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Efficient Query Evaluation over Compressed XML Data

机译:高效查询评估压缩XML数据

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XML suffers from the major limitation of high redundancy. Even if compression can be beneficial for XML data, however, once compressed, the data can be seldom browsed and queried in an efficient way. To address this problem, we propose XQueC, an [XQue]ry processor and [C]ompressor, which covers a large set of XQuery queries in the compressed domain. We shred compressed XML into suitable data structures, aiming at both reducing memory usage at query time and querying data while compressed. XQueC is the first system to take advantage of a query workload to choose the compression algorithms, and to group the compressed dala granules according to their common properties. By means of experiments, we show that good trade-offs between compression ratio and query capability can be achieved in several real cases, as those covered by an XML benchmark. On average, XQueC improves over previous XML query-aware compression systems, still being reasonably closer to general-purpose query-unaware XML compressors. Finally, QETs for a wide variety of queries show that XQueC can reach speed comparable to XQuery engines on uncompressed data.
机译:XML遭受了高冗余的主要限制。然而,即使压缩对于XML数据可能是有益的,但是,一旦压缩,就可以以有效的方式浏览和查询数据。为了解决这个问题,我们提出了XQUEC,一个[XQUE]的RY处理器和[C] eMpressor,它涵盖了压缩域中的一大集XQuery查询。我们将压缩的XML压缩为合适的数据结构,旨在减少查询时间和在压缩时查询数据的内存使用情况。 XQUEC是第一个利用查询工作负载来选择压缩算法的系统,并根据其公共属性对压缩的DALA颗粒进行分组。通过实验,我们显示压缩比和查询能力之间的良好权衡可以在几种实际情况下实现,因为XML基准覆盖的那些。平均而言,XQUEC改进了以前的XML查询感知的压缩系统,仍然相当接近通用查询 - 不知道XML压缩机。最后,Qets用于各种查询,表明XQUEC可以达到与未压缩数据上的XQuery引擎相当的速度。

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