Image segmentation method and device, equipment and storage medium

An image segmentation and image sample technology, applied in the field of artificial intelligence, can solve the problems of lack of liver images, low accuracy of segmentation results, over-fitting of image segmentation models, etc., to ensure segmentation performance, avoid network over-fitting problems, and ensure segmentation. The effect of precision

Pending Publication Date: 2021-12-21
TENCENT TECH (SHENZHEN) CO LTD
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Problems solved by technology

[0004] However, due to the general lack of liver images with high-quality blood vessel annotations, related technologies can only rely on a small number of liver images with high-quality blood vessel annotations to train the image segmentation model, resulting in over-fitting of the image segmentation model and low accuracy of segmentation results

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  • Image segmentation method and device, equipment and storage medium
  • Image segmentation method and device, equipment and storage medium
  • Image segmentation method and device, equipment and storage medium

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Embodiment Construction

[0034] In order to make the purpose, technical solution and advantages of the present application clearer, the implementation manners of the present application will be further described in detail below in conjunction with the accompanying drawings.

[0035] Artificial Intelligence (AI) is a theory, method, technology and application system that uses digital computers or machines controlled by digital computers to simulate, extend and expand human intelligence, perceive the environment, acquire knowledge and use knowledge to obtain the best results. In other words, artificial intelligence is a comprehensive technique of computer science that attempts to understand the nature of intelligence and produce a new kind of intelligent machine that can respond in a similar way to human intelligence. Artificial intelligence is to study the design principles and implementation methods of various intelligent machines, so that the machines have the functions of perception, reasoning and de...

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Abstract

The invention discloses an image segmentation method and device, equipment and a storage medium, and relates to the technical field of artificial intelligence. The method comprises the following steps: acquiring a first image sample and a second image sample, wherein the quality of annotation data of the first image sample is higher than that of annotation data of the second image sample; performing segmentation processing on the first image sample and the second image sample through a student network and a teacher network to obtain a student segmentation result of the first image sample, a student segmentation result of the second image sample, a teacher segmentation result of the first image sample and a teacher segmentation result of the second image sample; determining training loss according to the annotation data of the first image sample and the segmentation result; and training the student network based on the training loss. The image information is extracted from the samples with the low-quality labels through the teacher network, and the student network is trained, so that the problem of model overfitting caused by lack of the samples with the high-quality labels is avoided.

Description

technical field [0001] The embodiments of the present application relate to the technical field of artificial intelligence, and in particular to an image segmentation method, device, equipment, and storage medium. Background technique [0002] With the development of artificial intelligence technology, developers try to achieve the task of segmenting blood vessels in organs through deep learning technology. [0003] Taking the liver vessel segmentation task as an example, related technologies train the image segmentation model based on liver images with high-quality vessel annotations, so as to obtain an image segmentation model that can be used to segment liver vessels. [0004] However, due to the general lack of liver images with high-quality blood vessel annotations, related technologies can only rely on a small number of liver images with high-quality blood vessel annotations to train the image segmentation model, resulting in over-fitting of the image segmentation mode...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06T7/00G06T7/11G06K9/62G06N20/00
CPCG06T7/0012G06T7/11G06N20/00G06T2207/20081G06T2207/30056G06F18/214
Inventor 徐哲卢东焕魏东马锴郑冶枫
Owner TENCENT TECH (SHENZHEN) CO LTD
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