International Journal of Financial Studies (Feb 2024)

Board Expertise Background and Firm Performance

  • Chiou-Yann Lee,
  • Chun-Ru Wen,
  • Binh Thi-Thanh-Nguyen

DOI
https://doi.org/10.3390/ijfs12010017
Journal volume & issue
Vol. 12, no. 1
p. 17

Abstract

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This study presents a novel financial performance forecasting method that combines the threshold technique with Artificial Neural Networks (ANN). It applies the threshold regression method to identify the factors within the board of directors that influence the financial performance of traditional industries in Taiwan. The findings indicate that the ANN method effectively predicts financial performance by using relevant board structure data. Furthermore, the empirical results suggest that boards with more members demonstrate increased profitability. Additionally, a more significant presence of board members with accounting expertise contributes to more consistent profits. In contrast, an increased presence of members with financial expertise has a more pronounced impact on profitability.

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