Control Chart Pattern Recognition Based on Convolution Neural Network

Author:

Miao Zhihong,Yang Mingshun

Publisher

Springer Singapore

Reference9 articles.

1. Yang, W. A., Zhou, W.: Identification and quantification of concurrent control chart patterns using extreme-point symmetric mode decomposition and extreme learning machines [J]. Neuro computing, Volume 147, 5 January, Pages 260–270 (2015).

2. Pham, D. T.: Estimation and generation of training patterns for control chart pattern Recognition [J]. Computers & Industrial Engineering, Volume 95, Pages 72–82 (2016).

3. Guo, X. J., Chen, L.: Hierarchical adaptive deep convolution neural network and its application to bearing fault diagnosis [J]. Measurement 93, 490–502 (2016).

4. Shi, Y., Shi, Y. Q.: Production pattern recognition based on the distributed LDA algorithm under the background of big data. [J]. Manufacturing Automation, Volume 39, 3, Pages 24–28 (2016).

5. Hassan A., Shariff Nabi Baksh, M., Shaharoun, A. M.: Improved SPC chart pattern recognition using statistical features [J]. International Journal of Production Research, 41(7):1587–1603 (2010).

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