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LSTM Fully Convolutional Networks for Time Series Classification

IEEE Access · 2017 · Vol. 6 · pp. 1662–1669
Fazle KarimSomshubra MajumdarHoushang DarabiShun Chen

Abstract

Fully convolutional neural networks (FCNs) have been shown to achieve the state-of-the-art performance on the task of classifying time series sequences. We propose the augmentation of fully convolutional networks with long short term memory recurrent neural network (LSTM RNN) sub-modules for time series classification. Our proposed models significantly enhance the performance of fully convolutional networks with a nominal increase in model size and require minimal preprocessing of the data set. The proposed long short term memory fully convolutional network (LSTM-FCN) achieves the state-of-the-art performance compared with others. We also explore the usage of attention mechanism to improve time series classification with the attention long short term memory fully convolutional network (ALSTM-FCN). The attention mechanism allows one to visualize the decision process of the LSTM cell. Furthermore, we propose refinement as a method to enhance the performance of trained models. An overall analysis of the performance of our model is provided and compared with other techniques.

Time Series Analysis and ForecastingMusic and Audio ProcessingAnomaly Detection Techniques and ApplicationsComputer scienceConvolutional neural networkPreprocessorArtificial intelligenceRecurrent neural networkTime seriesTask (project management)Long short term memorySeries (stratigraphy)Set (abstract data type)
Citations
1,413
FWCI
59.25
field-weighted impact
References
50
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100%
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Cited by
Multivariate LSTM-FCNs for time series classification
Neural Networks · 2019 · 1,052 citations
References
Long Short-Term Memory
Neural Computation · 1997 · 95,078 citations
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