Interlocking-free Selective Rationalization Through Genetic-based Learning
Federico Ruggeri, Gaetano Signorelli
摘要
A popular end-to-end architecture for selective rationalization is the select-then-predict pipeline, comprising a generator to extract highlights fed to a predictor. Such a cooperative system suffers from suboptimal equilibrium minima due to the dominance of one of the two modules, a phenomenon known as interlocking. While several contributions aimed at addressing interlocking, they only mitigate its effect, often by introducing feature-based heuristics, sampling, and ad-hoc regularizations. We present GenSPP, the first interlocking-free architecture for selective rationalization that does not require any learning overhead, as the above-mentioned. GenSPP avoids interlocking by performing disjoint training of the generator and predictor via genetic global search. Experiments on a synthetic and a real-world benchmark show that our model outperforms several state-of-the-art competitors.
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它引用的顶会 Paper13
- Invariant RationalizationShiyu Chang, Yang Zhang, Mo Yu, Tommi S. JaakkolaICML 2020 · 被引用 232 次
- Understanding Interlocking Dynamics of Cooperative RationalizationMo Yu, Yang Zhang, Shiyu Chang, Tommi S. JaakkolaNeurIPS 2021 · 被引用 52 次
- ERASER: A Benchmark to Evaluate Rationalized NLP ModelsJay DeYoung, Sarthak Jain, Nazneen Fatema Rajani, Eric P. Lehman 等ACL 2020 · 被引用 36 次
- FR: Folded Rationalization with a Unified EncoderWei Liu, Haozhao Wang, Jun Wang, Ruixuan Li 等NeurIPS 2022 · 被引用 33 次
- DARE: Disentanglement-Augmented Rationale ExtractionLinan Yue, Qi Liu, Yichao Du, Yanqing An 等NeurIPS 2022 · 被引用 24 次
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