Empirical vehicle crashworthiness studies are usually based on national or in-depth traffic accident surveys: Data on accident-involved cars/drivers are analysed in order to quantify the chance of driver injury and to assess certain risk factors like car make and model. As the cars/drivers involved in the same accident form a "cluster", where the size of the cluster equals the number of accident-involved parties, traffic accident survey data are typical multi-level data with accidents as first-level or primary and cars/drivers as secondlevel or secondary units (car occupants in general are to be considered as third level units). Consequently, appropriate statistical multi-level models are to be used for driver injury risk estimation purposes as these models properly account for the cluster structure of traffic accident survey data. In recent years various types of regression models for clustered data have been developed in the statistical sciences. This paper presents multi-level statistical models, which are generally applicable for vehicle crashworthiness assessment in the sense that data on single and multiple car crashes can be analysed simultaneously. As a special case of multi-level modelling driver injury risk estimation based on paired-by-collision car/driver data is considered. It is demonstrated that assessment results may be seriously biased, if the cluster structure inherent in traffic accident survey data is erroneously ignored in the data analysis stage.
Internationally, the need is expressed for harmonized traffic accident data collection (PSN, PENDANT, etc.). Together with this effort of harmonization, traffic accident investigation moves more and more in the direction of accident causation. As current methods only partly address these needs, a new method was set up. The main characteristics of this method are: • Accident/injury causation (associated) factors can objectively be identified and quantified, by comparison with exposure information from a normal population. • All relevant accident and exposure data can be included: human-, vehicle-, and environmental related data for the pre-crash, crash and postcrash situation (the so-called Haddon matrix). The level of detail can be chosen depending on interest and/or budget, which makes the method very flexible. In this paper the accident collection and control group method are presented, including some of the achieved results from a pilot study on 30 truck accidents and 30 control locations. The data were analyzed by using cross-tabulations and classification-tree analysis. The method proved useful for the identification of statistically significant causational aspects.
During the last 5 years, the number of cars fitted with side airbags has dramatically increased. They are now standard equipment, even on many smaller cars or less luxurious vehicles. While some side airbags offer thoracic protection alone, there are those that combine thoracic and head protection (of which most deploy from the seat). Other systems employ separate airbags for head and thorax protection, which are designed to be effective noticeably in a crash against a pole. This paper proposes an evaluation of the effectiveness of side airbags in preventing thoracic injuries to passenger car occupants involved in side crashes. First, the target population (who can take benefit of side airbag deployment and in what circumstances) is defined. Side airbags can be especially effective in cases of impacts on the door with intrusion at a certain impact speed. Then, an example case of a side impact with side airbag deployment is given were side airbag deployment is thought to have had a positive effect on injury outcome. A further case is presented where the impact configuration is likely to have reduced the effect of side airbag deployment on injury outcome. Finally, the estimation of side airbag effectiveness (in terms of additional occupant protection brought exclusively by the airbag) is proposed by comparing injury risk sustained by occupants in (more or less) similar cars (fitted or non fitted with airbags) because, during these years, car structure, and side airbag conception have considerably evolved. In-depth accident data from France, the UK and Germany has been collected. Out of 2,035 side impact accident cases available in the databases, we selected 435 occupants of passenger cars (built from 1998 onwards) involved in an injury accident between year 1998 and year 2004 for EES (Energy Equivalent Speed) values between 20km/h and 50km/h. The occupants, belted or not, were sat on the struck side, whatever the obstacle and type of accidents (intersection, loss of control, etc.). For multiple impact crashes, the side impact is assumed to be the more severe one. Passenger cars were fitted with (96) or without (339) side airbags. Most of the potential risk explanatory variables were correctly and reliably reported in the databases (velocity " impact zone " impact angle " occupant characteristics, etc.). The analysis compared injury risks for different levels of EES and different types of side airbags. A logistic regression model was also computed with injury variables (such as thoracic AIS 2+ or AIS 3+) as the dependant variable and other variables (including airbag type and EES) as explanatory injury risk factors. Results revealed statistically non-significant reductions in thoracic AIS 2+ and AIS 3+ injury risk in side airbag equipped cars in the impact violence range selected (odds ratio between 0.84 and 0.98 depending on types of airbags). The results are discussed. The non-significance is assumed to be due to a low number of cases. Statistical analysis for head injuries was not possible due to the low number of accident cases with passenger cars fitted with head airbags in the databases. Moreover, the discrepancies between the data coming from different countries (especially calculation of EES) might have introduced instability in the analysis.
