Speckle-illumination spatial frequency domain imaging with a stereo laparoscope for profile-corrected optical property mapping.

IF 3 3区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Journal of Biomedical Optics Pub Date : 2025-01-01 Epub Date: 2025-01-24 DOI:10.1117/1.JBO.30.S1.S13710
Anthony A Song, Mason T Chen, Taylor L Bobrow, Nicholas J Durr
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引用次数: 0

Abstract

Significance: Laparoscopic surgery presents challenges in localizing oncological margins due to poor contrast between healthy and malignant tissues. Optical properties can uniquely identify various tissue types and disease states with high sensitivity and specificity, making it a promising tool for surgical guidance. Although spatial frequency domain imaging (SFDI) effectively measures quantitative optical properties, its deployment in laparoscopy is challenging due to the constrained imaging environment. Thus, there is a need for compact structured illumination techniques to enable accurate, quantitative endogenous contrast in minimally invasive surgery.

Aim: We introduce a compact, two-camera laparoscope that incorporates both active stereo depth estimation and speckle-illumination SFDI (si-SFDI) to map profile-corrected, pixel-level absorption ( μ a ), and reduced scattering ( μ s ' ) optical properties in images of tissues with complex geometries.

Approach: We used a multimode fiber-coupled 639-nm laser illumination to generate high-contrast speckle patterns on the object. These patterns were imaged through a modified commercial stereo laparoscope for optical property estimation via si-SFDI. Compared with the original si-SFDI work, which required 10 images of randomized speckle patterns for accurate optical property estimations, our approach approximates the DC response using a laser speckle reducer (LSR) and consequently requires only two images. In addition, we demonstrate 3D profilometry using active stereo from low-coherence RGB laser flood illumination. Sample topography was then used to correct for measured intensity variations caused by object height and surface angle differences with respect to a calibration phantom. The low-contrast RGB speckle pattern was blurred using an LSR to approximate incoherent white light illumination. We validated profile-corrected si-SFDI against conventional SFDI in phantoms with simple and complex geometries, as well as in a human finger in vivo time-series constriction study.

Results: Laparoscopic si-SFDI optical property measurements agreed with conventional SFDI measurements when measuring flat tissue phantoms, exhibiting an error of 6.4% for absorption and 5.8% for reduced scattering. Profile-correction improved the accuracy for measurements of phantoms with complex geometries, particularly for absorption, where it reduced the error by 23.7%. An in vivo finger constriction study further validated laparoscopic si-SFDI, demonstrating an error of 8.2% for absorption and 5.8% for reduced scattering compared with conventional SFDI. Moreover, the observed trends in optical properties due to physiological changes were consistent with previous studies.

Conclusions: Our stereo-laparoscopic implementation of si-SFDI provides a simple method to obtain accurate optical property maps through a laparoscope for flat and complex geometries. This has the potential to provide quantitative endogenous contrast for minimally invasive surgical guidance.

用于轮廓校正光学属性映射的立体腹腔镜散斑照明空间频域成像。
意义:由于健康和恶性组织对比差,腹腔镜手术对肿瘤边缘的定位提出了挑战。光学特性可以独特地识别各种组织类型和疾病状态,具有很高的灵敏度和特异性,是一种很有前途的手术指导工具。尽管空间频域成像(SFDI)能有效地测量定量光学特性,但由于成像环境的限制,其在腹腔镜中的应用具有挑战性。因此,需要紧凑的结构照明技术来实现微创手术中准确、定量的内源性对比。目的:我们介绍了一种紧凑的双摄像头腹腔镜,该腹腔镜结合了主动立体深度估计和散斑照明SFDI (si-SFDI),以映射具有复杂几何形状的组织图像的轮廓校正,像素级吸收(μ a)和减少散射(μ s’)光学特性。方法:我们使用多模光纤耦合639 nm激光照明在物体上产生高对比度的散斑图案。这些图案通过改良的商用立体腹腔镜成像,通过si-SFDI进行光学性质估计。原始的si-SFDI需要至少10张随机散斑图像才能准确估计光学特性,而我们的方法使用激光散斑减减器(LSR)近似直流响应,因此只需要两张图像。此外,我们演示了使用低相干RGB激光泛光照明的主动立体3D轮廓术。然后使用样品地形来校正由物体高度和相对于校准模体的表面角度差异引起的测量强度变化。使用LSR模糊低对比度RGB散斑图案来近似非相干白光照明。我们在具有简单和复杂几何形状的幻影以及人体手指体内时间序列收缩研究中验证了轮廓校正si-SFDI与传统SFDI的对比。结果:腹腔镜si-SFDI光学特性测量与传统SFDI测量在测量扁平组织幻影时一致,吸收误差为6.4%,减少散射误差为5.8%。轮廓校正提高了具有复杂几何形状的幻影的测量精度,特别是在吸收方面,它将误差降低了23.7%。一项体内手指收缩研究进一步验证了腹腔镜si-SFDI,与传统SFDI相比,其吸收误差为8.2%,减少散射误差为5.8%。此外,观察到的生理变化引起的光学性质变化趋势与以往的研究一致。结论:我们的立体腹腔镜si-SFDI实施提供了一种简单的方法,可以通过腹腔镜获得平面和复杂几何形状的精确光学性质图。这有可能为微创手术指导提供定量的内源性对比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.40
自引率
5.70%
发文量
263
审稿时长
2 months
期刊介绍: The Journal of Biomedical Optics publishes peer-reviewed papers on the use of modern optical technology for improved health care and biomedical research.
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