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Soft sensor development using PLSR based multi-kernel ELM

  • Qun Xiong Zhu
  • , Xiao Han Zhang
  • , Huihui Gao
  • , Zhi Qiang Geng
  • , Yongming Han
  • , Yan Lin He
  • , Yuan Xu

研究成果: Conference contribution同行評審

1 引文 斯高帕斯(Scopus)

摘要

It takes many efforts to establish accurate soft sensor models because of the increasing complication of processes. For the sake of solving this problem, a novel multi-kernel extreme learning machine based on partial least square regression (PLSR) is proposed. In the proposed method, different kernel functions are used for mapping the space of process data to highly nonlinear space. The partial least square regression is adopted to obtain the relationship between the nonlinear space and output layer. To validate the performance of the proposed model, a case study using the High Density Polyethylene process is executed. Simulation results confirm the performance of the proposed model.

原文English
主出版物標題2019 12th Asian Control Conference, ASCC 2019
發行者Institute of Electrical and Electronics Engineers Inc.
頁面829-832
頁數4
ISBN(電子)9784888983006
出版狀態Published - 6月 2019
對外發佈
事件12th Asian Control Conference, ASCC 2019 - Kitakyushu-shi, Japan
持續時間: 9 6月 201912 6月 2019

出版系列

名字2019 12th Asian Control Conference, ASCC 2019

Conference

Conference12th Asian Control Conference, ASCC 2019
國家/地區Japan
城市Kitakyushu-shi
期間9/06/1912/06/19

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