In recent years considerable progress in active and passive safety of road vehicles has been made. The road traffic of today is much safer than in the past. A current vehicle has a lot more safety elements resulting in an improved inner and outer technique. In most European countries the number of fatalities is decreasing despite growing traffic and road usage. Nevertheless, the number of casualties in road traffic accidents is high enough, thus more progress is needed if the number of fatalities is to be reduced by 50%, as postulated by the European Commission for the year 2010. In order to develop countermeasures and further possibilities for injury prevention, it is increasingly important to have accident data available, supplying results quickly and giving the best overview across Europe. In-Depth-Data Sampling Procedures have a huge historical development, starting in the 60ies by the car manufactures, continued during the 70ies mostly by some universities mainly in England, Sweden, France and Germany, today a net of in-depth-investigation teams are working across Europe and around the world.One of the oldest teams is located at the Hannover Medical School, founded in 1973 by the German Government on behalf of the Federal Highway Research Institute Bast. It was the only team worldwide that was equipped with blue light emergency cars, working on scene in time so directly after the event and working continuously during the years, collecting 20 thousand accidents within 30 years period. Since 1999 the order is carried out in cooperation with the German car industry, which is interested and has benefit on the data too. On the basis of the new data collection, so called GIDAS (German In-Depth Accident Study), that has been run at the Technical University Dresden and the Medical University Hannover), a special tool for In-Depth-Accident Analysis was founded. It is the task of this conference to build a platform for such research based on In-Depth-Investigation. The conference is specially aimed at the area of accident data analysis in order to contribute to the harmonization of different investigation methods and accumulation of different results that does exist for different countries worldwide. Up to now no special conference did exist to deal with accident data only following in the discussion for an improvement in traffic and vehicle safety. ESAR - expert symposium on accident research - should be a step forward. This first international conference is being organized by the Accident Research Unit at the Medical University Hannover jointly with the German Federal Highway Research Institute Bast and the Research Association of German Car Manufacturers FAT. The conference should be a platform for an interdisciplinary exchange of information based on the different presentations from participants around the world.
The second ESAR Conference took place at the Medical University Hannover. This year conference presents the current state of affairs of relevant research activities in the field of in-depth investigations. The first conference on ESAR (Expert Symposium on Accident Research) was established in 2004. It is planned to hold ESAR every two years. Hannover seems to be the right place for this conference concerning the fact that the first in-depth research team was found here in the year 1973 and comprehensive studies on accident analysis were spread out from here around the world continuously. This year conference topped all expectations in terms of the numbers of participants, in the variety of papers and the interdisciplinary of presenters from medical, psychological and engineering background. More than 100 delegates from all over the world, that means 13 different countries and from 4 different continents, came to Hannover, presented their results of accident investigation and discussed countermeasures for accident prevention and injury reduction. ESAR should be a platform for exchange of knowledge to find an optimized way for increase of traffic and vehicle safety by in-depth investigation and methodology. ESAR as international conference should be a platform for consideration of all nations round the world. This seems to be very important for the current situation, having high safety in the high industrial countries of Europe, US and Australia, but low safety and high injury risk in Asia and Africa.
In September 2004 the first international symposium called ESAR (Expert Symposium on Accident Research) was carried out at the University of Hannover (Germany). The idea for such international conference was to bring together experts from the fields of accident investigation teams worldwide to present their results for a common audience of people from government, industry and other universities. The first conference was a really sufficient one and followed by the second symposium also at the Hannover Medical School two years later in 2006. This two year rhythm was now continued with the third conference in Hannover again in 2008. It is planned to carry out ESAR every two years also in the future. ESAR is a scientific colloquium and can be seen as a platform for exchange of information on accident research issues based on methodologies of investigation, injury mechanisms and injury assessment, accident causation and other issues of statistical accident data analysis. Representatives from authorities as well as from medical and technical institutions come together to discuss new research issues and exchange experiences on accident prevention and the complex field of accident reconstruction. Special focus was given to the target the European Union set for itself in 2000 which stipulates that within 10 years the number of person killed in road traffic accidents must be cut in half. To reach this goal, optimized measures, comprehensive research and analysis are necessary. A key hurdle comes from the European Union extension to 27 member states, each featuring different levels of traffic safety standards and different accident scenarios. Existing results from long term research projects in Europe, the USA, Australia and Japan including analyses of infrastructure, population, vehicle fleet and driver behaviour offer an excellent basis for understanding and improving countermeasures and research support needs in underdeveloped countries. ESAR's goal is to bring together researchers from all parts of the world, who will report on their methods and recommendations to improve traffic safety based on "In-Depth-Investigations" of real world accidents. These In-depth-investigations of accidents require thorough documentation and an accident data analysis on multidisciplinary levels which must be carried out immediately after it occurs. ESAR presents scientists the opportunity to present their studies on a common basis of research level.
