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Evolution and challenges in the design of computational systems for triage assistance

机译:分诊辅助计算系统设计的发展和挑战

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摘要

Compared with expert systems for specific disease diagnosis, knowledge-based systems to assist decision making in triage usually try to cover a much wider domain but can use a smaller set of variables due to time restrictions, many of them subjective so that accurate models are difficult to build. In this paper we first study criteria that most affect the performance of systems for triage assistance. Such criteria include whether principled approaches from Machine Learning can be used to increase accuracy and robustness and to represent uncertainty, whether data and model integration can be performed or whether temporal evolution can be modeled to implement retriage or represent medication responses. Following the most important criteria we explore current systems and identify some missing features that, if added, may yield to more accurate triage systems.
机译:与用于特定疾病诊断的专家系统相比,基于知识的系统可帮助进行分类诊断,通常尝试覆盖更广的领域,但由于时间限制,可以使用较少的变量集,其中许多都是主观的,因此很难建立准确的模型建立。在本文中,我们首先研究最会影响分类诊断系统性能的标准。这样的标准包括:是否可以使用机器学习的原则方法来提高准确性和鲁棒性并代表不确定性,是否可以执行数据和模型集成,或者是否可以对时间演变进行建模以实现重试或代表药物反应。遵循最重要的标准,我们探索当前的系统,并确定一些缺失的功能,如果添加这些功能,可能会产生更准确的分类系统。

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