在线机器学习对知识获取的作用——一个案例研究

Edgar Sommer, Katharina Morik, Jean-Michel André, Marc Uszynski
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引用次数: 29

摘要

本文报告了使用MOBAL系统开发一个现实的基于知识的应用程序。提出了工业口径任务中存在的一些问题和要求。对此类任务的知识库构建的逐步说明说明了几种学习算法与推理机和图形界面的交错使用如何满足这些要求。工作模型的设计、分析、修订、完善和扩展结合在一个渐进的过程中。这说明了平衡的合作建模方法。该案例研究来自电信领域,更准确地说,涉及电信网络的安全管理。MOBAL将作为安全管理工具的一部分,用于获取、验证和完善安全策略。该建模方法与其他方法进行了比较,如KADS和单机机器学习。
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What online machine learning can do for knowledge acquisition—a case study

This paper reports on the development of a realistic knowledge-based application using the MOBAL system. Some problems and requirements resulting from industrial-caliber tasks are formulated. A step-by-step account of the construction of a knowledge base for such a task demonstrates how the interleaved use of several learning algorithms in concert with an inference engine and a graphical interface can fulfill those requirements. Design, analysis, revision, refinement and extension of a working model are combined in one incremental process. This illustrates the balanced cooperative modelling approach. The case study is taken from the telecommunications domain and more precisely deals with security management in telecommunications networks. MOBAL would be used as part of a security management tool for acquiring, validating and refining a security policy. The modeling approach is compared with other approaches, such as KADS and stand-alone machine learning.

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