Competitive learning of network diagram layout

Bernd Meyer
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引用次数: 14

Abstract

For applications which generate diagrammatic representations, automatic layout techniques are a crucial component. Since graph-like network diagrams are among the most commonly used and most important types of diagrammatic displays, layout techniques for graphs have been extensively studied. However a problem with current graph layout methods which are capable of producing satisfactory results for a wide range of graphs is that they often put an extremely high demand on computational resources. The paper introduces a new layout method that consumes only little computational resources and does not need any heavy duty preprocessing. Unlike other declarative layout algorithms, not even the costly repeated evaluation of an objective function is required. The method presented is based on a competitive learning algorithm which is an extension of self organization strategies known from unsupervised neural networks.
网络图布局的竞争性学习
对于生成图表表示的应用程序,自动布局技术是一个至关重要的组成部分。由于类图网络图是最常用和最重要的图形显示类型之一,因此图形的布局技术已经得到了广泛的研究。然而,当前图形布局方法的一个问题是,它们经常对计算资源提出极高的要求,这些方法能够对各种各样的图形产生令人满意的结果。本文介绍了一种新的布局方法,它消耗的计算资源少,不需要任何繁重的预处理。与其他声明式布局算法不同,它甚至不需要对目标函数进行代价高昂的重复求值。该方法基于竞争学习算法,该算法是对无监督神经网络中已知的自组织策略的扩展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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