Research on the Relationship between Human Resource Management Activities and Enterprise Performance Based on the Supervised Learning Model

Author:

Sun Chan1,Li Xiaojuan2ORCID

Affiliation:

1. School of Business, Hunan International Economics University, Changsha 410000, Hunan, China

2. School of Business Administration, Hunan University of Finance and Economics, Changsha 410205, Hunan, China

Abstract

HRMS is a very critical tool for companies. The recruitment text contains rich information that can provide strong information support for the company’s recruitment work and also improve the efficiency of job seekers in finding job opportunities. To this end, for the problem of multilabel text classification of recruitment information, this paper provides two algorithms for multilayer classification based on supported SVM. First, the same learning subclass method is used for text sorting subclass acquisition, and then, the class of the text is determined. Second, the hemispherical support SVM is used to find the smallest hypersphere in the feature space that contains the most text of that class and segment the text of that class from other texts. For the text to be classified, the distance from it to the center of each hypersphere is used to determine the class of the text. Experimental results on recruitment data demonstrate that the algorithm in this paper has a high check-all rate, check-accuracy rate, and F1. And, the relationship between HRM activities and corporate performance is discussed.

Funder

Chinese National Funding of Social Sciences

Publisher

Hindawi Limited

Subject

Modeling and Simulation

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Study on the Relationship between Human Resource Management and Firm Performance Based on VAR Modeling;Applied Mathematics and Nonlinear Sciences;2023-12-20

2. Enterprise Human Resource Scheduling and Optimization Based on Big Data;Lecture Notes in Electrical Engineering;2023

3. Design of Human Resource Management System Based on Deep Learning;Computational Intelligence and Neuroscience;2022-07-20

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