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Comparative Analysis of CHATGPT and the evolution of language models

Published 28 Mar 2023 in cs.CL | (2304.02468v1)

Abstract: Interest in LLMs has increased drastically since the emergence of ChatGPT and the outstanding positive societal response to the ease with which it performs tasks in NLP. The triumph of ChatGPT, however, is how it seamlessly bridges the divide between language generation and knowledge models. In some cases, it provides anecdotal evidence of a framework for replicating human intuition over a knowledge domain. This paper highlights the prevailing ideas in NLP, including machine translation, machine summarization, question-answering, and language generation, and compares the performance of ChatGPT with the major algorithms in each of these categories using the Spontaneous Quality (SQ) score. A strategy for validating the arguments and results of ChatGPT is presented summarily as an example of safe, large-scale adoption of LLMs.

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