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Since its creation in 2011 the Pre-Crash-Matrix (PCM) offers the possibility to observe the pre-crash phase until five seconds before crash for a wide range of accidents. Currently the PCM contains more than 8.000 reconstructed accidents out of the GIDAS (German In-Depth Accident Study) database and is enlarged continuously by more than 1.000 cases per year. Hence, a detailed investigation of active safety systems in real accident situations has been made feasible. The PCM contains all relevant data in database format to simulate the pre-crash phase until the first collision of the accident for a maximum of two participants. This includes the definition of the participants and their characteristics, the dynamic behavior of the participants as time-dependent course for five seconds before crash as well as the geometry of the traffic infrastructure. The digital sketch of the accident and information from GIDAS as well as from supplementary databases represent the main input for the simulation of the pre-crash phase of an accident with the VUFO simulation model VAST (Vufo Accident Simulation Tool). This simulation in turn embodies the foundation of the PCM. The PCM underlies continual improvements and enhancements in consultation with its users. In addition to collisions of cars with other cars, pedestrians, bicycles and motorcycles the PCM now also covers car to object and car to truck collisions. The paper illustrates car to truck collisions as a showcase and explains perspectives for further developments. In 2016 a more detailed definition of the contour of the vehicle was added. Furthermore, the geometrical surroundings of the accident site will be provided in a new structure with a higher level of detail. Thus, a precise classification of road marks and objects is possible to further improve the support of developing and evaluating ADAS. This paper gives an overview about the latest developments of the PCM with its innovations and provides an outlook to upcoming enhancements. Besides potential areas of application for the development of ADAS are shown.
There is a need to continue to set the right vehicle safety policy priorities in the future. Research has to point out the most cost efficient and safety relevant measures to further reduce the number of road traffic casualties. The overall development shows that the constant and rapid decrease in the number of road casualties slows down. New innovations need to enter the vehicle market soon, in order to continue the success achieved in the last decade. Priorities for vehicle safety are driven by safety and mobility demands. It is necessary to keep a strong lid on all aspects of elderly and vulnerable road users. The fraction of powered-two-wheelers (PTW) is a priority group. PTWs have a risk of being involved in an accident, 14times higher than that of a passenger car. However, the figures do also show that every second fatality is a car occupant. Therefore passenger car safety remains to be top priority. Heavy goods vehicles are overly represented in fatal accidents, addressing the need to make these vehicles more compatible with other road users. These facts highlight the necessity not only to increase vehicles" self protection, but also to make cars - and trucks - more compatible and safe. Cycling is a strongly increasing mode of transport. This is a further reason to demand better protection for cyclists and pedestrians from car design and car active and integrated safety systems. Another priority for future vehicle safety is related to demographics. It is less known that the purely demographic effect will be superimposed by an increasing wish of elderly people to be mobile. However, elderly people show deficits concerning their biomechanics. This emphasizes the need for better and more adaptive restraint systems, but also further technological challenges and demands for active safety systems. However, in order to progress, current technological limitations have to be overcome. Cost benefit considerations, but also consumer acceptance and desires, will drive this process.
Enhanced protection of pedestrians and cyclists remains on the focus. Besides infrastructural and behavioral aspects it is necessary to exploit technical solutions placed on motorized vehicles. Accident research needs reliable data as well as national road accident statistics. Changing the view on seriously injured road users is one of the challenges which will substantially contribute to the optimization on future traffic safety. The missing accuracy in the definition of personal injury has a detrimental effect on making cost efficient road safety policy which is not only focused on fatal accidents. The European commission requested that, starting in 2015, all EU member states provide more detailed data on the injury status of road casualties, with special regard to the group of seriously injured. Conventional accident data will always be essential. But to obtain detailed data about driver behavior in real traffic situations further data sources are required. These could be EDR data, data from electronic control units, data from traffic surveys and traffic counting, naturalistic diving studies and field operational tests. Gaining insight into normal as well as critical driver behavior will enable accident researchers to deduct functions estimating the increase or decrease of accident risk associated with certain behaviors or vehicle functions. Also with view to the introduction of highly automated driving functions in the future such data is urgently needed. Computer simulation based tools to estimate the benefits of active safety systems are another step on the way towards the safety assessment of automated driving. It is now the duty of the scientific community to ask the right questions, to develop a methodology and to merge all these data sources into a common framework for the assessment of future traffic safety innovations.
