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Simultaneous semi-sequential testing of dual alternatives for pattern recognition

机译:同时半顺序测试双重识别模式

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In this paper, we propose a new nonparametric simultaneous test for dual alternatives. Simultaneous tests for dual alternatives are used for pattern detection of arsenic contamination level in ground water. We consider two possible patterns, namely, monotone shift and an umbrella-type location alternative, as the dual alternatives. Pattern recognition problems of this nature are addressed in Bandyopadhyay et al. [5], stretching the idea of multiple hypotheses tests as in Benjamini and Hochberg [6]. In the present context, we develop an alternative approach based on contrasts that helps us to detect three underlying pattern much more efficiently. We illustrate the new methodology through a motivating example related to highly sensitive issue of arsenic contamination in ground water. We provide some Monte-Carlo studies related to the proposed technique and give a comparative study between different detection procedures. We also obtain some related asymptotic results.
机译:在本文中,我们为双重替代方案提出了一种新的非参数同时检验。双重替代品的同时测试用于检测地下水中砷污染水平的模式。我们考虑两种可能的模式,即单调移位和伞形位置替代,作为双重替代。 Bandyopadhyay等人解决了这种性质的模式识别问题。 [5],扩展了Benjamini和Hochberg [6]中的多重假设检验的思想。在目前的背景下,我们开发了一种基于对比的替代方法,该方法可帮助我们更有效地检测三种基本模式。我们通过一个与地下水中砷污染高度敏感问题相关的激励示例来说明新方法。我们提供了与拟议技术相关的蒙特卡洛研究,并给出了不同检测程序之间的比较研究。我们还获得了一些相关的渐近结果。

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