Spatial frequency domain spectroscopy imaging using a snap-shot filter mosaic camera compared to a multi-camera system with band-pass filters (Conference Presentation)

Tomas Stroemberg, Hanna Jonasson, Ingemar Fredriksson, G. Salerud, R. Saager, M. Larsson
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Abstract

Spectroscopic imaging of human tissue analyzes backscattered light intensity separated by wavelength. We used a DLP-projector illuminating sinusoidal patterns with varying phase and varying spatial frequency on forearm skin. Detection was done with: 1) a snap-shot filter mosaic camera with 16 wide-band sensitive pixels; 2-3) a four cameras setup with narrow and wide bandwidth optical bandpass filters in the 450-700 nm range, respectively. The detected images were processed with a demodulation scheme, assessing tissue optical parameters, involving light absorption. Calibration was done using an optical phantom with known optical properties. From the absorption coefficient the concentration of skin blood and its oxygenation was determined. We will present results from forearm arterial occlusion and release experiments using the three setups above. Specifically, the effect of the filter bandwidth will be evaluated using data from the multi-camera setups. Furthermore, the snap-shot filter mosaic camera data may be explained by the calculation of modulation using an illumination and detector setup with a broad spectral transmission bandwidth, with considerable variation in μ_a of included chromophores. Approaches for either reducing the effective bandwidth of the filters or by including their characteristic in a light transport model for SFDI modulation, will be proposed.
使用快照滤波马赛克相机的空间频域光谱成像与带通滤波器的多相机系统的比较(会议报告)
人体组织的光谱成像分析按波长分离的背散射光强度。我们使用dlp投影仪照亮前臂皮肤上具有不同相位和不同空间频率的正弦模式。检测采用:1)一个带有16个宽带敏感像素的快照滤光马赛克相机;2-3)在450-700 nm范围内分别设置具有窄带宽和宽带宽光带通滤波器的四个相机。检测到的图像用解调方案进行处理,评估组织光学参数,包括光吸收。使用已知光学特性的光模进行校准。通过吸收系数测定皮肤血氧浓度。我们将介绍使用上述三种装置进行前臂动脉闭塞和释放实验的结果。具体来说,滤波器带宽的影响将使用来自多摄像机设置的数据进行评估。此外,采用宽光谱传输带宽的照明和检测器设置来计算调制可以解释快照滤光马赛克相机数据,其中包含的发色团μ_a变化很大。将提出降低滤波器有效带宽或将其特性包含在SFDI调制的光传输模型中的方法。
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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