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GAS RECOGNITION METHOD BASED ON COMPRESSIVE PERCEPTION THEORY

机译:基于压缩感知理论的气体识别方法

摘要

A gas recognition method based on a compressive perceiving theory, the method comprising: collecting compressed data in an under-sampling manner; reconstructing the collected compressed data to obtain reconstructed data; using the reconstructed data to train a back-propagation neural network and saving the trained back-propagation neural network; inputting data to be detected into the trained back-propagation neural network, and the trained back-propagation neural network recognizing the data to be detected to realize qualitative recognition of the gas. The method solves the problems of large volumes of transmission storage data and imprecise recognition in current gas detection, and achieves the target of using a small volume of data to realize precise qualitative recognition.
机译:一种基于压缩感知理论的气体识别方法,该方法包括:以欠采样的方式收集压缩数据;重建收集到的压缩数据以获得重建数据;使用重建的数据训练反向传播神经网络,并保存训练后的反向传播神经网络;将待检测数据输入训练后的反向传播神经网络,训练后的反向传播神经网络识别待检测数据,实现气体的定性识别。本发明解决了目前气体检测中传输存储数据量大,识别不准确的问题,达到了使用少量数据实现精确定性识别的目的。

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