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Propagation of action knowledge in multi-agent systems

机译:动作知识在多代理系统中的传播

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Currently, an inportant topic in robotic reasearch systems is the design and development of learning Multi-Agent Systems (MAS). One major advantage of these systems is the fact that several agent work towards a common goal, having different specializations for specific subtasks. Especially learning MAS in cooperation with a human teacher seem to be a very promising approach for complex manipulation and production tasks. Since agents can join and leave the system at any time, it is important that knowledge acquired by single agents can be transferred or propagated between agents, to ensure that knowledge is not lost, if agents leave the system. Therefore, techniques will be presented to represent extentable action knowledge for task solutions in an agent's knowledge base and additionally, algorithms for propagating this knowledge between agents efficiently and with minimum communication effort.
机译:目前,机器人重新搜索系统中的渠道主题是学习多代理系统(MAS)的设计和开发。这些系统的一个主要优点是若干代理人朝着共同目标工作,具有不同专业的特定子特征。特别是与人类教师合作学习MAS似乎是一个非常有希望的复杂操纵和生产任务的方法。由于代理人可以随时加入和离开系统,因此必须在代理商之间转移或传播单个代理人获得的知识,以确保代理人离开系统,确保知识不会丢失。因此,将提出技术以代表代理知识库中的任务解决方案的可差异动作知识,另外,用于有效地和最小的通信工作在代理之间传播这些知识的算法。

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