Statistical Learning for Best Practices in Tattoo Removal

Richard Yim, Jamie Haddock, D. Needell
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引用次数: 1

Abstract

The causes behind complications in laser-assisted tattoo removal are currently not well understood, and in the literature relating to tattoo removal the emphasis on removal treatment is on removal technologies and tools, not best parameters involved in the treatment process. Additionally, the very challenge of determining best practices is difficult given the complexity of interactions between factors that may correlate to these complications. In this paper we apply a battery of classical statistical methods and techniques to identify features that may be closely correlated to causes of complication during the tattoo removal process, and report quantitative evidence for potential best practices. We develop elementary statistical descriptions of tattoo data collected by the largest gang rehabilitation and reentry organization in the world, Homeboy Industries; perform parametric and nonparametric tests of significance; and finally, produce a statistical model explaining treatment parameter interactions, as well as develop a ranking system for treatment parameters utilizing bootstrapping and gradient boosting.
纹身去除最佳实践的统计学习
激光辅助纹身去除并发症的原因目前还不清楚,在与纹身去除有关的文献中,去除治疗的重点是去除技术和工具,而不是治疗过程中涉及的最佳参数。此外,考虑到可能与这些并发症相关的因素之间相互作用的复杂性,确定最佳实践的挑战是困难的。在本文中,我们应用了一系列经典的统计方法和技术来识别纹身去除过程中可能与并发症原因密切相关的特征,并为潜在的最佳实践报告定量证据。我们对世界上最大的帮派康复和再入组织Homeboy Industries收集的纹身数据进行了基本的统计描述;执行参数和非参数显著性检验;最后,建立一个解释治疗参数相互作用的统计模型,并利用自举和梯度提升开发一个治疗参数排名系统。
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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