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Unfälle im Straßenverkehr sind in aller Regel Konsequenzen normalen Fahrverhaltens, das an eine bestimmte Situation nicht angepasst war und daher zum Unfall beigetragen hat. Zur Klassifikation dieses mutmaßlich fehlerbehafteten Verhaltens wurde im hier berichteten Projekt eine Taxonomie entwickelt. Sie dient der Klassifizierung von Fahrerfehlverhalten und integriert Aspekte des menschlichen Informationsverarbeitungsprozesses sowie die drei Fehlertypen von RASMUSSEN (1983). Als Bestimmungsstücke beinhaltet die Taxonomie Fehlertypen (regel-/wissens-/fertigkeitsbasiert) und Entscheidungsknoten mit Fragen, deren Beantwortung den Analysten zum jeweiligen Fehler führt. Zusammengefasst bietet die erarbeitete Taxonomie eine breite Anwendbarkeit für die Klassifikation von Fahrfehlern und fehlerfreiem Verhalten bei Manövern, kritischen Situationen bis hin zu Beinaheunfällen oder Unfällen, z. B. zur Harmonisierung der (Video-)Auswertung von FOT- und NDS-Datensätzen oder für In-Depth-Unfallerhebungen. Die Taxonomie wird komplementiert durch eine Übersicht über Fehlervorläuferbedingungen, die im Sinne von Genotypen (HOLLNAGEL 1998) in ihrer jeweiligen Ausprägung auslösende und begünstigende Bedingungen für Fehler, Beinaheunfälle und Unfälle darstellen. Die Übersicht ist als erweiterbares strukturierendes Dokument zu sehen, welches je nach wissenschaftlichen Erkenntnissen verändert werden kann. Gemeinsam mit der Taxonomie bildet sie die Basis für die Ableitung von Fahrerassistenzbedarf und andere Maßnahmen, zur Generierung von Hypothesen und zur strukturierten Sammlung von Studienergebnissen. Der vorliegende Bericht adressiert die FOT- und NDS-Community sowie allgemein verkehrspsychologisch-wissenschaftlich Interessierte. In acht Kapiteln widmet er sich den Arbeitsschritten und Ergebnissen der Taxonomieentwicklung.
Topics of this report are: Securing mobility and making mobility sustainable - Strategies for road safety: Safe behavior, Safe vehicles, Safe infrastructure, Telematics, International vehicle-engineering measures " Accident statistics " Accident research " Passive vehicle safety " Active vehicle safety " Driver assistance systems " Environmental protection through vehicle engineering.
Proposal for a test procedure of assistance systems regarding preventive pedestrian protection
(2011)
This paper is showing a proposal for a test procedure regarding preventive pedestrian protection based on accident analysis. Over the past years pedestrian protection has become an increasing importance also during the development phase of new vehicles. After a phase of focusing on secondary safety, there are current activities to detect a possible collision by assistance systems. Such systems have the task to inform the driver and/or automatically activate the brakes. How practical is such a system? In which kind of traffic situations will it work? How is it possible to check the effectiveness of such a system? To test the effectiveness, currently there are no generally approved identifiable procedures. It is reasonable that such a test should be based on real accidents. The test procedure should be designed to test all systems, independent of the system- working principle. The vFSS group (advanced Forward-looking Safety Systems) was founded to develop a proposal for a technology independent test procedure, which reflects the real accident situation. This contribution is showing the results of vFSS. The developed test procedure focuses on accidents between passenger cars and pedestrians. The results are based on analysis results of in-depth databases of GIDAS, German insurers and DEKRA and added by analysis of national and international statistics. The in-depth analysis includes many pre-crash situations with several influencing factors. The factors are e. g. speed of the car, speed of the pedestrian, moving direction and a possible obscuration of the pedestrian by an object. The results comprise also the different situations of adults and children. Furthermore, they include details regarding influence of the lighting conditions (daylight or night) especially with respect to the accident consequences. In fact, more accidents happen at daylight, but fatal accidents are more often at night. A clustering of parameter combinations was found which represents typical accident scenarios. There are six typical accident scenarios which were merged in four test scenarios. The test scenarios are varying the starting position of the pedestrian, the pedestrian size (adult or child) and the speed of the pedestrian, whereas the speed of the car will not be varied. To ensure the independency from used sensing technologies it is necessary to use a suitable dummy. For example, if sensors are based on infrared, the dummy should emit the temperature of a human being. The test procedure will identify the collision speed as the key parameter for assessing the effectiveness of the tested system. The collision speed is defined as the reduction between initial test speed of the car and impact speed. The assessment of the speed reduction value regarding the safety benefit, however, will be part of a separate procedure.
