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Dangerous Driving Condition Analysis in Driver Assistance Systems

机译:驾驶员辅助系统中的危险驾驶状况分析

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摘要

This study presents a new method of analyzing whether a vehicle is in a dangerous driving condition while travelling along a highway. We use data from various sensors installed on the vehicle, which represent the driving attributes associated with a particular driving scenario, as inputs to our system. However, as some of these sensors may be dependent on each other, using redundant attributes to analyze the driving conditions can become very time consuming. Therefore, our dangerous driving condition analysis system (DDCAS) first selects discriminative attributes using a fuzzy rough sets technique. Next, based on these selected attributes a set of association rules is constructed, which is then used to infer whether a driving condition is hazardous or safe. If the driver is detected to be in a dangerous driving condition, the DDCAS outputs warning messages to the driver in an attempt to reduce the likelihood of an accident. This paper outlines experiments, which were conducted with a simulated system. In the future, we will install the DDCAS onto a real vehicle, with the aim of reducing the number of real accidents caused due to dangerous driving conditions.
机译:这项研究提出了一种新方法,用于分析车辆在高速公路上行驶时是否处于危险驾驶状态。我们使用来自车辆上安装的各种传感器的数据(表示与特定驾驶场景相关的驾驶属性)作为系统输入。但是,由于这些传感器中的某些传感器可能相互依赖,因此使用冗余属性分析驾驶条件可能会非常耗时。因此,我们的危险驾驶状况分析系统(DDCAS)首先使用模糊粗糙集技术选择判别属性。接下来,基于这些选择的属性,构造一组关联规则,然后将其用于推断驾驶条件是危险还是安全。如果检测到驾驶员处于危险驾驶状态,DDCAS会向驾驶员输出警告消息,以尝试减少发生事故的可能性。本文概述了使用模拟系统进行的实验。将来,我们将DDCAS安装到真实车辆上,目的是减少由于危险驾驶条件引起的真实事故数量。

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