In Germany, in-depth accident investigations are carried out in the Hannover area since 1973. In 1999 a second region was added with surveys in Dresden and the surrounding area. Internationally, the acronym GIDAS (German In-Depth Accident Study) is commonly used for these surveys. Compared to many other countries, the sample sizes of the GIDAS surveys are much larger. The goal is to collect 1.000 accidents involving personal injuries per year and region. Data collection takes place by using a sampling procedure, which can be interpreted as a two-stage process with time intervals as primary units and accidents as secondary units. An important question is, to what extend these samples are representative for the target population from which they are drawn. Analyses show, for example, that accidents with persons killed or seriously injured are overrepresented in the samples compared to accidents with slightly injured persons. This means, that these data are subject to biases due to uncontrolled variation of sample inclusion probability. Therefore, appropriate weighting and expansion methods have to be applied in order to adjust or correct for these biases. The contribution describes the statistical and methodological principles underlying the GIDAS surveys with respect to sampling procedure, data collection and expansion. In addition, some suggestions regarding potential improvements of study design are made from a methodological point of view.
Annually within the European Union, there are over 50,000 road accident fatalities and 2 million other casualties, of which the majority are either the occupants of cars or other road users in collision with a car. The European Commission now has competency for vehicle-based injury countermeasures through the Whole Vehicle Type Approval system. As a result, the Commission has recognised that casualty reduction strategies must be based on a full understanding of the real-world need under European conditions and that the effectiveness of vehicle countermeasures must be properly evaluated. The PENDANT study commenced in January 2003 in order to explore the possibility of developing a co-ordinated set of targeted, in-depth crash data resources to support European Union vehicle and road safety policy. Three main work activity areas (Work Packages) commenced to provide these resources. This paper describes some of the outcomes of Work Package 2 (WP2, In-depth Crash Investigations and Data Analysis). In WP2, some 1,100 investigations of crashes involving injured car occupants were conducted in eight EU countries to a common protocol based on that developed in the STAIRS programme. This paper describes the purposes, methodology and results of WP2. It is expected that the results will be used as a co-ordinated system to inform European vehicle safety policy in a systematic, integrated manner. Furthermore, the results of the data analyses will be exploited further to provide new directions to develop injury countermeasures and regulations.
The need for improved EU level accident information and data was identified in the EU White Paper on Transport Policy (2001)1 and detailed in the Road Safety Action Plan (2003)2. The plan specifies that the EC will develop a road safety observatory to coordinate data collection within an integrated framework.
This study is aimed to investigate the correlations of impact conditions and dynamic responses with the injuries and injury severity of child pedestrians by accident reconstruction. For this purpose, the pedestrian accident cases were selected from Sweden and Germany with detailed information about injuries, accident cars, and accident environment. The selected accident cases were reconstructed using mathematical models of pedestrian and passenger car. The pedestrian models were generated based on the height, weight, and age of the pedestrian involved in accidents. The car models were built up based on the corresponding accident car. The impact speeds in simulations were defined based on the reported data. The calculated physical quantities were analyzed to find the correlation with injury outcomes registered in the accident database. The reconstruction approaches are discussed in terms of data collection, estimating vehicle impact speeds, pedestrian moving speeds and initial posture, secondary ground impact, validity of the mathematical models, as well as impact biomechanics.
Road safety is a major preoccupation of the European Commission and the road transport industry and depends on numerous significant factors. In order to improve road safety and to plan effective safety improvement actions for truck transport, we must first identify the problems to be addressed, i.e. what are the main causes of truck accidents. The ETAC project, initiated by the European Commission and the IRU, was launched in order to set up a heavy goods vehicle accident causation study across European countries to identify future actions which could contribute to the improvement of road safety. The results will be based on a detailed analysis of truck accident data collected in seven European countries according to a common methodology which has been elaborated through numerous national and European projects. This paper describes the common methodology used to collect the information on the scene of the accident and to analyse the data so that the reconstruction of the crash events may be carried out. CEESAR proposes a methodology using its experience gained from over 10 years of accident data collection. This methodology is based on an in-depth investigation of the parameters involved in-an accident and linked to the driver, the vehicle, the road and their environment. In-depth investigation requires accident investigator presence on the scene of the accident in order to collect volatile information such as marks on the road, weather conditions, visibility, state and equipment of the vehicle, driver interview. Later, passive and active information is gathered, either at the hospital for the driver, at the garage for the vehicle or on the spot for the road geometry. A reconstruction carried out with the help of specific software and the analysis of the data collected and calculated enables the identification of the main causes of the accident and the future actions to plan in order to improve road safety as regards truck traffic.
