首页> 外文期刊>Solid-State Circuits, IEEE Journal of >A 502-GOPS and 0.984-mW Dual-Mode Intelligent ADAS SoC With Real-Time Semiglobal Matching and Intention Prediction for Smart Automotive Black Box System
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A 502-GOPS and 0.984-mW Dual-Mode Intelligent ADAS SoC With Real-Time Semiglobal Matching and Intention Prediction for Smart Automotive Black Box System

机译:具有实时半全局匹配和意图预测功能的502-GOPS和0.984-mW双模智能ADAS SoC,用于智能汽车黑匣子系统

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The advanced driver assistance system (ADAS) for adaptive cruise control and collision avoidance is strongly dependent upon the robust image recognition technology such as lane detection, vehicle/pedestrian detection, and traffic sign recognition. However, the conventional ADAS cannot realize more advanced collision evasion in real environments due to the absence of intelligent vehicle/pedestrian behavior analysis. Moreover, accurate distance estimation is essential in ADAS applications and semiglobal matching (SGM) is most widely adopted for high accuracy, but its system-on-chip (SoC) implementation is difficult due to the massive external memory bandwidth. In this paper, an ADAS SoC with behavior analysis with Artificial Intelligence functions and hardware implementation of SGM is proposed. The proposed SoC has dual-mode operations of high-performance operation for intelligent ADAS with real-time SGM in D-Mode (d-mode) and ultralow-power operation for black box system in parking-mode. It features: 1) task-level pipelined SGM processor to reduce external memory bandwidth by 85.8%; 2) region-of-interest generation processor to reduce 86.2% of computation; 3) mixed-mode intention prediction engine for dual-mode intelligence; and 4) dynamic voltage and frequency scaling control to save 36.2% of power in d-mode. The proposed ADAS processor achieves 862 GOPS/W energy efficiency and 31.4GOPS/mm2 area efficiency, which are 1.53× and 1.75× improvements than the state of the art, with 30 frames/s throughput under 720p stereo inputs.
机译:用于自适应巡航控制和避免碰撞的高级驾驶员辅助系统(ADAS)在很大程度上取决于强大的图像识别技术,例如车道检测,车辆/行人检测和交通标志识别。但是,由于缺乏智能的车辆/行人行为分析,传统的ADAS无法在实际环境中实现更高级的碰撞规避。此外,准确的距离估计在ADAS应用中至关重要,并且半球形匹配(SGM)广泛用于实现高精度,但是由于庞大的外部存储器带宽,其片上系统(SoC)的实现非常困难。本文提出了一种具有行为分析功能的ADAS SoC,具有人工智能功能和SGM的硬件实现。拟议的SoC具有双模式操作,即用于智能ADAS的高性能操作以及在D模式(d模式)下的实时SGM,在停车模式下用于黑匣子系统的超低功耗操作。它具有以下特点:1)任务级流水线SGM处理器可将外部存储器带宽减少85.8%; 2)感兴趣区域生成处理器可减少86.2%的计算; 3)用于双模式智能的混合模式意图预测引擎; 4)动态电压和频率缩放控制可在d模式下节省36.2%的功率。拟议的ADAS处理器实现了862 GOPS / W的能量效率和31.4GOPS / mm2的面积效率,与现有技术相比分别提高了1.53倍和1.75倍,在720p立体声输入下吞吐量为30帧/秒。

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