Real-Time Performance Optimization of Travel Reservation Systems Using AI and Microservices
Biman Barua, M. Shamim Kaiser

TL;DR
This paper presents a hybrid AI and microservices framework that significantly improves real-time performance, scalability, and reliability of travel reservation systems by forecasting demand, optimizing resources, and decentralizing system components.
Contribution
It introduces a novel hybrid AI-microservices architecture for travel reservation systems, enhancing performance, scalability, and fault tolerance over traditional monolithic models.
Findings
Drastic reduction in processing times
Increased system uptime and resource utilization
Enhanced handling of peak loads and spikes
Abstract
The rapid growth of the travel industry has increased the need for real-time optimization in reservation systems that could take care of huge data and transaction volumes. This study proposes a hybrid framework that ut folds an Artificial Intelligence and a Microservices approach for the performance optimization of the system. The AI algorithms forecast demand patterns, optimize the allocation of resources, and enhance decision-making driven by Microservices architecture, hence decentralizing system components for scalability, fault tolerance, and reduced downtime. The model provided focuses on major problems associated with the travel reservation systems such as latency of systems, load balancing and data consistency. It endows the systems with predictive models based on AI improved ability to forecast user demands. Microservices would also take care of different scales during uneven…
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Taxonomy
TopicsTransportation and Mobility Innovations · Transportation Planning and Optimization · Traffic Prediction and Management Techniques
Methodstravel james · Emirates Airlines Office in Dubai
