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Object Detection for Refcoco&Refcoco+&Refcocog

In current referring expression tasks, most of work take the maskrcnn pretrained on MSCOCO-refervaltest dataset as object detector to extract a set of object proposals. In this setting, the object detector can provide nearly ground-truth proposal during training stage.

In additional, the repo maskrcnn provide by lichengunc is out-of-data, which was written by python2 and low PyTorch version. To facilitate the development of the referring expression reasoning community, we provide the new pretrained object detector model based on the Detectron2. I hope this will help all researchers to develop faster, accurate referring reasoning system.

Performance

Backbone training set excluded images Box-AP/AP50/AP75 mask-AP/AP50/AP75 Model Log
ResNet101-C4 COCO2017train refcoco&refcoco+ val&test 41.01/60.34/44.18 35.33/56.98/37.49 ckpt_final log
ResNet101-C4 COCO2017train refcocog val&test 40.99/60.15/44.15 35.33/57.03/37.75 ckpt_final log
ResNet101-C4 COCO2017train refcoco&+&g val&test 42.08/61.60/45.45 36.36/58.35/38.89 ckpt_final log

MSCOCO-refervaltest denotes MSCOCO2017 training images minus the refcoco, refcoco+, refcocog val&test images

Prerequisites

  • Detectron2 Compiler GCC 7.4
  • PyTorch 1.4.0+cu100
  • Pillow 7.1.2
  • cv2 4.2.0

Installation

See INSTALL.md.

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Object detection for refercoco series dataset.

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