DeepDebugger: An Interactive Time-Travelling Debugging Approach for Deep Classifiers
Xianglin Yang, Yun Lin, Yifan Zhang, Linpeng Huang, Jin Song Dong, Hong Mei
Abstract
A deep classifier is usually trained to (i) learn the numeric representation vector of samples and (ii) classify sample representations with learned classification boundaries. Time-travelling visualization, as an explainable AI technique, is designed to transform the model training dynamics into an animation of canvas with colorful dots and territories. Despite that the training dynamics of the high-level concepts such as sample representations and classification boundaries are now observable, the model developers can still be overwhelmed by tens of thousands of moving dots across hundreds of training epochs (i.e., frames in the animation), which makes them miss important training events.
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Builds on4
- Swin Transformer: Hierarchical Vision Transformer using Shifted WindowsZe Liu, Yutong Lin, Yue Cao, Han Hu et al.ICCV 2021 · 31,683 citations
- Debugging Tests for Model ExplanationsJulius Adebayo, Michael Muelly, Ilaria Liccardi, Been KimNeurIPS 2020 · 209 citations
- Cockpit: A Practical Debugging Tool for the Training of Deep Neural NetworksFrank Schneider, Felix Dangel, Philipp HennigNeurIPS 2021 · 14 citations
- DeepVisualInsight: Time-Travelling Visualization for Spatio-Temporal Causality of Deep Classification TrainingXianglin Yang, Yun Lin, Ruofan Liu, Zhenfeng He et al.AAAI 2022 · 7 citations
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