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A versatile recognition processor employing Haar-like feature and cascaded classifier

机译:使用类似Haar的功能和级联分类器的多功能识别处理器

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This paper presents a versatile recognition processor that performs detection and recognition of image, video, sound and acceleration signals, while dissipating 0.15 muW/fps to 0.47 mW/fps. Given the low power dissipation of sub-mW/fps, this processor is suitable for use in portable electronics and wireless sensor networks (WSN). For instance, it detects human faces from a QVGA image with 81% accuracy and consumes 0.47 mW/fps. Power consumption is 57times lower than that of conventional object recognition processors with comparable accuracy. A fair comparison, by taking technology differences into account, shows greater than 8times power efficiency. This processor detects speech from very short and low quality sound signals (72 ms in 10 s, 8 kHz, 8 b) recorded by a microphone in a sensor node. It also recognizes human activities such as walking, reading and typing from short and low quality 3D acceleration signals (2 s in 10 s, 50 Hz, 8 b) taken by an accelerometer. Recognition accuracy is over 90% in both applications. The versatility and low-power dissipation are attributed to optimal VLSI design from algorithm to architecture and circuit levels.
机译:本文提出了一种多功能的识别处理器,该处理器可以对图像,视频,声音和加速度信号进行检测和识别,而耗散0.15μW/ fps到0.47 mW / fps。鉴于低于mW / fps的低功耗,该处理器适用于便携式电子设备和无线传感器网络(WSN)。例如,它可以以81%的精度从QVGA图像中检测人脸,并消耗0.47 mW / fps。功耗比传统对象识别处理器低57倍,且精度相当。通过考虑技术差异进行的公平比较显示出超过8倍的电源效率。该处理器从传感器节点中的麦克风记录的非常短且质量低下的声音信号(10 s中的72 ms,8 kHz,8 b)中检测语音。它还可以识别加速度计所采集的短质量和低质量3D加速度信号(2 s in 10 s,50 Hz,8 b)中的步行,阅读和打字等人类活动。在两种应用中,识别精度均超过90%。多功能性和低功耗归因于从算法到架构和电路级的最佳VLSI设计。

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