Approximate queries and representations for large data sequences

H. Shatkay, S. Zdonik
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引用次数: 312

Abstract

Many new database application domains such as experimental sciences and medicine are characterized by large sequences as their main form of data. Using approximate representation can significantly reduce the required storage and search space. A good choice of representation, can support a broad new class of approximate queries, needed in there domains. These queries are concerned with application dependent features of the data as opposed to the actual sampled points. We introduce a new notion of generalized approximate queries and a general divide and conquer approach that supports them. This approach uses families of real-valued functions as an approximate representation. We present an algorithm for realizing our technique, and the results of applying it to medical cardiology data.
大数据序列的近似查询和表示
许多新的数据库应用领域,如实验科学和医学,其特点是大序列作为其主要的数据形式。使用近似表示可以显著减少所需的存储和搜索空间。一个好的表示选择,可以支持一个广泛的新的类近似查询,需要在这些领域。这些查询关注的是与应用程序相关的数据特征,而不是实际的采样点。我们引入了广义近似查询的新概念和支持它们的一般分治方法。这种方法使用实值函数族作为近似表示。我们给出了一种实现该技术的算法,以及将其应用于医学心脏病学数据的结果。
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