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A Competitive Intelligence Solution to Predict Competitor Action Using K-modes Algorithm and Rough Set Theory

机译:基于K模式算法和粗糙集理论的竞争者预测竞争行为智能解决方案

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We will focus in this paper on the competitive intelligence problem which deals with the competitive environment of a company. Our purpose is to predict and anticipate the action of its competitor. We are talking here about a context of reasoning under uncertainty. All existed works define the concept of competitive intelligence and propose a scheme for the competitive intelligence process and its stages, but there is no work, at the best of our knowledge, that touched the practical aspect of the field or developed a complete competitive intelligence solution that can be delivered to the decision maker, which makes the originality of our work. To motivate the research, we will address a competitive practical case in the field of telecommunications. In this paper we propose a competitive intelligence solution composed by two steps: actions association using k-modes algorithm which has the capability to deal with nominal data, and actions generation using rough set theory which has the capability to deal with inexact data and drive rules from it.
机译:本文将重点讨论与公司竞争环境有关的竞争情报问题。我们的目的是预测和预期竞争对手的行为。我们在这里谈论不确定性下的推理环境。现有的所有作品都定义了竞争情报的概念,并提出了关于竞争情报过程及其阶段的方案,但据我们所知,没有任何作品触及该领域的实际情况或开发出完整的竞争情报解决方案可以交付给决策者,这使我们的工作独具匠心。为了激励研究,我们将解决电信领域的一个竞争性实际案例。在本文中,我们提出了一个竞争情报解决方案,该解决方案由两步组成:使用具有处理名义数据能力的k模式算法进行动作关联,以及使用具有处理不精确数据和驱动规则的能力的粗糙集理论生成动作从中。

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