过滤多集树:多轨数据灵活匹配的数据结构

K. Narisawa, Takashi Katsura, Hiroyuki Ota, A. Shinohara
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引用次数: 2

摘要

多轨数据是适合表示时间序列数据的多集序列,如多传感器数据、复调音乐数据、交通数据等。排列模式匹配问题旨在通过允许模式轨道的顺序排列来确定多轨道文本中多轨道模式的出现。在本研究中,我们通过提出一种称为过滤多集树(FILM树)的新数据结构来解决排列模式匹配问题。FILM树是基于谱布隆滤波器(SBF)和哈希函数的完全二叉树。这种数据结构非常简单,但功能强大,可以应用于精确匹配和近似匹配问题。我们给出的实验结果证明了我们基于FILM树的方法的有效性。
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Filtering Multi-set Tree: Data Structure for Flexible Matching Using Multi-track Data
Multi-track data are multi-set sequences that are suitable for representing time series data, such as multi-sensor data, polyphonic music data and traffic data. The permuted pattern matching problem aims to determine the occurrences of multi-track patterns in multi-track text by allowing the order of the pattern tracks to be permuted. In this study, we address permuted pattern matching by proposing a new data structure called a filtering multi-set tree (FILM tree). The FILM tree is a complete binary tree based on a spectral Bloom filter (SBF) with hash functions. This data structure is very simple but powerful, and it can be applied to both exact and approximate matching problems. We present experimental results that demonstrate the efficiency of our FILM tree-based approach.
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