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A Novel Embedded Interpolation Algorithm with Negative Squared Distance for Real-Time Endomicroscopy

机译:实时内镜检查的负平方距离嵌入式嵌入算法

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摘要

Interpolation is the most executed operation and one of the main bottlenecks in embedded imaging, registration, and rendering systems. Existing methods either lack parallelization and scalability capabilities or are too computationally complex to execute efficiently. Acknowledging that improving execution time leads to degradation in image quality, we formulate a novel Negative Squared Distance (NSD) interpolation method that exhibits excellent performance by exploiting Look-Up Table (LUT) optimization for Field Programmable Gate Array (FPGA) speedup, with a balanced trade-off in quality in our embedded endomicroscopic imaging system. Quantitative analysis on performance and resource utilization of NSD against existing methods is reported through an implementation on a Xilinx ML605 platform. Functional validation using practical image resizing and rotation applications to compare qualitative performance against existing algorithms is performed and presented with visual and numerical results. Our method is shown to have a smaller design size and produces a maximum throughput of over twofold against trilinear interpolation with on-par image quality as the baseline method.
机译:插值是嵌入式成像,配准和渲染系统中执行最多的操作,也是主要瓶颈之一。现有方法要么缺乏并行化和可伸缩性功能,要么由于计算复杂而无法有效执行。认识到缩短执行时间会导致图像质量下降,我们制定了一种新颖的负平方距离(NSD)插值方法,该方法通过利用针对现场可编程门阵列(FPGA)的查找表(LUT)优化来表现出出色的性能,并且我们嵌入式内窥镜成像系统在质量上取得了平衡。通过在Xilinx ML605平台上的实现,报告了针对现有方法对NSD的性能和资源利用进行的定量分析。使用实际图像大小调整和旋转应用程序进行功能验证,以将定性性能与现有算法进行比较,并提供视觉和数字结果。我们的方法显示出较小的设计尺寸,并且以同等图像质量作为基线方法,与三线性插值法相比,可产生两倍以上的最大通量。

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