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Knowledge Acquisition in Supporting Diagnosis for e-Healthcare Infrastructure

机译:知识获取支持诊断电子医疗保健基础设施

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This paper proposed an intelligent medical diagnostic supporting model for an e-healthcare infrastructure, which automatically acquires practical and useful knowledge and regulations from massive and historical medical data, to assist in making diagnostic and treatment decisions. We propose to explore the hidden usefulness of false irrelevant attributes, and take their supportive correlation into pre-processing. Moreover, we suggest to mimic learning in real world, which is dynamic, incremental and from multiple dimensions. Thus, incremental learning should be dynamic enough to deal with new attributes other than new instances. The empirical results reveal that our model with our novel methodologies is indeed a valuable tool in supporting diagnostic and treatment decision-making for the e-healthcare infrastructure.
机译:本文提出了一种智能医疗诊断支持模型,用于电子医疗保健基础设施,可自动获得来自大规模和历史医疗数据的实用和有用的知识和法规,以协助进行诊断和治疗决策。我们建议探索假无关属性的隐藏有用性,并将其支持性相关成预处理。此外,我们建议在现实世界中模仿学习,这是动态的,增量的,从多个维度。因此,增量学习应该足够动态,以处理除新实例以外的新属性。经验结果表明,我们的模型与我们的新方法有关,实际上是支持电子医疗保健基础设施的诊断和治疗决策的有价值的工具。

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