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A T-CNN Time Series Classification Method
[post]
2021
unpublished
Time series classification is a basic task in the field of streaming data event analysis and data mining. The existing time series classification methods have the problems of low classification accuracy and low efficiency. To solve these problems, this paper proposes a T-CNN time series classification method based on a Gram matrix. Specifically, we perform wavelet threshold denoising on time series to filter normal curve noise, and propose a lossless transformation method based on the Gram
doi:10.21203/rs.3.rs-1107199/v1
fatcat:mugldpinqreevp56kb2k7v6rvq