Unsupervised Causal Binary Concepts Discovery with VAE for Black-Box Model Explanation
Thien Q. Tran, Kazuto Fukuchi, Youhei Akimoto, Jun Sakuma
摘要
We aim to explain a black-box classifier with the form: "data X is classified as class Y because X has A, B and does not have C" in which A, B, and C are high-level concepts. The challenge is that we have to discover in an unsupervised manner a set of concepts, i.e., A, B and C, that is useful for explaining the classifier. We first introduce a structural generative model that is suitable to express and discover such concepts. We then propose a learning process that simultaneously learns the data distribution and encourages certain concepts to have a large causal influence on the classifier output. Our method also allows easy integration of user's prior knowledge to induce high interpretability of concepts. Finally, using multiple datasets, we demonstrate that the proposed method can discover useful concepts for explanation in this form.
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- On Completeness-aware Concept-Based Explanations in Deep Neural NetworksChih-Kuan Yeh, Been Kim, Sercan Ömer Arik, Chun-Liang Li 等NeurIPS 2020 · 被引用 390 次
- Generative causal explanations of black-box classifiersMatthew R. O'Shaughnessy, Gregory Canal, Marissa Connor, Christopher Rozell 等NeurIPS 2020 · 被引用 83 次
- Benchmarks, Algorithms, and Metrics for Hierarchical DisentanglementAndrew Slavin Ross, Finale Doshi-VelezICML 2021 · 被引用 15 次
- PatchVAE: Learning Local Latent Codes for RecognitionKamal Gupta, Saurabh Singh, Abhinav ShrivastavaCVPR 2020
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