Yaman Li, Yuanbo Ma, Danyang Su, Yufang Du, Qiuju Miao, Xiangyang Ren, Jinlong Liu, Fei Li, Shenyu Yang, Xiaopeng Yang
Accurate assessment of bone mineral density (BMD), particularly volumetric BMD (vBMD), is central to evaluating bone quality and monitoring bone regeneration. Although dual-energy computed tomography (DECT) combined with virtual monoenergetic imaging (VMI) enhances quantitative imaging, measurements based on single-energy information remain limited by sensitivity and stability. Here, a rabbit tibial defect model was established, with micro-computed tomography used as the reference standard for vBMD. DECT-derived VMIs at low, medium and high energy levels were analysed to extract five quantitative indicators, including three single-energy values, an energy ratio and an energy-difference metric. Quantitative performance was systematically compared using linear regression, cross-validation, prediction-error analysis and Bland-Altman evaluation. The energy-difference metric showed performance comparable to that of the optimal single-energy indicator (VMI40), with marginally better model fit and agreement limits. These results suggest that integrating low- and high-energy information through an energy-difference approach provides a physically interpretable and practical framework for quantitative assessment of bone tissue. However, as this study was conducted in a rabbit model, future human cohort studies are required to confirm its clinical utility.