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Residual traveling distance estimation of an electric wheelchair

机译:电动轮椅的剩余行驶距离估算

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摘要

Based on economic considerations and estimation accuracy of wheelchair residual traveling distance, the virtual frictional force and virtual residual energy concepts are proposed in this paper. A virtual residual energy estimation system, based on fuzzy neural networks, is proposed using battery state of charge, wheelchair traveling speed and virtual frictional force as the inputs to estimate the wheelchair's virtual residual energy, and then transforms into wheelchair's residual traveling distance. A self-developed electric wheelchair using lithium battery as the energy source is employed to evaluate the proposed approach. The best estimated result, based on the root mean square error of estimated virtual residual energy, is 0.00573, while the worst one is 0.02182. On the other, the best estimated result, based on the root mean square error of residual traveling distance, is 0.402km, while the worst one is 1.285km. Thereby, the proposed estimation approach is feasible and can be applied to active vehicles.
机译:基于经济上的考虑和轮椅剩余行驶距离的估计精度,提出了虚拟摩擦力和虚拟剩余能量的概念。提出了一种基于模糊神经网络的虚拟剩余能量估计系统,该方法以电池的充电状态,轮椅行驶速度和虚拟摩擦力为输入,以估计轮椅的虚拟剩余能量,然后转化为轮椅的剩余行驶距离。以锂电池为能源的自行研发的电动轮椅被用于评估所提出的方法。基于估计的虚拟剩余能量的均方根误差,最佳估计结果为0.00573,而最差结果为0.02182。另一方面,根据剩余行驶距离的均方根误差,最佳估计结果是0.402km,而最差估计结果是1.285km。因此,所提出的估计方法是可行的,并且可以应用于主动车辆。

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