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Prompt-Guided Transformers for End-to-End Open-Vocabulary Object Detection

About

Prompt-OVD is an efficient and effective framework for open-vocabulary object detection that utilizes class embeddings from CLIP as prompts, guiding the Transformer decoder to detect objects in both base and novel classes. Additionally, our novel RoI-based masked attention and RoI pruning techniques help leverage the zero-shot classification ability of the Vision Transformer-based CLIP, resulting in improved detection performance at minimal computational cost. Our experiments on the OV-COCO and OVLVIS datasets demonstrate that Prompt-OVD achieves an impressive 21.2 times faster inference speed than the first end-to-end open-vocabulary detection method (OV-DETR), while also achieving higher APs than four two-stage-based methods operating within similar inference time ranges. Code will be made available soon.

Hwanjun Song, Jihwan Bang• 2023

Related benchmarks

TaskDatasetResultRank
Open-vocabulary object detectionOV-COCO (novel)
AP@50 (Novel)30.6
14
Object DetectionOV-LVIS (test)
mAP_r23.1
14
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