Aircraft Recognition from Remote Sensing Images Based on Machine Vision

Lu Chen, Liming Zhou, Jinming Liu
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引用次数: 3

Abstract

Due to the poor evaluation indexes such as detection accuracy and recall rate when Yolov3 network detects aircraft in remote sensing images, in this paper, we propose a remote sensing image aircraft detection method based on machine vision. In order to improve the target detection effect, the Inception module was introduced into the Yolov3 network structure, and then the data set was cluster analyzed using the k-means algorithm. In order to obtain the best aircraft detection model, on the basis of our proposed method, we adjusted the network parameters in the pre-training model and improved the resolution of the input image. Finally, our method adopted multi-scale training model. In this paper, we used remote sensing aircraft dataset of RSOD-Dataset to do experiments, and finally proved that our method improved some evaluation indicators. The experiment of this paper proves that our method also has good detection and recognition ability in other ground objects.
基于机器视觉的遥感图像飞机识别
针对Yolov3网络在遥感图像中检测飞机时检测准确率、召回率等评价指标较差的问题,本文提出了一种基于机器视觉的遥感图像飞机检测方法。为了提高目标检测效果,在Yolov3网络结构中引入Inception模块,然后使用k-means算法对数据集进行聚类分析。为了获得最佳的飞机检测模型,在本文提出的方法的基础上,调整了预训练模型中的网络参数,提高了输入图像的分辨率。最后,我们的方法采用多尺度训练模型。本文利用RSOD-Dataset的遥感飞机数据集进行了实验,最终证明了我们的方法改善了一些评价指标。实验证明,该方法对其他地物也具有良好的检测和识别能力。
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