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Assessing Expertise Awareness in Resolution Networks

机译:评估解决网络的专业知识

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摘要

Problem resolution is a key issue in the. IT service industry. A large service provider handles, on daily basis, thousands of tickets that report various types of problems from its customers. The efficiency of this process highly depends on the effective interactions among. various expert groups, in search of the resolver to the reported problem. In fact, ticket transfer decisions reflect the expertise awareness between groups, thus encoding a sophisticated resolution social network. In this paper, we propose a computational framework to quantitatively assess expertise awareness, i.e., how well a group knows the expertise of others. An accurate assessment of expertise awareness could identify the weakest components in a resolution system. The framework, built on our previously developed resolution engine, is able.to calculate the performance difference caused by excluding a node from the network. The difference exposes the awareness of this node to other nodes in the network. To our best knowledge, this is the first study on this problem from a computational perspective. We tested the proposed framework, on a large set of real-world problem tickets and validated our discovery by carefully analyzing the tickets that are incorrectly transferred. Experimental results show that our framework can successfully capture groups that do not know others' expertise very well.
机译:问题解析是一个关键问题。 IT服务行业。一家大型服务提供商在日常携带数千项票证,这些票证从客户报告各种类型的问题。这个过程的效率高度取决于有效的相互作用。各种专家组,寻找据报道的问题。事实上,票务转让决定反映了组之间的专业知识,从而编码了复杂的解决方案社交网络。在本文中,我们提出了一种计算框架,以定量评估专业知识的专业知识,即,群体了解他人的专业知识。准确评估专业知识意识可以识别解决方案系统中最薄弱的组成部分。基于先前开发的分辨率引擎的框架是能够的。要计算通过从网络中排除节点而导致的性能差异。差异将此节点的意识暴露给网络中的其他节点。为了我们的最佳知识,这是从计算角度来研究这个问题的研究。我们测试了拟议的框架,在大量的真实问题票证上,并通过仔细分析错误转移的票证来验证我们的发现。实验结果表明,我们的框架可以成功捕获不太了解其他人专业知识的群体。

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