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Occupational Diseases Risk Prediction by Genetic Optimization: Towards a Non-exclusive Classification Approach

机译:通过遗传优化预测职业病风险:一种非排他性分类方法

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This paper deals with the health risk prediction problem in workplaces through computational intelligence techniques. The available dataset has been collected from the Italian Local Health Authority (ASL) as part of the Surveillance National System. The main aim of this work is the design of a software application that can be used by occupational physicians in monitoring workers, performing a risk assessment of contracting some particular occupational diseases. The proposed algorithms, based on clustering techniques, includes a genetic optimization in order to automatically determine the weights of the adopted distance measure between patterns and the number of clusters for the final classifier's synthesis. In particular, we propose a novel approach, consisting in denning the overall classifier as an ensemble of class-specific ones, each trained to recognize patterns of risk conditions characterizing a single pathology. First results are encouraging and suggest interesting research tasks for further system development.
机译:本文通过计算智能技术处理工作场所中的健康风险预测问题。可用数据集已从意大利地方卫生局(ASL)收集,作为监视国家系统的一部分。这项工作的主要目的是设计一种软件应用程序,职业医生可以使用该软件来监视工人,进行患某些特殊职业病的风险评估。提出的基于聚类技术的算法包括遗传优化,以便自动确定模式之间采用的距离度量的权重以及最终分类器合成的聚类数量。特别是,我们提出了一种新颖的方法,包括将整体分类器定义为特定于类的分类器,每个分类器都经过训练以识别表征单个病理学的风险状况模式。最初的结果令人鼓舞,并为进一步的系统开发提出了有趣的研究任务。

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