Systematic Mapping Study on the Machine Learning Lifecycle

Yuanhao Xie, Luís Cruz, P. Heck, Jan S. Rellermeyer
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引用次数: 6

Abstract

The development of artificial intelligence (AI) has made various industries eager to explore the benefits of AI. There is an increasing amount of research surrounding AI, most of which is centred on the development of new AI algorithms and techniques. However, the advent of AI is bringing an increasing set of practical problems related to AI model lifecycle management that need to be investigated. We address this gap by conducting a systematic mapping study on the lifecycle of AI model. Through quantitative research, we provide an overview of the field, identify research opportunities, and provide suggestions for future research. Our study yields 405 publications published from 2005 to 2020, mapped in 5 different main research topics, and 31 sub-topics. We observe that only a minority of publications focus on data management and model production problems, and that more studies should address the AI lifecycle from a holistic perspective.
机器学习生命周期的系统映射研究
人工智能(AI)的发展使得各行各业都渴望探索人工智能的好处。围绕人工智能的研究越来越多,其中大部分集中在开发新的人工智能算法和技术上。然而,人工智能的出现带来了越来越多的与人工智能模型生命周期管理相关的实际问题,这些问题需要研究。我们通过对人工智能模型的生命周期进行系统的映射研究来解决这一差距。通过定量研究,我们概述了该领域,确定了研究机会,并为未来的研究提供了建议。我们研究了2005年至2020年间发表的405篇论文,分为5个不同的主要研究课题和31个子课题。我们观察到,只有少数出版物关注数据管理和模型生成问题,更多的研究应该从整体角度解决人工智能生命周期问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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