Improving apple fruit firmness predictions by effective correction of multispectral scattering images
نویسندگان
چکیده
Firmness is an important parameter in determining the maturity and quality grade of apple fruit. The objective of this research was to mprove the multispectral imaging system used in our previous studies and refine scattering analysis methods for more effectively measuring pple fruit firmness. An improved multispectral imaging system equipped with a light intensity controller was used to measure light scattering rom ‘Red Delicious’ apples at seven wavelengths and ‘Golden Delicious’ apples at eight wavelengths. A correction method was proposed o reduce noise signals in the scattering images during radial averaging of image pixels. Apple shape/size affected scattering intensity and istance, and two methods were proposed for correcting their effects. The corrected scattering images were reduced to spatially symmetrical rofiles by radial averaging. A modified Lorentzian distribution (MLD) function with four parameters was used to fit the scattering profiles. irmness prediction models were developed by multi-linear regression against MLD parameters for two apple cultivars. The improved system ielded better firmness predictions with the correlation (r) of 0.898 and the standard error of validation (S.E.V.) of 6.41 N for ‘Red Delicious’ pples and r= 0.897 and S.E.V. = 6.14 N for ‘Golden Delicious’ apples. 2006 Elsevier B.V. All rights reserved.
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تاریخ انتشار 2006