Man-machine coordination nodule risk rating system based on ultrasonic data

A technology of ultrasound data and human-machine collaboration, applied in the information field, can solve problems such as difficulty in understanding by doctors, insufficient security, and failure of manual review in the recognition process, and achieve the effects of reducing training data requirements, high robustness, and low error rate

Active Publication Date: 2019-03-01
PEKING UNIV
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  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

However, the disadvantages of this solution are: both traditional features and deep learning features are difficult to be understood by doctors, the identification process cannot be manually reviewed, and the security is insufficient

Method used

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  • Man-machine coordination nodule risk rating system based on ultrasonic data
  • Man-machine coordination nodule risk rating system based on ultrasonic data

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Embodiment Construction

[0021] refer to figure 1 , a human-machine collaborative nodule risk rating system based on ultrasound data of the present invention, comprising a nodule area extraction module (1), a nodule feature extraction module (2), an interactive feature modification module (3), and a comprehensive evaluation module (4).

[0022] Wherein, the nodule area extraction module (1) is connected with the ultrasound acquisition instrument, reads DICOM ultrasound data from the equipment, and the received ultrasound data includes B-mode ultrasound image, elastic ultrasound data, Doppler ultrasound data, contrast ultrasound data and Ultra-high resolution ultrasound data. The nodule region is predicted by the target detection neural network as the initial region of interest. Compute the aspect ratio of the initial region of interest. The ultrasound data in the initial region of interest is taken out, and the nodule edge in the ultrasound data in the initial region of interest is accurately extra...

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Abstract

The present invention discloses a man-machine coordination nodule risk rating system based on ultrasonic data, and relates to the technical field of information. The system comprises: a nodule area extraction module, a nodule feature extraction module, an interaction feature correction module, and a comprehensive assessment module. The nodule area extraction module is configured to screen the ultrasonic data to extract nodule area data to be assessed and record area features of an area to be assessed; the nodule feature extraction module is configured to perform directional extraction of clinical features for the nodule area data; the interaction feature correction module is configured to receive the deletion and correction for the clinical feature result by the user; and the comprehensiveassessment module is configured to read the area features and the clinical features of the clinical features based on the area to be assessed to give the nodule risk scoring and rating.

Description

technical field [0001] The invention belongs to the field of information technology, and in particular relates to a human-machine collaborative nodule risk rating system based on ultrasound data, which can be used for quantitative evaluation of nodules in ultrasound data. Background technique [0002] Ultrasound images are an important basis for the evaluation of many nodules, such as the thyroid. At present, the evaluation of ultrasound images of various nodules relies on the subjective judgment given by the sonographer through experience with human eyes, and the repeatability and accuracy are heavily dependent on experience. Although there are some semi-quantitative evaluation indicators, they still have strong subjectivity. Physicians often use some subjective narratives in mutual communication and learning, which are prone to misunderstanding. Therefore, there is an urgent need for an efficient, stable, and repeatable quantitative evaluation tool. [0003] The current...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G16H50/20G16H50/70G06N3/02
CPCG06N3/02G16H50/20G16H50/70Y02A90/10
Inventor 张诗杰杜华睿张珏金壮朱亚琼谢芳张明博罗渝昆
Owner PEKING UNIV
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