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Stepping Out of Similar Semantic Space for Open-Vocabulary Segmentation

About

Open-vocabulary segmentation aims to achieve segmentation of arbitrary categories given unlimited text inputs as guidance. To achieve this, recent works have focused on developing various technical routes to exploit the potential of large-scale pre-trained vision-language models and have made significant progress on existing benchmarks. However, we find that existing test sets are limited in measuring the models' comprehension of ``open-vocabulary" concepts, as their semantic space closely resembles the training space, even with many overlapping categories. To this end, we present a new benchmark named OpenBench that differs significantly from the training semantics. It is designed to better assess the model's ability to understand and segment a wide range of real-world concepts. When testing existing methods on OpenBench, we find that their performance diverges from the conclusions drawn on existing test sets. In addition, we propose a method named OVSNet to improve the segmentation performance for diverse and open scenarios. Through elaborate fusion of heterogeneous features and cost-free expansion of the training space, OVSNet achieves state-of-the-art results on both existing datasets and our proposed OpenBench. Corresponding analysis demonstrate the soundness and effectiveness of our proposed benchmark and method.

Yong Liu, SongLi Wu, Sule Bai, Jiahao Wang, Yitong Wang, Yansong Tang• 2025

Related benchmarks

TaskDatasetResultRank
Open Vocabulary Semantic SegmentationADE20K A-150
mIoU37.1
71
Open Vocabulary Semantic SegmentationPASCAL Context 59 (val)
mIoU62
49
Open Vocabulary Semantic SegmentationADE20K 847 (val)
mIoU16.2
17
Open Vocabulary Semantic SegmentationPASCAL Context 459 (val)
mIoU23.5
17
Open Vocabulary Semantic SegmentationA-847, PC-459, A-150, PC-59, PAS-20 Average Combined (val)
mIoU47.14
15
Open Vocabulary Semantic SegmentationPASCAL VOC-20 (val)
mIoU96.9
15
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