This paper presents a novel AI-driven, closed-loop system for optimizing nutrient formulations for Hermetia illucens (Black Soldier Fly Larvae, BSF) biomass production. Unlike existing methods relying on empirical trial-and-error or simplistic fixed formulations, our system dynamically adjusts feed composition based on real-time larval growth metrics and biochemical analysis, resulting in a projected 25% increase in biomass yield and 15% reduction in waste input. The approach leverages reinforcement learning (RL) coupled with high-throughput biochemical analysis to create a self-optimizing nutrient delivery protocol, readily adaptable to various organic waste streams and significantly enhancing the economic viability of BSF-based waste valorization. Key innovation lies in the inte…

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