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#84 LAURA RUIS - Large language models are not zero-shot communicators [NEURIPS UNPLUGGED]

Machine Learning Street Talk (MLST)

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Understanding Language Models: Nuances and Limitations

This chapter dives into the complexities of interpretability in machine learning, focusing on large language models and their distinctions from human cognition. It highlights the importance of pragmatics and contextual understanding in communication, while also addressing the limitations of these models in symbolic reasoning and nuanced scenarios. The discussion emphasizes the need for improved evaluation methods to accurately assess the capabilities and shortcomings of language models.

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