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Taximeter verification with GPS and soft computing techniques

机译:GPS和软计算技术对出租车计价器进行验证

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Until recently, local governments in Spain were using machines with rolling cylinders for verifying taximeters. However, the condition of the tires can lead to errors in the process and the mechanical construction of the test equipment is not compatible with certain vehicles. Thus, a new measurement device needs to be designed. In our opinion, the verification of a taximeter will not be reliable unless measurements taken on an actual taxi run are used. GPS sensors are intuitively well suited for this process, because they provide the position and the speed with independence of those car devices that are under test. But there are legal problems that make difficult the use of GPS-based sensors: GPS coordinate measurements do not match exactly real coordinates and, generally speaking, we are not given absolute tolerances. We can not know whether the maximum error is always lower than, for example, 7 m. However, we might know that 50% of the measurements lie on a circle with a radius of 7 m, centered on the real position. In this paper we describe a practical application where these legal problems have been solved with soft computing based technologies. In particular, we propose to characterize the uncertainty in the GPS with fuzzy techniques, so that we can reuse certain recent algorithms, formerly intended for being used in genetic fuzzy systems, to this new context. Specifically, we propose a new method for computing an upper bound of the length of the trajectory, taking into account the vagueness of the GPS data. This bound will be computed using a modified multiobjective evolutionary algorithm, which can optimize a fuzzy valued function. The accuracy of the measurements will be improved further by combining it with restrictions based on the dynamic behavior of the vehicles.
机译:直到最近,西班牙的地方政府仍在使用带有滚瓶的机器来验证出租车计价器。但是,轮胎的状况可能会导致过程错误,并且测试设备的机械构造与某些车辆不兼容。因此,需要设计一种新的测量装置。我们认为,除非使用实际出租车运行进行的测量,否则出租车计价器的验证将是不可靠的。 GPS传感器直观地非常适合此过程,因为它们提供了位置和速度,并且与被测汽车设备无关。但是存在一些法律问题,使得使用基于GPS的传感器变得困难:GPS坐标测量值与实际坐标不完全匹配,并且通常来说,我们没有绝对公差。我们不知道最大误差是否总是小于例如7 m。但是,我们可能知道50%的测量值位于以真实位置为中心的半径7 m的圆上。在本文中,我们描述了一种实际应用,其中已使用基于软计算的技术解决了这些法律问题。特别地,我们建议使用模糊技术来表征GPS中的不确定性,以便我们可以将某些以前打算用于遗传模糊系统的最新算法重新用于这种新情况。具体来说,我们考虑到GPS数据的模糊性,提出了一种计算轨迹长度上限的新方法。将使用改良的多目标进化算法来计算此范围,该算法可以优化模糊值函数。通过将其与基于车辆动态行为的限制相结合,可以进一步提高测量的准确性。

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