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Benchmark for Image Retrieval (BKIR)

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This project tries to build a benchmark for image retrieval, particully for Instance-level image retrieval.

Methods

The following methods are evaluated on Oxford Building dataset. The evaluation adopts mean Average Precision (mAP), which is computed using the code provided by compute_ap.cpp.

method feature mAP (best) status links
fc_retrieval CNN 60.2% finished fc_retrieval
rmac_retrieval CNN to be tested finished rmac_retrieval
crow_retrieval CNN to be tested finished crow_retrieval
fv_retrieval SIFT 67.29% finished fv_retrieval
vlad_retrieval SIFT 63.13% finished vlad_retrieval

the methods on above have the following characteristics:

  • Low dimension
  • Time - tested, and are dimanstracted effectively
  • Used in industry

Contribution

If you are interested in this project, feel free to contribute your code. Only Python and C++ code are accepted.

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CNN CBIR benchmark (ongoing)

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  • Python 66.6%
  • C++ 30.2%
  • CMake 1.2%
  • Makefile 1.1%
  • Assembly 0.9%