3D gated Imaging Using a Unet Model

Siqing Zhang, Xiaoquan Liu
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Abstract

Range gated 3D imaging is widely used in space imaging, distance measurement, automatic driving and other application scenarios. A range gated 3D imaging system based on neural network is proposed. The system inputs three range gated images through convolutional neural network, and then outputs a depth map. A single convolutional neural network is proposed to process range gated images, and a multi-scale loss function is used. The test results on the real data set of outdoor driving show that the model trained on the GPU(graphics processing unit) in this paper realizes range gated 3D imaging.
使用Unet模型的3D门控成像
距离门控三维成像广泛应用于空间成像、距离测量、自动驾驶等应用场景。提出了一种基于神经网络的距离门控三维成像系统。该系统通过卷积神经网络输入三幅距离门控图像,然后输出深度图。提出了一种单卷积神经网络来处理距离门控图像,并使用了多尺度损失函数。在室外驾驶真实数据集上的测试结果表明,本文的模型在图形处理单元GPU上进行训练,实现了距离门控三维成像。
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