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Least Square Projection: A Fast High-Precision Multidimensional Projection Technique and Its Application to Document Mapping

机译:最小二乘投影:一种快速的高精度多维投影技术及其在文档映射中的应用

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The problem of projecting multidimensional data into lower dimensions has been pursued by many researchers due to its potential application to data analysis of various kinds. This paper presents a novel multidimensional projection technique based on least square approximations. The approximations compute the coordinates of a set of projected points based on the coordinates of a reduced number of control points with defined geometry. We name the technique Least Square Projections (LSP). From an initial projection of the control points, LSP defines the positioning of their neighboring points through a numerical solution that aims at preserving a similarity relationship between the points given by a metric in $mD$. In order to perform the projection, a small number of distance calculations is necessary and no repositioning of the points is required to obtain a final solution with satisfactory precision. The results show the capability of the technique to form groups of points by degree of similarity in $2D$. We illustrate that capability through its application to mapping collections of textual documents from varied sources, a strategic yet difficult application. LSP is faster and more accurate than other existing high quality methods, particularly where it was mostly tested, that is, for mapping text sets.
机译:将多维数据投影到较低维度的问题已被许多研究人员追究,因为其潜在地应用于各种数据分析。本文提出了一种基于最小二乘近似的新颖多维投影技术。近似值基于减少的具有定义的几何形状的控制点的坐标来计算一组投影点的坐标。我们将技术命名为最小二乘投影(LSP)。从控制点的初始投影开始,LSP通过数值解决方案定义了其相邻点的位置,该数值解决方案旨在保持度量值以$ mD $表示的点之间的相似关系。为了进行投影,需要进行少量的距离计算,并且不需要重新定位点就可以以令人满意的精度获得最终解决方案。结果表明,该技术具有按$ 2D $的相似度形成点组的能力。我们通过将其应用程序映射到各种来源的文本文档集合来说明这种功能,这是一种战略性但困难的应用程序。 LSP比其他现有的高质量方法更快,更准确,尤其是在经过最多测试(即映射文本集)的地方。

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