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Towards the development of a recommender system for product delivery using graph databases and related algorithms

摘要


Recommendation systems are among the promising strands of machine learning that have revolutionized in-formation retrieval operations. These systems are designed to make recommendations to users based on different factors. The realization of a recommender system requires a study of the users' needs and the metrics that may influence each recommendation, as well as the attributes that can be entered into the application but that have no effect on the system's functioning. In this context, SoftCentre aims to develop a delivery recommender system using graph databases and related algorithms, in order to figure out the best path for each delivery to its destination. In this context, the deliverer will respect deadlines, specifications, and deduce the best itinerary to travel on. Therefore, our project revolves around the design, modeling, and implementation of a recommendation sys-tem based on these main phases: 1)Data collection and preprocessing, 2)Graph database creation, and 3)Applying recommendation and optimization algorithms.

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