Rumex Weed Classification Using Region-Convolution Neural Networks Based-Colour Space Information
Saleh Nazal,
Khamael Al-Dulaimi
Abstract:Weed detection is considered the gold standard in smart agriculture field. An automated detection of weedprocedure is a complicated task, specifically detection of Rumex weed due to different real-world environmental conditions, including illumination, occlusion, overlapped, growth stage, and colours. Few works have doneto classify Rumex weed using machine learning. However, the performance is still not at the level required foragriculture communities and challenges have not been solved. This work proposes Reg… Show more
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