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機器學習數據與知識環境的統一框架

活動信息

  • 開始時間:2024-02-07 09:00:00
  • 活動地點:創新園大廈A0702
  • 主講人:Witold Pedrycz

活動簡介

The objective of this talk is to identify the challenges and develop a unique and comprehensive setting of data-knowledge environment in the realization of the development of ML models. We review some existing directions including concepts arising under the name of physics informed ML. Key ways of elicitation and accommodation of domain knowledge are investigated. An impact on the structuralization of the ML architectures and the ensuing implications on the interpretability, explainability and credibility as well as semantic stability are studied. We investigate the representative topologies of ML models identifying data and knowledge functional modules and interactions among them. The detailed considerations on the facet of explainability including new ideas of semantic stability are covered. We also elaborate on the central role of information granularity in this area.

主講人介紹

Witold Pedrycz是加拿大阿爾伯塔大學電氣與計算機工程系教授、加拿大皇家學會院士和波蘭科學院外籍院士,主要從事計算智能、粒計算和機器學習等領域的研究。在這些領域,Witold教授取得了杰出的成果,并獲得了多個獎項,包括:IEEE系統、人與控制論學會的Norbert Wiener獎、IEEE加拿大計算機工程獎章、歐洲軟計算中心的Cajastur軟計算獎、Killam獎、IEEE計算智能學會的模糊先鋒獎,以及IEEE系統、人與控制論學會的2019年功績服務獎。Witold教授也是國際SCI期刊Information Sciences、 WIREs Data Mining and Knowledge Discovery (Wiley),、 Int. J. of Granular Computing (Springer) 和 J. of Data Information and Management (Springer)等期刊的主編。Witold教授應邀為我校研究生做《A Unified Framework of Data and Knowledge Environment of Machine Learning》的主題報告,通過該報告擴大研究領域和視野,了解國際機器學習、計算智能等方向的最新研究進展,更好的促進科研工作。
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