Aug 2026· International Journal of Accounting, Management, Economics and Social Sciences (IJAMESC)· Vol 4, pp. 1976-1996· 0 citations· 24 references
Abstract
This study aims to predict financial distress in Indonesian manufacturing companies using the Decision Tree method. A quantitative predictive design was applied to secondary data from the annual financial statements of manufacturing companies listed on the Indonesia Stock Exchange during 2020–2024, yielding 612 firm-year observations. Financial distress was measured as a binary outcome (financially distressed versus non-financially distressed), with Current Ratio, Debt to Asset Ratio, Return on Assets, Total Asset Turnover, Sales Growth, and Firm Size as predictors. Using Python, a pruned Decision Tree achieved 84.6% accuracy, 64.7% precision, 75.9% recall, and a 69.8% F1-score for the financially distressed class. Return on Assets was the most influential predictor, followed by Debt to Asset Ratio and Current Ratio. The resulting rules show that distress reflects interacting conditions of weak profitability, high leverage, low liquidity, inefficient asset utilization, and declining sales growth. Theoretically, the study extends financial distress prediction research by demonstrating the value of interpretable machine learning in an emerging-market manufacturing context. Practically, its transparent rules provide an actionable early-warning tool for investors, creditors, managers, and regulators to identify financial vulnerability and support timely intervention.
Early prediction of financial distress risk is important for providing timely warning signals to investors, creditors, and regulators. This study examines 91 Vietnamese listed industrial firms over the period 2015–2024 and compares a traditional Logistic Regression model with three machine learning algorithms: Random F...
Ha Thi Nguyen· Tạp chí Khoa học Đại học Côn...· 0 citations
Purpose – This study aims to examine and analyze the relationship between Cash Ratio, Return on Asset, and Managerial Agency Cost on Financial Distress.
Design/methodology/approach – This study uses quantitative data. The sample used in this research consists of infrastructure sector companies listed on the Indonesia S...
D. Walukano, Santika Hutasoit, Adamsyah Nadeak· Journal of Applied Accountin...· 0 citations
The financial results and long-term viability of corporate organisations are Financial leverage has a major impact.
This research looks at The impact of financial leverage on the financial performance of a few Indian listed pharmaceutical
businesses between 2021 and 2024. The annual reports and audited financial statem...
N. N. Kumar, Umadevi Ramamoorthy· International Journal of Inn...· 0 citations
This study examines the influence of financial ratios and corporate governance mechanisms on financial distress in transportation and logistics companies listed on the Indonesia Stock Exchange over the 2019–2023 period. Financial performance is proxied by the Current Ratio (CR) for liquidity, Return on Assets (ROA) for...
Sri Sulasmiyati, Annisa Maghfirah· IJBAMS: International Journa...· 0 citations
Focusing on textile and garment firms listed on the Indonesia Stock Exchange from 2021 to 2024, this research evaluates how financial distress is affected by liquidity, leverage, Interest Coverage Ratio (ICR), and firm size. This study employs a quantitative causal design using panel data from 12 listed firms, resultin...
Belfa Yulita Nur Asifah, Augustina Kurniasih· International Journal of Glo...· 0 citations
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