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Genetic algorithm optimizes student academic resource allocation

Researchers have developed a genetic algorithm to optimize the allocation of academic resources for high school mathematics students. This approach addresses the NP-hard complexity of resource selection, which becomes computationally challenging with larger catalogs. The algorithm, integrated with a constraint repair mechanism, demonstrated fast convergence, high solution quality, and stability in experimental evaluations, suggesting its practical utility for real-time decision support in education. AI

IMPACT This research demonstrates a novel application of metaheuristic algorithms for educational resource optimization, potentially improving learning outcomes.

RANK_REASON The cluster contains an academic paper detailing a new algorithm for an educational problem. [lever_c_demoted from research: ic=1 ai=0.4]

Read on arXiv cs.NE (Neural & Evolutionary) →

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Genetic algorithm optimizes student academic resource allocation

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  1. arXiv cs.NE (Neural & Evolutionary) TIER_1 English(EN) · Fernando Jiménez ·

    A genetic algorithm for student academic resource allocation

    The optimal allocation of academic resources to individual students is essential for addressing learner diversity and fostering equitable educational outcomes. Within the framework of the Erasmus+ KA220-SCH project, this paper models the selection of educational materials for hig…