Im Jahr 2004 fand an der Medizinischen Hochschule Hannover die erste ESAR-Konferenz (Expert Symposium on Accident Research) statt. Die Idee einer internationalen Konferenz war aus der Notwendigkeit entstanden, diejenigen Experten zusammen zu bringen, die weltweit tätig sind und Verkehrsunfälle wissenschaftlich analysieren, um ihre Ergebnisse gemeinsam zu diskutieren und einem Zielpublikum von Behördenvertretern, Entwicklungsingenieuren der Automobilindustrie und anderen Wissenschaftlern darzubringen. Die durch Professor Otte initiierte und nun zum vierten Male organisierte Konferenz fand eine breite Akzeptanz und ist mittlerweile Bestandteil einer Konferenzlandschaft mit Zielvorträgen von der Fahrzeugsicherheit bis hin zur Verletzungsanalyse und den Unfallursachen. ESAR kann als wissenschaftliches Kolloquium und Plattform für einen Informationsaustausch der Unfallforscher angesehen werden, die sich speziell mit Methoden der Unfalluntersuchung, mit Verletzungsmechanismen und der Bewertung von Verletzungen, Unfallursachen und anderen Bereichen der statistischen Unfalldatenanalyse befassen. Experten aus den Bereichen der Medizin, der Verkehrspsychologie und der Technik sowie Vertreter zuständiger Behörden kommen hier zusammen, um die Erfahrungen in der Unfallprävention und der Unfallrekonstruktion zu diskutieren und um der Forschung neue Felder zu eröffnen. Neben den Belangen der Europäischen Gemeinschaft werden auch die weltweit zu registrierenden hohen Verletztenzahlen berücksichtigt. Wissenschaftliche Vorträge aus aller Welt tragen dazu bei, geeignete Maßnahmen und Methoden zur Analyse und drastischen Verringerung der Zahl der bei Verkehrsunfällen Getöteten zu entwickeln. Die Zusammensetzung des Teilnehmerkreises dieser wie früherer ESAR-Konferenzen hat längst eine über Europa hinausgreifende Internationalitaet erreicht und bietet daher einen aufschlussreichen Überblick über die verschiedenen Standards bestehender Verkehrssicherheit und unterschiedlichen Unfallszenarien und über die Anforderungen an die Unfallanalysen. Die Ergebnisse langjähriger Forschungsarbeiten in Europa, USA, Australien und asiatischen Ländern beinhalten unterschiedliche infrastrukturelle Zusammenhänge und geben Erkenntnisse über Population, Fahrzeugbestand und Fahrereigenschaften. Derartige Informationen bilden eine exzellente Basis für abzuleitende Empfehlungen und Maßnahmen für die Erhöhung der Verkehrssicherheit international.
In 2012 the fifth ESAR conference (Expert Symposium on Accident Research) was held in Hannover. ESAR is an international convention of experts, who analyze traffic accidents all over the world and discuss their results in this context, conducted at the Medizinische Hochschule Hannover every 2 years. It connected representatives of public authorities, engineers in automotive development and scientists and offers a forum with particular emphasis on In-Depth-Analyses of accident statistics and accident analyses. Special focus is placed on research on the basis of so-called "In-Depth-Accident-Investigations" [data collections at the sites of the accidents], which are characterized by extensive documentations of the sites of the accidents, of the vehicles as well as of the injuries, encompassing several scientific fields. ESAR aims at a multi-disciplinary compilation of scientific results and at discussing them on an international, scientific level. It is thus a scientific colloquium and a platform for exchanging information for all accident researchers. Experiences in accident prevention as well as in the complex field of accident reconstruction are stated and new research fields are added. Existing results of long-term research work in Europe, the US, Australia and Japan include different infrastructural correlations and give findings on population, vehicle population and driver characteristics, which offer a basis for recommendations to be derived and measures for increasing road safety.
