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SlimRGBD: A Geographic Information Photography Noise Reduction System for Aerial Remote Sensing

机译:SLIMRGBD:用于空中遥感的地理信息摄影降噪系统

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摘要

In the past ten years, civil drone technology has developed rapidly, and UAV (Unmanned Aerial Vehicle) has been widely used in various industries. Especially in the field of aerial remote sensing, the emergence of UAV technology has enabled the geographical information of remote areas that are not concerned to be quickly presented. However, UAV aerial photography is greatly affected by the weather. Pictures that use aerial drones for aerial photography in rainy weather will appear noise. In this paper, how to eliminate the noise of aerial image is to be talked, the multi-channel pruning technology is used to pruning the RnResNet network. Based on this, a new anti-convergence-convolution neural network noise reduction system for the operation of UAV airborne embedded equipment is proposed. The system is used to eliminate noise in the aerial image. This type of noise reducer has got rid of the current situation that the neural network noise reducer consumes too much power and is inefficient, and has certain advantages.
机译:在过去十年中,民用无人机技术迅速发展,无人机(无人驾驶飞行器)已广泛应用于各种行业。特别是在空中遥感领域,UAV技术的出现已经启用了不必快速呈现的远程区域的地理信息。然而,UAV航空摄影受到天气的大大影响。在多雨天气中使用空中无人机的图片将出现噪音。在本文中,如何讨论如何消除航拍图像的噪声,多通道修剪技术用于修剪RNRESNet网络。基于此,提出了一种新的防融合 - 卷积神经网络降噪系统,用于UAV机载嵌入式设备的操作。该系统用于消除空中图像中的噪声。这种类型的降噪器已经摆脱了神经网络噪声减速器消耗太多功率并且效率低下的现状,并且具有一定的优点。

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