Applied Mathematics and Nonlinear Sciences
Journal license

Journal

Applied Mathematics and Nonlinear Sciences


Volume
& Issue

Volume 8, Issue 2


Published
on

July 21, 2023


Pages


DOI

Article

Research on the path of enterprise management innovation based on multiple logistic regression model


Authors

Daoyang Li Affiliation:
Admission and Employment Office, Wuxi Taihu University, Wuxi, Jiangsu, 214064, China.
and Shaofu Xu Affiliation:
Academic Affairs Office, Wuxi Taihu University, Wuxi, Jiangsu, 214064, China.


Abstract

Exploring the path of enterprise management innovation is to help enterprises transform and upgrade faster and better. This paper first explains the principle of logistic regression, introduces the definition of the multiple logistic regression model, and describes the algorithm for estimating regression parameters using the great likelihood method. Then, an extreme gradient boosting XGBoost model is introduced and combined with the multiple logistic regression model; an MLR-XGBoost model is constructed to analyze the enterprise management innovation path. The MLR-XGBoost model is used to analyze the correlation between the indicators and corporate management innovation by using the MLRXGBoost model. From the data on strategic control integration and cultural reconstruction capability, the correlation of infrastructure guarantee construction capability and entrepreneurial leadership accounted for a higher percentage, 79.74%, and 61.32%, respectively. From the data on organizational structure reengineering and business process coordination ability, the correlation of implementation process standardization ability and business operation visualization ability is higher, 76.58% and 70.28%, respectively. The MLR-XGBoost model can effectively analyze the path of enterprise management innovation and help enterprises achieve transformation and upgrading faster.


Keywords

Multiple logistic regression, MLR-XGBoost model, Great likelihood method, Management innovation, 62G08


Citation

Li, D. & Xu, S. (2023). Research on the path of enterprise management innovation based on multiple logistic regression model. Applied Mathematics and Nonlinear Sciences, 8(2). https://doi.org/10.2478/amns.2023.2.00065

Published by: Engineering Journals

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