In 2014 the sixth ESAR conference (Expert Symposium on Accident Research) was held in Hannover. ESAR is an international convention of experts, who analyze traffic accidents all over the world and discuss their results in this context, conducted at the Medizinische Hochschule Hannover every 2 years. It connected representatives of public authorities, engineers in automotive development and scientists and offers a forum with particular emphasis on In-Depth-Analyses of accident statistics and accident analyses. Special focus is placed on research on the basis of so-called "In-Depth-Accident-Investigations" [data collections at the sites of the accidents], which are characterized by extensive documentations of the sites of the accidents, of the vehicles as well as of the injuries, encompassing several scientific fields. ESAR aims at a multi-disciplinary compilation of scientific results and at discussing them on an international, scientific level. It is thus a scientific colloquium and a platform for exchanging information for all accident researchers. Experiences in accident prevention as well as in the complex field of accident reconstruction are stated and new research fields are added. Existing results of long-term research work in Europe, the US, Australia and Japan include different infrastructural correlations and give findings on population, vehicle population and driver characteristics, which offer a basis for recommendations to be derived and measures for increasing road safety.
In 2016 the seventh ESAR conference (Expert Symposium on Accident Research) was held in Hannover. ESAR is an international convention of experts, who analyze traffic accidents all over the world and discuss their results in this context, conducted at the Medizinische Hochschule Hannover every 2 years. It connected representatives of public authorities, engineers in automotive development and scientists and offers a forum with particular emphasis on In-Depth-Analyses of accident statistics and accident analyses. Special focus is placed on research on the basis of so-called "In-Depth-Accident-Investigations" [data collections at the sites of the accidents], which are characterized by extensive documentations of the sites of the accidents, of the vehicles as well as of the injuries, encompassing several scientific fields. ESAR aims at a multi-disciplinary compilation of scientific results and at discussing them on an international, scientific level. It is thus a scientific colloquium and a platform for exchanging information for all accident researchers. Experiences in accident prevention as well as in the complex field of accident reconstruction are stated and new research fields are added. Existing results of long-term research work in Europe, the US, Australia and Japan include different infrastructural correlations and give findings on population, vehicle population and driver characteristics, which offer a basis for recommendations to be derived and measures for increasing road safety.
A methodology to derive precision requirements for automatic emergency braking (AEB) test procedures
(2015)
AEB Systems are becoming important to increase traffic safety. Test procedures in testing for consumer information, manufacturer self-certification and technical regulations are used to ensure a certain minimum performance of these systems. Consequently, test robustness, test efficiency and finally test cost become increasingly important. The key driver for testing effort and test costs is the required repeatable accuracy in a test design - the higher the accuracy, the higher effort and test costs. On the other hand, the performance of active safety systems depends on time discretization in the environment perception and other sub-systems: for instance, typical sensors supply information with a cycle time of 50 - 150 ms. Time discretization results in an inherent spread of system performance, even if the test conditions are perfectly equal. The proposed paper shows a methodology to derive requirements for a test setup (e.g. test repeats, use of driving robots, ...) as function of AEB system generation and rating method (e.g. Euro NCAP points awarded, pass/fail, ...). While the methodology itself is applicable to AEB pedestrian and AEB Car-Car scenarios, due to the lack of sufficient test data for AEB Car-Car, the focus of this paper is on AEB pedestrian scenarios. A simulation model for the performance of AEB Pedestrian systems allows for the systematic variation of the discretization time as well as test condition accuracy. This model is calibrated with test results of 4 production vehicles for AEB Pedestrian, all fully tested by BASt according to current Euro NCAP test protocols. Selected parameters to observe the accuracy of the test setup in case of pedestrian AEB is the calculated impact position of pedestrian on the vehicle front (as if no braking would have occurred), and the test vehicle speed accuracy. These variable was shown in real tests to be repeatable in the range of ± 5 cm and ± 0,25 km/h, respectively, with a fully robotized state of the art test setup. The sensitivity of AEB performance (measured in achieved speed reduction as well as overall rating result according to current Euro NCAP rating methods) towards discretization and the sensitivity of performance towards test accuracy then is compared to identify economic yet robust test concepts. These comparisons show that the available repeatability accuracy of current test setups is more than sufficient for today's AEB system capabilities. Time discretization problems dominate the performance spread especially in test scenarios with a limited pedestrian dummy reveal time (e.g. child behind obstruction, running adult scenarios with low car speeds). This would allow to increase test tolerances to decrease test cost. A methodology which allows to derive the required tolerances in active safety tests might be valuable especially for NCAPs of emerging countries that do not have the necessary equipment (e.g. driving robots, positioning units) available for the full-scale and high tolerance EuroNCAP active safety procedures yet still want to rate active safety systems, thus improving the global safety.
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.
