arXiv:2505.16228cs.CV2025-05中稿 · JBHI

基于人体形状优化全身摄影清晰度,提升皮肤癌筛查图像质量

A Shape-Aware Total Body Photography System for In-focus Surface Coverage Optimization

  • 通过3D体形估计与动态调焦,按姿态选择最佳焦点距离
  • 实现平均0.068mm/pixel分辨率,95%体表区域保持清晰对焦
  • 适合需要高精度全身成像的医疗影像与皮肤病变分析场景

全身摄影(TBP)正成为高危皮肤癌患者的重要筛查工具。尽管已有进展,现有系统在自动检测和分析可疑皮损方面仍有提升空间,这与图像分辨率和清晰度密切相关。本文提出一种新型形状感知的TBP系统,可自动捕获全身图像,并在人体表面优化图像质量,包括分辨率与清晰度。系统采用安装于360°旋转臂上的深度相机与RGB相机,结合3D体形估计及聚焦表面优化方法,为每个相机姿态选择最优对焦距离,从而在已校准的相机位姿下,针对人体复杂三维几何结构实现聚焦覆盖优化。我们在多样体形与姿态的仿真数据以及真人假人实测扫描上评估系统性能,结果显示:在仿真数据中,平均分辨率达0.068 mm/pixel,约85%体表区域在焦;在真实假人扫描中,分辨率为0.0566 mm/pixel,95%体表区域在焦。此外,所提形状感知对焦方法显著优于传统自动对焦等方案。我们认为该系统带来的高保真成像将有效提升皮肤癌筛查中的自动化皮损分析能力。

原文摘要 · Abstract (English)

Total Body Photography (TBP) is becoming a useful screening tool for patients at high risk for skin cancer. While much progress has been made, existing TBP systems can be further improved for automatic detection and analysis of suspicious skin lesions, which is in part related to the resolution and sharpness of acquired images. This paper proposes a novel shape-aware TBP system automatically capturing full-body images while optimizing image quality in terms of resolution and sharpness over the body surface. The system uses depth and RGB cameras mounted on a 360-degree rotary beam, along with 3D body shape estimation and an in-focus surface optimization method to select the optimal focus distance for each camera pose. This allows for optimizing the focused coverage over the complex 3D geometry of the human body given the calibrated camera poses. We evaluate the effectiveness of the system in capturing high-fidelity body images. The proposed system achieves an average resolution of 0.068 mm/pixel and 0.0566 mm/pixel with approximately 85% and 95% of surface area in-focus, evaluated on simulation data of diverse body shapes and poses as well as a real scan of a mannequin respectively. Furthermore, the proposed shape-aware focus method outperforms existing focus protocols (e.g. auto-focus). We believe the high-fidelity imaging enabled by the proposed system will improve automated skin lesion analysis for skin cancer screening.

全身摄影皮肤癌筛查3D成像图像优化

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