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openalexZenodo (CERN European Organization for Nuclear Research)2026-07-24Cited by 0

Crop Growth Information Dynamics: A Theoretical Framework for Information-Driven Phenotypic Evolution and Biomass Allocation

Jincheng Zhang

Traditional crop growth models predominantly rely on mass conservation and energy flow to simulate biomass accumulation and yield formation, often struggling to capture non-linear responses, critical phase transitions, and phenotypic plasticity under fluctuating environmental stresses. To address these limitations, this paper proposes a novel conceptual and mathematical framework termed Crop Growth Information Dynamics (CGID), which introduces "information" as a fundamental third element alongside mass and energy. By treating the crop as a non-linear information-dynamic system, we define the spatial state vector of crop growth and quantify phenotypic uncertainty and environmental sensing capabilities using state-space Information Entropy and Mutual Information. A continuous partial differential field equation and a spatial-temporal memory convolution kernel are established to model signal generation, long-distance transmission, signal attenuation, and long-range temporal memory within plant tissues. Furthermore, we construct a fully coupled system of differential equations linking mass, energy, and information, where biomass allocation ratios dynamically evolve as a non-linear function driven by accumulated historical and real-time environmental information. Theoretical deductions demonstrate that CGID effectively explains the priming effect (stress memory) and shadow avoidance behaviors in dense crop canopies, offering a refined mathematical mechanism for stress tolerance and phenotypic plasticity. This work provides a transformative theoretical foundation for next-generation digital twin agriculture, precision crop management, and the design of information-smart crop cultivars.

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