2023
DOI: 10.4108/eetiot.v9i3.3468
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Weed detection with Improved Yolov 7

Abstract: INTRODUCTION: An improved Yolo v7 model.OBJECTIVES: To solve the weed detection and  identification in complex field background.METHODS: The dataset was enhanced by online data enhancement, in which the feature extraction, feature fusion and feature point judgment of weed image were carried out by Yolov7 to predict the weed situation corresponding to the prior box. In the enhanced feature extraction part of Yolov7, CBAM, an attention mechanism combining channel and space, is introduced to improve the attention… Show more

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Cited by 4 publications
(1 citation statement)
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References 22 publications
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“…In the field of vegetation ecological assessment, the YOLOv7 object detection algorithm is utilized to identify harmful plants such as weeds that may pose a threat to other vegetation. Based on the assessment results, prompt measures are taken to address areas with severe ecological damage (Gallo et al, 2023;Peng et al, 2023). Additionally, the YOLOv7 object detection algorithm is applied to extract features from trees, analyze them based on the extracted key features, and assess their health status to ensure the healthy growth of trees (Dong et al, 2023).…”
Section: Discussionmentioning
confidence: 99%
“…In the field of vegetation ecological assessment, the YOLOv7 object detection algorithm is utilized to identify harmful plants such as weeds that may pose a threat to other vegetation. Based on the assessment results, prompt measures are taken to address areas with severe ecological damage (Gallo et al, 2023;Peng et al, 2023). Additionally, the YOLOv7 object detection algorithm is applied to extract features from trees, analyze them based on the extracted key features, and assess their health status to ensure the healthy growth of trees (Dong et al, 2023).…”
Section: Discussionmentioning
confidence: 99%