The key Dynamic Energy Budget (DEB) energetic parameters were determined for two intensively cultured bivalve species in the Yellow Sea, the Pacific oyster Magallana gigas (Thunberg, 1793) (= Crassostrea gigas ) and the Manila clam Ruditapes philippinarum (Adams & Reeve, 1850), through controlled physiological experiment. The parameters obtained include the shape coefficient δ m (0.178 and 0.374, respectively), volume-specific cost for structure E G (1675 and 5688 J/cm³), maximum storage density E M (2493 and 2159 J/cm³), and volume-specific maintenance rate ṗ M (22.49 and 50.87 J/(cm³·d)). These parameters were subsequently calibrated using multimodal optimization. Different calibration strategies produced statistically equivalent fits but yielded parameter sets with divergent physiological interpretations, demonstrating that goodness-of-fit alone is insufficient to guarantee biological plausibility. We recommend the integrated calibration approach which first constrains the model with locally measured core parameters, then refines the remaining coefficients via mathematical optimization. This strategy produces parameter sets that are both physiologically interpretable and predictive, thereby improving the reliability of DEB based individual models in aquaculture applications.
Wang et al. (Sat,) studied this question.