Optical coherence tomography (OCT) is a micrometer-scale, volumetric imaging modality that has become a clinical standard in ophthalmology. OCT instruments image by raster-scanning a focused light spot across the retina, acquiring sequential cross-sectional images to generate volumetric data. Patient eye motion during the acquisition poses unique challenges: Non-rigid, discontinuous distortions can occur, leading to gaps in data and distorted topographic measurements. We present a new distortion model and a corresponding fully-automatic, reference-free optimization strategy for computational motion correction in orthogonally raster-scanned, retinal OCT volumes. Using a novel, domain-specific spatiotemporal parametrization of forward-warping displacements, eye motion can be corrected continuously for the first time. Parameter estimation with temporal regularization improves robustness and accuracy over previous spatial approaches. We correct each A-scan individually in 3D in a single mapping, including repeated acquisitions used in OCT angiography protocols. Specialized 3D forward image warping reduces median runtime to < 9 s, fast enough for clinical use. We present a quantitative evaluation on 18 subjects with ocular pathology and demonstrate accurate correction during microsaccades. Transverse correction is limited only by ocular tremor, whereas submicron repeatability is achieved axially (0.51 um median of medians), representing a dramatic improvement over previous work. This allows assessing longitudinal changes in focal retinal pathologies as a marker of disease progression or treatment response, and promises to enable multiple new capabilities such as supersampled/super-resolution volume reconstruction and analysis of pathological eye motion occuring in neurological diseases.
翻译:光学成像(OCT) 光学成像(OCT) 光相感像(OCT) 是一个微米、体积和体积成像模式,已经成为眼球学的临床标准。 OCT 仪器通过在视网膜上扫描一个聚焦光点,获得连续的跨剖面图像以生成体积数据。 获取过程中的病人眼运动带来了独特的挑战: 非硬性、不连续的扭曲可能发生,导致数据差距和扭曲地形测量。我们为在眼球学中或正正正反射中,为计算动作校正提供了一个新的扭曲模型和相应的完全自动、不提供参考的优化战略。我们提出了一种新的扭曲模型和相应的完全、完全不提供参考的优化战略,用于在眼球眼部眼部的正中中中中分修正,通过光部特定特定的多度中值中值回移到直到直的直径直的直流動,而快速的眼部位运动在第一次修正中可以被纠正。