Crop Row Detection in Maize Fields Inspired on the Human Visual Perception
Author(s) -
J. Romeo,
Gonzalo Pájares,
M. Montalvo,
Josep M. Guerrero,
María Guijarro,
Ángela Ribeiro
Publication year - 2012
Publication title -
the scientific world journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.453
H-Index - 93
eISSN - 2356-6140
pISSN - 1537-744X
DOI - 10.1100/2012/484390
Subject(s) - hough transform , pixel , artificial intelligence , computer science , computer vision , perspective (graphical) , image processing , process (computing) , transformation (genetics) , segmentation , projection (relational algebra) , fuzzy logic , row , image segmentation , machine vision , image (mathematics) , algorithm , biochemistry , chemistry , database , gene , operating system
This paper proposes a new method, oriented to image real-time processing, for identifying crop rows in maize fields in the images. The vision system is designed to be installed onboard a mobile agricultural vehicle, that is, submitted to gyros, vibrations, and undesired movements. The images are captured under image perspective, being affected by the above undesired effects. The image processing consists of two main processes: image segmentation and crop row detection. The first one applies a threshold to separate green plants or pixels (crops and weeds) from the rest (soil, stones, and others). It is based on a fuzzy clustering process, which allows obtaining the threshold to be applied during the normal operation process. The crop row detection applies a method based on image perspective projection that searches for maximum accumulation of segmented green pixels along straight alignments. They determine the expected crop lines in the images. The method is robust enough to work under the above-mentioned undesired effects. It is favorably compared against the well-tested Hough transformation for line detection.
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