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Detect-to-Retrieve: Efficient Regional Aggregation for Image Search
[article]
2019
arXiv
pre-print
Retrieving object instances among cluttered scenes efficiently requires compact yet comprehensive regional image representations. Intuitively, object semantics can help build the index that focuses on the most relevant regions. However, due to the lack of bounding-box datasets for objects of interest among retrieval benchmarks, most recent work on regional representations has focused on either uniform or class-agnostic region selection. In this paper, we first fill the void by providing a new
arXiv:1812.01584v2
fatcat:dicbws7pdfaoxbd4pezucmmv7q