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Implementing a SoC-FPGA Based Acceleration System for On-Board SVM Training for Robotic Transtibial Prostheses

机译:实施基于SoC-FPGA的加速系统以进行机器人小腿假肢的板上SVM训练

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This paper presents an acceleration system for on-board support vector machine (SVM) model training for robotic transtibial prosthesis based on system on chip with field-programmable gate array (SoC-FPGA) hardware. A hardware prototype was developed and SVM-based model training algorithm was implemented with high-level synthesis technology. Experiments on a transtibial amputee subject demonstrated that the proposed system provided good speedups over ARM-based implementation for on-board training in six locomotion identification tasks (standing, level-ground walking, ramp ascent, ramp descent, stair ascent, stair descent). Meanwhile, the additional power consumption was not significant and acceptable.
机译:本文提出了一种基于现场可编程门阵列(SoC-FPGA)硬件的片上机器人假体车载支持向量机(SVM)模型训练加速系统。开发了硬件原型,并使用高级综合技术实现了基于SVM的模型训练算法。对一个胫骨截肢者进行的实验表明,与六种运动识别任务(站立,水平地面行走,坡道上升,坡道下降,楼梯上升,楼梯下降)的机上训练相比,拟议的系统提供了比基于ARM的实施更好的加速效果。同时,额外的功耗并不明显,不能接受。

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