Data concerning accidents involving personal injury which have been collected in the context of in-depth investigations on scene in the Hannover area since 1973 and in the Dresden area since 1999 represent an important basis for empirical traffic safety research. At national and international level various analyses and comparisons are carried out on the basis of "in-depth data" from the above mentioned investigations. In-depth data play a decisive role e.g. within the validation of EuroNCAP results on secondary safety (crashworthiness) of individual passenger car models. Thus, statistically sound methods of data analysis and population parameter estimation are of high importance. Since the 1st of August 1984 the "in-depth investigations on scene" in the Hannover area have been carried out according to a sampling plan developed by HAUTZINGER in the context of a research project on behalf of BASt. In the meantime a second region of in-depth investigation on scene was added with surveys in Dresden and the surrounding area. Internationally, the acronym GIDAS (German In-Depth Accident Study) is commonly used for the two above mentioned surveys. The objective of a current research project (topic of this contribution) is, among other things, to examine and adjust the previous weighting and expansion method for the two regional accident investigations to the current general conditions.
76 severe traffic accidents had been investigated in depth in an ongoing Volkswagen-Tongji University joint accident research project in JiaDing district, Shanghai, PR China since June 2005. With a methodology similar to German accident research units in Dresden and Hannover, a research team proceeds to the scene immediately after the incident to investigate and collect various data on environment, accident occurrence, vehicle state and deformations as well as injuries. The data combined with the results of accident reconstruction will be stored in a database for further statistical and casuistic analysis. The first outcome of the project supports the hypothesis that a main causation for the large number of traffic accidents in China is the lacking of risk awareness in Chinese driver behaviour. Low seat-belt use and the high proportion of vulnerable and poorly protected two-wheelers in traffic are reasons for the high injury and fatality rate in China. The research work shows that accident research in China is feasible and able to give support to tackle one of the urging problems in Chinese development.
The "Seven Steps Method" is an analysis and classification system, which describes the human participation factors and their causes in the temporal sequence (from the perceptibility to concrete action errors) taking into consideration the logical sequence of individual basic functions. By means of the "seven steps" it is possible to describe the relevant human causes of accidents from persons involved in the accident in an economic way with a sufficient degree of exactitude, because the causes can be further differentiated in their value (e.g. diversion as external diversion with regard to impact due to surroundings) and their sub values (e.g. external diversion with regard to impact due to surroundings in the shape of a "capture" of the perception by a prominent object of the traffic environment). Theoretically it is possible that one or more causing moments can be assigned to a person involved in an accident in each of the "seven steps"; however it is also possible to sufficiently clarify the cause in only one level (examples for this are described). In the practice of accident investigation at the site of the accident, the sequence chart is also relevant. With its assistance the questioning of the people involved in an accident can be accomplished in a structured way by assigning a set of questions to each step.
Due to recent years accident avoidance and crashworthiness on Austrian roads were mostly developed on national statistics and on-scene investigation respectively. Identification and elimination of black spots were main targets. In fact many fatal accidents do not occur on such black spots and black-spot investigation has reached a limit. New methods are required and therefore the Austrian Road Safety Programme was introduced by the Austrian Ministry of Transport, Innovation and Technology. The primary objective is the reduction of fatalities and severe injuries. Graz University of Technology initiated the project ZEDATU (Zentrale Datenbank tödlicher Unfälle) with the goal to identify similarities in different accident configurations. A matrix was established which categorizes risk and key factors of participating parties. Based on this information countermeasures were worked out.
