi-plane probe and its application method in prostate volume calculation. The present invention adopts the following technical solution: comprising a probe housing and a probe assembly contained in the probe housing, the probe assembly comprising a linear probe and a convex probe contained at the end of the linear probe, with the linear element inside the linear probe and the convex element inside the convex probe connected as one piece. The benefits of the present invention are that: by setting a convex probe at the end of the linear probe, and by connecting the linear element and the convex element as one, the volume of the probe can be significantly reduced. Furthermore, the use of convex-linear biplane probe and its integrated design collect two orthogonal ultrasound images of the prostate, which improves the accuracy of prostate volume calculation.
Claims
1. An application method of a convex-linear biplane probe in prostate volume calculation, comprising: S11, using the convex-linear bi-plane probe to acquire ultrasound images of the prostate, and acquiring ultrasound images by the convex probe and the linear probe at the same time; among them, images acquired by the convex probe and images collected by the linear probe are orthogonal in the actual space; during the image acquisition process, the convex-linear bi-plane probe starts to rotate from the edge position of one end of the prostate and pans forward to the edge position of the other end of the prostate, meanwhile the displacement sensor and angle sensor are set on the convex-linear bi-plane probe to record the motion information of the probe during image acquisition; wherein the linear element inside the linear probe and the convex element inside the convex probe are connected as one, the linear element is vertically arranged, the convex element horizontally arranged, and the thickness of the convex element is not equal to the thickness of the linear element, so that the scanning frequency of the convex probe and the line array probe are different; among them, the linear element and the convex element are thinned by a T-shaped crystal through the crystal thinning process to the linear element or convex element, so that the thickness of the linear element and the convex element is different, and the vibration frequency of the linear element and the convex element is different; moreover, the fine laser cutting process is used to cut the T-shaped crystal in the two array directions of convex array probe and linear array probe; S12, collecting the prostate ultrasound images of different frequencies by the convex probe and reconstructing the linear probe in three dimensions to obtain two prostate models according to the motion information of the probe in step S11, and the two prostate models are compounded to form an accurate prostate model; and S13, calculating the volume of the prostate according to the accurate prostate model obtained in step S12.
2. The application method according to claim 1, wherein the motion information of the probe is learnt using the convex-linear bi-plane probe based on the image information acquired by the probe and is compared with the actual motion information acquired by the displacement sensor and the angle sensor in step S11, until the consistency between the motion information of the probe output by the neural network model and the actual detected probe motion information complies with set requirements, wherein the subsequent operation does not set up the displacement sensor and the angle sensor on the convex-linear bi-plane probe to collect the probe motion information, but directly uses the output of the neural network model probe motion information.
3. The application method according to claim 1, wherein an angle between the convex array and the linear array is 90 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTIONS OF THE EMBODIMENTS
[0027] Embodiment 1, referring to
[0028] In the present embodiment, the probe assembly 2 in the convex-linear biplane probe includes a linear probe 21 and a convex probe 22, the convex probe 22 is contained at the end of the linear probe 21, the convex probe 22 and the linear probe 21 may perform ultrasound image acquisition at different angles at the same time, so that more ultrasound image information can be collected at one time, effectively improving the efficiency of prostate image acquisition, and because the convex element 24 of the convex probe 22 and the linear element 23 of the linear probe 21 are connected, The convex probe 22 and the linear probe 21 can be seamlessly connected, which not only reduces the overall volume of the probe, but also minimizes the depth of insertion into the rectum during the exam process, and reduces the discomfort caused to the patient.
[0029] Specifically, the linear element is vertically arranged, the convex element horizontally arranged, which makes the image acquired by the convex probe 22 and the linear probe 21 orthogonal, therefore the prostate can be inspected more accurately. Moreover the thickness of the convex element 24 and the thickness of the linear element 23 is not equal, for the crystal of the same material, the crystal vibration frequencies of different thicknesses is different, and the scanning frequencies of the probe is also different, so that the frequencies of the image acquired by the convex probe 22 and the linear probe 21 are also different. In this way, the images of different frequencies collected by the convex array probe 22 and the linear array probe 21 can be used for compound comparison to improve the accuracy of the probe for prostate exams.
[0030] Wherein the linear element 23 and the convex element 24 are thinned by a T-shaped integrated crystal through the crystal thinning process to the linear element 23 or convex element 24 (so that the thickness of the linear element and the convex element is different). Moreover, the fine laser cutting process is used to cut the T-shaped crystal in the two array directions of convex array probe 22 and linear array probe 21. Generally, the thickness of linear element 23 is smaller than the thickness of convex element 24, which makes the vibration frequency of linear element 23 higher than convex element 24.
[0031] Referring to
[0032] Embodiment 2, referring to
[0037] Embodiment 3, referring to
[0041] Specifically, the scanning frequencies of the convex probe and the line probe of the convex-linear biplane probe in the S11 are different. Due to the different scanning frequencies of convex probe and linear probe, the frequencies of image acquisition during image acquisition of convex probe and linear probe is also different, therefore when the two prostate models are obtained after three-dimensional reconstruction of the images acquired by the convex probe and linear probe in step S12, a more accurate prostate model can be obtained, thereby improving the accuracy of prostate volume calculation.
[0042] Also, in step S11, using the convex-linear bi-plane probe to learn the motion information of the probe based on the image information acquired by the probe and compare it with the actual motion information acquired by the displacement sensor and the angle sensor, until the consistency between the motion information of the probe output by the neural network model and the actual detected probe motion information complies with the set requirements. The subsequent operation does not need to set up the displacement sensor and the angle sensor on the convex-linear bi-plane probe to collect the probe motion information, but directly use the output of the neural network model probe motion information.
[0043] Certainly the embodiments above are preferred for the present invention only, but not intended to restrict the scope of use of the present invention. Therefore, any equivalent changes made on the principles of the present invention should be included in the protection scope of the present invention.