HyperCam: Low-Power Onboard Computer Vision for IoT Cameras
Chae Young Lee, Pu (Luke) Yi, Maxwell Fite, Tejus Rao, Sara Achour, Zerina Kapetanovic
摘要
We present HyperCam, an energy-efficient image classification pipeline that enables computer vision tasks onboard low-power IoT camera systems. HyperCam leverages hyper-dimensional computing to perform training and inference efficiently on low-power microcontrollers. We implement a low-power wireless camera platform using off-the-shelf hardware and demonstrate that HyperCam can achieve an accuracy of 93.60%, 84.06%, 92.98%, and 72.79% for MNIST, Fashion-MNIST, Face Detection, and Face Identification tasks, respectively, while significantly outperforming other classifiers in resource efficiency. Specifically, it delivers inference latency of 0.08–0.27s while using 42.91–63.00KB flash memory and 22.25KB RAM at peak. Among other machine learning classifiers such as SVM, xgBoost, MicroNets, MobileNetV3, and MCUNetV3, HyperCam is the only classifier that achieves competitive accuracy while maintaining competitive memory footprint and inference latency that meets the resource requirements of low-power camera systems.
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引用它的顶会 Paper2
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它引用的顶会 Paper4
- MCUNet: Tiny Deep Learning on IoT DevicesJi Lin, Wei-Ming Chen, Yujun Lin, John Cohn 等NeurIPS 2020 · 被引用 827 次
- On-Device Training Under 256KB MemoryJi Lin, Ligeng Zhu, Wei-Ming Chen, Wei-Chen Wang 等NeurIPS 2022 · 被引用 345 次
- Neural computation for robust and holographic face detectionMohsen Imani, Ali Zakeri, Hanning Chen, Taehyun Kim 等DAC 2022 · 被引用 26 次
- NeuriCam: Key-Frame Video Super-Resolution and Colorization for IoT CamerasBandhav Veluri, Collin Pernu, Ali Saffari, Joshua R. Smith 等MobiCom 2023 · 被引用 16 次
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