by Konstantinos Fotiades'/> Notice of Violation of IEEE Publication Principles<BR>Fast lane changing algorithm for intelligent vehicle highway systems using clothoidal theory and Bezier points
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Fast lane changing algorithm for intelligent vehicle highway systems using clothoidal theory and Bezier points
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Notice of Violation of IEEE Publication Principles
Fast lane changing algorithm for intelligent vehicle highway systems using clothoidal theory and Bezier points

机译:关于使用回旋理论和Bezier点的智能汽车公路系统违反IEEE出版原则
快速变道算法的通知

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Notice of Violation of IEEE Publication Principles

"Fast Lane Changing Algorithm for Intelligent Vehicle Highway Systems Using Clothoidal Theory and Bezier Points??
by Konstantinos Fotiades and John Seimenis,
in the Proceedings of the Intelligent Vehicles Symposium 2005, pp. 73-77

After careful and considered review of the content and authorship of this paper by a duly constituted expert committee, this paper has been found to be in violation of IEEE's Publication Principles.

This paper contains significant portions of original text from the paper cited below. The original text was copied without attribution (including appropriate references to the original author(s) and/or paper title) and without permission.

Due to the nature of this violation, reasonable effort should be made to remove all past references to this paper, and future references should be made to the following article:

??Lane changing using s-series clothoidal approximation and dual-rate based on Bezier points to controlling vehicle??
by N. Montes and J. Tornero,
in WSEAS Transactions on Circuits and Systems, vol 3, pp. 2285-2290, December 2004.This paper presents a fast lane-changing vehicle algorithm for intelligent vehicle highway systems. With the use of S-series, an algorithm is formulated, resulting in a new and accurate method to calculate a low degree polynomial. In this process, an elementary path is initially assumed. A trigonometric approximation of this elementary path is subsequently introduced for the calculation of the related parameters. Bi-elementary paths are then used to project lane changing. Then vehicle control is analysed. The use of a clothoidal path presents more advantages: it permits regular curvature radius changes along the path, while keeping a constant passenger comfort level. This is achieved by a continuous monitoring of centrifugal acceleration through velocity control. Another advantage is the use of dual-rate estimat-ion based on the Bezier function: obtaining Bezier control points through S-series is quite simple.
机译:违反IEEE发布原则

“使用类星体理论和Bezier点的智能车辆公路系统快速变道算法”的公告,由Konstantinos Fotiades和John Seimenis撰写,
Vehicles Symposium 2005,第73-77页。

经过正式组建的专家委员会对本文的内容和作者进行认真周密的审查后,发现该论文违反了IEEE的出版原则。 BR>
本文包含以下引文中的大部分原始文本,未经许可,未经授权(包括对原始作者和/或论文标题的适当引用)复制了原始文本。

由于这种违反行为的性质,应做出合理的努力以删除所有以前对本文的引用,并应在以后对以下文章进行引用:

??使用s系列更改车道回旋近似和基于Bezier的双重速率指向N. Montes和J. Tornero的控制车辆?
,《电路与系统的WSEAS交易》,第3卷,第2285-2290页,2004年12月。智能车辆公路系统的快速变道车辆算法。通过使用S系列,制定了一种算法,从而得出了一种新的精确方法来计算低次多项式。在此过程中,首先假定了基本路径。随后引入该基本路径的三角近似以计算相关参数。然后使用双元素路径来预测车道变化。然后分析车辆控制。回旋路径的使用具有更多优势:它允许沿路径规则地改变曲率半径,同时保持恒定的乘客舒适度。这是通过对速度控制进行连续监测离心加速度来实现的。另一个优势是使用了双重汇率估算 基于Bezier函数的离子:通过S系列获得Bezier控制点非常简单。

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