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A multi-granularity parallelism object recognition processor with content-aware fine-grained task scheduling

机译:具有内容感知细粒度任务调度的多粒度并行对象识别处理器

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Multiple granularity parallel core architecture is proposed to accelerate object recognition with low area and energy consumption. By adopting task-level optimized cores with different parallelism and complexity, the proposed processor achieves real-time object recognition with 271.4 GOPS peak performance. In addition, content-aware fine-grained task scheduling is proposed to enable low power real-time object recognition on 30fps 720p HD video streams. As a result, the object recognition processor achieves 9.4nJ/pixel energy efficiency and 25.8 GOPS/W·mm2 power-area efficiency in O.13um CMOS technology.
机译:提出了多粒度并行核体系结构,以较低的面积和较低的能耗来加速目标识别。通过采用具有不同并行性和复杂性的任务级优化内核,该处理器可实现具有271.4 GOPS峰值性能的实时对象识别。另外,提出了内容感知的细粒度任务调度,以在30fps 720p HD视频流上实现低功耗实时对象识别。结果,在O.13um CMOS技术中,目标识别处理器实现了9.4nJ /像素的能量效率和25.8 GOPS / W·mm 2 功率面积效率。

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