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A Real-Time Effective Fusion-Based Image Defogging Architecture on FPGA

机译:FPGA上的实时有效融合的图像缺失架构

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Foggy weather reduces the visibility of photographed objects, causing image distortion and decreasing overall image quality. Many approaches (e.g., image restoration, image enhancement, and fusion-based methods) have been proposed to work out the problem. However, most of these defogging algorithms are facing challenges such as algorithm complexity or real-time processing requirements. To simplify the defogging process, we propose a fusional defogging algorithm on the linear transmission of gray single-channel. This method combines gray single-channel linear transform with high-boost filtering according to different proportions. To enhance the visibility of the defogging image more effectively, we convert the RGB channel into a grayscale single channel without decreasing the defogging results. After gray-scale fusion, the data in the grayscale domain should be linearly transmitted. With the increasing real-time requirements for clear images, we also propose an efficient real-time FPGA defogging architecture. The architecture optimizes the data path of the guided filtering to speed up the defogging speed and save area and resources. Because the pixel reading order of mean and square value calculations are identical, the shift register in the box filter after the average and the computation of the square values is separated from the box filter and put on the input terminal for sharing, saving the storage area. What's more, using LUTs instead of the multiplier can decrease the time delays of the square value calculation module and increase efficiency. Experimental results show that the linear transmission can save 66.7% of the total time. The architecture we proposed can defog efficiently and accurately, meeting the real-time defogging requirements on 1920 x 1080 image size.
机译:有雾的天气降低了拍摄对象的可见性,导致图像失真并降低整体图像质量。已经提出了许多方法(例如,图像恢复,图像增强和基于融合的方法)以解决问题。然而,大多数这些Defogging算法面临挑战,例如算法复杂性或实时处理要求。为了简化Defogging过程,我们提出了一种关于灰色单通道的线性传输的沉默缺失算法。该方法根据不同比例将灰色单通道线性变换与高升压滤波相结合。为了更有效地增强Defogging图像的可见性,我们将RGB通道转换为灰度单通道,而不会降低违规结果。灰度融合后,应线性传输灰度域中的数据。随着清晰图像的实时要求的增加,我们还提出了一种有效的实时FPGA违约架构。该体系结构优化引导滤波的数据路径,以加快Defogging速度和保存区域和资源。因为平均值计算的像素读取顺序是相同的,所以框滤波器中的移位寄存器在平均值和方形值的计算中与框滤波器分开并放在输入端子上进行共享,保存存储区域。更重要的是,使用LUT而不是乘数可以降低方形计算模块的时间延迟并提高效率。实验结果表明,线性传输可以节省总时间的66.7%。我们提出的架构可以有效准确地差错,满足1920 x 1080图像尺寸的实时缺失要求。

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