The BASt-project group "Legal consequences of an increase in vehicle automation" has identified, defined and consequently compiled different automation degrees beyond Driver Assistance Systems. These are partial-, high- and full automation. According to German regulatory law, i.e. the German Road Traffic Code, it has been identified that the distinctive feature of different degrees of automation is the permanent attention of the driver to the task of driving as well as the constant availability of control over the vehicle. Partial automation meets these requirements. The absence of the driver- concentration to the traffic situation and to execute control is in conflict with the use of higher degrees of vehicle automation (i.e. high and full automation). Their use is therefore presently not compatible with German law, as the human driver would violate his obligations stipulated in the Road Traffic Code when fully relying on the degree of automation these systems would offer. As far as higher degrees of automation imply free-hand driving, further research in terms of behavioural psychology is required to determine whether this hinders the driver in the execution of permanent caution as required by sec. 1 para. 1 StVO (German Road Traffic Code). As far as liabilities according to the StVG (German Road Traffic Act) are concerned, the presently reversed burden of proof on the driver within sec. 18 para. 1 S. 2 StVG might no longer be considered adequate in case of higher degrees of automation that allow the driver to draw attention from the task of driving (in case making such use of a system would be permitted by the German Road Traffic Code). The liability of the vehicle "keeper", according to the German Road Traffic Act, would remain applicable to all defined degrees of automation. In case of partial automation, the use of systems according to their limits is accentuated. The range of use that remains within the intended must be defined closely and unmistakeably. Affecting user expectations properly can immensely help to maintain safe use, in case design-measures that exclude overreliance are not available according to the current state of the art (otherwise such measures would have to be applied primarily). In case of the higher degrees of automation that no longer require the driver- permanent attention (under the presupposition their use would be permitted by the German Road Traffic Code), every accident potentially bears the risk to cause product liability on the side of the manufacturer. Liability of the manufacturer might only be excluded in case of a breach of traffic rules by a third party or in case of overriding/ oversteering by the driver. In so far aspects of German procedural law and the burden of proof are of great importance. The project group has identified the need for further continuative research not only to advance legal assessment but also to improve basic technical conditions for vehicle automation as well as product reliability.
Annual report 2011/2012
(2013)
Traffic on German roads is increasing continuously. The research of the Federal Institute for Materials Research (BASt) is concerned with a road system that will be functioning well in the future, that is safe and economically and ecologically sustainable. Every two years, BASt reports on its tasks, research projects and selected administrative topics. The current report comprises the years of 2011 and 2012. On 151 pages, it provides an idea of current research about important topics of roads and traffic. The projects SKRIBT and SKRIBTPlus examined the behaviour of drivers in tunnels in hazardous situations. It was discovered that in situations like this many people often react inadequately and too late. The collected data were used to develop new concepts that improve behaviour in hazardous situations in tunnels. In recent years, new safety systems that improve braking behaviour in hazardous situations have been installed in vehicles. However, for end users it is difficult to compare different systems because they have no access to suitable assessments. The EU project ASSESS (Assessment of Integrated Vehicle Safety Systems for improved vehicle safety) in which BASt is involved as a key partner therefore developed a uniform procedure for assessment and legal questions. Many European countries agree: Alcohol, drugs and medication in road traffic constitute a safety risk on European roads. In order to gain new insights and to develop suitable countermeasures, the European Commission approved of the largest research project to improve road safety to date: DRUID (Driving Under the Influence of Drugs, Alcohol and Medicines). This BASt-coordinated project took five years and involved institutes from 18 European countries. The result is a comprehensive stock taking and concrete suggestions on measures to be taken. A mayor part of the work of BASt also comprises extension and maintenance of the entire road infrastructure. The report "How will we make constructions in the future: Road construction without oil?" for instance examines the question how we will maintain and extend our roads in the future with resources becoming scarcer and more expensive. Furthermore, the campaign "on" the road plays a major part at BASt. For years there has been a shortage of parking spaces for trucks on federal highways. To remedy this situation, BAST has developed a new control approach: The so-called compact parking system increases capacities and uses them more effectively by parking trucks in a line according to their planned departure time.
