A Sensitive Long Short-Term Memory Method Based on Differentiation of Input Changes

A long-term and short-term memory, sensitive technology, applied in the direction of biological neural network model, calculation, neural architecture, etc., can solve problems such as inability to achieve real-time performance, and achieve the effect of improving real-time analysis, improving real-time performance, and increasing responsiveness.
CN110390386BActive Publication Date: 2022-07-29NANJING UNIV OF INFORMATION SCI & TECH

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NANJING UNIV OF INFORMATION SCI & TECH
Publication Date
2022-07-29

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Abstract

The invention discloses a sensitive long-term and short-term memory method based on input variation differentiation. In order to improve the traditional LSTM neural network's ability to respond to short-term information, a neural unit of the long-term and short-term memory network with increased information sensitivity is added, which can It greatly increases its ability to respond to short-term information, improves the real-time performance of its application, and enables more complete real-time analysis, further analysis of micro-actions and other contents, and improves the application value.
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Description

technical field

[0001] The invention relates to the field of long and short-term memory networks, in particular to a sensitive long-term and short-term memory method based on input variation differentiation. Background technique

[0002] Artificial intelligence is one of the three important disciplines in the 21st century, and it is an important support for national science, economy and people's livelihood. Among them, long short-term memory network (LSTM) is an important algorithm for memory-based recognition, which has been recognized in many aspects including semantics, actions, texts, etc., and has good value.

[0003] The existing long-term and short-term memory network still has a major problem, that is, it adopts the method of long-term and short-term memory to improve the analysis ability of information in the long-term sequence of the entire video, but it does not respond to short-term information at all. This makes the existing long and short-term memory network o...

Claims

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