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Reduce Cognitive Burden on Drivers through Contextualising Environments

机译:通过情境化环境减少驾驶员的认知负担

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Given the rapid increase in urbanisation and a change in the mobility patterns of humans, traffic on our road networks is expanding at an exponential rate. Governments across the globe are investing a vast amount of money on expanding road networks to cater for this ever increasing demand. This, however adds to the cognitive burden of the driver as the moving parts on the road network are also increased. Motivated by this observation, in this paper, we hypothesise that advances in technology-be it connected cars or smart road infrastructures- could play a key role in effectively and efficiently utilising the road network, thus reducing the cognitive burden on drivers. In order to investigate our hypothesis, we have implemented a set of technologies that can seamlessly harness the power of driver specific information and correlate this information with road network features such as properties of the road itself (e.g., roads with high curvature) or traffic information (e.g., traffic flow) such that daily activities of road users can be satisfied. In this paper, we present our initial work to realise this end-to-end framework and present results on contextualising the driving environment by means of feature analysis on the road network.
机译:鉴于城市化进程的迅速发展和人类出行方式的变化,我们道路网络上的交通正以指数级的速度增长。全球政府正在投入大量资金来扩大道路网络,以满足不断增长的需求。然而,这也增加了驾驶员的认知负担,因为道路网络上的运动部件也增加了。基于这种观察,本文假设,连接汽车或智能道路基础设施等技术的进步在有效和高效地利用道路网络方面可以发挥关键作用,从而减轻驾驶员的认知负担。为了研究我们的假设,我们实施了一套技术,可以无缝利用驾驶员特定信息的力量,并将此信息与道路网络特征(例如道路本身的特性(例如,高曲率的道路)或交通信息)相关联(例如交通流量),以便满足道路使用者的日常活动。在本文中,我们提出了实现此端到端框架的初步工作,并通过道路网络的特征分析提出了有关驾驶环境的情境化结果。

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