For more than a decade, ADAC accident researchers have analysed road accidents with severe injuries, recording some 20,000 accidents. An important task in accident research is to determine the causative factors of road accidents. Apart from vehicle engineering and human factors, accident research also focuses on infrastructural and environmental aspects. To find out what accident scenarios are the most common in ADAC accident research and what driver assistance systems can prevent them, our first task was to conduct a detailed accident analysis. Using CarMaker, we performed a realistic simulation of accident scenarios, including crashes, with varying parameters. To begin with, we made an initial selection of driver assistance systems in order to determine those with the greatest accident prevention potential. One important finding of this study is that the safety potential of the individual driver assistance systems can actually be examined. It also turned out that active safety offers even much more potential for development and innovation than passive safety. At the same time, testing becomes more demanding, too, as new systems keep entering the market, many of them differing in functional details. ADAC will continue to test all driver assistance systems as realistically as possible so as to be able to provide advice to car buyers. Therefore, it will be essential to develop and improve test conditions and criteria.
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.
For the estimation of the benefit and effect of innovative Driver Assistance Systems (DAS) on the collision positions and by association on the accident severity, together with the economic benefit, it becomes necessary to simulate and evaluate a variety of virtual accidents with different start values (e.g. initial speed). Taken into account the effort necessary for a manual reconstruction, only an automated crash computation can be considered for this task. This paper explains the development of an automated crash computation based on GIDAS. The focus will be on the design of the virtual vehicle models, the method of the crash computation as well as exemplary applications of the automated crash computation. For the first time an automated crash computation of passenger car accidents has been realized. Using the automated crash computation different tasks within the field of vehicle safety can be elaborated. This includes, for example, the calculation of specific accident parameters (such as EES or delta-V) for various accident constellations and the estimation of the economic benefit of DAS using IRFs (Injury Risk Functions).
Bisher liegt der Schwerpunkt der Forschungsaktivitäten im Bereich der automatisierten Fahrzeugführung auf generellen Automatisierungseffekten, die implizit einen fahrerfahrenen Fahrer annehmen. Welches Potenzial Fahrerassistenzsysteme und Fahrzeugautomatisierung für Fahrschüler und Fahranfänger während des Kompetenzerwerbs haben, ist bisher nicht ausreichend erforscht. Anhand einer Literaturrecherche und eines Expertenworkshops werden in diesem Bericht Forschungsfragen aus dem Bereich des Fahrkompetenzerwerbs im Kontext zunehmender Fahrzeugautomatisierung erarbeitet. Im Rahmen der Literaturrecherche werden zunächst relevante Begrifflichkeiten aus der Expertise- und Kompetenzforschung definiert (z.B. Experte, Experteneigenschaften) sowie allgemeingültige Modelle zum Expertise- und Kompetenzerwerb aufgeführt. Mit Hilfe dieser Grundlagen wird anschließend der Kompetenzerwerb konkret auf das Autofahren übertragen und der Prozess des Fahrkompetenzerwerbs (z.B. Lernbedingungen während der Fahrausbildung und des darauffolgenden selbstständigen Fahrens, Unfallgeschehen der Fahranfänger) betrachtet. Nach GASSER, SEECK und SMITH (2015) lassen sich Fahrerassistenzsysteme sowie die Stufen der Fahrzeugautomatisierung nach ihrer Wirkweise in drei grundlegende Funktionskategorien einteilen (Funktionen der Wirkweisen A, B und C). Heute verfügbare Systeme werden in diese drei grundlegenden Funktionskategorien eingeordnet. Schließlich werden in diesem Bericht Fahrkompetenz und Wirkweisen zusammengeführt: Für jede Wirkweise werden die bestehenden Anforderungen an den Fahrer und damit verbundene Erkenntnisse zum Erwerb und der Entwicklung von Fahrkompetenz dargestellt. Es stehen als Nutzergruppen die Fahrschüler und die Fahranfänger im Fokus. Als weitere Nutzergruppe werden fahrerfahrene Fahrer berücksichtigt. Der durchgeführte Expertenworkshop diente dazu, eine anwendungsbezogene Ergänzung zur Literaturanalyse zu schaffen. Mit Vertretern der Fahrlehrerverbände, der Forschung und fahrerfahrenen Fahrern wurden Fragen diskutiert, die sich für die Wirkweisen A, B und C im Zusammenhang mit dem Fahrkompetenzerwerb ergeben. Die Befunde der Literaturrecherche werden zusammen mit den Ergebnissen des Expertenworkshops zur Ableitung des Forschungsbedarfs herangezogen. Der Forschungsbedarf wird – strukturiert nach den Wirkweisen – für jede Nutzergruppe dargestellt. Für die Nutzergruppen allgemein (d. h. alle Fahrer) ergibt sich Forschungsbedarf bezüglich der Bestimmung des Trainingsbedarfs zum Erlernen des richtigen Umgangs mit Funktionen der Wirkweisen A bis C sowie der Entwicklung entsprechender Trainingskonzepte (Schwerpunkt: Wirkweise B). Die Entwicklung von Trainingskonzepten zur Deckung dieses Trainingsbedarfs sollte unter Berücksichtigung der Kompetenzen der einzelnen Nutzergruppen erfolgen. Weiterhin sollten in der Forschung zukünftig sowohl der Anforderungswandel an das Aufmerksamkeitsmanagement der Fahrer bei Nutzung von Funktionen der Wirkweise B als auch Veränderungen in der Kommunikation zwischen Verkehrsteilnehmern im künftigen Mischverkehr Berücksichtigung finden. Für die Nutzergruppe der Fahrschüler ergibt sich Forschungsbedarf bezüglich der kontinuierlichen Weiterentwicklung von Fahrausbildungs- und Fahrprüfungsinhalten für Funktionen der Wirkweisen A bis C. Für Funktionen der Wirkweisen A und B (Level 1) zeigt sich ein Potenzial zur Unterstützung des Kompetenzerwerbs beim Fahrenlernen, das zukünftig untersucht werden sollte. Von einem ausschließlichem Gebrauch von Funktionen der Wirkweise B während der Fahrschulausbildung sollte abgesehen werden, da potenziell ein Risiko des Nicht-Erwerbs von Fahrkompetenz besteht. Für die Nutzergruppe der Fahranfänger zeigt sich ein Potenzial zur Unterstützung des nach dem Fahrerlaubniserwerb andauernden Kompetenzerwerbs für Funktionen der Wirkweisen A und B (Level 1), welches zukünftig in der Forschung berücksichtigt werden sollte. Ähnlich wie bei der Gruppe der Fahrschüler besteht auch für Fahranfänger das potenzielle Risiko eines Nicht-Erwerbs von Fahrkompetenz bei ausschließlichem Gebrauch von Funktionen der Wirkweise B. Für die Nutzergruppe der fahrerfahrenen Fahrer ergibt sich zum einen Forschungsbedarf für die Bestimmung des notwendigen Trainingsumfangs für Funktionen der Wirkweisen A und B. Zum anderen sollte zukünftig in der Forschung die Relevanz möglicher Verschlechterungen psychomotorischer Fertigkeiten bei überdauernder Nutzung von Funktionen der Wirkweise B (hauptsächlich Level 2 und 3) berücksichtigt werden.
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.