Artificial Intelligence and Machine Learning for Job Automation

Author:

Peng Gang1ORCID,Bhaskar Rahul1

Affiliation:

1. California State University, Fullerton, USA

Abstract

Job automation is a critical decision that has brought about profound changes in the workplace. However, the question of what drives job automation remains unclear. This study conducts an interdisciplinary review of five theoretical frameworks on job automation, paying particular attention to the role played by artificial intelligence and machine learning. It highlights the concepts and mechanisms underlying each of the frameworks, compares and contrasts their similarities and differences, and highlights challenges and suggests opportunities of job automation. It also proposes an integrated framework on job automation by addressing the research gaps in extant frameworks and thereby contributes to the research and practice on this important topic.

Publisher

IGI Global

Subject

Hardware and Architecture,Information Systems,Software

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