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Pyramid network Chinese herbal medicine identification method based on attention mechanism

A recognition method, a technology of Chinese herbal medicine, applied in the field of recognition of Chinese herbal medicine in the pyramid network, can solve the problems of discontinuity in parameter optimization, inconvenient promotion and use, and limited expression ability

Inactive Publication Date: 2019-08-09
SOUTH CHINA UNIV OF TECH
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Problems solved by technology

The former often requires specific equipment to extract the characteristics of Chinese herbal medicines, which is not easy to promote and use; while the existing methods of the latter still use traditional image features for recognition. These relatively single traditional features have limited expressive ability, thus limiting the recognition effect
Moreover, the feature extraction and learning process of the above methods are separated, which brings the discontinuity of parameter optimization

Method used

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  • Pyramid network Chinese herbal medicine identification method based on attention mechanism
  • Pyramid network Chinese herbal medicine identification method based on attention mechanism
  • Pyramid network Chinese herbal medicine identification method based on attention mechanism

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Embodiment Construction

[0055] The implementation of the present invention will be further described in detail below in conjunction with the embodiments and drawings, but the implementation of the present invention is not limited thereto. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without making creative efforts belong to the protection scope of the present invention.

[0056] The present embodiment provides a method for identifying Chinese herbal medicine based on a pyramid network of an attention mechanism, the flow chart of the method is as follows image 3 shown, including the following steps:

[0057] S1. Use the collection device to collect Chinese herbal medicine image data and label its category labels as input; then preprocess the labeled Chinese herbal medicine images to make a Chinese herbal medicine training set and a Chinese herbal medicine test set;

[0058] The data set used in this example covers 98 common types of Ch...

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Abstract

The invention discloses a pyramid network Chinese herbal medicine identification method based on an attention mechanism, which comprises the following steps: 1) constructing a Chinese herbal medicinedata set, and making a Chinese herbal medicine training set and a Chinese herbal medicine test set; 2) constructing a feature fusion structure block based on a channel attention mechanism, and introducing a competition attention module; 3) adding a spatial attention mechanism to the feature fusion structure block of the pyramid network, adjusting the two information flows by using a spatial collaborative attention module, and fusing the two adjusted information flows as output; 4) constructing a pyramid network based on an attention mechanism, and training by using a Chinese herbal medicine training set; and 5) transmitting the pictures in the Chinese herbal medicine test set to the trained network model to identify the Chinese herbal medicine types corresponding to the pictures, thereby improving the Chinese herbal medicine identification accuracy and performance, assisting related industrial personnel to identify the Chinese herbal medicines, and facilitating non-professionals to identify the Chinese herbal medicines.

Description

technical field [0001] The invention relates to the application technical field of image recognition in the computer field and Chinese herbal medicine recognition in the field of traditional Chinese medicine, in particular to a Chinese herbal medicine recognition method based on a pyramid network of an attention mechanism. Background technique [0002] Image classification and recognition technology is based on digital images, extracting features from images to identify and judge the category of images. Deep convolutional neural networks have achieved great success in the field of image processing [C.Szegedy, W.Liu, Y.Jia, P.Sermanet, S.Reed, D.Anguelov, D.Erhan, V.Vanhoucke, and A. Rabinovich.Going deeper with convolutions.CVPR,2015.], it can automatically model and extract features from complex image data sets, so it has been widely used in target detection [R.Girshick.Fast r-cnn.Proceedings of the IEEE international conference on computer vision, 2015] and image recognit...

Claims

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Application Information

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IPC IPC(8): G06K9/62G06N3/04
CPCG06N3/045G06F18/253G06F18/214
Inventor 文贵华徐映雪庄奕珊
Owner SOUTH CHINA UNIV OF TECH
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