Stillwell Roy A, Kitsmiller Vincent J, Wei Alicia Y, Chong Alyssa, Senn Lyla, O'Sullivan Thomas D
Department of Electrical Engineering, University of Notre Dame, Notre Dame, Indiana 46556, USA.
St. Mary's College, Notre Dame, Indiana 46556, USA.
Biomed Opt Express. 2021 Nov 1;12(11):7261-7279. doi: 10.1364/BOE.435913.
Frequency-domain near-infrared spectroscopy (FD-NIRS) provides quantitative noninvasive measurements of tissue optical absorption and scattering, as well as a safe and accurate method for characterizing tissue composition and metabolism. However, the poor scalability and high complexity of most FD-NIRS systems assembled to date have contributed to its limited clinical impact. To address these shortcomings, we present a scalable, digital-based FD-NIRS platform capable of measuring optical properties and tissue chromophore concentrations in real-time. The system provides single-channel FD-NIRS amplitude/phase, optical property, and chromophore data at a maximum display rate of 36.6 kHz, 17.9 kHz, and 10.2 kHz, respectively, and can be scaled to multiple channels as well as integrated into a handheld format. The entire system is enabled by several innovations including an ultra-high-speed k-nearest neighbor lookup table method (maximum of 250,000 inversions/s for a large 2500x700 table of absorption and reduced scattering coefficients), embedded FPGA and CPU high-speed co-processing, and high-speed data transfer (due to on-board processing). We show that our 6-wavelength, broad modulation bandwidth (1-400 MHz) system can be used to perform 2D high-density spatial mapping of optical properties and high speed quantification of hemodynamics.
频域近红外光谱(FD-NIRS)可对组织的光吸收和散射进行定量无创测量,也是一种表征组织成分和代谢的安全、准确方法。然而,迄今为止组装的大多数FD-NIRS系统扩展性差且复杂度高,这限制了其临床应用。为解决这些缺点,我们提出了一种基于数字的可扩展FD-NIRS平台,能够实时测量光学特性和组织生色团浓度。该系统分别以36.6 kHz、17.9 kHz和10.2 kHz的最大显示速率提供单通道FD-NIRS幅度/相位、光学特性和生色团数据,并且可以扩展到多个通道,也可集成到手持形式中。整个系统由多项创新技术支持,包括超高速k近邻查找表方法(对于2500x700的大型吸收和约化散射系数表,最大反转速度为每秒250,000次)、嵌入式FPGA和CPU高速协同处理以及高速数据传输(由于板载处理)。我们展示了我们的6波长、宽调制带宽(1-400 MHz)系统可用于执行光学特性的二维高密度空间映射和血流动力学的高速定量分析。