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Accelerators for Biologically-Inspired Attention and Recognition

机译:用于生物学激发的关注和识别的加速器

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Video and image content has begun to play a growing role in many applications, ranging from video games to autonomous self-driving vehicles. In this paper, we present accelerators for gist-based scene recognition, saliency-based attention, and HMAX-based object recognition that have multiple uses and are based on the current understanding of the vision systems found in the visual cortex of the mammalian brain. By integrating them into a two-level hierarchical system, we improve recognition accuracy and reduce computational time. Results of our accelerator prototype on a multi-FPGA system show real-time performance and high recognition accuracy with large speedups over existing CPU, GPU and FPGA implementations.
机译:视频和图像内容已经开始在许多应用中发挥越来越大的作用,从视频游戏到自动自驾驶车辆。在本文中,我们提出了基于GIST的场景识别,显着的注意力和基于HMAX的对象识别的加速器,其具有多种用途,并且基于目前对哺乳动物脑视觉皮质中发现的视觉系统的目前的理解。通过将它们集成到两级分层系统中,我们提高识别准确性并降低计算时间。在多FPGA系统上的加速器原型的结果显示了现有CPU,GPU和FPGA实现中大量的实时性能和高识别准确性。

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