Predicting Antecedents of Employee Smart Work Adoption Using SEM-Multilayer Perceptron Approach

Author:

Wang Wen-Bao1,Shieh Chich-Jen2,Al-Khafaji Hamza Mohammed Ridha3ORCID,Sevbitov Andrei4,Ismael Aras Masood5,Chetthamrongchai Paitoon6,Suksatan Wanich7,Bahrami Parvaneh8ORCID

Affiliation:

1. College of Civil Engineering, Yango University, Fuzhou 350015, China

2. Institute of Quantitative Economics, Huaqiao University, Xiamen, Fujian 361021, China

3. Biomedical Engineering Department, Al-Mustaqbal University College, 51001 Hillah, Babil, Iraq

4. Department of Propaedeutics of Dental Diseases, Sechenov First Moscow State Medical University, Moscow, Russia

5. Information Technology Department, Technical College of Informatics, Sulaimani Polytechnic University, Iraq

6. Faculty of Business Administration, Kasetsart University, Thailand

7. Faculty of Nursing, HRH Princess Chulabhorn College of Medical Science, Chulabhorn Royal Academy, Bangkok, Thailand

8. Department of Management, Faculty of Management and Accounting, Allameh Tabatabai University, 1489684511 Tehran, Iran

Abstract

The COVID-19 pandemic forced many organizations to move to telework and smart work (SW), and this practice is expected to continue even later in the postpandemic period. Hence, it is very important for managers and organizations to identify the motivating and deterrent factors in adopting smart work and plan to manage them. Therefore, the present study using an innovative methodology tried to identify and prioritize the factors influencing employee SW adoption. In the first stage, the conceptual model of the research was designed, inspired by the literature. In the next step, using structural equation modeling (SEM), antecedents whose effects on employee SW adoption were confirmed were identified. Finally, the output of the SEM model was considered as the input of the multilayer perceptron (MLP) model, which is an artificial neural network model, to determine the importance of each antecedent in the prediction of employee behavior. The present study provides quantitative empirical evidence that perceived value, institutional and technological support, perceived limited communication, and perceived cost are antecedents of employee SW adoption that are, respectively, important in predicting the behavioral intentions of employees in acceptance of SW. The findings of this study contribute to both the SW and the behavioral intention theory literature.

Publisher

Hindawi Limited

Subject

Human-Computer Interaction,General Social Sciences,Social Psychology

Reference45 articles.

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