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Jiawei Ren

Researcher at SenseTime

Publications -  19
Citations -  531

Jiawei Ren is an academic researcher from SenseTime. The author has contributed to research in topics: Computer science & Softmax function. The author has an hindex of 4, co-authored 9 publications receiving 95 citations.

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Balanced Meta-Softmax for Long-Tailed Visual Recognition

TL;DR: Balanced Softmax is presented, an elegant unbiased extension of Softmax, to accommodate the label distribution shift between training and testing, and it is demonstrated that Balanced Meta-Softmax outperforms state-of-the-art long-tailed classification solutions on both visual recognition and instance segmentation tasks.
Posted Content

Spatio-Temporal Graph Transformer Networks for Pedestrian Trajectory Prediction

TL;DR: STAR is presented, a Spatio-Temporal grAph tRansformer framework, which tackles trajectory prediction by only attention mechanisms, and achieves state-of-the-art performance on 5 commonly used real-world pedestrian prediction datasets.
Book ChapterDOI

Spatio-Temporal Graph Transformer Networks for Pedestrian Trajectory Prediction

TL;DR: In this paper, a spatio-temporal graph convolutional neural network (STREAM) is proposed for trajectory prediction by only attention mechanisms. But, the performance of the model is limited.
Proceedings Article

Balanced Meta-Softmax for Long-Tailed Visual Recognition

TL;DR: Balanced Meta-Softmax as mentioned in this paper proposes an unbiased extension of Softmax to accommodate the label distribution shift between training and testing, which improves long-tailed learning. But it suffers from biased gradient estimation under the long-tail setup.
Proceedings Article

Benchmarking and Analyzing Point Cloud Classification under Corruptions

TL;DR: The benchmark results show that although point cloud classification performance improves over time, the state-of-the-art methods are on the verge of being less robust.