量化咬合夹板实际位置误差并模拟对颞下颌关节的影响
Quantifying mandibular positioning error and simulated temporomandibular joint-space changes in patient-specific occlusal splints

- 建立生物医学框架,用刚体变换分析咬合夹板定位误差
- 发现定位误差有系统性平移分量和各向异性变异,可传递至关节间隙变化
- 适合口腔正畸与颌面外科医生评估个性化夹板的可靠性
个性化咬合定位夹板可视为计划下颌位置的物理实现。但由于采集、配准、制造和放置等环节的误差,实际达成的位置可能偏离计划。本研究提出一种基于变换的生物医学工程框架,用于量化下颌定位精度,并将误差传播至模拟的颞下颌关节结构。整合多模态3D数据(CBCT、面部运动捕捉、牙科扫描)至统一坐标系,设计并制作对应特定下颌位置的夹板,通过石膏模型重复扫描评估实际位置。计划与实际位置间的偏差以刚体误差变换表示,在SE(3)空间中分析,并结合表面距离度量。将估计的变换传播至基于CBCT的TMJ结构,量化髁突-关节窝距离图的变化。结果表明存在系统性平移分量和各向异性变异性,且误差可被有效传播至模拟的关节空间变化。该框架为记录计划与实际下颌配置、分析个性化夹板流程中的定位不确定性提供了客观方法。
原文摘要 · Abstract (English)
Patient-specific occlusal positioning splints can be regarded as physical realisations of planned mandibular transformations. However, the achieved mandibular pose may differ from the planned one because of acquisition, registration, fabrication, and positioning errors. This study presents a transformation-based biomedical engineering framework for quantifying mandibular positioning accuracy and propagating the resulting error to a simulated temporomandibular joint configuration. Multimodal 3D data, including CBCT, facial motion acquisition, and dental scans, were integrated in a common coordinate system. Positioning splints corresponding to selected mandibular poses were designed and fabricated, and their realised positions were evaluated using repeated scans of plaster models. Discrepancies between planned and achieved positions were represented as rigid-body error transformations and analysed in SE(3), together with surface-distance metrics. The estimated transformations were propagated to CBCT-derived TMJ structures to quantify changes in condyle-fossa distance maps. The results demonstrate a systematic translational component and anisotropic variability of mandibular positioning error, with measurable propagation to simulated TMJ-space changes. The proposed framework provides an objective method for documenting planned and achieved mandibular configurations and for analysing positioning uncertainty in patient-specific splint workflows.
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