Since 2005 the German In-Depth Accident Study (GIDAS) also records aspects of active vehicle safety. This is done because vehicles are fitted with an increasing number of active safety devices which have undoubtedly an influence on the number, severity and course of accidents. Accident researchers expect that collecting active safety data will facilitate to assess and quantify the impact of these and future devices. It is the aim of this paper to outline benefits and limitations associated with the recording of active safety aspects within indepth studies. An overview about possible areas where active safety data can be useful will be given. For that purpose single safety or comfort systems will be selected to estimate the effects of an accident database which includes variables associated with these systems. Questions with regard to the limitations of collecting active safety data will be addressed. Possible items are for example the usability of the data recorded, the real accident cause, the small number of relevant accidents, the time span needed to gather a sufficient dataset, the small share of vehicles equipped with a certain system or different functionalities of systems that are supposed to fall in the same category. As a result user needs for a reasonable data collection of active safety elements will be elaborated.
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.
Aktive Systeme der passiven Fahrzeugsicherheit zum Fußgängerschutz, sogenannte crash-aktive Fußgängerschutzsysteme, werden seit 2005 zur Erfüllung der gesetzlichen Anforderungen (siehe Verordnung (EG) Nr. 78/2009 und 631/2009) in Serienfahrzeugen eingesetzt. Diese crash-aktiven Fußgängerschutzsysteme stellen im Gegensatz zu den rein passiven Systemen nur eine instationäre Lösung dar. Da die innerhalb der gesetzlichen Anforderungen definierten Testverfahren zur Bewertung stationärer Systeme entwickelt wurden, können derzeit mögliche Risiken instationärer Systeme nicht berücksichtigt werden. Im Rahmen dieses Forschungsprojektes soll ein Bewertungsverfahren für diese crash-aktiven Fußgängerschutzsysteme entwickelt werden, welches das reale Potential dieser Systeme möglichst gut wiedergibt. Basis hierfür soll eine umfangreiche Untersuchung zusätzlicher Risiken bilden. Die hier untersuchten instationären Schutzmaßnahmen werden nur im Falle eines Fahrzeuganpralls gegen Fußgänger aktiviert, der daher zuverlässig erkannt werden muss. Für die hierfür eingesetzten, kontaktbasierten Sensorsysteme stellen Fußgänger mit geringen Lasteinträgen in die Fahrzeugfront eine große Herausforderung dar. Die Lasteinträge hängen von zahlreichen Faktoren, wie bspw. der Höhe der entsprechenden Krafteinleitungspfade sowie der Größe und dem Gewichts des Fußgängers, ab. Mit Hilfe von umfangreichen Anprallversuchen und -simulationen wird gezeigt, dass die bisher eingesetzten Prüfkörper nur zum Teil für die Erfüllung dieser Anforderungen geeignet sind. Für ein geeignetes Prüfverfahren müssen daher neue Prüfkörper entwickelt werden. Durch die Aktivierung der Schutzmaßnahme soll bei den crash-aktiven Systemen vor allem das Verletzungsrisiko beim Kopfanprall verringert werden. Hierfür wird häufig die hintere Motorhaubenkante angehoben, um zusätzlichen Deformationsfreiraum zur Verfügung zu stellen. Die Haubenanhebung kann jedoch auch in zusätzlichen Verletzungsrisiken resultieren, bspw. durch die exponierte hintere Haubenkante oder die Verringerung des Deformationsfreiraums in Folge des Oberkörperanpralls. Ein Ersatzprüfverfahren zur Bewertung der Haubendeformation mit Hilfe des Hüftimpaktors wird vorgestellt. Ein hybrides Testverfahren bestehend aus Simulation und Versuch eignet sich für eine objektive Bewertung dieser Systeme, wobei die entsprechenden Versuchsparameter mit Hilfe der vorherigen Simulation bestimmt werden können.
It is commonly agreed that active safety will have a significant impact on reducing accident figures for pedestrians and probably also bicyclists. However, chances and limitations for active safety systems have only been derived based on accident data and the current state of the art, based on proprietary simulation models. The objective of this article is to investigate these chances and limitations by developing an open simulation model. This article introduces a simulation model, incorporating accident kinematics, driving dynamics, driver reaction times, pedestrian dynamics, performance parameters of different autonomous emergency braking (AEB) generations, as well as legal and logical limitations. The level of detail for available pedestrian accident data is limited. Relevant variables, especially timing of the pedestrian appearance and the pedestrian's moving speed, are estimated using assumptions. The model in this article uses the fact that a pedestrian and a vehicle in an accident must have been in the same spot at the same time and defines the impact position as a relevant accident parameter, which is usually available from accident data. The calculations done within the model identify the possible timing available for braking by an AEB system as well as the possible speed reduction for different accident scenarios as well as for different system configurations. The simulation model identifies the lateral impact position of the pedestrian as a significant parameter for system performance, and the system layout is designed to brake when the accident becomes unavoidable by the vehicle driver. Scenarios with a pedestrian running from behind an obstruction are the most demanding scenarios and will very likely never be avoidable for all vehicle speeds due to physical limits. Scenarios with an unobstructed person walking will very likely be treatable for a wide speed range for next generation AEB systems.
