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Li Mingjie
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Year
Interpreting and boosting dropout from a game-theoretic view
H Zhang, S Li, Y Ma, M Li, Y Xie, Q Zhang
arXiv preprint arXiv:2009.11729, 2020
462020
Interpreting and disentangling feature components of various complexity from DNNs
J Ren, M Li, Z Liu, Q Zhang
International Conference on Machine Learning, 8971-8981, 2021
192021
Does a neural network really encode symbolic concepts?
M Li, Q Zhang
International Conference on Machine Learning, 20452-20469, 2023
152023
Defining and quantifying the emergence of sparse concepts in dnns
J Ren, M Li, Q Chen, H Deng, Q Zhang
Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern …, 2023
132023
Towards axiomatic, hierarchical, and symbolic explanation for deep models
J Ren, M Li, Q Chen, H Deng, Q Zhang
112021
Visualizing the Emergence of Intermediate Visual Patterns in DNNs
M Li, S Wang, Q Zhang
Thirty-Fifth Conference on Neural Information Processing Systems, 2021
102021
Defining and quantifying and-or interactions for faithful and concise explanation of DNNs
M Li, Q Zhang
arXiv preprint arXiv:2304.13312, 2023
32023
Towards theoretical analysis of transformation complexity of ReLU DNNs
J Ren, M Li, M Zhou, SH Chan, Q Zhang
International Conference on Machine Learning, 18537-18558, 2022
22022
Can the Inference Logic of Large Language Models be Disentangled into Symbolic Concepts?
W Shen, L Cheng, Y Yang, M Li, Q Zhang
arXiv preprint arXiv:2304.01083, 2023
12023
Explaining How a Neural Network Play the Go Game and Let People Learn
H Zhou, H Tang, M Li, H Zhang, Z Liu, Q Zhang
arXiv preprint arXiv:2310.09838, 2023
2023
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