2021
DOI: 10.1002/ps.6547
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Machine learning models as an alternative to determine productivity losses caused by weeds

Abstract: BACKGROUND Weed control can be economically viable if implemented at the necessary time to minimize interference. Empirical mathematical models have been used to determine when to start the weed control in many crops. Furthermore, empirical models have a low generalization capacity to understand different scenarios. However, computational development facilitated the implementation of supervised machine learning models, as artificial neural networks (ANNs), capable of understanding complex relationships. The ob… Show more

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Cited by 2 publications
(1 citation statement)
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References 62 publications
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“…In this context, understanding yield and productivity dynamics under different nutrient management and crop rotation intensities is very useful. Transition from high input-based conventional systems to more sustainable alternative systems can cause productivity losses (De Freitas Souza et al, 2021). In this study, we hypothesized that judicious selection of nutrient inputs and crop rotation intensity with diverse species in a rotation would maintain the yield, productivity, and economic output of conventionally managed elds after a quick transition to low-input or organic systems in rice-based cropping systems.…”
Section: Introductionmentioning
confidence: 99%
“…In this context, understanding yield and productivity dynamics under different nutrient management and crop rotation intensities is very useful. Transition from high input-based conventional systems to more sustainable alternative systems can cause productivity losses (De Freitas Souza et al, 2021). In this study, we hypothesized that judicious selection of nutrient inputs and crop rotation intensity with diverse species in a rotation would maintain the yield, productivity, and economic output of conventionally managed elds after a quick transition to low-input or organic systems in rice-based cropping systems.…”
Section: Introductionmentioning
confidence: 99%