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A Context Aware Approach for Generating Natural Language Attacks (2012.13339v1)
Published 24 Dec 2020 in cs.CL
Abstract: We study an important task of attacking natural language processing models in a black box setting. We propose an attack strategy that crafts semantically similar adversarial examples on text classification and entailment tasks. Our proposed attack finds candidate words by considering the information of both the original word and its surrounding context. It jointly leverages masked LLMling and next sentence prediction for context understanding. In comparison to attacks proposed in prior literature, we are able to generate high quality adversarial examples that do significantly better both in terms of success rate and word perturbation percentage.
- Rishabh Maheshwary (14 papers)
- Saket Maheshwary (3 papers)
- Vikram Pudi (11 papers)