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1000 Titel
  • Nondestructive detection of apple crispness via optical fiber spectroscopy based on effective wavelengths
1000 Autor/in
  1. Ni, Fupeng |
  2. Zhu, Xiaowen |
  3. Gu, Fang |
  4. Hu, Yaohua |
1000 Erscheinungsjahr 2019
1000 Publikationstyp
  1. Artikel |
1000 Online veröffentlicht
  • 2019-10-03
1000 Erschienen in
1000 Quellenangabe
  • 7(11):3654-3663
1000 Copyrightjahr
  • 2019
1000 Lizenz
1000 Verlagsversion
  • https://doi.org/10.1002/fsn3.1222 |
1000 Publikationsstatus
1000 Begutachtungsstatus
1000 Sprache der Publikation
1000 Abstract/Summary
  • Crispness is regarded as a significant quality index for apples. Currently, destructive sensory evaluation is the accepted method used to detect apple crispness, making it essential to develop a method that can detect apple crispness in a nondestructive manner. In this study, spectroscopy was proposed as the nondestructive technique for detecting apples' crispness, ultimately obtaining a spectral reflectance curve between 450 nm and 1,000 nm. In order to simplify and improve modeling efficiency, successive projections algorithm (SPA) and x‐loading weights (x‐LW) methods were used to select the most effective wavelengths. Partial least squares (PLS) algorithm, radial basis neural networks (RBNN), and multilayer perceptron neural networks (MLPNN) methods were used to establish the models and to predict the crispness of “Fuji” and “Qinguan” apple varieties. Based on the full wavelength (FW), the prediction accuracy of the PLS model for “Fuji” and “Qinguan” apple varieties was 92.05% and 95.87%, respectively. The effective wavelengths selected via SPA for the “Fuji” apple variety were 450.41 nm, 476.80 nm, 677.75 nm, and 750.72 nm, and the effective wavelengths selected via x‐LW for the “Qinguan” apple variety were 542.51 nm, 544.79 nm, 676.96 nm, and 718.29 nm. The prediction accuracy of the PLS model based on effective wavelengths for “Fuji” and “Qinguan” apple varieties reached 91.31% and 96.41%, respectively. Compared with the RBNN model, the MLPNN model achieved better prediction results for both “Fuji” and “Qinguan” apples, with the prediction accuracy reaching 97.8% and 99.9%, respectively. Based on the above findings, effective wavelength selection and MLPNN modeling were able to detect apple crispness with the highest accuracy. Overall, it can be concluded that the less effective wavelengths are conducive to developing an instrument for crispness detection.
1000 Sacherschließung
lokal artificial neural network
lokal successive projections algorithm
lokal apple crispness
lokal optical fiber spectroscopy
lokal partial least squares method
lokal effective wavelengths
1000 Fächerklassifikation (DDC)
1000 Liste der Beteiligten
  1. https://orcid.org/0000-0001-7029-0929|https://frl.publisso.de/adhoc/uri/Wmh1LCBYaWFvd2Vu|https://frl.publisso.de/adhoc/uri/R3UsIEZhbmc=|https://frl.publisso.de/adhoc/uri/SHUsIFlhb2h1YQ==
1000 Label
1000 Förderer
  1. National Natural Science Foundation of China |
  2. Ministry of Agriculture and Rural Affairs of the People's Republic of China |
1000 Fördernummer
  1. 31671965
  2. 2017001
1000 Förderprogramm
  1. -
  2. Project of Key Laboratory of Agricultural Internet of Things
1000 Dateien
1000 Förderung
  1. 1000 joinedFunding-child
    1000 Förderer National Natural Science Foundation of China |
    1000 Förderprogramm -
    1000 Fördernummer 31671965
  2. 1000 joinedFunding-child
    1000 Förderer Ministry of Agriculture and Rural Affairs of the People's Republic of China |
    1000 Förderprogramm Project of Key Laboratory of Agricultural Internet of Things
    1000 Fördernummer 2017001
1000 Objektart article
1000 Beschrieben durch
1000 @id frl:6427425.rdf
1000 Erstellt am 2021-05-12T10:31:17.218+0200
1000 Erstellt von 286
1000 beschreibt frl:6427425
1000 Bearbeitet von 286
1000 Zuletzt bearbeitet Wed May 12 10:33:10 CEST 2021
1000 Objekt bearb. Wed May 12 10:32:42 CEST 2021
1000 Vgl. frl:6427425
1000 Oai Id
  1. oai:frl.publisso.de:frl:6427425 |
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1000 Sichtbarkeit Daten public
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