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An Innovative Way for Mining Clinical and Administrative Healthcare Data

机译:采矿临床和行政医疗保健数据的创新方式

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A novel method of "predicting" sitter case attribute value is presented in this paper. The method allows users to choose two attributes, seed and target attribute, and to predict the target attribute value of the forthcoming sitter case. The method first retrieves string sequences of the seed attribute according to filters the users set. Then, it finds the words in the sequences and calculates the term frequencies of the words. With the term frequencies, the proposed method uses vector space model to measure the similarity between the testing sequences and the benchmark sequence. At the end, the testing sequence which has highest Cosine similarity value is chosen and the filtering value the method uses to generate the testing sequence is the predicted result. These predicted results allow hospitals to adjust their strategies on resource assignments to better handle patient needs.
机译:本文提出了一种“预测”Satter Cuist属性值的新方法。该方法允许用户选择两个属性,种子和目标属性,并预测即将到来的Sitter案例的目标属性值。该方法首先根据过滤器设置来检索种子属性的字符串序列。然后,它发现序列中的单词并计算单词的术语频率。利用术语频率,所提出的方法使用矢量空间模型来测量测试序列与基准序列之间的相似性。最后,选择具有最高余弦相似值的测试序列,并且滤波值该方法用于生成测试序列是预测结果。这些预测的结果允许医院调整他们对资源分配的策略,以更好地处理患者需求。

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