NASS: the glass is half full
(2007)
The National Accident Sampling System (NASS) was born in the late 1970s. It was based on a substantial amount of experience and analysis of what was needed in the United States to understand the safety challenges of our highways. This work also showed how to collect high quality and useful crash data efficiently. Unfortunately, when Ronald Reagan - a President who believed in limited government - was elected, any hope of full funding for NASS was lost. The concept of 75 teams investigating about 18,000 serious crashes in detail annually was never realized. The system got up to 50 teams, then was cut to 36, and finally to 24 teams investigating fewer than a quarter of the originally anticipated number of crashes per year. Despite this, the NASS investigations provide a rich source of data, collected according to a sophisticated statistical sampling system to facilitate detailed national estimates of road casualties on our nation- highways and their causes. In addition, changes have been made in recent years to increase the number of more serious crashes of recent model vehicles to make the results more relevant to improving vehicle safety. A recent, detailed examination of hundreds of rollovers has provided considerable insight into rollover casualties and into what can be done to reduce them. Some of these results will be presented that show the value of the NASS system. Our experience with NASS and the Fatal Accident Reporting System (FARS) suggests a number of improvements that could be made in the United States" crash data systems. It also provides justification for a doubling or tripling of our national expenditures on crash data collection.
In Finland all fatal motor vehicle accidents are studied in-depth on-the-spot by multidisciplinary (police, road and vehicle engineers, physician and behavioural scientist) road accident investigation teams (legislation 2001, work started 1968), which operate in every province. The purpose of the teams is to uncover risk factors that turned an ordinary driving situation into a serious accident and give safety recommendations for improving road safety. The investigation teams do not take a stand on guilt or insurance compensation. When analysing accidents the teams use the concepts of key event, immediate, background and injury risk factors. Compiled investigation folders of each case contain investigation forms from each member, preinvestigation protocol, photographs, sketches etc. About 500 items of information are collected from each accident party. The collected information is also coded into a computer database. Both the database and the investigation folders are widely utilized by researchers and authorities conducting safety work.
In the context of this study, different data sources for accident research were examined regarding their possible data access and evaluated concerning the individual quality and extent of the data. Analyses of accidents require detailed and comprehensive information in particular concerning vehicle damages, injury patterns and descriptions of the accident sequence. The police documentation supplies the basic accident statistics and is amended in the context of the forensic treatment by further information, e.g. by medical and technical appraisals and witness questionings. As a new approach to the data acquisition for the analysis of fatal traffic accidents, the information was made usable which was collected by the police and by the investigations of the public prosecutor. The best strategy for obtaining reliable, extensive and complete data consists of combining the information from these two sources: the very complete, but elementary statistic data of the Niedersächsisches Landesamt für Statistik (Lower Saxony State Authority of Statistics), based on the police documentation as well as the very extensive accident information resulting from the investigation documentation of the public prosecutor after conclusion of the procedure, the so-called Court Records. Of all 715 fatal traffic accidents, which happened in the year 2003 in the German State of Lower Saxony, 238 cases were selected by means of a statistically coincidental selective procedure based on a statistically representative manner (every third accident). These cases cover the investigation documents of the 11 responsible public prosecutor- offices, which were requested and evaluated while preserving the data security. Of the 238 cases 202 cases were available, which were individually coded and stored in a data base using 160 variables. Thus a data base of a sample of representative data for fatal accidents in Lower Saxony was set up. The data base contains extensive information concerning general accident data (35 variables), concerning road and road surface data (30 variables), concerning vehicle-specific data (68 variables) as well as concerning personal and injury data (27 variables).
The accident research project in Dresden was founded in July 1999. To date over 6.000 crash investigations have been undertaken. About 10.000 vehicles have been documented and over 13.000 participants have been debriefed. But there is much more than this scientific success. Because of the interdisciplinary character between the medical and technical focus, the project affords an important contribution for the education of the involved students. Over 200 students of different fields of study have got experiences not only for the occupational career. This lecture describes the additional effects of the accident research project regarding the education of the students, the capacity for teamwork and learning about dealing with accident casualties.
