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#73 - YASAMAN RAZEGHI & Prof. SAMEER SINGH - NLP benchmarks

Machine Learning Street Talk (MLST)

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Enhancing Reasoning in Language Models

This chapter examines the reasoning limitations of large language models, particularly in mathematical contexts, and questions whether increasing model parameters is sufficient for improvement. It advocates for integrating symbolic reasoning and hybrid systems to bolster interpretability and adaptability in machine learning models.

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