Accident research 2.0: New methods for representative evaluation of integral safety in traffic
(2013)
BMW has developed a procedure for rating Advanced Driver Assistance Systems (ADAS) benefits that integrates two distinct tools. The tool "S.A.F.E.R." is designed to analyze the pre-crash phase. The aim of S.A.F.E.R. is to simulate all relevant processes in sufficient detail to obtain reproducible estimates of key indicators (effectiveness, false positives, etc.). The relevant processes include not only traffic and vehicle dynamics, but also environmental and most importantly human factors. Representative distributions of factors and parameters are obtained by taking the stochastic variation of all relevant parameters into account in the simulations. The second tool, known as "ICOS", has been designed to provide a high-resolution, high-fidelity description of crash phase dynamics. If one converts the outputs of stochastic simulation into inputs for crash dynamics, the result is a comprehensive description of exactly how a safety system can reduce injuries. Applications currently focus on high-fidelity simulation of individual crashes in order to enhance our understanding and optimization of connected safety systems. An integrated simulation process thus allows an exact prediction of the effectiveness in individual cases in terms of injury severity. The development and rating of integral safety need to reflect the true efficiency in the field. The integrated approach described here could provide a valid and reproducible basis for rating connected systems of active and passive safety. In particular, "virtual experiments" using a traffic-based approach and incorporating models of all relevant processes constitute an essential element of the approach.
The presentation deals with the simulation tool rateEFFECT which intends to answer the following questions: Which active safety systems should be developed to maximize safety benefit in real traffic accidents? What is the effectiveness of a specific active safety system in the real world? How many casualties could be avoided by such a system? It is shown that a lot of information is required to simulate existing accidents in order to estimate ADAS effects. This particularly includes numerical values for the pre-crash and in-crash phase. The database GIDAS provides a required minimum number of these parameters for a statistically significant sample.
Haftung bei kooperativen Verkehrs- und Fahrerassistenzsystemen : Forschungsprojekt FE 89.0251/2010
(2012)
Die Untersuchung zum Forschungsprojekt FE 89.0251/2010 "Haftung bei kooperativen Verkehrs- und Fahrerassistenzsystemen" beschäftigt sich mit der rechtlichen Analyse verschiedener haftungsrechtlich relevanter Szenarien im Straßenverkehr, bei denen Verkehrs- und Fahrerassistenzsysteme bereits eingebunden sind, oder aber eine Einbindung in naher Zukunft zu erwarten ist. Berücksichtigt sind nur Informations- und Warnsysteme. Als relevante Szenarien werden die lokale Gefahrenwarnung und die optimale Verkehrsflusssteuerung für Lichtsignalanlagen identifiziert. Bei der lokalen Gefahrenwarnung ist zu unterschieden, ob sicherheitsrelevante Informationen von den beteiligten Verkehrs- bzw. Fahrerassistenzsystemen nur weitergeleitet oder auch bearbeitet und ausgewertet werden. Die untersuchten Fälle berücksichtigen verschiedene Fehlerquellen und unterscheiden danach, ob die involvierte Infrastruktur von öffentlicher Hand oder von einem privaten Unternehmen betrieben wird. Ergebnisse des Forschungsprojektes sind: a) Haftungsrechtliche Anspruchsgrundlagen ergeben sich aus dem allgemeinen Deliktsrecht (-§ 823 BGB), der Produkt- und Produzentenhaftung (ProdHaftG bzw. -§ 823 BGB), dem Straßenverkehrsrecht (-§-§ 7, 18 StVG), sowie der Amtshaftung (-§ 839 BGB i.V.m. Art. 34 GG). b) Informatorische oder warnende kooperative Verkehrs- und Fahrerassistenzsysteme dienen alleine einer zusätzlichen