The overall purpose of the ASSESS project is to develop a relevant and standardised set of test and assessment methods and associated tools for integrated vehicle safety systems, primarily focussing on currently available pre-crash sensing systems. The first stage of the project was to define casualty relevant accident scenarios so that the test scenarios will be developed based on accident scenarios which currently result in the greatest injury outcome, measured by a combination of casualty severity and casualty frequency. The first analysis stage was completed using data from a range of accident databases, including those which were nationally representative (STATS19, UK and STRADA, SE) and in-depth sources which provided more detailed parameters to characterise the accident scenarios (GIDAS, DE and OTS, UK). A common analysis method was developed in order to compare the data from these different sources, and while the data sets were not completely compatible, the majority of the data was aligned in such a way that allowed a useful comparison to be made. As the ASSESS project focuses on pre-crash sensing systems fitted to passenger cars, the data selected for the analysis was "injury accidents which involved at least one passenger car". The accident data analysis yielded the following ranked list of most relevant accident scenarios: Rank Accident scenario 1 Driving accident - single vehicle loss of control 2 Accidents in longitudinal traffic (same and opposite directions) 3 Accidents with turning vehicle(s) or crossing paths in junctions 4 Accidents involving pedestrians The ranked list highlights the relatively large role played by "accidents in longitudinal traffic", and "accidents with turning vehicle(s) or crossing paths in junctions" (the second and third most prevalent accident scenarios, respectively). The pre-crash systems addressed in ASSESS propose to yield beneficial safety outcomes with specific regard to these accident scenarios. This indicates that the ASSESS project is highly relevant to the current casualty crash problem. In the second stage of the analysis a selection of these accident scenarios were analysed further to define the accident parameters at a more detailed level .This paper describes the analysis approach and results from the first analysis stage.
There is a need for detecting characteristics of pedestrian movement before car-pedestrian collisions to trigger a fully reversible pedestrian protection system. For this purpose, a pedestrian sensor system has been developed. In order to evaluate the effectiveness of the sensor system, the in-depth knowledge of car-pedestrian impact scenarios is needed. This study aims at the evaluation of the sensor system. The accident data are selected from the STRADA database. The accident scenarios available in this database were evaluated and the knowledge of the most common scenarios was developed in terms of the pedestrian trajectory, the pedestrian speed, the car trajectory, the car velocity, etc. A mathematical model was then established to evaluate the sensor system with different detective angles. It was found that in order to detect all the pedestrians in the most common scenarios on time the sensor detective angle must be kept larger than 60 degrees.
Autonomous Emergency Braking (AEB) systems for pedestrians have been predicted to offer substantial benefit. On this basis, consumer rating programmes, e.g. Euro NCAP, are developing rating schemes to encourage fitment of these systems. One of the questions that needs to be answered to do this fully, is to determine how the assessment of the speed reduction offered by the AEB is integrated with the current assessment of the passive safety for mitigation of pedestrian injury. Ideally, this should be done on a benefit related basis. The objective of this research was to develop a benefit based methodology for assessment of integrated pedestrian protection systems with pre-crash braking and passive safety components. A methodology has been developed which calculates the cost of pedestrian injury expected, assuming all pedestrians in the target population (i.e. pedestrians impacted by the front of a passenger car) are impacted by the car being assessed, taking into account the impact speed reduction offered by the car’s AEB (if fitted) and the passive safety protection offered by the car’s frontal structure. For rating purposes, this cost can be normalised by comparing it to the cost calculated for selected cars. The methodology uses the speed reductions measured in AEB tests to determine the speed at which each casualty in the target population will be impacted. The injury to each casualty is then calculated using the results from standard Euro NCAP pedestrian impactor tests and injury risk curves. This injury is converted into cost using ‘Harm’ type costs for the body regions tested. These costs are weighted and summed. Weighting factors were determined using accident data from Germany and GB and the results of a benefit analysis performed by the EU FP7 AsPeCSS project. This resulted in German and GB versions of the methodology. The methodology was used to assess cars with good, average and poor Euro NCAP pedestrian ratings, with and without a current AEB system fitted. It was found that the decrease in casualty injury cost achieved by fitting an AEB system was approximately equivalent to that achieved by increasing the passive safety rating from poor to average. Also, it was found that the assessment was influenced strongly by the level of head protection offered in the scuttle and windscreen area because this is where head impact occurs for a large proportion of casualties. The major limitation within the methodology is the assumption used implicitly during weighting. This is that the cost of casualty injuries to body areas, such as the thorax, not assessed by the headform and legform impactors, and other casualty injuries such as those caused by ground impact, are related linearly to the cost of casualty injuries assessed by the impactors. A methodology for assessment of integrated pedestrian protection systems was developed. This methodology is of interest to consumer rating programmes which wish to include assessment of these systems. It also raises the interesting issue if the head impact test area should be weighted to reflect better real-world benefit.
