Jason Smiles:增量BDI MAS学习

A. Guerra-Hernández, G. Ortiz-Hernández, W. A. Luna-Ramírez
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引用次数: 6

摘要

本文研究了多智能体系统(MAS)中的意向学习问题。Smile (sound multi-agent incremental learning)是一种协作学习协议,它在众所周知的复杂布尔公式的分布式学习中显示出有趣的结果。在这里,BDI agent的MAS在保持MAS一致性的同时更新了它们的实际原因。逻辑决策树一阶归纳的增量算法使BDI代理能够采用Smile,与我们之前的非增量学习方法相比,减少了交流学习示例的数量。该协议形式化地扩展了AgentSpeak(L)的操作语义,并在其著名的基于java的扩展解释器Jason中实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Jason Smiles: Incremental BDI MAS Learning
This work deals with the problem of intentional learning in a multi-agent system (MAS). Smile (sound multi-agent incremental learning), a collaborative learning protocol which shows interesting results in the distributed learning of well known complex boolean formulae, is adopted here by a MAS of BDI agents to update their practical reasons while keeping MAS-consistency. An incremental algorithm for first-order induction of logical decision trees enables the BDI agents to adopt Smile, reducing the amount of communicated learning examples when compared to our previous non-incremental approaches to intentional learning. The protocol is formalized extending the operational semantics of AgentSpeak(L), and implemented in Jason, its well known Java-based extended interpreter.
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