Comparision of some models for estimation of reflectance of hypericum leaves under stress conditions

Lack of water resources and high water salinity levels are among the most important growth-restricting factors for plants species of the world. This research investigates the effect of irrigation levels and salinity on reflectance of Saint John’s wort leaves ( Hypericum perforatum L.) under stress c...

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Veröffentlicht in:Central European journal of biology 2014-12, Vol.9 (12), p.1226-1234
Hauptverfasser: Temizel, Kadir Ersin, Odabas, Mehmet Serhat, Senyer, Nurettin, Kayhan, Gokhan, Bajwa, Sreekala Gopalapillai, Caliskan, Omer, Ergun, Erhan
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Sprache:eng
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Zusammenfassung:Lack of water resources and high water salinity levels are among the most important growth-restricting factors for plants species of the world. This research investigates the effect of irrigation levels and salinity on reflectance of Saint John’s wort leaves ( Hypericum perforatum L.) under stress conditions (water and salt stress) by multiple linear regression (MLR), artificial neural network (ANN) and adaptive neuro-fuzzy inference system (ANFIS). Empirical and heuristics modeling methods were employed in this study to relate stress conditions to leaf reflectance. It was found that the constructed ANN model exhibited a high performance than multiple regression and ANFIS in estimating leaf reflectance accurately.
ISSN:1895-104X
2391-5412
1644-3632
2391-5412
DOI:10.2478/s11535-014-0356-4