Linked-learning for knowledge acquisition: a pilot's associate case study

C. Miller, K. Levi
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引用次数: 5

Abstract

Abstract We developed a knowledge acquisition system that uses an Explanation-Based Learning domain theory as a knowledge repository from which general knowledge structures can be compiled and then translated by smart translators into the various specialized representations required for the separate expert system modules of a distributed pilot aiding system. We call this two-stage learning-plus-translation process linked learning . This architecture addresses learning for multiple modules with different knowledge representations and performance goals, but which must all perform together in an integrated fashion. It also addresses learning for an intelligent agent which must perform in a real-world, dynamically-changing environment with multiple sources of uncertainty. Finally, it serves as a case study offering insights into the integration of machine learning into the system engineering process for a large knowledge-based system development effort.
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知识获取的关联学习:一个飞行员的助理案例研究
摘要:本文开发了一个知识获取系统,该系统使用基于解释的学习领域理论作为知识库,从中编译通用知识结构,然后由智能翻译器将其翻译成分布式飞行员辅助系统中独立专家系统模块所需的各种专门表示。我们称这种两阶段学习加翻译的过程为关联学习。该体系结构解决了具有不同知识表示和性能目标的多个模块的学习问题,但这些模块必须以集成的方式一起执行。它还解决了智能代理的学习问题,智能代理必须在现实世界中执行,动态变化的环境中具有多个不确定性来源。最后,它作为一个案例研究,为大型基于知识的系统开发工作提供了将机器学习集成到系统工程过程中的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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