Bicyclists and pedestrians belong to the most endangered groups in urban traffic. The EU-funded collaborative research project PROSPECT (‘PROactive Safety for PEdestrians and CyclisTs´) aims to significantly improve safety of those unprotected traffic participants by expanding the scope of scenarios covered by future active safety systems in passenger cars. Concepts for sensor control systems are built into three prototypes covering emergency interventions such as Autonomous Emergency Braking (AEB) as well as Autonomous Emergency Steering (AES). These systems tackle the well-known challenges of currently available systems including limited field-of-view by sensors, fuzzy path prediction, unreliable intent reaction times and slow reaction times. These highly innovative functions call for extensive validation methodologies based on already established consumer testing procedures. Since these functions are developed towards the prevention of intersection accidents in urban areas, a key aspect of the advanced testing methodology is the valid approximation of naturalistic trajectories using driving robots. Eventually, several simulator studies complemented a user acceptance and benefit analysis to evaluate the expected overall impact of the PROSPECT systems. The results achieved within the PROSPECT project are highly relevant for upcoming test protocols regarding the most critical situations with Vulnerable Road Users (VRU). With introducing the new methods in Euro NCAP (European New Car Assessment Programme) a significant increase in road safety is expected.
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).
Accident data shows that the vast majority of pedestrian accidents involve a passenger car. A refined method for estimating the potential effectiveness of a technology designed to support the car driver in mitigating or avoiding pedestrian accidents is presented. The basis of the benefit prediction method consists of accident scenario information for pedestrian-passenger car accidents from GIDAS, including vehicle and pedestrian velocities. These real world pedestrian accidents were first reconstructed and the system effectiveness was determined by comparing injury outcome with and without the functionality enabled for each accident. The predictions from Volvo Cars" general Benefit Estimation Model are refined by including the actual system algorithm and sensing models for a relevant car in the simulation environment. The feasibility of the method is proven by a case study on a authentic technology; the Auto Brake functionality in Collision Warning with Full Auto Brake and Pedestrian Detection (CWAB-PD). Assuming the system is adopted by all vehicles, the Case Study indicates a 24% reduction in pedestrian fatalities for crashes where the pedestrians were struck by the front of a passenger car.
The Intersection 2020 project was initiated to develop a test procedure for Automatic Emergency Braking systems in intersection car-to-car scenarios to be transferred to Euro NCAP. The project aims to address current road traffic accidents on European roads and therefore sets a priority of the identification of the most important car-to-car accidents and Use Cases. Taking into account technological and practical limitations, Test Scenarios are derived from the Use Cases in a later stage of the project. This paper presents parts of a larger study and provides an overview of common car-to-vehicle(at least four wheels) collision types at junctions in Europe and specifies seven Accident Scenarios from which the three scenarios “Straight Crossing Paths (SCP)”, “Left Turn Across Path – Opposite Direction Conflict (LTAP/OD)” and “Left Turn Across Path – Lateral Direction (LTAP/LD)” are most important due to their high relevance regarding severe car-to-car accidents. Technical details about crash parameters such as collision and initial speeds are delivered. The analysis work performed is input for the definition and selection of the Use Cases as well as for the project’s benefit estimation. The numbers of accidents and fatalities in accidents at intersections involving a passenger car were shown per intersection type. In both statistics, it was found that accidents at crossroads and T- or staggered junctions are of highest relevance, followed by roundabouts. Focusing on accidents at intersections between one passenger car and another road user shows that around one-third of all accidents and related fatalities could have been assigned to car-to-PTW accidents and one-fifth of all accidents and fatalities to car-to-car accidents. Regarding car-to-car accidents with at least serious injury outcome 38% out of 34,489 car-to-car accidents happened at intersections. These figures correspond to 18% of the fatalities (4,236 fatalities in total). Considering all intersection types, around half of all related accidents happened in urban environments whereas this number decreased to one-third of all fatalities. Further, the proportion of road fatalities per country occurring at intersections varies widely across the EU. Also, there are proportionately more fatalities in daylight or twilight conditions at junctions. Use Cases are supposed to be derived from Accident Scenarios and by adding detailed information for example about the road layout, right-of-way and the vehicle trajectories prior to the collision. Instead of applying cluster algorithms to the accident data, a pragmatic approach was finally preferred to create them. Note: Use Cases serve as an intermediate step between the Accident Scenarios and the Test Scenarios which describe the actual testing conditions. Finally, 74 Use Cases were identified. This large number indicates the complexity of intersection crashes due to the combination of several parameters.
