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报告题目:
Belief Rule Based Systems and Optimal Learning via Evidential Reasoning
 报告人:
Prof. Jian-Bo Yang
英国曼彻斯特大学商学院 教授
报告时间:
2006-11-12 15:30
报告地点:
清华大学中央主楼 407 会议室室
主办单位:
自动化系学术委员会
  简介:

In this presentation, a generic Rule-base Inference Methodology using the Evidential Reasoning approach (RIMER) will be presented. A new knowledge representation scheme in a rule-base is discussed first using a belief structure. In this scheme, a rule-base is designed with belief degrees embedded in all possible consequents of a rule. Such a rule-base is capable of capturing vagueness, incompleteness and nonlinear causal relationships whilst traditional IF-THEN rules can be represented as a special case. Other knowledge representation parameters such as the weights of both attributes and rules are also investigated in the scheme. In an established rule-base, an input to an antecedent attribute is transformed into a belief distribution. Subsequently, inference in such a rule-base is implemented using the evidential reasoning approach. The scheme is further extended to inference in hierarchical rule bases.

 
报告人简介: Jian-Bo Yang(杨剑波)教授1987年毕业于上海交通大学,获博士学位, 是首届中国青年科技奖获得者,目前任英国曼彻斯特大学商学院决策与系统科学教授。 杨剑波教授的主要研究领域是:多目标决策分析,最优化方法以及预测维护技术, 是该领域的国际知名教授, 已在该领域的国际顶级刊物EJOR, JORS, IEEE TransIJPR 上发表了大量的文章。
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