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High-level FPGA-based implementation of a hyperspectral endmember extraction algorithm

机译:基于高级别的FPGA的超细倾角提取算法实现

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Linear spectral unmixing represents an awesome technique for the analysis of remotely sensed hyperspectral images. However, its large computational cost severely compromises its use in applications under real-time constraints, where swift responses are of a crucial importance. Hence, the hardware acceleration of the operations involved in the unmixing of a hyperspectral cube becomes mandatory for these scenarios. This paper presents an improved version of a design flow that allows implementing a hyperspectral unmixing algorithm onto a Field Programmable Gate Array (FPGA) directly from MATLAB. As a case of study, the results obtained with the implementation of the well-known N-FINDR algorithm will be outlined, demonstrating the benefits of our proposal against state-of-the-art approaches as well as the profits derived from the adoption of fixed rather floating-point arithmetic. The presented high level methodology can be easily extrapolated to the implementation of other hyperspectral MATLAB algorithms, drastically accelerating the design cycle from concept to implementation.
机译:线性光谱解密表示用于分析远程感测的高光谱图像的令人难以置知的技术。然而,其大型计算成本严重损害其在实时约束下的应用中的应用,其中Swift响应是至关重要的。因此,对于这些场景,超细立方体的解密涉及的操作的硬件加速度成为强制性。本文提出了一种改进的设计流程,允许直接从MATLAB实现高光谱解密算法到现场可编程门阵列(FPGA)上。作为研究的情况,将概述通过已知众所周知的N-FindR算法获得的结果,展示了我们对最先进的方法的提出的益处以及通过采用的利润修复了相当浮点算术。呈现的高水平方法可以很容易地推断为实现其他高光谱MATLAB算法的实现,从概念到实施方面大幅加速了设计周期。

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