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深度学习在信息系统研究中的应用

Deep Learning for Information Systems Research

Journal of Management Information Systems · 2023
被引 51 · 同刊同年前 8%
人大 AFT50ABS 4

中文导读

提出深度学习信息系统研究框架,总结现有研究,提供知识贡献框架和十项指南,帮助学者在计算、行为或经济类IS研究中设计、执行和展示深度学习项目。

Abstract

Modern artificial intelligence (AI) is heavily reliant on deep learning (DL), an emerging class of algorithms that can automatically detect non-trivial patterns from petabytes of rapidly evolving “Big Data.” Although the information systems (IS) discipline has embraced DL, questions remain about DL’s interface with a domain and theory and DL contribution types. In this paper, we present a DL information systems research (DL-ISR) schematic that reviews DL while considering the role of the application environment and knowledge base, summarizes extant DL research in IS, a knowledge contribution framework (KCF) to position DL contributions, and ten guidelines to help IS scholars design, execute, and present DL for computational, behavioral, or economic IS research. We illustrate a research contribution to DL for cybersecurity. This article’s contribution to theory resides in the conceptual DL-ISR schematic and KCF, while its contributions to practice are based on its practical guidelines for executing DL-based projects.

信息系统深度学习人工智能大数据知识管理