Dam J S, Dalgaard T, Fabricius P E, Andersson-Engels S
Bang & Olufsen Medicom ays, Bredgade 67b, DK-7600 Struer, Denmark.
Appl Opt. 2000 Mar 1;39(7):1202-9. doi: 10.1364/ao.39.001202.
We present a new, to our knowledge, method for extracting optical properties from integrating sphere measurements on thin biological samples. The method is based on multivariate calibration techniques involving Monte Carlo simulations, multiple polynomial regression, and a Newton-Raphson algorithm for solving nonlinear equation systems. Prediction tests with simulated data showed that the mean relative prediction error of the absorption and the reduced scattering coefficients within typical biological ranges were less than 0.3%. Similar tests with data from integrating sphere measurements on 20 dye-polystyrene microsphere phantoms led to mean errors less than 1.7% between predicted and theoretically calculated values. Comparisons showed that our method was more robust and typically 5-10 times as fast and accurate as two other established methods, i.e., the inverse adding-doubling method and the Monte Carlo spline interpolation method.
据我们所知,我们提出了一种从对薄生物样本的积分球测量中提取光学特性的新方法。该方法基于多变量校准技术,涉及蒙特卡罗模拟、多元多项式回归以及用于求解非线性方程组的牛顿-拉夫逊算法。对模拟数据的预测测试表明,在典型生物范围内,吸收系数和约化散射系数的平均相对预测误差小于0.3%。对20个染料-聚苯乙烯微球模型的积分球测量数据进行的类似测试,预测值与理论计算值之间的平均误差小于1.7%。比较表明,我们的方法更稳健,通常比另外两种既定方法(即反向相加-加倍法和蒙特卡罗样条插值法)快5到10倍且更准确。