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In recent years, convolutional neural network (CNN) based methods have achieved great success in a large number of applications and have been among the most powerful and widely used techniques in computer vision. However, CNN-based methods are com-putational-intensive and resource-consuming, and thus are hard to be integrated into embedded systems such as smart phones, smart glasses, and robots. FPGA is one of the most promising platforms for accelerating CNN, but the limited bandwidth and on-chip memory size limit the performance of FPGA accelerator for CNN.
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Qiu et al. (Thu,) studied this question.
synapsesocial.com/papers/69de974f40ea0656795588ef — DOI: https://doi.org/10.1145/2847263.2847265
Jiantao Qiu
National Engineering Research Center for Information Technology in Agriculture
Jie Wang
Academy of Military Medical Sciences
Song Yao
Roswell Park Comprehensive Cancer Center
Tsinghua University
Microsoft Research Asia (China)
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