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High-Performance Optical-Flow Architecture Based on a Multi-Scale, Multi-Orientation Phase-Based Model

机译:基于多尺度,多方位相位模型的高性能光流架构

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The accurate estimation of optical flow is a problem widely experienced in computer vision and researchers in this field are devoting their efforts to formulate reliable and robust algorithms for real life applications. These approaches need to be evaluated, especially in controlled scenarios. Because of their stability phase-based methods have generally been adopted in the various techniques developed to date, although it is still difficult to be sure of their viability in real-time systems due to their high requirements in terms of computational load. We describe here the implementation of a phase-based optical flow in a field-programmable gate array (FPGA) device. The system benefits from phase-information stability as well as sub-pixel accuracy without requiring additional computations and at the same time achieves high-performance computation by taking full advantage of the parallel processing resources of FPGA devices. Furthermore, the architecture extends the implementation to a multi-resolution and multi-orientation implementation, which enhances its accuracy and covers a wide range of detected velocities. Deep pipelined datapath architecture with superscalar computing units at different stages allows real-time processing beyond VGA image resolution. The final circuit is of significant complexity and useful for a wide range of fields requiring portable optical-flow processing engines.
机译:准确估计光流是计算机视觉中广泛遇到的问题,并且该领域的研究人员正致力于为现实生活中的应用制定可靠且健壮的算法。这些方法需要进行评估,尤其是在受控方案中。由于其稳定性,迄今开发的各种技术中通常采用基于阶段的方法,尽管由于对计算负荷的高要求,仍难以确定其在实时系统中的可行性。我们在这里描述现场可编程门阵列(FPGA)设备中基于相位的光流的实现。该系统受益于相位信息的稳定性以及子像素的准确性,而无需进行额外的计算,同时通过充分利用FPGA器件的并行处理资源来实现高性能计算。此外,该体系结构将实现扩展到多分辨率和多方位实现,从而提高了其准确性并涵盖了广泛的检测速度。在不同阶段具有超标量计算单元的深度流水线数据路径体系结构可实现超出VGA图像分辨率的实时处理。最终电路非常复杂,对于需要便携式光流处理引擎的广泛领域很有用。

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