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An Efficient FPGA Architecture with High-Performance 2D DWT Processor for Medical Imaging

机译:具有高性能2D DWT处理器的高效FPGA架构,用于医学成像

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Medical image fusion is the process of deriving vital information from multimodality medical images. Some important applications of image fusion are medical imaging, remote control sensing, personal computer vision and robotics. For medical diagnosis, computerized tomography (CT) gives the best information about denser tissue with a lesser amount of distortion and magnetic resonance image (MRI) gives the better information on soft tissue with little higher distortion. The main scheme is to combine CT and MRI images for getting most significant information. The need is to focus on less power consumption and less occupational area in the implementations of the applications involving image fusion using discrete wavelet transform (DWT). To design the DWT processor with low power and area, a low power multiplier and shifter are incorporated in the hardware. This low power DWT improves the spatial resolution of fused image and also preserve the color appearance. Also, the adaptation of the lifting scheme in the 2D DWT process further improves the power reduction. In order to implement this 2D DWT processor in field-programmable gate array (FPGA) architecture as a very large scale integration (VLSI)-based design, the process is simulated with Xilinx 14.1 tools and also using MATLAB. When comparing the performance of this low power DWT and other available methods, this high performance processor has 24%, 54% and 53% of improvements on the parameters like standard deviation (SD), root mean square error (RMSE) and entropy. Thus, we are obtaining a low power, low area and good performance FPGA architecture suited for VLSI, for extracting the needed information from multimodality medical images with image fusion.
机译:医学图像融合是从多模态医学图像中获取重要信息的过程。图像融合的一些重要应用是医学成像,远程控制感应,个人计算机视觉和机器人技术。对于医学诊断,计算机断层扫描(CT)可提供有关密度较小,畸变较少的密集组织的最佳信息,而磁共振成像(MRI)则可显示畸变较小的软组织的最佳信息。主要方案是组合CT和MRI图像以获得最重要的信息。在涉及使用离散小波变换(DWT)进行图像融合的应用程序的实现中,需要集中精力于更少的功耗和更少的占用面积。为了设计低功耗和小面积的DWT处理器,在硬件中集成了低功耗乘法器和移位器。这种低功率DWT改善了融合图像的空间分辨率,并保留了色彩外观。而且,在2D DWT过程中对提升方案的适应进一步改善了功率降低。为了在现场可编程门阵列(FPGA)架构中实现这种2D DWT处理器作为基于超大规模集成(VLSI)的设计,可以使用Xilinx 14.1工具以及MATLAB对该过程进行仿真。当比较这种低功耗DWT和其他可用方法的性能时,该高性能处理器在诸如标准偏差(SD),均方根误差(RMSE)和熵之类的参数上有24%,54%和53%的改进。因此,我们获得了适用于VLSI的低功耗,小面积和高性能FPGA架构,用于通过图像融合从多模态医学图像中提取所需信息。

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