A systematic literature review of weak signal identification and evolution for corporate foresight
ISSN: 0368-492X
Article publication date: 2 May 2023
Issue publication date: 30 October 2024
Abstract
Purpose
With the intensification of market competition, there is a growing demand for weak signal identification and evolutionary analysis for enterprise foresight. For decades, many scholars have conducted relevant research. However, the existing research only cuts in from a single angle and lacks a systematic and comprehensive overview. In this paper, the authors summarize the articles related to weak signal recognition and evolutionary analysis, in an attempt to make contributions to relevant research.
Design/methodology/approach
The authors develop a systematic overview framework based on the most classical three-dimensional space model of weak signals. Framework comprehensively summarizes the current research insights and knowledge from three dimensions of research field, identification methods and interpretation methods.
Findings
The research results show that it is necessary to improve the automation level in the process of weak signal recognition and analysis and transfer valuable human resources to the decision-making stage. In addition, it is necessary to coordinate multiple types of data sources, expand research subfields and optimize weak signal recognition and interpretation methods, with a view to expanding weak signal future research, making theoretical and practical contributions to enterprise foresight, and providing reference for the government to establish weak signal technology monitoring, evaluation and early warning mechanisms.
Originality/value
The authors develop a systematic overview framework based on the most classical three-dimensional space model of weak signals. It comprehensively summarizes the current research insights and knowledge from three dimensions of research field, identification methods and interpretation methods.
Keywords
Acknowledgements
The authors thank Fengxia Sun, Jing Wang and Qianqian Chen of the School of Economics and Management, Beijing University of Technology for their help in collecting data for the paper; and the National Natural Science Foundation of China [71672004] for their support.
Citation
Zhao, D., Tang, Z. and He, D. (2024), "A systematic literature review of weak signal identification and evolution for corporate foresight", Kybernetes, Vol. 53 No. 10, pp. 3160-3188. https://doi.org/10.1108/K-03-2023-0343
Publisher
:Emerald Publishing Limited
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