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MapPrior: Bird's-Eye View Map Layout Estimation with Generative Models

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arxiv 2308.12963 v1 pith:PM6ZUJGC submitted 2023-08-24 cs.CV cs.RO

classification cs.CVcs.RO
keywords mappriorperceptionmodelbirdgenerativelayoutsmodelss-eye
verification ladder T0 review T1 audit T2 compute T3 formal
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Despite tremendous advancements in bird's-eye view (BEV) perception, existing models fall short in generating realistic and coherent semantic map layouts, and they fail to account for uncertainties arising from partial sensor information (such as occlusion or limited coverage). In this work, we introduce MapPrior, a novel BEV perception framework that combines a traditional discriminative BEV perception model with a learned generative model for semantic map layouts. Our MapPrior delivers predictions with better accuracy, realism, and uncertainty awareness. We evaluate our model on the large-scale nuScenes benchmark. At the time of submission, MapPrior outperforms the strongest competing method, with significantly improved MMD and ECE scores in camera- and LiDAR-based BEV perception.

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Cited by 1 Pith paper

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  1. MapExpert: Online HD Map Construction with Simple and Efficient Sparse Map Element Expert

    cs.CV 2024-12 conditional novelty 5.0 of 10

    MapExpert uses shape-specific sparse expert networks and a learnable temporal fusion module to improve online HD map construction by about 1.4-1.8 mAP over MapTracker on nuScenes and Argoverse2.

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