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Digenis: an hybridic proposal for (dis)similarity search

机译:Digenis:一种杂交提案(DIS)相似性搜索

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In modern databases effective similarity search is usually based on data or space partitioning, using similarity trees. Although these methods perform effectively in cases of low dimensionality, their performance generally degrades as dimensionality increases ('dimensional curse'). On the other hand, VA-file constitutes a simple approximate method which manages to outperform any other similarity search at high dimensionality. While both in similarity trees and VA-file the performance is depended on object dimensionality, neither trees nor VA-files can serve as multi-purpose methods. The research challenge of our study was the flexible combination of trees and VA-files, for the introduction of a method having the representation and organization power of hierarchical similarity trees and the benefits of 'no-dimensional curse' of a VA-file. Finally, the resultant proposal named DIGENIS1, includes the DIGENIS-tree, for object organization in the conceptual level and the DIGENIS-file - based on DIGENIS-tree -for the partial search in the physical level.
机译:在现代数据库中,有效的相似性搜索通常基于使用相似性树的数据或空间分区。尽管这些方法在低维度的情况下有效地进行,但它们的性能通常随着维度增加(“尺寸诅咒”)而劣化。另一方面,VA文件构成了一种简单的近似方法,该方法是以高维地形的任何其他相似性搜索管理。虽然在相似性树和VA文件中,性能依赖于对象维度,但是树木和VA文件都不可以用作多功能方法。我们研究的研究挑战是树木和VA文件的灵活组合,用于引入具有分层相似性树的表示和组织力量的方法以及VA文件的“无维诅咒”的益处。最后,命名DigEnis1的结果提议包括DigEnis-Tree,用于概念级别和DigEnis-File中的对象组织 - 基于DigEnis-Tree - 在物理级别中的部分搜索。

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