| Literature DB >> 27739491 |
Wenwen Kong1, Fei Liu2, Chu Zhang2, Jianfeng Zhang1, Hailin Feng1.
Abstract
The feasibility of hyperspectral imaging with 400-1000 nm was investigated to detect malondialdehyde (MDA) content in oilseed rape leaves under herbicide stress. After comparing the performance of different preprocessing methods, linear and nonlinear calibration models, the optimal prediction performance was achieved by extreme learning machine (ELM) model with only 23 wavelengths selected by competitive adaptive reweighted sampling (CARS), and the result was RP = 0.929 and RMSEP = 2.951. Furthermore, MDA distribution map was successfully achieved by partial least squares (PLS) model with CARS. This study indicated that hyperspectral imaging technology provided a fast and nondestructive solution for MDA content detection in plant leaves.Entities:
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Year: 2016 PMID: 27739491 PMCID: PMC5064365 DOI: 10.1038/srep35393
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The original Vis/NIR reflectance spectra of oilseed rape leaves under different herbicide stress.
The wavelength region was 500–900 nm, and the significant reflectance peak around 550 nm and absorbance peak around 680 nm were caused by chlorophyll.
Statistical values of MDA content in oilseed rape leaves (μmol/g FW).
| Data set | Sample No. | Range | Mean | Standard deviation |
|---|---|---|---|---|
| Calibration | 33 | 2.087–13.141 | 5.119 | 2.677 |
| Validation | 16 | 2.390–10.661 | 5.868 | 2.392 |
Prediction results of MDA by PLS model with different pretreatment.
| Pretreatment | RC | RP | RMSEP |
|---|---|---|---|
| MAS | 0.952 | 0.893 | 1.764 |
| MAS + Baseline Correction | 0.956 | 0.893 | 1.863 |
| MAS + MSC | 0.950 | 0.890 | 1.861 |
| MAS + SNV + De-trending | 0.948 | 0.891 | 1.810 |
| MAS + 2-der | 0.996 | 0.912 | 2.117 |
Figure 2The scatter plots of prediction set by (a) full-spectrum PLS model and (b) EW-based ELM model. The PLS model applied 500–900 nm as inputs and ELM model applied selected effective wavelengths. The ELM models with Rp = 0.929 was better than PLS model with Rp = 0.912.
Effective wavelengths of MDA prediction selected by different methods.
| Pretreatment | Methods | No. | EW/nm |
|---|---|---|---|
| MAS + 2-der | WRC | 9 | 536, 690, 670, 606, 885, 721, 644, 503, 683 |
| CARS | 23 | 524, 536, 537, 549, 563, 608, 642, 644, 673, 681, 703 | |
| 721, 736, 752, 753, 772, 786, 801, 808, 833, 843, 850, 868 | |||
| SPA | 12 | 644, 505, 650, 841, 824, 813, 862, 773, 825, 804, 726, 816 | |
| UVE-SPA | 13 | 512, 536, 503, 544, 534, 549, 502, 551, 514, 529, 525 | |
| 557, 555 |
Prediction results of MDA by different models with EWs.
| Pretreatment | EWs selection methods | Models | RC | RP | RMSEP |
|---|---|---|---|---|---|
| MAS + 2-der | WRC | PLS | 0.988 | 0.913 | 1.955 |
| LS-SVM | 0.992 | 0.921 | 1.860 | ||
| ELM | 0.994 | 0.924 | 2.767 | ||
| CARS | PLS | 0.996 | 0.919 | 2.130 | |
| LS-SVM | 0.999 | 0.923 | 2.092 | ||
| ELM | 0.998 | 0.929 | 2.951 | ||
| SPA | PLS | 0.993 | 0.902 | 2.614 | |
| LS-SVM | 0.994 | 0.906 | 2.511 | ||
| ELM | 0.980 | 0.921 | 3.246 | ||
| UVE-SPA | PLS | 0.993 | 0.910 | 1.979 | |
| LS-SVM | 0.998 | 0.908 | 2.226 | ||
| ELM | 0.982 | 0.924 | 2.339 |
Figure 3Main steps of visualization including mask of hyperspectral imaging, ROI selection of leaf area without the main leaf vein, effective wavelength-based PLS model development and visualization map.
Firstly, the mask file was used to remove the background of original hyperspectral imaging. Secondly, the spectral data were used to select effective wavelengths and develop PLS models, then the pixel information was used as inputs of PLS model, and the predicted value was used to present a visualization map.
Figure 4Distribution map of MDA content in oilseed rape leaves built by PLS model.
Different colors present different MDA values. The MDA value increased from blue (0) to red (15 μmol/g FW).
Figure 5Overview of hyperspectral imaging system including light source, spectra camera, electric displacement table and computer.
The electric displacement table can move from right to left with a changeable velocity, the Halogen light source was used to supply desired wavelengths, the spectra camera was used to collect the hyperspectral imaging, and the computer was used to control the system, store and process the data.