Literature DB >> 30235509

[Simultaneous Detection of Multiple Quality Parameters of Pork Based on Fused Dual Band Spectral].

Wen-xiu Wang, Yan-kun Peng, Tian-feng Xu, Yuan-yuan Liu.   

Abstract

For dual band visible/near infrared spectroscopy system (350~1 100 and 1 000~2 500 nm), there exsits a band overlap and for the same sample the reflectivity data were unlike due to the performance difference between instruments. A band connection and data fusion method was proposed in this paper to make better use of the dual-band data. A dual-band visible/near-infrared spectroscopy system was built in the study to collect 60 pork samples’ reflectance spectra. The reflectance spectra of samples were performed with pretreatment methods of Savitzky-Golay (S-G) and standard normal variable transform to eliminate the spectral noise. Then partial least squares regression (PLSR) prediction models of pork quality attributes (color, pH and cooking loss) based on single-band spectrum and dual-band spectrum were established, respectively. For the cross of two band overlap, the data were connected and integrated using the method put forward in this paper and then PLSR models were established based on the integrated data. The PLSR model yielded prediction result with correlation coefficient of validation (R(p)) of 0.948 8, 0.920 0, 0.950 5, 0.930 1 and 0.903 5 for L(*), a(*), b(*), pH value and cooking loss, respectively. To simplify the model, uninformative variables elimination (UVE) was employed to select characteristic variables. The experimental results show that the proposed method was able to achieve a better fusion of the two band spectral data, and it was good for the establishment of a more simplified and better prediction model.

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Year:  2016        PMID: 30235509

Source DB:  PubMed          Journal:  Guang Pu Xue Yu Guang Pu Fen Xi        ISSN: 1000-0593            Impact factor:   0.589


  1 in total

Review 1.  Infrared Light Emission Devices Based on Two-Dimensional Materials.

Authors:  Wenyi Li; Hui Li; Karim Khan; Xiaosong Liu; Hui Wang; Yanping Lin; Lishang Zhang; Ayesha Khan Tareen; S Wageh; Ahmed A Al-Ghamdi; Daoxiang Teng; Han Zhang; Zhe Shi
Journal:  Nanomaterials (Basel)       Date:  2022-08-30       Impact factor: 5.719

  1 in total

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