Learning Scales from Points: A Scale-aware Probabilistic Model for Crowd Counting
Zhiheng Ma, Xing Wei, Xiaopeng Hong, Yihong Gong
摘要
Counting people automatically through computer vision technology is a challenging task. Recently, convolution neural network (CNN) based methods have made significant progress. Nonetheless, large scale variations of instances caused by, for example, perspective effects remain unsolved. Moreover, it is problematic to estimate scales with only point annotations. In this paper, we propose a scale-aware probabilistic model to handle this problem. Unlike previous methods that generate a single density map where instances of various scales are processed indiscriminately, we propose a density pyramid network (DPN), where each pyramid level handles instances within a particular scale range. Furthermore, we propose a scale distribution estimator (SDE) to learn scales of people from input data, under the weak supervision of point annotations. Finally, we adopt an instance-level probabilistic scale-aware model (IPSM) to guide the multi-scale training of DPN explicitly. Qualitative and quantitative experimental results demonstrate the effectiveness of the proposed method, which achieves competitive results on four widely used benchmarks.
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- Boosting Crowd Counting via Multifaceted AttentionHui Lin, Zhiheng Ma, Rongrong Ji, Yaowei Wang 等CVPR 2022 · 被引用 229 次
- Learning to Count via Unbalanced Optimal TransportZhiheng Ma, Xing Wei, Xiaopeng Hong, Hui Lin 等AAAI 2021 · 被引用 100 次
- STEERER: Resolving Scale Variations for Counting and Localization via Selective Inheritance LearningTao Han, Lei Bai, Lingbo Liu, Wanli OuyangICCV 2023 · 被引用 74 次
- Efficient Crowd Counting via Structured Knowledge TransferLingbo Liu, Jiaqi Chen, Hefeng Wu, Tianshui Chen 等ACM MM 2020 · 被引用 72 次
- Gramformer: Learning Crowd Counting via Graph-Modulated TransformerHui Lin, Zhiheng Ma, Xiaopeng Hong, Qinnan Shangguan 等AAAI 2024 · 被引用 62 次
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