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Chirag Shah

5 accepted papers

2026

Position: Knowing Isn’t Understanding: Re-grounding Generative Proactivity with Epistemic and Behavioral Insight

ICML 2026poster

Generative AI agents equate *understanding* with resolving explicit queries, an assumption that confines interaction to what users can articulate. This assumption breaks down when users themselves lack awareness of what is missing, risky, or worth considering. In such conditions, proactivity is not …

Cited by 0SourceScholar
2024

ClaimVer: Explainable Claim-Level Verification and Evidence Attribution of Text Through Knowledge Graphs

EMNLP 2024finding

In the midst of widespread misinformation and disinformation through social media and the proliferation of AI-generated texts, it has become increasingly difficult for people to validate and trust information they encounter. Many fact-checking approaches and tools have been developed, but they often…

Cited by 5SourcePDFScholar
2024

S3-DST: Structured Open-Domain Dialogue Segmentation and State Tracking in the Era of LLMs

ACL 2024findings

Traditional Dialogue State Tracking (DST) has focused on tracking preferences and intents in conversations centered around specific tasks (e.g. booking services). These conventional systems assume a relatively restricted conversation flow in which each turn gradually offers new information. However,…

Cited by 5SourcePDFScholar
2023

Addressing Weak Decision Boundaries in Image Classification by Leveraging Web Search and Generative Models

IJCAI 2023poster

Machine learning (ML) technologies are known to be riddled with ethical and operational problems, however, we are witnessing an increasing thrust by businesses to deploy them in sensitive applications. One major issue among many is that ML models do not perform equally well for underrepresented grou…

Cited by 1SourcePDFScholar