[An optical parameter imaging system with profile information fusion]

Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2022 Apr 25;39(2):370-379. doi: 10.7507/1001-5515.202106051.
[Article in Chinese]

Abstract

There is a shared problem in current optical imaging technologies of how to obtain the optical parameters of biological tissues with complex profiles. In this work, an imaging system for obtaining the optical parameters of biological tissues with complex profile was presented. Firstly, Fourier transformation profilometry was used for obtaining the profile information of biological tissues, and then the difference of incident light intensity at different positions on biological tissue surface was corrected with the laws of illumination, and lastly the optical parameters of biological tissues were achieved with the spatial frequency domain imaging technique. Experimental results indicated the proposed imaging system could obtain the profile information and the optical parameters of biological tissues accurately and quickly. For the slab phantoms with height variation less than 30 mm and angle variation less than 40º, the maximum relative errors of the profile uncorrected optical parameters were 46.27% and 72.18%, while the maximum relative errors of the profile corrected optical parameters were 6.89% and 10.26%. Imaging experiments of a face-like phantom and a human's prefrontal lobe were performed respectively, which demonstrated the proposed imaging system possesses clinical application value for the achievement of the optical parameters of biological tissues with complex profiles. Besides, the proposed profile corrected method can be used to combine with the current optical imaging technologies to reduce the influence of the profile information of biological tissues on imaging quality.

如何快速获取具有复杂轮廓生物组织的光学参数图像,是现有光学成像技术面临的共同难题。本文提出并研制了一套融合轮廓信息的光学参数成像系统,首先采用傅里叶变换轮廓术获取生物组织的轮廓信息,然后依据光照度定律矫正生物组织表面各点入射光强的差异,最后基于空间频域成像原理获取生物组织的光学参数图像。实验结果表明,成像系统能够准确、快速获取生物组织的轮廓信息和光学参数图像。对于表面高度和角度分别在30 mm和40º以内的平板仿体,光学参数的最大成像误差分别从轮廓矫正前的46.27%和72.18%降至轮廓矫正后的6.89%和10.26%。人脸仿体实验和受试者脑前额叶成像试验证明了本文成像系统具备获取具有复杂轮廓生物组织图像的临床应用价值,同时本文提出的轮廓矫正方法或可与现有光学成像技术结合,减少生物组织表面轮廓对成像质量的影响。.

Keywords: Complex profiles; Laws of illumination; Spatial frequency domain imaging; The optical parameters.

MeSH terms

  • Diagnostic Imaging*
  • Humans
  • Light*
  • Optical Imaging
  • Phantoms, Imaging

Grants and funding

国家自然科学基金(81774148,81973699)