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On the effect of experimental noise on the classification of biological samples using Raman micro-spectroscopy

机译:实验噪声对使用拉曼微谱法对生物样品分类的影响

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Raman micro-spectroscopy is an optoelectronic technique that can be used to evaluate the chemical composition of biological samples and has been shown to be a powerful diagnostic tool for the investigation of various cancer related diseases including bladder, breast, and cervical cancer. Raman scattering is an inherently weak process with approximately 1 in 10~7 photons undergoing scattering and for this reason, noise from the recording system can have a significant impact on the quality of the signal, and its suitability for diagnostic classification. The main sources of noise in the recorded signal are shot noise, CCD dark current, and CCD readout noise. Shot noise results from the low signal photon count while dark current results from thermally generated electrons in the semicon-ductor pixels. Both of these noise sources are time dependent; readout noise is time independent but is inherent in each individual recording and results in the fundamental limit of measurement, arising from the internal electronics of the camera. In this paper, each of the aforementioned noise sources are analysed in isolation, and used to experimentally validate a mathematical model. This model is then used to simulate spectra that might be acquired under various experimental conditions including the use of different cameras, different source wavelength, and power etc. Simulated noisy datasets of T24 and RT112 cell line spectra are generated based on true cell Raman spectrum irradiance values (recorded using very long exposure times) and the addition of simulated noise. These datasets are then input to multivariate classification using Principal Components Analysis and Linear Discriminant Analysis. This method enables an investigation into the effect of noise on the sensitivity and specificity of Raman based classification under various experimental conditions and using different equipment.
机译:拉曼微光谱是一种光电技术,可用于评估生物样品的化学成分,并且已被证明是调查包括膀胱,乳腺癌和宫颈癌的各种癌症相关疾病的强大诊断工具。拉曼散射是一种固有的弱过程,其10〜7光子在散射中大约1,因此,来自记录系统的噪声可以对信号的质量产生显着影响,以及其诊断分类的适用性。记录信号中的主要噪声源是拍摄噪声,CCD暗电流和CCD读数噪声。射击噪声由低信号光子计数导致,而暗电流是由半导体像素中的热生成电子产生的。这两种噪声源都是依赖的时间;读数噪声是时间独立,但每个单独的录制中固有并导致测量的基本限制,从相机的内部电子设备引起。在本文中,以隔离分析上述每个上述噪声源,并用于通过实验验证数学模型。然后使用该模型来模拟可能在各种实验条件下获取的光谱,包括使用不同的摄像机,不同的源波长和功率等。基于真正的单元格拉曼频谱辐照度生成T24和RT112细胞线谱的模拟噪声数据集值(使用非常长的曝光时间记录)和添加模拟噪声。然后使用主成分分析和线性判别分析输入这些数据集以多变量分类。该方法能够在各种实验条件下和使用不同设备对基于拉曼分类的敏感性和特异性的影响来研究。

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