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- Driver assistance system (34) (entfernen)
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- Sonstige (34) (entfernen)
The evaluation of the expected benefit of active safety systems or even ideas of future systems is challenging because this has to be done prospectively. Beside acceptance, the predicted real-world benefit of active safety systems is one of the most important and interesting measures. Therefore, appropriate methods should be used that meet the requirements concerning representativeness, robustness and accuracy. The paper presents the development of a methodology for the assessment of current and future vehicle safety systems. The variety of systems requires several tools and methods and thus, a common tool box was created. This toolbox consists of different levels, regarding different aspects like data sources, scenarios, representativeness, measures like pre-crash-simulations, automated crash computation, single-case-analyses or driving simulator studies. Finally, the benefit of the system(s) is calculated, e.g. by using injury risk functions; giving the number of avoided/mitigated accidents, the reduction of injured or killed persons or the decrease of economic costs.
Auf Grundlage von gebräuchlichen und anerkannten Modellen im Kontext der Fahrzeugführung werden zentrale Konzepte identifiziert, die mögliche Ansatzpunkte von langfristigen Wirkungen von Systemen zur Erkennung des Fahrerzustands bilden. Dabei werden nicht nur klassische Mehr-Ebenen-Modelle der Fahraufgabe mit beteiligten Kontrollprozessen berücksichtigt, sondern auch weitere Blickwinkel eingenommen, die in individuellen Persönlichkeitsmerkmalen, Einstellungen oder dem Fahrstil wichtige moderierende Einflussfaktoren identifizieren. Im Rahmen eines allgemeinen Evaluationsansatzes können grundlegende Taxonomien von Bewertungsverfahren, diverse Charakterisierungen von Bewertungsdimensionen sowie wichtige und zu dokumentierende Attribute und Fragestellungen von Evaluationsuntersuchungen beschrieben werden. In diesem Rahmen werden aus den betrachteten Modellen und Konzepten Kriterien abgeleitet, Aspekte der Operationalisierung erörtert sowie methodische Erhebungsansätze vorgeschlagen und diskutiert. Die Bandbreite der betrachteten Methoden ist vielfältig und reicht von unstrukturierten Befragungen über den Einsatz standardisierter Fragebögen bis hin zur maschinellen Erfassung von fahrrelevanten Kenngrößen über fahrzeugeigene Sensorsysteme. Besondere Bedeutung für die Realisierung einer Evaluationsstudie wird möglichst realitätsnahen Erhebungsumständen beigemessen. Daher wird als Rahmenansatz ein Field Operational Test zur Integration der diversen Erhebungsverfahren vorgeschlagen.
The project UR:BAN "Cognitive assistance (KA)" aims at developing future assistance systems providing improved performance in complex city traffic. New state-of-the-art panoramic sensor technologies now allow comprehensive monitoring and evaluation of the vehicle environment. In order to improve protection of vulnerable road users such as pedestrians and cyclists, a particular objective of UR:BAN is the evaluation and prediction of their behaviour and actions. The objective of subproject "WER" is development support by providing quantitative estimates of traffic collisions at the very start and predict potential in terms of optimized accident avoidance and reduction of injury severity. For this purpose an integrated computer simulation toolkit is being devised based on real world accidents (GIDAS as well as video documented accidents), allowing the prediction of potential effectiveness and future benefit of assistance systems in this accident scenario. Subsequently, this toolkit may be used for optimizing the design of implemented assistance systems for improved effectiveness.
Motorcycling is a fascinating kind of transportation. While the riders' direct exposure to the environment and the unique driving dynamics are essential to this fascination, they both cause a risk potential which is several times higher than when driving a car. This chapter gives a detailed introduction to the fundamentals of motorcycle dynamics and shows how its peculiarities and limitations place high demands on the layout of dynamics control systems, especially when cornering. The basic principles of dynamic stabilization and directional control are addressed along with four characteristic modes of instability (capsize, wobble, weave, and kickback). Special attention is given to the challenges of braking (brake force distribution, dynamic over-braking, kinematic instability, and brake steer torque induced righting behavior). It is explained how these challenges are addressed by state-of-the-art brake, traction, and suspension control systems in terms of system layout and principles of function. It is illustrated how the integration of additional sensors " essentially roll angle assessment " enhances the cornering performance in all three categories, fostering a trend to higher system integration levels. An outlook on potential future control systems shows exemplarily how the undesired righting behavior when braking in curves can be controlled, e.g., by means of a so-called brake steer torque avoidance mechanism (BSTAM), forming the basis for predictive brake assist (PBA) or even autonomous emergency braking (AEB). Finally, the very limited potential of brake and chassis control to stabilize yaw and roll motion during unbraked cornering accidents is regarded, closing with a promising glance at roll stabilization through a pair of gimbaled gyroscopes.