Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products

Spatial-frequency domain imaging (SFDI) is a wide-field, noncontact, and label-free imaging modality that is currently being explored as a new means for estimating optical absorption and scattering properties of two-layered turbid materials. The accuracy of SFDI for optical property estimation, howe...

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Main Authors: Dong Hu, Yuping Huang, Qiang Zhang, Lijian Yao, Zidong Yang, Tong Sun
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/2/617
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spelling doaj-25fed3bcb39c40be996a75e314d85cea2021-01-11T00:02:23ZengMDPI AGApplied Sciences2076-34172021-01-011161761710.3390/app11020617Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural ProductsDong Hu0Yuping Huang1Qiang Zhang2Lijian Yao3Zidong Yang4Tong Sun5School of Engineering, Zhejiang A&F University, Hangzhou 311300, ChinaCollege of Mechanical and Electronic Engineering, Nanjing Forestry University, Nanjing 210037, ChinaHangzhou Doubltech Electro-Hydraulic Engineering Co., Ltd., Hangzhou 310051, ChinaSchool of Engineering, Zhejiang A&F University, Hangzhou 311300, ChinaSchool of Engineering, Zhejiang A&F University, Hangzhou 311300, ChinaSchool of Engineering, Zhejiang A&F University, Hangzhou 311300, ChinaSpatial-frequency domain imaging (SFDI) is a wide-field, noncontact, and label-free imaging modality that is currently being explored as a new means for estimating optical absorption and scattering properties of two-layered turbid materials. The accuracy of SFDI for optical property estimation, however, depends on light transfer model and inverse algorithm. This study was therefore aimed at providing theoretical analyses of the diffusion model and inverse algorithm through numerical simulation, so as to evaluate the potential for estimating optical absorption and reduced scattering coefficients of two-layered horticultural products. The effect of varying optical properties on reflectance prediction was first simulated, which indicated that there is good separation in diffuse reflectance over a large range of spatial frequencies for different reduced scattering values in the top layer, whereas there is less separation in diffuse reflectance for different values of absorption in the top layer, and even less separation for optical properties in the bottom layer. To implement the nonlinear least-square method for extracting the optical properties of two-layered samples from Monte Carlo-generated reflectance, five curve fitting strategies with different constrained parameters were conducted and compared. The results confirmed that estimation accuracy improved as fewer variables were to be estimated each time. A stepwise method was thus suggested for estimating optical properties of two-layered samples. Four factors influencing optical property estimation of the top layer, which is the basis for accurately implementing the stepwise method, were investigated by generating absolute error contour maps. Finally, the relationship between light penetration depth and spatial frequency was studied. The results showed that penetration depth decreased with the increased spatial frequency and also optical properties, suggesting that appropriate selection of spatial frequencies for a stepwise method to estimate optical properties from two-layered samples provides potential for estimation accuracy improvement. This work lays a foundation for improving optical property estimation of two-layered horticultural products using SFDI.https://www.mdpi.com/2076-3417/11/2/617spatial-frequency domain imagingabsorptionscatteringtwo-layeredsimulation
collection DOAJ
language English
format Article
sources DOAJ
author Dong Hu
Yuping Huang
Qiang Zhang
Lijian Yao
Zidong Yang
Tong Sun
spellingShingle Dong Hu
Yuping Huang
Qiang Zhang
Lijian Yao
Zidong Yang
Tong Sun
Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products
Applied Sciences
spatial-frequency domain imaging
absorption
scattering
two-layered
simulation
author_facet Dong Hu
Yuping Huang
Qiang Zhang
Lijian Yao
Zidong Yang
Tong Sun
author_sort Dong Hu
title Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products
title_short Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products
title_full Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products
title_fullStr Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products
title_full_unstemmed Numerical Simulation on Spatial-Frequency Domain Imaging for Estimating Optical Absorption and Scattering Properties of Two-Layered Horticultural Products
title_sort numerical simulation on spatial-frequency domain imaging for estimating optical absorption and scattering properties of two-layered horticultural products
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-01-01
description Spatial-frequency domain imaging (SFDI) is a wide-field, noncontact, and label-free imaging modality that is currently being explored as a new means for estimating optical absorption and scattering properties of two-layered turbid materials. The accuracy of SFDI for optical property estimation, however, depends on light transfer model and inverse algorithm. This study was therefore aimed at providing theoretical analyses of the diffusion model and inverse algorithm through numerical simulation, so as to evaluate the potential for estimating optical absorption and reduced scattering coefficients of two-layered horticultural products. The effect of varying optical properties on reflectance prediction was first simulated, which indicated that there is good separation in diffuse reflectance over a large range of spatial frequencies for different reduced scattering values in the top layer, whereas there is less separation in diffuse reflectance for different values of absorption in the top layer, and even less separation for optical properties in the bottom layer. To implement the nonlinear least-square method for extracting the optical properties of two-layered samples from Monte Carlo-generated reflectance, five curve fitting strategies with different constrained parameters were conducted and compared. The results confirmed that estimation accuracy improved as fewer variables were to be estimated each time. A stepwise method was thus suggested for estimating optical properties of two-layered samples. Four factors influencing optical property estimation of the top layer, which is the basis for accurately implementing the stepwise method, were investigated by generating absolute error contour maps. Finally, the relationship between light penetration depth and spatial frequency was studied. The results showed that penetration depth decreased with the increased spatial frequency and also optical properties, suggesting that appropriate selection of spatial frequencies for a stepwise method to estimate optical properties from two-layered samples provides potential for estimation accuracy improvement. This work lays a foundation for improving optical property estimation of two-layered horticultural products using SFDI.
topic spatial-frequency domain imaging
absorption
scattering
two-layered
simulation
url https://www.mdpi.com/2076-3417/11/2/617
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AT yupinghuang numericalsimulationonspatialfrequencydomainimagingforestimatingopticalabsorptionandscatteringpropertiesoftwolayeredhorticulturalproducts
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AT zidongyang numericalsimulationonspatialfrequencydomainimagingforestimatingopticalabsorptionandscatteringpropertiesoftwolayeredhorticulturalproducts
AT tongsun numericalsimulationonspatialfrequencydomainimagingforestimatingopticalabsorptionandscatteringpropertiesoftwolayeredhorticulturalproducts
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