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http://repository.iiitd.edu.in/xmlui/handle/123456789/1987| Title: | Aligning large language models (LLMs) using curriculum learning in multilingual settings in education do-main |
| Authors: | Dulloo, Sushane Shah, Rajiv Ratn (Advisor) |
| Keywords: | Scientific Reasoning Multilingual Reasoning Agent Framework |
| Issue Date: | 27-Nov-2024 |
| Publisher: | IIIT-Delhi |
| Abstract: | Large Language Models (LLMs) have revolutionized natural language processing (NLP) with exceptional capabilities in reasoning and computational tasks, enabled by extensive pretraining on large datasets dominated by high-resource languages such as English and French. However, this language-specific bias significantly limits their generalizability to low-resource languages like Hindi and Bengali, which lack sufficient digital corpora and contextual representation. Conse- quently, these models struggle with scientific reasoning tasks in low-resource languages. Despite advancements in multilingual models like mBERT and XLM-R, their performance in reasoning- intensive tasks remains inadequate for these underserved languages. Addressing this disparity necessitates effective cross-lingual transfer of reasoning capabilities, augmented by data enhance- ment techniques to simulate reasoning tasks in low-resource linguistic contexts. This research aims to evaluate the reasoning performance of LLMs in low-resource language settings like Hindi/Bengali etc, develop adaptive transfer strategies, and construct LLM agent frameworks with open/close sourced LLM models to better understand reasoning steps and iteratively refine them for improved accuracy. |
| URI: | http://repository.iiitd.edu.in/xmlui/handle/123456789/1987 |
| Appears in Collections: | Year-2024 |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| BTP_Report - Sushane Dulloo.pdf Restricted Access | 142.2 kB | Adobe PDF | View/Open Request a copy |
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