Analysis of the Effectiveness of Big Data-Based Six Sigma Methodology: Focus on DX SS


KIPS Transactions on Software and Data Engineering, Vol. 13, No. 1, pp. 1-16, Jan. 2024
https://doi.org/10.3745/KTSDE.2024.13.1.1,   PDF Download:
Keywords: Big data, 6 Sigma, Effectiveness Analysis, Key Success Policy
Abstract

Over recent years, 6 Sigma has become a key methodology in manufacturing for quality improvement and cost reduction. However, challenges have arisen due to the difficulty in analyzing large-scale data generated by smart factories and its traditional, formal application. To address these limitations, a big data-based 6 Sigma approach has been developed, integrating the strengths of 6 Sigma and big data analysis, including statistical verification, mathematical optimization, interpretability, and machine learning. Despite its potential, the practical impact of this big data-based 6 Sigma on manufacturing processes and management performance has not been adequately verified, leading to its limited reliability and underutilization in practice. This study investigates the efficiency impact of DX SS, a big data-based 6 Sigma, on manufacturing processes, and identifies key success policies for its effective introduction and implementation in enterprises. The study highlights the importance of involving all executives and employees and researching key success policies, as demonstrated by cases where methodology implementation failed due to incorrect policies. This research aims to assist manufacturing companies in achieving successful outcomes by actively adopting and utilizing the methodologies presented.


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Cite this article
[IEEE Style]
K. J. Hyuk and K. Y. Ki, "Analysis of the Effectiveness of Big Data-Based Six Sigma Methodology: Focus on DX SS," KIPS Transactions on Software and Data Engineering, vol. 13, no. 1, pp. 1-16, 2024. DOI: https://doi.org/10.3745/KTSDE.2024.13.1.1.

[ACM Style]
Kim Jung Hyuk and Kim Yoon Ki. 2024. Analysis of the Effectiveness of Big Data-Based Six Sigma Methodology: Focus on DX SS. KIPS Transactions on Software and Data Engineering, 13, 1, (2024), 1-16. DOI: https://doi.org/10.3745/KTSDE.2024.13.1.1.