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Efficient hemodynamic event detection utilizing relational databases and wavelet analysis

机译:利用关系数据库和小波分析进行有效的血液动力学事件检测

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Development of a temporal query framework for time-oriented medical databases has hitherto been a challenging problem. We describe a novel method for the detection of hemodynamic events in multiparameter trends utilizing wavelet coefficients in a MySQL relational database. Storage of the wavelet coefficients allowed for a compact representation of the trends, and provided robust descriptors for the dynamics of the parameter time series. A data model was developed to allow for simplified queries along several dimensions and time scales. Of particular importance, the data model and wavelet framework allowed for queries to be processed with minimal table-join operations. A web-based search engine was developed to allow for user-defined queries. Typical queries required between 0.01 and 0.02 seconds, with at least two orders of magnitude improvement in speed over conventional queries. This powerful and innovative structure will facilitate research on largescale time-oriented medical databases.
机译:迄今为止,针对面向时间的医学数据库的时间查询框架的开发一直是一个具有挑战性的问题。我们描述了一种利用MySQL关系数据库中的小波系数检测多参数趋势中血液动力学事件的新颖方法。小波系数的存储允许趋势的紧凑表示,并为参数时间序列的动力学提供了鲁棒的描述符。开发了数据模型,以允许在多个维度和时间范围内进行简化的查询。特别重要的是,数据模型和小波框架允许使用最少的表联接操作来处理查询。开发了基于Web的搜索引擎以允许用户定义查询。典型的查询需要0.01到0.02秒之间的时间,与传统查询相比,速度至少提高了两个数量级。这种强大而创新的结构将有助于大规模的面向时间的医学数据库的研究。

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