Den bisherigen Richtlinien zu Verkehrserhebungen ist gemeinsam, dass sie - wenn überhaupt - nur sehr wenige Aussagen zur erreichbaren Datenqualität enthalten. Normative Vorgaben und konkrete Handlungsanweisungen, die zu einer Verbesserung der Datenqualität von Erhebungen führen, fehlen in der Regel für die meisten Erhebungsverfahren. Abgesehen von Einzelaspekten wie beispielsweise den Kernelementen für Haushaltsbefragungen zum Verkehrsverhalten gibt es keine Qualitätsstandards für die Konzipierung, Durchführung und Auswertung einer Verkehrserhebung. Ziel der vorliegenden Studie ist es, mit Blick auf verschiedene Datennutzer und Arten der Datenverwendung wissenschaftlich abgesicherte Qualitätsstandards für Verkehrserhebungen zu erarbeiten. Im Kern sollten Hinweise gegeben werden, durch welche konkreten methodischen Ansätze und praktische Maßnahmen man für die unterschiedlichen Erhebungsverfahren im Verkehrswesen (Zählungen, Messungen, Verhaltensbeobachtungen und Befragungen) die jeweils bestmögliche Datenqualität erreichen kann. Die Ergebnisse dieses Projektes sollen darüber hinaus auch als eine Grundlage für die Fortschreibung der neuen "Empfehlungen für Verkehrserhebungen (EVE)" dienen. Im Kapitel 2 wird zur Schaffung eines geeigneten theoretischen Rahmens nach einer allgemeinen, an den Ansätzen des Qualitätsmanagements orientierten Definition von Datenqualität zunächst ein umfassendes Datenqualitätskonzept dargestellt, welches im Bereich der amtlichen Statistik auf europäischer Ebene entwickelt worden ist. Kapitel 3 stellt wichtige verkehrswissenschaftliche Grundlagen der vorliegenden Untersuchung zusammen. Ausgangspunkt ist eine allgemeine Charakterisierung von Verkehrserhebungen. In Kapitel 4 wird der konzeptuelle Rahmen für die Ermittlung von Standards der Datenqualität dargestellt. Hierzu werden allgemeine Indikatoren der Datenqualität auf Verkehrserhebungen übertragen. Anschließend werden die verschiedenen Anspruchsgruppen und deren Anforderungen an die Datenqualität betrachtet und darauf aufbauend die Elemente einer Qualitätsstrategie für Verkehrserhebungen entwickelt. Wie eine angemessene Datenqualität bei den verschiedenen Arten von Verkehrserhebungen erreicht werden kann, wird in den Kapiteln 5 bis 8 dargestellt. Hier werden Hinweise und Empfehlungen zum Stichprobenverfahren gegeben und es wird aufgezeigt, wie systematische Fehler (Nichterfassung von Stichprobeneinheiten, Fehler bei der Erfassung von Merkmalen, bei der Datenaufbereitung und -auswertung sowie der Darstellung von Ergebnissen) vermieden oder zumindest reduziert werden können. Abschließend werden in Kapitel 9 die wesentlichen Erkenntnisse zusammengefasst und ein Dokumentationsschema vorgestellt, welches einen Orientierungsrahmen für die Durchführung von Verkehrserhebungen liefert.
Ziel dieses Forschungsvorhabens war es, das bisherige Gewichtungs- und Hochrechnungsverfahren für die örtlichen Unfallerhebungen in den Regionen Hannover und Dresden zu überprüfen und an die aktuellen Rahmenbedingungen anzupassen. Darüber hinaus sollten neue Möglichkeiten der gemeinsamen Hochrechnung von Ergebnissen aus beiden Erhebungsgebieten unter Berücksichtigung der aktuellen Datenlage, insbesondere in der amtlichen Unfallstatistik, untersucht und entsprechende statistische Verfahren entwickelt werden. Der Stichprobenplan der Erhebungen folgt einem zweistufigen Stichprobenverfahren. Tests mit einem zweistufigen Hochrechnungsverfahren der Hannover-Stichproben 2000 und 2001 auf die Gesamtheit Hannover haben jedoch ergeben, dass die theoretisch zu erwartenden Vorteile dieser zweistufigen Methode im Vergleich zur "einfachen Gewichtung" in der Praxis relativ gering sind. Unter Beibehaltung der bisherigen Gewichtungsprozedur (Anpassung an eine n-dimensionale Kontingenztabelle) wurden daher für die regionalen Hochrechnungen Dresden und Hannover alternative Methoden entwickelt, in der z.B. das