SparseAlign: a Fully Sparse Framework for Cooperative Object Detection
Yunshuang Yuan, Yan Xia, Daniel Cremers, Monika Sester
摘要
Cooperative perception can increase the view field and decrease the occlusion of an ego vehicle, hence improving the perception performance and safety of autonomous driving. Despite the success of previous works on cooperative object detection, they mostly operate on dense Bird's Eye View (BEV) feature maps, which are computationally demanding and can hardly be extended to long-range detection problems. More efficient fully sparse frameworks are rarely explored. In this work, we design a fully sparse framework, SparseAlign, with three key features: an enhanced sparse 3D backbone, a query-based temporal context learning module, and a robust detection head specially tailored for sparse features. Extensive experimental results on both OPV2V and DairV2X datasets show that our framework, despite its sparsity, outperforms the state of the art with less communication bandwidth requirements. In addition, experiments on the OPV2Vt and DairV2Xt datasets for timealigned cooperative object detection also show a significant performance gain compared to the baseline works.
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引用它的顶会 Paper4
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- Where2comm: Communication-Efficient Collaborative Perception via Spatial Confidence MapsYue Hu, Shaoheng Fang, Zixing Lei, Yiqi Zhong 等NeurIPS 2022 · 被引用 537 次
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- Exploring Object-Centric Temporal Modeling for Efficient Multi-View 3D Object DetectionShihao Wang, Yingfei Liu, Tiancai Wang, Ying Li 等ICCV 2023 · 被引用 399 次
- CIA-SSD: Confident IoU-Aware Single-Stage Object Detector From Point CloudWu Zheng, Weiliang Tang, Sijin Chen, Li Jiang 等AAAI 2021 · 被引用 335 次
- Fully Sparse 3D Object DetectionLue Fan, Feng Wang, Naiyan Wang, Zhaoxiang ZhangNeurIPS 2022 · 被引用 168 次
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