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Low-Power Convolutional Neural Network Processor for a Face-Recognition System

机译:用于面部识别系统的低功耗卷积神经网络处理器

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The authors propose a low-power convolutional neural network (CNN)-based face recognition system for user authentication in smart devices. The system comprises two chips: an always-on functional CMOS image sensor (CIS) for imaging and face detection (FD) and a low-power CNN processor (CNNP) for face verification (FV). A functional CIS integrated with an FD accelerator enables event-driven chip-to-chip communication for face images only when there is a face. To achieve low power consumption in FD while maintaining the memory size required for the FD processing not to exceed the on-chip memory size, the authors present two-stage FD using an analog FD unit and a digital FD unit. For the event-driven FV, the CNNP adopts dynamic voltage and frequency scaling to minimize the power consumption when the number of faces in input images changes dynamically. In addition, tensor decomposition is used to reduce a CNN's workload, and the CNNP architecture based on transpose-read SRAM (T-SRAM) allows low power consumption by reducing the local memory access. Implemented in 65-nm CMOS technology, the 3.30 3.36 mmsup2/sup functional CIS and the 4 4 mmsup2/sup CNNP consume 0.62 mW to evaluate one face at 1 frame per second and achieve 97 percent accuracy in the LFW dataset.
机译:作者提出了一种基于低功率卷积神经网络(CNN)的面部识别系统,用于智能设备中的用户身份验证。该系统包括两个芯片:用于成像和面部检测(FD)的常开功能CMOS图像传感器(CIS)和用于面部验证(FV)的低功耗CNN处理器(CNNP)。集成了FD加速器的功能性CIS仅在有脸的情况下才可以针对脸部图像进行事件驱动的芯片间通信。为了实现FD的低功耗,同时保持FD处理所需的存储器大小不超过片上存储器大小,作者提出了使用模拟FD单元和数字FD单元的两阶段FD。对于事件驱动的FV,当输入图像中的面部数量动态变化时,CNNP采用动态电压和频率缩放以最大程度地降低功耗。另外,张量分解用于减少CNN的工作量,基于转置读取SRAM(T-SRAM)的CNNP体系结构通过减少本地内存访问实现了低功耗。以65纳米CMOS技术实现的3.30 3.36 mmsup2 / sup功能CIS和4 4 mmsup2 / sup CNNP消耗0.62 mW的功率,以每秒1帧的速度评估一张脸,并在LFW数据集中实现97%的精度。

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