Merkmal Ortslage durch die Unfallart ersetzt oder zusätzlich die Anzahl Unfallbeteiligter zur Gewichtung herangezogen wird. Leider erbringen diese Verfahren im Vergleich zur bisherigen (simultanen) Gewichtung nach Unfallschwere, Tageszeit und Ortslage nur wenige oder gar keine Verbesserungen der Anpassungsgenauigkeit bei Merkmalen der amtlichen Statistik, die nicht in die Gewichtung eingehen. Unabhängig vom Gewichtungsverfahren lässt die Abbildungsgenauigkeit bei einzelnen Variablen sehr zu wünschen übrig. Auf der Basis der Stichprobendaten 2000 wurde ferner noch ein Gewichtungsverfahren für Hochrechnungen auf das Bundesgebiet entwickelt und anhand der beiden Einzelstichproben sowie der gepoolten Stichprobe (Dresden plus Hannover) getestet. Die gepoolten Stichprobe zeigte die besten Ergebnisse. Allerdings ließen sich auch auf der Grundlage der gepoolten Daten nicht bei allen Merkmalen (gemeint sind hier Merkmale, die nicht Gewichtungsmerkmale sind) Verbesserungen des Fits erzielen. Es bleiben relativ große Abweichungen zwischen der gewichteten gepoolten Stichprobe und den bundesdeutschen Verteilungen. Es ist zu erwarten, dass auch bei vielen GIDAS Merkmale durch die Gewichtung keine essentielle Korrektur der Stichprobenverzerrungen erzielt werden kann. Insgesamt hat sich gezeigt, dass es auch mit alternativen, meist hierarchischen Gewichtungsverfahren nicht möglich ist, alle Merkmale, deren Verteilungen aus der amtlichen Statistik bekannt sind, mit hinreichender Genauigkeit an die Verhältnisse der Grundgesamtheit anzupassen. Es ist zu erwarten, dass sich dies bei den eigentlich hochzurechnenden originären GIDAS-Variablen ähnlich darstellt. Somit muss der Ansatz eines einheitlichen Verfahrens für alle Jahre und beide Erhebungsgebiete in Frage gestellt werden. Für besonders wichtige Fragestellungen sollte daher eine spezielle, auf das jeweilige Untersuchungsmerkmal abgestellte Gewichtung durchgeführt werden, wie dies exemplarisch am Beispiel der maximalen Kollisionsgeschwindigkeit gezeigt wurde. Schließlich werden im Bericht noch Empfehlungen zur Datenqualität und zu der Frage gegeben, wie sich das derzeit praktizierte Stichprobenverfahren im Hinblick auf die Gewinnung einer repräsentativen Stichprobe möglicherweise verbessern lässt.
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.
Mit Hilfe der Datenbestände von 7 Städten werden die Grundlagen für eine praxisgerechte Weiterentwicklung des Bewertungsverfahrens für den messtechnisch erfassten Zustand von Innerortsstraßen mit den erforderlichen Normierungsfunktionen, den Ziel-, Warn- und Schwellenwerten und maßgeblichen Funktionsklassen erarbeitet. Für die Auswerteabschnitte ergab sich eine Länge von 10 m als sinnvoll, aus der problemlos Zustandsindikatoren auch für längere Abschnitte ermittelt werden können. Die bisher verwendeten Zustandsindikatoren für die Längsebenheit, Querebenheit und Substanz werden auf ihre Brauchbarkeit untersucht und verbesserte beziehungsweise neue Indikatoren mit den dazugehörigen Normierungsfunktionen vorgeschlagen. Für die Griffigkeit standen keine Analysedaten zur Verfügung. Hier konnte für die Festlegung von Ziel-, Warn- und Schwellenwerten auf entsprechende Normierungsfunktionen für Außerortsstraßen zurückgegriffen werden. Weiterhin werden Vorschläge für die Verknüpfung zum Gebrauchs-und Substanzwert erarbeitet. Für die Relativierung der Anforderungen an den Zustand von Asphaltfahrbahnen werden zwei Funktionsklassen für die Straßenkategorien "Hauptverkehrs-/verkehrs-/Sammelstraßen" (FK 1) und "Anlieger-/Wohnstraßen" (FK 2) vorgeschlagen. Weiterhin wird eine dritte Funktionsklasse für Pflasterstraßen eingeführt. Ihre unterschiedlichen Normierungsfunktionen gewährleisten bei gleichen Zustandsausprägungen eine unterschiedliche Einstufung der Dringlichkeit von Maßnahmearten. Die Untersuchungsergebnisse sind zusätzlich in Form eines Arbeitspapiers aufbereitet.