Unterstützung des Fahrers und können diesen nicht von der Pflicht befreien, die im Verkehr gebotene Sorgfalt zu beachten. c) Die Hersteller von kooperativen Verkehrs- und Fahrerassistenzsystemen müssen wie bei jedem anderen Produkt auch die berechtigten Sicherheitserwartungen der Käufer erfüllen. d) Die öffentliche Hand kommt durch das Betreiben der genannten Systeme ihrer Straßenverkehrssicherungspflicht nach. Nur wenn sie diese nicht mit der nötigen Sorgfalt erfüllt, kommt eine Haftung in Betracht. e) Durch die Verwendung von informatorischen oder warnenden kooperativen Verkehrs- und Fahrerassistenzsystemen ist keine grundsätzliche Haftungsverschiebung festzustellen. Weitere Empfehlungen: Informatorische oder warnende kooperative Verkehrs- und Fahrerassistenzsysteme können ohne zusätzliches systemspezifisches Haftungsrisiko in den Straßenverkehr eingeführt werden.
The sequence of accident events can be classified by three essential phases, the pre-crash-sequence, the crash-sequence and the post-crash-sequence. The level of reliability of the information in the GIDAS-database (German In Depth Accident Study) is provided predominantly on the passive side. The period to evaluate active safety systems begins already in the pre-crash-sequence. The assessment of the potential of sensor- or communication-based active safety systems can only be accomplished by a detailed analysis of the pre-crash-phase. Hence the necessity to analyze the early period of the accident event in detail arises. This is possible with the help of the digital sketches of the accident site and the simulation of the accident by a simulation method of the VUFO GmbH. After simulating the pre-crash scenario it is possible to generate additional and standardized data to describe the pre-crash-sequences of an accident in a very high detail. These data are documented in a second database called the GIDAS Pre-Crash-Matrix (PCM). The PCM contains various tables with all relevant data to reproduce the pre-crash-sequence of traffic accidents from the GIDAS database until 5 seconds before the first collision. This includes parameters to describe the environment data, participant data and motion or dynamic data. This paper explains the creation of the PCM, the simulation itself and the contents and structure of the PCM. With this information of the pre-crash-sequence for various accident scenarios an improved benefit estimation and development of active safety systems can be made possible.
Rear-end collisions are the most frequent same and opposite-direction crashes. Common causes include momentary inattention, inadequate speed or inadequate distance. While most rear-end collisions in urban traffic only result in vehicle damage or slight injuries, rear-end collisions outside built-up areas or on motorways usually cause fatal or serious injuries. Driver assistance systems that detect dangerous situations in the longitudinal vehicle direction are therefore an essential safety plus. In view of this, for ADAC, systems that alert drivers to dangerous situations and initiate autonomous braking complement ESC as one of the most important active safety features in modern vehicles. The aim of ADAC is to provide consumers with technical advice and competent information about the systems available on the market. Reliable comparative tests that are based on standardised test criteria may provide motorists with important information and help them make a buying decision. In addition, they raise consumer awareness of the systems and speed up their market penetration. The assessment must focus on as many aspects of effectiveness as possible and include not only autonomous braking but also collision warning and autonomous brake assist. The work of the ADAC accident research is the development of the testing scenarios with direct link to accident situations and the identification of useful test criteria for testing.