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Shawn Newsam

4 accepted papers

2022

DistPro: Searching a Fast Knowledge Distillation Process via Meta Optimization

ECCV 2022poster

"Recent Knowledge distillation (KD) studies show that different manually designed schemes impact the learned results significantly. Yet, in KD, automatically searching an optimal distillation scheme has not yet been well explored. In this paper, we propose DistPro, a novel framework which searches f…

2022

NightLab: A Dual-Level Architecture With Hardness Detection for Segmentation at Night

CVPR 2022poster

The semantic segmentation of nighttime scenes is a challenging problem that is key to impactful applications like self-driving cars. Yet, it has received little attention compared to its daytime counterpart. In this paper, we propose NightLab, a novel nighttime segmentation framework that leverages…

Cited by 46PDFcodeScholar
2019

Improving Semantic Segmentation via Video Propagation and Label Relaxation

CVPR 2019oral

Semantic segmentation requires large amounts of pixel-wise annotations to learn accurate models. In this paper, we present a video prediction-based methodology to scale up training sets by synthesizing new training samples in order to improve the accuracy of semantic segmentation networks. We exploi…

Cited by 529PDFScholar
2018

Towards Universal Representation for Unseen Action Recognition

CVPR 2018poster

Unseen Action Recognition (UAR) aims to recognise novel action categories without training examples. While previous methods focus on inner-dataset seen/unseen splits, this paper proposes a pipeline using a large-scale training source to achieve a Universal Representation (UR) that can generalise to…

Cited by 145SourcePDFScholar