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A Unified Mathematical and IoT-Based Predictive Framework for Smart Fire Detection, Cybersecurity, and Precision Irrigation Systems

Aug 2026 · International journal of computer information systems and industrial management applications · 0 citations

Abstract

The rapid expansion of the Internet of Things (IoT) has enabled the development of intelligent systems capable of addressing complex challenges across public safety, agriculture, and digital security. However, most existing solutions are designed for individual applications and lack a unified framework that integrates multiple real-world domains with mathematical decision-making. This study proposes a unified mathematical and IoT-based predictive framework that combines smart fire detection, cybersecurity, privacy protection, precision irrigation, and cybercrime pattern analysis within a single architecture. The proposed framework employs interconnected IoT devices to collect and transmit real-time data from distributed environments, while mathematical modeling and predictive analysis support timely decision-making and efficient resource utilization. In the fire detection module, environmental sensors monitor parameters such as temperature, smoke, and gas concentration to enable early hazard identification. The precision irrigation module utilizes soil and weather information to optimize water distribution and improve agricultural productivity. To strengthen cyberspace security, the framework incorporates data protection mechanisms and analyzes cybercrime patterns to identify potential threats and support preventive actions. The integration of these components demonstrates how mathematical analysis and IoT technologies can enhance system reliability, operational efficiency, and decision accuracy across diverse application domains. The proposed framework provides a scalable and adaptable foundation for the development of secure and intelligent smart systems suitable for future smart cities, agriculture, and critical infrastructure.

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