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Artificial neural network approach for the predicition of the corn (Zea mays L.) leaf area

Date

2013

Author

Odabas M.S.
Ergun E.
Oner F.

Metadata

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Abstract

This research investigates the artificial neural networks utilization in improving leaf area forecasting at corn leaves (Zea mays L.). Best fitting results were obtained with 2 input nodes (leaf length and leaf width), 2 hidden layers and one output (leaf area). Artificial neural network model performance was tested successfully to describe the relationship between actual leaf area and predicted leaf area. R2 of leaf area was 0.98. Artificial neural networks model produced satisfied correlation between measured and predicted value and minimum inspection error.

Source

Bulgarian Journal of Agricultural Science

Volume

19

Issue

4

URI

https://hdl.handle.net/20.500.12712/4887

Collections

  • Scopus İndeksli Yayınlar Koleksiyonu [14046]



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