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An efficient data fusion architecture for infrared and ultrasonic sensors, using FPGA

机译:使用FPGA的高效的红外和超声传感器数据融合架构

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This paper shows the hardware implementation of a sensor fusion technique applied to both an ultrasonic and an infrared sensors, for estimating the distance, using an FPGA. Sensor fusion is a natural application of stochastic filtering area (such as Kalman filters), being applied extensively in different areas such as mobile robotics, signal processing, bioengineering, among others. This technique permits to combine the information provided by the sensors, improving the estimate of the measured variable, as well as its uncertainity. The sensors have previously been characterized using the same acquisition system that was used for the sensor fusion, and the fitting curves have been calculated for them. Finally, synthesis and simulation results demonstrate that the architecture implemented in the FPGA is suitable for calculating the estimate and uncertainity of the overall fusion process.
机译:本文展示了使用FPGA应用于超声波和红外线传感器的传感器融合技术的硬件实现,以估算距离。传感器融合是随机滤波区域(例如卡尔曼滤波器)的自然应用,已广泛应用于移动机器人,信号处理,生物工程等不同领域。该技术允许组合传感器提供的信息,从而改善对测量变量的估计以及其不确定性。以前使用与传感器融合相同的采集系统对传感器进行了表征,并已为它们计算了拟合曲线。最后,综合和仿真结果表明,在FPGA中实现的体系结构适用于计算整个融合过程的估计和不确定性。

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