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Knowledge Visualization Using Optimized General Logic Diagrams

机译:使用优化的通用逻辑图进行知识可视化

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Knowledge Visualizer (KV) uses a General Logic Diagram (GLD) to display examples and/or various forms of knowledge learned from them in a planar model of a multi-dimensional discrete space. Knowledge can be in different forms, for example, decision rules, decision trees, logical expressions, clusters, classifiers, and neural nets with discrete input variables. KV is implemented as a module of the inductive database system VINLEN, which integrates a conventional database system with a range of inductive inference and data mining capabilities. This paper describes briefly the KV module and then focuses on the problem of arranging attributes that span the diagram in a way that leads to the most readable rule visualization in the diagram. This problem has been solved by applying a simulated annealing.
机译:知识可视化器(KV)使用通用逻辑图(GLD)在多维离散空间的平面模型中显示示例和/或从中学习的各种形式的知识。知识可以采用不同的形式,例如决策规则,决策树,逻辑表达式,聚类,分类器和具有离散输入变量的神经网络。 KV被实现为归纳数据库系统VINLEN的模块,该模块将常规数据库系统与一系列归纳推理和数据挖掘功能集成在一起。本文简要介绍了KV模块,然后重点介绍了如何以导致图中最易读的规则可视化的方式排列跨图的属性的问题。通过应用模拟退火解决了这个问题。

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