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Livestock detection in aerial images using a fully convolutional network 被引量:1

Livestock detection in aerial images using a fully convolutional network
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摘要 In order to accurately count the number of animals grazing on grassland, we present a livestock detection algorithm using modified versions of U-net and Google Inception-v4 net. This method works well to detect dense and touching instances. We also introduce a dataset for livestock detection in aerial images, consisting of 89 aerial images collected by quadcopter. Each image has resolution of about 3000 ×4000 pixels, and contains livestock with varying shapes,scales, and orientations.We evaluate our method by comparison against Faster RCNN and Yolo-v3 algorithms using our aerial livestock dataset. The average precision of our method is better than Yolo-v3 and is comparable to Faster RCNN. In order to accurately count the number of animals grazing on grassland, we present a livestock detection algorithm using modified versions of U-net and Google Inception-v4 net. This method works well to detect dense and touching instances. We also introduce a dataset for livestock detection in aerial images, consisting of 89 aerial images collected by quadcopter. Each image has resolution of about 3000 ×4000 pixels, and contains livestock with varying shapes,scales, and orientations.We evaluate our method by comparison against Faster RCNN and Yolo-v3 algorithms using our aerial livestock dataset. The average precision of our method is better than Yolo-v3 and is comparable to Faster RCNN.
出处 《Computational Visual Media》 CSCD 2019年第2期221-228,共8页 计算可视媒体(英文版)
基金 supported by the Scientific and Technological Achievements Transformation Project of Qinghai, China (Project No. 2018-SF-110) the National Natural Science Foundation of China (Projects Nos. 61866031 and 61862053)
关键词 LIVESTOCK DETECTION SEGMENTATION CLASSIFICATION livestock detection segmentation classification
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