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A General Framework for Dimensionality-Reducing Data Visualization Mapping

机译:降维数据可视化映射的通用框架

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摘要

In recent years, a wealth of dimension-reduction techniques for data visualization and preprocessing has been established. Nonparametric methods require additional effort for out-of-sample extensions, because they provide only a mapping of a given finite set of points. In this letter, we propose a general view on nonparametric dimension reduction based on the concept of cost functions and properties of the data. Based on this general principle, we transfer nonparametric dimension reduction to explicit mappings of the data manifold such that direct out-of-sample extensions become possible. Furthermore, this concept offers the possibility of investigating the generalization ability of data visualization to new data points. We demonstrate the approach based on a simple global linear mapping, as well as prototype-based local linear mappings. In addition, we can bias the functional form according to given auxiliary information. This leads to explicit supervised visualization mappings with discriminative properties comparable to state-of-the-art approaches.
机译:近年来,已经建立了许多用于数据可视化和预处理的降维技术。非参数方法需要额外的精力来进行样本外扩展,因为它们仅提供给定有限点集的映射。在这封信中,我们基于成本函数和数据属性的概念提出了关于非参数降维的一般观点。基于此一般原则,我们将非参数维数缩减转换为数据流形的显式映射,这样就可以直接进行样本外扩展。此外,该概念提供了调查数据可视化对新数据点的概括能力的可能性。我们演示了基于简单全局线性映射以及基于原型的局部线性映射的方法。另外,我们可以根据给定的辅助信息来偏向功能形式。这导致显式的监督可视化映射具有可与最新方法相媲美的判别属性。

著录项

  • 来源
    《Neural computation》 |2012年第3期|p.771-804|共34页
  • 作者单位

    @;

    University of Groningen, Johann Bernoulli Institute for Mathematics and Computer Science, 9700 AK Groningen, the Netherlands;

    University of Bielefeld, CITEC Center of Excellence, 33594 Bielefeld, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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