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Cognitive Maps for Knowledge Represenation and Reasoning

机译:知识表示和推理的认知地图

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Cognitive maps are powerful graphical models for knowledge representation. They offer an easy means to express individual's judgments, thinking or beliefs about a given problem. However, drawing inferences in cognitive maps, especially when the problem is complex, may not be an easy task. The main reason of this limitation in cognitive maps is that they do not model uncertainty with the variables. Our contribution in this paper is twofold : we firstly enrich the cognitive map formalism regarding the influence relation and then we propose to built a Bayesian causal map (BCM) from the constructed cognitive map in order to lead reasoning on the problem. A simple application on a real problem is given, it concerns fishing activities.
机译:认知地图是知识表示的强大图形模型。 他们提供了一种简单的意思,可以表达对给定问题的个人判断,思考或信仰。 然而,在认知地图中绘制推断,尤其是当问题很复杂时,可能不是一项容易的任务。 认知地图中这种限制的主要原因是它们不会与变量模拟不确定性。 我们本文的贡献是双重的:我们首先丰富了对影响力的认知地图形式主义,然后我们建议从构建的认知地图建立一个贝叶斯因果地图(BCM),以便在问题上提出推理。 给出了一个简单的应用程序,涉及捕鱼活动。

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