CLAILGJun 23

A Pāninian Foundation for Indic Language Processing

arXiv:2606.2417215.6
Predicted impact top 63% in CL · last 90 daysOriginality Incremental advance
AI Analysis

For NLP researchers working on Indic languages, this work proposes a foundational shift from language-specific to architecture-aware processing, potentially unifying sparse resources.

The paper argues that Indic languages share a morphosyntactic architecture formalized in Pānini's grammar, which can serve as a unifying computational framework for NLP. It proposes a benchmark suite to leverage this architecture for more accurate, data-efficient, and transferable systems.

More than a billion people communicate in Indic languages, yet the natural language processing infrastructure serving them remains fragmented and underdeveloped. The cause is structural: the field organizes its tools and benchmarks around individual languages or small subsets of genealogical language families, building separate analyzers, parsers, and datasets for each language and starting over for the next. This overlooks a deep regularity. Through more than two millennia of convergence around Sanskrit, Indic languages came to share a morphosyntactic architecture formalized in Pānini's grammar, the Astādhyāyī. This cuts across genealogical lines, uniting languages through a common framework. We argue that this Pāninian framework supplies a unifying computational architecture the field has lacked, and that benchmarks grounded explicitly in it would make Indic language systems more accurate, more data-efficient, and more transferable, effectively merging many apparently disparate and sparse Indic language resources into a single high-resource metalanguage bedrock. We propose a four-part benchmark suite to render this shared architecture explicit, measurable, and ready to be leveraged for practical applications. Moreover, we underscore the question it raises for interpretability research: whether neural models trained on these languages come to represent Pānini's categories on their own.

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