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Philosophy and methodology for knowledge discovery in autonomic computing systems

机译:自主计算系统中知识发现的哲学和方法论

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Autonomic computing has been advanced as a solution to the currently problematic control of voice and data communications networks. Autonomic systems adapt both to their environment and to the demands placed upon them as a consequence of the use of the system(s) within their purview. Data and voice networks function in a changing environment with varying use cases; hence, autonomic systems must be deployed with both a significant a priori knowledge base and the capability to continuously upgrade that knowledge base. The system must engage in some amount of unsupervised learning and hypothesize as to nature of its functioning. Maintenance of hypotheses and theories is intrinsic to the system, especially in evolutionary scenarios. This paper explores how knowledge maintenance is done for voice and data communications networks applications that use autonomic system approaches.
机译:自主计算已作为解决当前语音和数据通信网络控制问题的一种解决方案而得到了发展。自主系统既可以适应其环境,又可以适应其使用范围内的系统所带来的要求。数据和语音网络在变化的环境中具有不同的用例;因此,自治系统必须既具有重要的先验知识库,又具有不断升级该知识库的能力。该系统必须进行一定数量的无监督学习,并对其功能的性质进行假设。假设和理论的维持是系统固有的,尤其是在进化场景中。本文探讨了如何使用自主系统方法对语音和数据通信网络应用程序进行知识维护。

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