From Text to Transformation: A Comprehensive Review of Large Language Models' Versatility

Fuente: arXiv
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Autori principali: Kaur, Pravneet, Kashyap, Gautam Siddharth, Kumar, Ankit, Nafis, Md Tabrez, Kumar, Sandeep, Shokeen, Vikrant
Natura: Preprint
Pubblicazione: 2024
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author Kaur, Pravneet
Kashyap, Gautam Siddharth
Kumar, Ankit
Nafis, Md Tabrez
Kumar, Sandeep
Shokeen, Vikrant
author_facet Kaur, Pravneet
Kashyap, Gautam Siddharth
Kumar, Ankit
Nafis, Md Tabrez
Kumar, Sandeep
Shokeen, Vikrant
contents This groundbreaking study explores the expanse of Large Language Models (LLMs), such as Generative Pre-Trained Transformer (GPT) and Bidirectional Encoder Representations from Transformers (BERT) across varied domains ranging from technology, finance, healthcare to education. Despite their established prowess in Natural Language Processing (NLP), these LLMs have not been systematically examined for their impact on domains such as fitness, and holistic well-being, urban planning, climate modelling as well as disaster management. This review paper, in addition to furnishing a comprehensive analysis of the vast expanse and extent of LLMs' utility in diverse domains, recognizes the research gaps and realms where the potential of LLMs is yet to be harnessed. This study uncovers innovative ways in which LLMs can leave a mark in the fields like fitness and wellbeing, urban planning, climate modelling and disaster response which could inspire future researches and applications in the said avenues.
format Preprint
id arxiv_https___arxiv_org_abs_2402_16142
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle From Text to Transformation: A Comprehensive Review of Large Language Models' Versatility
Kaur, Pravneet
Kashyap, Gautam Siddharth
Kumar, Ankit
Nafis, Md Tabrez
Kumar, Sandeep
Shokeen, Vikrant
Computation and Language
Artificial Intelligence
This groundbreaking study explores the expanse of Large Language Models (LLMs), such as Generative Pre-Trained Transformer (GPT) and Bidirectional Encoder Representations from Transformers (BERT) across varied domains ranging from technology, finance, healthcare to education. Despite their established prowess in Natural Language Processing (NLP), these LLMs have not been systematically examined for their impact on domains such as fitness, and holistic well-being, urban planning, climate modelling as well as disaster management. This review paper, in addition to furnishing a comprehensive analysis of the vast expanse and extent of LLMs' utility in diverse domains, recognizes the research gaps and realms where the potential of LLMs is yet to be harnessed. This study uncovers innovative ways in which LLMs can leave a mark in the fields like fitness and wellbeing, urban planning, climate modelling and disaster response which could inspire future researches and applications in the said avenues.
title From Text to Transformation: A Comprehensive Review of Large Language Models' Versatility
topic Computation and Language
Artificial Intelligence
url https://arxiv.org/abs/2402.16142