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BhashaSutra: A Task-Centric Unified Survey of Indian NLP Datasets, Corpora, and Resources
April 20, 2026 ยท Grace Period ยท ๐ ACL 2026
Authors
Raghvendra Kumar, Devankar Raj, Sriparna Saha
arXiv ID
2604.18423
Category
cs.CL: Computation & Language
Citations
0
Venue
ACL 2026
Abstract
India's linguistic landscape, spanning 22 scheduled languages and hundreds of marginalized dialects, has driven rapid growth in NLP datasets, benchmarks, and pretrained models. However, no dedicated survey consolidates resources developed specifically for Indian languages. Existing reviews either focus on a few high-resource languages or subsume Indian languages within broader multilingual settings, limiting coverage of low-resource and culturally diverse varieties. To address this gap, we present the first unified survey of Indian NLP resources, covering 200+ datasets, 50+ benchmarks, and 100+ models, tools, and systems across text, speech, multimodal, and culturally grounded tasks. We organize resources by linguistic phenomena, domains, and modalities; analyze trends in annotation, evaluation, and model design; and identify persistent challenges such as data sparsity, uneven language coverage, script diversity, and limited cultural and domain generalization. This survey offers a consolidated foundation for equitable, culturally grounded, and scalable NLP research in the Indian linguistic ecosystem.
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