GRES: Generalized Referring Expression Segmentation

CVPR 2023  ·  Chang Liu, Henghui Ding, Xudong Jiang ·

Referring Expression Segmentation (RES) aims to generate a segmentation mask for the object described by a given language expression. Existing classic RES datasets and methods commonly support single-target expressions only, i.e., one expression refers to one target object. Multi-target and no-target expressions are not considered. This limits the usage of RES in practice. In this paper, we introduce a new benchmark called Generalized Referring Expression Segmentation (GRES), which extends the classic RES to allow expressions to refer to an arbitrary number of target objects. Towards this, we construct the first large-scale GRES dataset called gRefCOCO that contains multi-target, no-target, and single-target expressions. GRES and gRefCOCO are designed to be well-compatible with RES, facilitating extensive experiments to study the performance gap of the existing RES methods on the GRES task. In the experimental study, we find that one of the big challenges of GRES is complex relationship modeling. Based on this, we propose a region-based GRES baseline ReLA that adaptively divides the image into regions with sub-instance clues, and explicitly models the region-region and region-language dependencies. The proposed approach ReLA achieves new state-of-the-art performance on the both newly proposed GRES and classic RES tasks. The proposed gRefCOCO dataset and method are available at https://henghuiding.github.io/GRES.

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Task Dataset Model Metric Name Metric Value Global Rank Benchmark
Generalized Referring Expression Segmentation gRefCOCO ReLA gIoU 63.60 # 2
cIoU 62.42 # 1
Referring Expression Segmentation RefCOCO testA ReLA Overall IoU 75.96 # 8
Referring Expression Segmentation RefCOCO+ testA ReLA Overall IoU 71.02 # 8
Referring Expression Segmentation RefCOCO testB ReLA Overall IoU 70.18 # 6
Referring Expression Segmentation RefCOCO+ test B ReLA Overall IoU 57.65 # 8
Referring Expression Segmentation RefCoCo val ReLA Overall IoU 73.82 # 6
Overall IoU 73.82 # 9
Referring Expression Segmentation RefCOCO+ val ReLA Overall IoU 66.04 # 10

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