Active safety systems are aimed at accident prevention, hence the knowledge required for their development is different from that required for passive safety systems aimed at injury prevention. Particularly, knowledge about accident causation is required. When looking at existing accident causation data, it is argued it fails to explain in sufficient detail how and why the accidents occur. Therefore, there is a need for detailed micro-level descriptions of accident causation mechanisms, and also of methodologies suitable for creating such descriptions. One study addressing these needs is the Swedish project FICA (Factors Influencing the Causation of Accidents and Incidents), where an accident investigation methodology suitable for active safety is developed, and in-depth accident investigations following this methodology are carried out on-scene in the area of Gothenburg by a multidisciplinary team. A preliminary aggregated analysis of different cases shows that the methodology developed is adequate for pointing out common contributing factors and devising principal countermeasures.
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.
Die EU hat für die Verkehrssicherheit in Europa ein anspruchsvolles Ziel vorgegeben: Bis 2010 soll die Anzahl der im Straßenverkehr Getöteten gegenüber 2000 halbiert werden. Für Deutschland kann eine erfolgreiche Zwischenbilanz gezogen werden: In den letzten 5 Jahren nahm trotz Vergrößerung des Kraftfahrzeugbestandes um 6% die Anzahl der Verkehrstoten um 29% ab, in den vergangenen 10 Jahren ist ein Rückgang um 43% zu verzeichnen. Diese im internationalen Vergleich überdurchschnittlichen Erfolge sind nicht zuletzt auch auf Fortschritte in der Fahrzeugtechnik zurückzuführen, wobei die zunehmende Verbreitung von Systemen der Aktiven Sicherheit wie ABS, BAS, ESP einen entscheidenden Anteil hat. Nach der deutlichen Reduzierung von Fahrunfällen durch ESP-® stehen nun die Auffahrunfälle im Fokus der Sicherheitsentwicklung von Mercedes-Benz. Das Paket aus verbessertem rückwärtigen Signalbild (Adaptives Bremslicht) und Brems-Assistent (BAS) wurde kürzlich durch radarbasierte Bremsassistenz ergänzt (BAS PLUS und PRE-SAFE-®-Bremse). Der Beitrag geht auf Funktion und Wirksamkeit der einzelnen Systeme ein und gibt einen Ausblick in die nähere Zukunft.
Insbesondere auf Landstraßen, das heißt außerorts ohne Bundesautobahnen, hat sich in den letzten Jahren ein deutlicher Rückgang bei den Unfällen mit Pkw gezeigt. Von 2001 bis 2005 ist die Zahl der bei Landstraßenunfällen Getöteten von 4.481 auf cirka 3.230 zurückgegangen. Als eine wesentliche Ursache für diese positive Entwicklung wird die stetige Verbesserung der aktiven und passiven Sicherheit von Fahrzeugen angesehen. In der vorliegenden Arbeit wurde untersucht, inwieweit sich in der amtlichen Unfallstatistik Belege für diese Vermutung finden lassen. Ob die Wirkung straßeninfrastrukturseitiger Maßnahmen auf Landstraßenunfälle mit dem gewählten Ansatz analog nachweisbar ist, wurde ebenfalls betrachtet. Der Einfluss fahrzeugseitiger Maßnahmen auf das Unfallgeschehen wurde zum einen für drei Systeme der aktiven Fahrzeugsicherheit Fahrdynamikregelungen (ESP), Bremsassistenten (BAS) und Gasentladungsscheinwerfer (XENON) Ń ermittelt. Zum anderen wurden Verbesserungen der passiven Fahrzeugsicherheit, wie Airbags oder auch die Einführung von Vorschriften zum Beispiel für Frontal- und Seitenaufprall, als Gesamtpaket betrachtet. Darüber hinaus wurden Einflussmöglichkeiten verbesserter Straßeninfrastruktur beziehungsweise -ausstattung erörtert. Für die ausgewählten Sicherheitseinrichtungen wurden geeignete Teilmengen aus dem Unfallgeschehen ausgewählt, bei denen sich der Einfluss der Fahrzeugtechnik erwarten lässt. Diese wurden dann mit Unfallsituationen verglichen, in