Signal‐to‐noise ratio enhancement for Raman spectra based on optimized Raman spectrometer and convolutional denoising autoencoder

The signal‐noise ratio plays a key role in acquiring plentiful chemical structural information in the Raman spectrometer. The miniature spectrometer is generally compact at the expense of performance. In this work, we proposed a compact, signal‐to‐noise ratio (SNR) enhancement of the Raman spectrome...

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Veröffentlicht in:Journal of Raman spectroscopy 2021-04, Vol.52 (4), p.890-900
Hauptverfasser: Fan, Xian‐guang, Zeng, Yingjie, Zhi, Yu‐Liang, Nie, Ting, Xu, Ying‐jie, Wang, Xin
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container_issue 4
container_start_page 890
container_title Journal of Raman spectroscopy
container_volume 52
creator Fan, Xian‐guang
Zeng, Yingjie
Zhi, Yu‐Liang
Nie, Ting
Xu, Ying‐jie
Wang, Xin
description The signal‐noise ratio plays a key role in acquiring plentiful chemical structural information in the Raman spectrometer. The miniature spectrometer is generally compact at the expense of performance. In this work, we proposed a compact, signal‐to‐noise ratio (SNR) enhancement of the Raman spectrometer by the optimization of optical structure and a noise reduction method. Concerning its optical structure, the Raman spectrometer is increasing the intensity by adding an off‐the‐shelf cylindrical lens. On the other side of the algorithm, a relevant automatic denoising method of convolutional denoising autoencoder (CDAE) is proposed to further advance the SNR in Raman spectra without manual intervention. The results indicate the performance of the compact Raman spectrometer could increase to a certain extent by testing with 785 nm laser and Ne/Ar source. Besides, by using CDAE to deal with contaminated Raman spectra, a higher SNR is obtained. The results demonstrate that the improvement of the hardware and algorithm is effective for removing the noisy Raman signal and achieving higher SNR. This result may be helpful in further improving the performance of integrated Raman spectrometers and research on miniaturized instruments. In consideration of signal to noise ratio(SNR) is related to signal intensity and noise level, we hope to improve SNR through optic structure optimization and develop a denoising algorithm. A cylindrical lens has been used to enhance intensity. The convolutional denoising autoencoder (CDAE) algorithm is acquired for the reduction of the noise.
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The miniature spectrometer is generally compact at the expense of performance. In this work, we proposed a compact, signal‐to‐noise ratio (SNR) enhancement of the Raman spectrometer by the optimization of optical structure and a noise reduction method. Concerning its optical structure, the Raman spectrometer is increasing the intensity by adding an off‐the‐shelf cylindrical lens. On the other side of the algorithm, a relevant automatic denoising method of convolutional denoising autoencoder (CDAE) is proposed to further advance the SNR in Raman spectra without manual intervention. The results indicate the performance of the compact Raman spectrometer could increase to a certain extent by testing with 785 nm laser and Ne/Ar source. Besides, by using CDAE to deal with contaminated Raman spectra, a higher SNR is obtained. The results demonstrate that the improvement of the hardware and algorithm is effective for removing the noisy Raman signal and achieving higher SNR. This result may be helpful in further improving the performance of integrated Raman spectrometers and research on miniaturized instruments. In consideration of signal to noise ratio(SNR) is related to signal intensity and noise level, we hope to improve SNR through optic structure optimization and develop a denoising algorithm. A cylindrical lens has been used to enhance intensity. 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source Wiley Online Library Journals Frontfile Complete
subjects Algorithms
autoencoder
convolutional neural network
Czerny‐Turner
denoising
Noise
Noise reduction
Optimization
Raman spectra
Raman spectrometer
Raman spectroscopy
Spectrometers
title Signal‐to‐noise ratio enhancement for Raman spectra based on optimized Raman spectrometer and convolutional denoising autoencoder
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