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Advancing active safety towards the protection of vulnerable road users: the PROSPECT project
(2017)
Accidents involving Vulnerable Road Users (VRU) are still a very significant issue for road safety. According to the World Health Organisation, pedestrian and cyclist deaths account for more than 25% of all road traffic deaths worldwide. Autonomous Emergency Braking Systems have the potential to improve safety for these VRU groups. The PROSPECT project (Proactive Safety for Pedestrians and Cyclists) aims to significantly improve the effectiveness of active VRU safety systems compared to those currently on the market by expanding the scope of scenarios addressed by the systems and improving the overall system performance. The project pursues an integrated approach: Newest available accident data combined with naturalistic observations and HMI guidelines represent key inputs for the system specifications, which form the basis for the system development. For system development, two main aspects are considered: advanced sensor processing with situation analysis, and intervention strategies including braking and steering. All these concepts are implemented in several vehicle prototypes. Special emphasis is put on balancing system performance in critical scenarios and avoiding undesired system activations. For system validation, testing in realistic scenarios will be done. Results will allow the performance assessment of the developed concepts and a cost-benefit analysis. The findings within the PROSPECT project will contribute to the generation of state -of-the-art knowledge, technical innovations, assessment methodologies and tools for advancing Advanced Driver Assistance Systems towards the protection of VRUs. The introduction of a new generation safety system in the market will enhance VRU road safety in 2020-2025, contributing to the "Vision Zero" objective of no fatalities or serious injuries in road traffic set out in the Transport White Paper. Furthermore, the test methodologies and tools developed within the project shall be considered for the New Car Assessment Programme (Euro NCAP) future roadmaps, supporting the European Commission goal of halving the road toll in the 2011-2020 timeframe.
Um die Verletztenschwere von ungeschützten Verkehrsteilnehmern bei der Kollision mit Personenkraftwagen zu reduzieren, sollte die Fahrzeugfront bestimmten Anforderungen entsprechen. Dazu wurde von der EEVC-WG 10 ein Testverfahren zur Prüfung der Pkw-Frontfläche vorgeschlagen. In dieser Untersuchung wurde der Nutzen an vermeidbaren Personenschäden geschätzt, der erzielt werden könnte, wenn alle Pkw diese Anforderungen erfüllten. Als Nutzen wurde das Reduktionspotential bei Getöteten, der mögliche Übergang von Schwerverletzten zu Leichtverletzten und von Leichtverletzten zu Unverletzten bewertet. Verletzungsminderungen innerhalb der Gesamtheit der Schwerverletzten konnten nicht bewertet werden. Auch die hohe Dunkelziffer der Verletzten ging nicht in die Rechnung ein. Daraus ergibt sich, dass der errechnete Nutzen eine Mindestgröße darstellt. Diese Größe wird stark beeinflusst von einer gegebenen Verteilung der Pkw-Kollisionsgeschwindigkeiten, denn ein Nutzenpotential des EEVC-WG-10-Testverfahrens kann nur für Kollisionsgeschwindigkeiten bis 40 km/h angenommen werden. Um mit einer verlässlichen Datenbasis zu arbeiten, wurde diese Untersuchung zunächst für die Bundesrepublik Deutschland (Gebietsstand vor dem 3. Oktober 1990) und das Jahr 1990 durchgeführt. Dafür errechnete sich ein Nutzenpotential pro neuzugelassenem Pkw in Höhe von 46 bis 63 DM (22 bis 31 ECU) nach deutschen Unfallkostensätzen oder 28 bis 36 ECU nach europäischen Durchschnittskostensätzen. Wirtschaftlich ist die Maßnahme, solange die Kosten pro neu zugelassenem Pkw (zum Preisstand 1990) diesen Betrag nicht übersteigen. Von diesem Ergebnis ausgehend, wurde dessen zeitliche und regionale Übertragbarkeit erörtert. Es ist wahrscheinlich, dass das Ergebnis für ganz Deutschland gilt, da die Maßnahme nicht vor dem Jahr 2000 eingeführt wird und die Vollausrüstung aller Pkw mit dem geforderten Fußgängerschutz erst 10 Jahre später erreicht ist. Aus Prognosen bis zum Jahre 2010 für die Entwicklung der Bevölkerungszahl (gleichbleibender Fußgängeranteil vorausgesetzt) und der Zahl der Pkw-Neuzulassungen lässt sich keine Änderung des Nutzenpotentials herleiten. Weil für andere EG-Länder die Verteilung der Kollisionsgeschwindigkeiten bei Fußgängerunfällen unbekannt ist, können die Wirksamkeitsannahmen dieser Untersuchung nicht auf andere Länder übertragen werden.
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.
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.
