FAST APPROXIMATE NEAREST NEIGHBORS WITH AUTOMATIC ALGORITHM CONFIGURATION

上传者: whuyg2006amy | 上传时间: 2019-12-21 21:54:02 | 文件大小: 380KB | 文件类型: pdf
For many computer vision problems, the most time consuming component consists of nearest neighbor matching in high-dimensional spaces. There are no known exact algorithms for solving these high-dimensional problems that are faster than linear search. Approximate algorithms are known to provide large speedups with only minor loss in accuracy, but many such algorithms have been published with only minimal guidance on selecting an algorithm and its parameters for any given problem. In this paper, we describe a system that answers the question, “What is the fastest approximate nearest-neighbor algorithm for my data? ” Our system will take any given dataset and desired degree of precision and use these to automatically determine the best algorithm and parameter values. We also describe a new algorithm that applies priority search on hierarchical k-means trees, which we have found to provide the best known performance on many datasets. After testing a range of alternatives, we have found that multiple randomized k-d trees provide the best performance for other datasets. We are releasing public domain code that implements these approaches. This library provides about one order of magnitude improvement in query time over the best previously available software and provides fully automated parameter selection.

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评论信息

  • daisyrcy :
    好文章,很有用~
    2016-01-12
  • ksharp1991 :
    opencv里看到的这个算法,值得学习
    2015-04-20
  • flymark2010 :
    终于找到这篇轮文了。
    2015-03-11
  • yctv0717 :
    论文是需要认真的反复的阅读的
    2013-09-24

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