| Title: | The use of image-spectroscopy technology as a diagnostic method for seed health test and variety identification |
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| Authors: | ID Vrešak, Martina (Author) ID Olesen, Halkjaer (Author) ID Gislum, René (Author) ID Bavec, Franc (Author) ID Jørgensen, Ravn (Author) |
| Files: | PLOS_ONE_2016_Vresak_et_al._The_Use_of_Image-Spectroscopy_Technology_as_a_Diagnostic_Method_for_Seed_Health_Testing_and_Variety_Identifi.PDF (2,10 MB) MD5: 3C5794A18A784706DFC3A411008D8D9D
http://dx.plos.org/10.1371/journal.pone.0152011
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| Language: | English |
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| Work type: | Scientific work |
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| Typology: | 1.01 - Original Scientific Article |
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| Organization: | FKBV - Faculty of Agriculture and Life Sciences
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| Abstract: | Application of rapid and time-efficient health diagnostic and identification technology in the seed industry chain could accelerate required analysis, characteristic description and also ultimately availability of new desired varieties. The aim of the study was to evaluate the potential of multispectral imaging and single kernel near-infrared spectroscopy (SKNIR) for determination of seed health and variety separation of winter wheat (Triticum aestivum L.) and winter triticale (Triticosecale Wittm. & Camus). The analysis, carried out in autumn 2013 at AU-Flakkebjerg, Denmark, included nine winter triticale varieties and 27 wheat varieties provided by the Faculty of Agriculture and Life Sciences Maribor, Slovenia. Fusarium sp. and black point disease-infected parts of the seed surface could successfully be distinguished from uninfected parts with use of a multispectral imaging device (405%970 nm wavelengths). SKNIR was applied in this research to differentiate all 36 involved varieties based on spectral differences due to variation in the chemical composition. The study produced an interesting result of successful distinguishing between the infected and uninfected parts of the seed surface. Furthermore, the study was able to distinguish between varieties. Together these components could be used in further studies for the development of a sorting model by combining data from multispectral imaging and SKNIR for identifying disease(s) and varieties. |
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| Keywords: | Fusarium sp., SKNIR, multispectral imaging, varieties, wheat, organic farming |
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| Publication status: | Published |
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| Publication version: | Version of Record |
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| Year of publishing: | 2016 |
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| Number of pages: | str. 1-10 |
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| Numbering: | Letn. 11, št. 3 |
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| PID: | 20.500.12556/DKUM-66305  |
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| ISSN: | 1932-6203 |
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| UDC: | 633.11:631.147 |
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| ISSN on article: | 1932-6203 |
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| COBISS.SI-ID: | 4131884  |
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| DOI: | 10.1371/journal.pone.0152011  |
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| NUK URN: | URN:SI:UM:DK:LBQUTB3H |
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| Publication date in DKUM: | 19.06.2017 |
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| Views: | 1581 |
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| Downloads: | 325 |
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| Metadata: |  |
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| Categories: | Misc.
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