For a number of EU regulatory acts Virtual Testing (VT) is already allowed for type approval (see Commission Regulation No. 371/2010 of 16 April 2010 amending the Framework Directive 2007/46/EC). However, only a very general procedure on how to apply VT for type approval is provided. Technical details for specific regulatory acts are not given yet. The main objective of the European project IMVITER (IMplementation of VIrtual TEsting in Safety Regulations) was to promote the implementation of VT in safety regulations. When proposing VT procedures the new regulation was taken into account, in particular, addressing open issues. Special attention was paid to pedestrian protection as pilot cases. A key aspect for VT implementation is to demonstrate that the employed simulation models are reliable. This paper describes how the Verification and Validation (V&V) method defined by the American Society of Mechanical Engineers was adapted for pedestrian protection VT based assessment. or the certification of headform impactors an extensive study was performed at two laboratories to assess the variability in calibration tests and equivalent results from a set of simulation models. Based on these results a methodology is defined for certification of headform impactor simulation models. A similar study was also performed with one vehicle in the type approval test setup. Its bonnet was highly instrumented and subjected to 45 impacts in five different positions at two laboratories in order to obtain an estimation of the variability in the physical tests. An equivalent study was performed using stochastic simulation with a metamodel fed with observed variability in impact conditions of physical headforms. An estimation of the test method uncertainty was obtained and used in the definition of a validation corridor for simulation models. Validation metric and criteria were defined in cooperation with the ISO TC22 SC10 and SC12 WG4 "Virtual Testing". A complete validation procedure including different test setups, physical magnitudes and evaluation criteria is provided. A detailed procedural flowchart is developed for VT implementation in EC Regulation No 78/2009 based on a so called "Hybrid VT" approach, which combines real hardware based head impact tests and simulations. This detailed flowchart is shown and explained within this paper. Another important point within the virtual testing based procedures is the documentation of relevant information resulting from the verification and validation process of the numerical models used. For this purpose report templates were developed within the project. The proposed procedure fixes minimum V&V requirements for numerical models to be confidently used within the type-approval process. It is not intended to be a thorough guide on how to build such reliable models. Different modeling methodologies are therefore possible, according to particular OEM know-how. These requirements respond to a balance amongst the type-approval stakeholders interests. A cost-benefit analysis, which was also performed within the IMVITER project, supports this approach, showing the conditions in which VT implementation is beneficial. Based on the experience gained in the project and the background of the experts involved an outlook is given as a roadmap of VT implementation, identifying the most important milestones to be reached along the way to a future vehicle type approval procedure supported by VT. The results presented in this paper show an important step addressing open questions and fostering the future acceptance of virtual testing in pedestrian protection type approval procedures.
EEVC Status report
(2001)
Ausgehend von den Unfalldaten der letzten Jahre wird die Bedeutung von Fußgängerunfällen im Unfallgeschehen dargestellt. Betrachtet man die bei Unfällen getöteten Verkehrsteilnehmer, so sind am häufigsten Personen in Kraftfahrzeugen betroffen. Am zweithäufigsten werden, gemäß der Unfallstatistik, Fußgänger getötet. Eine Möglichkeit zur Verbesserung des Schutzes von Fußgängern und anderen sogenannten "ungeschützten Verkehrsteilnehmern" im Falle einer Kollision mit einem Kraftfahrzeug sind Maßnahmen am Fahrzeug. Um die Wirksamkeit derartiger Maßnahmen zu beurteilen, wurde durch das EEVC (European Enhanced Vehicle-Safety Committee) ein Prüfverfahren entwickelt. Es handelt sich dabei um ein Komponentenprüfverfahren, mit dem die Frontstruktur von Fahrzeugen, die bei einer Kollision mit einem Fußgänger hauptsächlich betroffen ist, geprüft wird. Es werden keine den gesamten Menschen repräsentierende Dummies verwendet, stattdessen werden Prüfkörper, die einzelne Körperteile simulieren, eingesetzt. Dieser EEVC Vorschlag wird geschildert. Darüber hinaus wird über Aktivitäten außerhalb des EEVC berichtet, sowie über den aktuellen Stand der Bemühungen der Europäischen Kommission in Bezug auf den Fußgängerschutz, die derzeit, auf Grundlage des Prüfvorschlages des EEVC, einen Vorschlag für eine Europäische Richtlinie erarbeitet.
Im Rahmen des weltweiten ESV-Programmes (Enhanced Safety of Vehicles) werden seit mehreren Jahren internationale Forschungsbemühungen unternommen (International Harmonized Research Activities, IHRA), um im Vorfeld der Gesetzgebung die wissenschaftlichen Grundlagen gemeinsam zu erarbeiten. Ziel der IHRA-Arbeiten ist es, auf der Grundlage dieser Forschungsergebnisse die Harmonisierung der Vorschriften zu erleichtern. Eine besondere Aktivität bezieht sich auf Intelligent Transportation Systems (ITS). Im vorliegenden Beitrag wird die Aufgabe dieser IHRA-ITS-Arbeiten geschildert, sowie der derzeitige Stand der Forschungsbemühungen beschrieben. Es zeigt sich, dass die beschriebene Sicherheitsbewertung eine Fülle von Fragestellungen aufwirft und weitere Forschungsanstrengungen erfordert. Die zukünftigen Bemühungen sind darauf gerichtet, in internationaler Zusammenarbeit und Arbeitsteilung die als besonders wichtig erkannten Themen zur Bewertung der fahrzeugseitigen Fahrerassistenzsysteme zu bearbeiten.