denen die Maßnahmen keine Wirkung zeigen sollten. Im Einzelnen konnten folgende Ergebnisse aus den Auswertungen des Unfallgeschehens abgeleitet werden: Die Zahl der Unfälle in ESP-relevanten Situationen ist bei neuen Fahrzeugen, in denen ESP zu einem hohen Anteil verbaut ist, deutlich und überproportional zurückgegangen. Hier ist zwischen den Jahren 2000 und 2005 ein Rückgang der Landstraßenunfälle mit Personenschaden und der schwerwiegenden Unfälle mit Sachschaden in Höhe von 28 % eingetreten. Der positive Effekt des ESP zeigt sich auch an der Zahl der schweren Personenschäden (Getötete und Schwerverletzte). Insgesamt ergibt sich für den Rückgang der schweren Personenschäden in ESP-relevanten Situationen auf Landstraßen unter Berücksichtigung der Unfälle älterer Pkw sowie der Unfälle in Vergleichssituationen ein Wert von 13 %. Das Unfallgeschehen in BAS-relevanten Situationen hat sich sowohl für Neufahrzeuge als auch für ältere Fahrzeuge gleichermaßen, aber überproportional verbessert (-31 % Unfälle für BAS-relevante Situationen gegenüber -20 % für nicht BAS-relevante). Ein Sicherheitsvorteil allein durch BAS lässt sich mit den vorliegenden Zahlen somit nicht eindeutig nachweisen. Dass auch ältere Fahrzeuge in der BAS-Situation einen starken Rückgang aufweisen, deutet darauf hin, dass es neben dem BAS weitere Faktoren gibt, die diese Situation positiv beeinflussen, die aber nicht identifiziert sind. Hier könnte ABS, das in der gleichen Situation wirkt wie BAS und auch noch bei älteren Fahrzeugen wachsende Ausstattungsquoten zeigt, eine Rolle spielen. Rückgänge in den Unfallzahlen fallen für Neufahrzeuge in den XENON-relevanten Situationen etwas stärker aus als bei älteren Pkw (-34 % gegenüber -28 %). Daraus lassen sich, vermutlich bedingt durch die geringen Änderungen der Ausstattungsquote, jedoch in dieser Untersuchung keine Sicherheitsvorteile durch Gasentladungslicht ableiten, da der Rückgang gleichermaßen auch in der Vergleichssituation auftritt. Gleichzeitig deutet die Unfallentwicklung in Abhängigkeit vom Fahrzeugalter jedoch darauf hin, dass auch in der XENON-Situation andere Maßnahmen, die zum Beispiel der passiven Fahrzeugsicherheit zuzuordnen sind, wirksam sein müssen. Die Rückgänge der Unfallschwere (Anzahl der Getöteten und Schwerverletzten je 100 Pkw-Fahrer bei Unfällen mit Personenschaden) in Unfällen mit entgegenkommenden Fahrzeugen (relevante Situation für die passive Sicherheit) sind bei Fahrern von Neufahrzeugen am größten (-42 % gegenüber -14 % bei älteren Fahrzeugen). Dies zeigt eindeutig die Wirkung verbesserter Systeme der passiven Fahrzeugsicherheit wie Airbags, Gurtstraffer und -kraftbegrenzer sowie optimierte Fahrzeugstruktur beziehungsweise Fahrgastzelle. Deutliche Rückgänge in der Unfallschwere bei den sonstigen Unfällen von Neufahrzeugen zeigen, dass sich die ständig weiterentwickelte passive Sicherheit auch in anderen Unfallkonstellationen, wie zum Beispiel seitlichen Kollisionen, bewährt. Im Straßeninfrastrukturbereich besteht das Problem, dass die wesentlichen Informationen für den hier gewählten Ansatz zur Ermittlung des Einflusses von Maßnahmen auf das Unfallgeschehen nicht verfügbar sind. Dafür müssten zum einen Daten über die Menge der umgesetzten Maßnahmen im Zeitverlauf vorliegen; zum anderen müsste es eine Vergleichsgruppe geben (Unfälle, die durch die Maßnahme nicht beeinflusst wurden). Maßnahmen und Nicht-Maßnahmen müssten dabei räumlich und/oder zeitlich abgrenzbar sein. Es zeigt sich, dass diese Daten für die meisten Maßnahmen im Infrastrukturbereich nicht vorliegen, sodass mit Hilfe der amtlichen Unfallstatistik keine Untersuchungen zur Wirksamkeit durchgeführt werden können. Hier sind demnach andere Untersuchungsansätze anzuwenden.
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.