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Measurement and model error assessment of a single pixel, frequency domain photon migration apparatus and diffusion model for imaging applications

机译:用于成像应用的单像素,频域光子迁移装置和扩散模型的测量和模型误差评估

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Research into the near-infrared biomedical optical imaging has produced a multitude of inverse imaging algorithms. Recent experience has shown that when these algorithms are tested with experimental data, they falter due to a mismatch between observed and simulated measurements. When considering measurements for imaging, one must consider both measurement and model error. If data is recorded properly, then measurement error tends to be normally distributed with a mean of zero. Model error can be biased and spatially correlated due to a inaccuracies in the diffusion approximation, inaccurate parameter estimates, numerical error, and other factors. This contribution discusses trends in the measurement and model error observed from measurements on a single-pixel, frequency domain photon migration system developed for biomedical optical imaging. In order to reduce the model error bias, an empirical approach was applied to find experimental variables that significantly affect it. This approach reduced the mean of the model error on a test data set and produced a slight smoothing effect on its distribution. Image reconstruction attempts show that the modified data set produces an improved image over the image reconstructed from the raw data set. To our knowledge, this is the first time that model and measurement error information have been incorporated into a three dimensional image reconstruction algorithm.
机译:研究近红外生物医学光学成像已经产生了多种逆成像算法。最近的经验表明,当使用实验数据测试这些算法时,由于观察和模拟测量之间的不匹配,它们由于不匹配而动摇。考虑到成像测量时,必须考虑测量和模型错误。如果正确记录数据,则测量误差趋于通常以零的平均值分布。由于扩散近似,不准确的参数估计,数值误差和其他因素,模型误差可以偏置和空间相关。该贡献讨论了为生物医学光学成像开发的单像素,频域光子迁移系统的测量测量和模型误差的趋势。为了减少模型错误偏差,应用了实证方法来查找显着影响其的实验变量。这种方法减少了在测试数据集上的模型错误的平均值,并对其分布产生了略微平滑的效果。图像重建尝试表明,修改的数据集在从原始数据集重新构建的图像上产生改进的图像。为了我们的知识,这是第一次将模型和测量错误信息结合到三维图像重建算法中。

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