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AIDI: An adaptive image denoising FPGA-based IP-core for real-time applications

机译:AIDI:针对实时应用的基于FPGA的IP核的自适应图像降噪

摘要

The presence of noise in images can significantly impact the performances of digital image processing and computer vision algorithms. Thus, it should be removed to improve the robustness of the entire processing flow. The noise estimation in an image is also a key factor, since, to be more effective, algorithms and denoising filters should be tuned to the actual level of noise. Moreover, the complexity of these algorithms brings a new challenge in real-time image processing applications, requiring high computing capacity. In this context, hardware acceleration is crucial, and Field Programmable Gate Arrays (FPGAs) best fit the growing demand of computational capabilities. This paper presents an Adaptive Image Denoising IP-core (AIDI) for real-time applications. The core first estimates the level of noise in the input image, then applies an adaptive Gaussian smoothing filter to remove the estimated noise. The filtering parameters are computed on-the-fly, adapting them to the level of noise in the image, and pixel by pixel, to preserve image information (e.g., edges or corners). The FPGA-based architecture is presented, highlighting its improvements w.r.t. a standard static filtering approach
机译:图像中噪声的存在会严重影响数字图像处理和计算机视觉算法的性能。因此,应将其删除以提高整个处理流程的鲁棒性。图像中的噪声估计也是一个关键因素,因为为了更有效地将算法和降噪滤波器调整为实际噪声水平。此外,这些算法的复杂性在实时图像处理应用中带来了新的挑战,需要高计算能力。在这种情况下,硬件加速至关重要,而现场可编程门阵列(FPGA)最适合不断增长的计算能力需求。本文提出了一种适用于实时应用的自适应图像去噪IP核(AIDI)。核心首先估计输入图像中的噪声水平,然后应用自适应高斯平滑滤波器以去除估计的噪声。实时计算滤波参数,使它们适应图像中的噪声水平,并逐像素调整,以保留图像信息(例如,边缘或角)。展示了基于FPGA的架构,并着重介绍了其改进之处。标准的静态过滤方法

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