Automatic searching method and device for precision and decomposition rank of a recurrent neural network

A cyclic neural network and automatic search technology, applied in the field of automatic search methods and devices

Pending Publication Date: 2021-05-07
SOUTH UNIVERSITY OF SCIENCE AND TECHNOLOGY OF CHINA
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  • Application Information

AI Technical Summary

Problems solved by technology

If the model tensor is decomposed using the manually set decomposition rank, it will take a lot of manpower and material resources to obtain the optimal decomposition rank

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  • Automatic searching method and device for precision and decomposition rank of a recurrent neural network
  • Automatic searching method and device for precision and decomposition rank of a recurrent neural network
  • Automatic searching method and device for precision and decomposition rank of a recurrent neural network

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Embodiment Construction

[0024] The application will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described here are only used to explain the present application, but not to limit the present application. In addition, it should be noted that, for the convenience of description, only some structures related to the present application are shown in the drawings but not all structures.

[0025] Figure 1a It is a schematic flow chart of the automatic search method for the accuracy and decomposition rank of the cyclic neural network according to the first embodiment of the application. This embodiment can be applied to quickly determine the optimal decomposition rank of the super network and the optimal quantization value of each layer of the network through the server and other equipment In the case of this method, the method can be executed by an automatic search device for the accuracy of the cyc...

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Abstract

The embodiment of the invention discloses an automatic searching method and device for precision and decomposition rank of a recurrent neural network, and the method comprises the steps: initializing a super network, and carrying out the following operation: sampling a sub-network from the super network, and carrying out the performance evaluation of the sampled sub-network; automatically searching a target hyper-parameter combination according to a performance evaluation result, and updating hyper-parameters of the hyper-network according to the target hyper-parameter combination; aiming at the super network after the hyper-parameter adjustment, returning to execute the sub-network sampling operation, and performing the performance evaluation operation on the sampled sub-network; and outputting the current decomposition rank of the super network and the quantized value of each layer of network in response to the condition that the performance evaluation result meets a preset condition. In the embodiment of the invention, according to the performance evaluation result, the decomposition rank of the whole super network and the quantized value corresponding to each layer of network are not searched and updated, so that the purpose of quickly searching the optimal decomposition rank required by model compression and the optimal quantized value of each layer of network is achieved.

Description

technical field [0001] This application relates to the technical field of artificial intelligence, for example, to an automatic search method and device for the accuracy and decomposition rank of a recurrent neural network. Background technique [0002] Deep learning can automatically learn useful features, without relying on feature engineering, and has achieved results that surpass other algorithms in image recognition, video understanding, natural language processing and other tasks. This success is largely due to volume The proposal of Convolution neural network (CNN) and recurrent neural network (Recurrent neural network, RNN). RNN is a type of recursive neural network that takes sequence data as input, recurses in the evolution direction of the sequence, and connects all nodes (recurrent units) in a chain. It is often used to analyze time series information (expression, action, voice, etc.) model middle. However, with the development of artificial intelligence, the c...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06N3/04G06N3/08
CPCG06N3/08G06N3/047
Inventor 朱雪娟常成管子义杜来民李凯毛伟余浩
Owner SOUTH UNIVERSITY OF SCIENCE AND TECHNOLOGY OF CHINA
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