Business Intelligence-Based Risk Analysis Approach to Prevent Accidents in Overhead Crane Operations

Authors

DOI:

https://doi.org/10.34306/itsdi.v8i1.731

Keywords:

Business Intelligence, Crane Safety, Design Science Research, Predictive Maintenance, WDRS

Abstract

Overhead crane operations remain a high-risk activity in heavy manufacturing, yet safety management often relies on static assessments that fail to capture real-time operational dynamics. In developing economies such as Indonesia, a significant digital gap hinders the adoption of high-cost IoT solutions, leaving safety data fragmented and reactive. This study aims to bridge this gap by developing and validating a Business Intelligence (BI) Safety Dashboard that utilizes bridge technologies, defined as cost-effective digital solutions that leverage existing administrative and operational data instead of dedicated IoT infrastructure, to provide real-time predictive risk insights. Following a Design Science Research (DSR) framework, a three-year longitudinal study (2024–2026) was conducted at a metal fabrication facility in West Java. A Weighted Dynamic Risk Score (WDRS) was formulated using Data Analysis Expressions (DAX), integrating incident logs, maintenance records, and operator certification data into a unified star schema model. The results demonstrate a 95% reduction in data processing time and a 30% increase in near-miss reporting. The proposed artifact successfully identified critical risk outliers, such as Crane 08 (WDRS = 8.3), and generated spatiotemporal heatmaps that pinpointed specific risk hotspots within the facility. These findings confirm that the BI Dashboard is a feasible and highly practical solution for resource-constrained environments, providing a scalable blueprint for Indonesian SMEs to achieve Industry 4.0 safety standards by leveraging existing administrative data for predictive maintenance and proactive safety interventions.

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Published

2026-07-27

How to Cite

Kurniaji, R., Azizah, N., Rakhmansyah, M., Rahardja, U., & Ismail, A. (2026). Business Intelligence-Based Risk Analysis Approach to Prevent Accidents in Overhead Crane Operations. IAIC Transactions on Sustainable Digital Innovation (ITSDI), 8(1), 12–23. https://doi.org/10.34306/itsdi.v8i1.731

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