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RMTI (RIP with Metric based Topology Investigation) wurde in der AG Rechnernetze an der Universität Koblenz-Landau entwickelt. RMTI stellt eine Erweiterung zum RIP (Routing Information Protocol) dar, die das Konvergenzverhalten bei Netzwerkveränderungen, insb. bei Routingschleifen, verbessern soll. Dies geschieht durch Erkennen von Routingschleifen und Reduzieren des Count-to-infinity Problems. Um dieses gewünschte Verhalten nachweisen zu können, bedarf eine reichhaltige Evaluierung des RMTI- Algorithmus. Hierzu wurde in der gleichen Arbeitsgruppe die Client-/Server-Applikation XTPeer entwickelt. In Kombination mit anderen Software wie VNUML und Quagga Routing Suite lässt sich per XT-Peer der Algorithmus evaluieren. Die Applikation XTPeer generiert durch die Simulationen Daten. Diese können in Form von XML konforme SDF-Dateien exportiert werden. Diese können ohne weitere Auswertungen wieder in die XTPeer Applikation importiert werden. Die Evaluierung der Simulationen findet automatisiert nur an der aktuellen Simulation statt. Evaluierung über mehrere Simulationen muss der Benutzer manuell berechnen. Um diese Evaluierungsarbeiten für den Benutzer zu vereinfachen, verfolgt die vorliegende Diplomarbeit daher das Ziel, die XTPeer Applikation mit einem Auswertungsmodul zu erweitern. Die Auswertungen soll sich über alle gespeicherten Simulationsdaten und nicht wie bisher nur über die aktuell laufende Simulation erstrecken. Dies ermöglicht bessere statistisch verwertbare Aussagen. Zusätzlich können diese Auswertungsergebnisse grafisch unterstrichen werden.
This thesis deals with the development of an authoring system for modeling 3D environments with physical description. In contrast to creating scenes in other common modeling tools, one can now compute and describe physical entities of a scene additional to the usual geometry. It is very important for those authoring systems to be extendable and customizable for specific requirement of the user. The focus lies on developing simple program architecture, which is easy to extend and to modify.
Die Diffusions-Tensor-Bildgebung (DTI) ist eine Technik aus der Magnet-Resonanz-Bildgebung (MRI) und basiert auf der Brownschen Molekularbewegung (Diffusion) der Wassermoleküle im menschlichen Gewebe. Speziell im inhomogenen Hirngewebe ist die Beweglichkeit der Moleküle stark eingeschränkt. Hier hindern die Zellmembranen der langgestreckten Axone die Diffusion entlang nicht-paralleler Richtungen. Besonderen Wert hat die Diffusions-Tensor-Bildgebung in der Neurochirugie bei der Intervention und Planung von Operationen. Basierend auf den mehrdimensionalen DTI-Tensor-Datensätzen kann für den jeweiligen Voxel das Diffsusionsverhalten abgeleitet werden. Der größte Eigenvektor des Tensors bestimmt dabei die Hauptrichtung der Diffusion und somit die Orientierung der entsprechenden Nervenfasern. Ziel der Studienarbeit ist die Erstellung einer Beispielapplikation zur Visualisierung von DTI-Daten mit Hilfe der Grafikhardware. Dazu werden zunächst die relevanten Informationen für die Erzeugung von geometrischen Repräsentationen (Streamlines, Tubes, Glyphen, Cluster...) aus den Eingabedaten berechnet. Für die interaktive Visualisierung sollen die Möglichkeiten moderner Grafikhardware, insbesondere Geometryshader ausgenutzt werden. Die erzeugten Repräsentationen sollen nach Möglichkeit in ein DVR (Cascada) integriert werden. Für die Arbeit wird eine eigene Applikation entwickelt, die bestehende Bausteine (Volumenrepräsentation, Volumenrendering, Shadersystem) aus Cascada analysiert und integriert.
Diese Arbeit untersucht die Biozönosen kontaminierter schlammig-schluffiger Sedimente in Stillwasserzonen großer Flüsse. Diese feinkörnigen und weichgründigen Sedimente beherbergen Lebensgemeinschaften, die zu einem großen Teil als Meiozoobenthos angesprochen werden und im Vergleich zu den Makrozoobenthos-Biozönosen grobkörniger und hartgründiger Fließgewässer und den Meiobenthos-Biozönosen der Küsten-, Tiden- und Ästuarbereiche bisher nur unzulänglich untersucht worden sind. Da die feinkörnigen Sedimente eine große Kapazität zur Schadstoffbindung haben, sind sie generell von großem ökotoxikologischen und wasserbaulichen Interesse. Ziele der Arbeit: (1) Entwicklung einer quantitativen Methode zur Bestandserfassung. (2) Untersuchung der lokalen und saisonalen Dynamik der benthischen Metazoen- Biozönose in Schluffsedimenten. (3) Ermittlung der Einflüsse chemischer und physikalischer Sedimenteigenschaftenrnauf die Biozönosen. (4) Beschreibung der Resilienz der Benthos-Biozönosen schluffiger Sedimente; Einfluss katastrophaler Ereignisse.
Mobile payment has been a payment option in the market for a long time now and was predicted to become a widely used payment method. However, over the years, the market penetration rate of mPayments has been relatively low, despite it having all characteristics required of a convenient payment method. The primaryrnreason for this has been cited as a lack of customer acceptance mainly caused due to the lack of perceived security by the end-user. Although biometric authentication is not a new technology, it is experiencing a revival in the light of the present day terror threats and increased security requirements in various industries. The application of biometric authentication in mPayments is analysed here and a suitable biometric authentication method for use with mPayments is recommended. The issue of enrolment, human and technical factors to be considered are discussed and the STOF business model is applied to a BiMoP (biometric mPayment) application.
Ontologies play an important role in knowledge representation for sharing information and collaboratively developing knowledge bases. They are changed, adapted and reused in different applications and domains resulting in multiple versions of an ontology. The comparison of different versions and the analysis of changes at a higher level of abstraction may be insightful to understand the changes that were applied to an ontology. While there is existing work on detecting (syntactical) differences and changes in ontologies, there is still a need in analyzing ontology changes at a higher level of abstraction like ontology evolution or refactoring pattern. In our approach we start from a classification of model refactoring patterns found in software engineering for identifying such refactoring patterns in OWL ontologies using DL reasoning to recognize these patterns.
The novel mobile application csxPOI (short for: collaborative, semantic, and context-aware points-of-interest) enables its users to collaboratively create, share, and modify semantic points of interest (POI). Semantic POIs describe geographic places with explicit semantic properties of a collaboratively created ontology. As the ontology includes multiple subclassiffcations and instantiations and as it links to DBpedia, the richness of annotation goes far beyond mere textual annotations such as tags. With the intuitive interface of csxPOI, users can easily create, delete, and modify their POIs and those shared by others. Thereby, the users adapt the structure of the ontology underlying the semantic annotations of the POIs. Data mining techniques are employed to cluster and thus improve the quality of the collaboratively created POIs. The semantic POIs and collaborative POI ontology are published as Linked Open Data.
The goal of this minor thesis is to integrate a robotic arm into an existing robotics software. A robot built on top of this stack should be able to participate successfully RoboCup @Home league. The robot Lisa (Lisa is a service android) needs to manipulate objects, lifting them from shelves or handing them to people. Up to now, the only possibility to do this was a small gripper attached to the robot platform. A "Katana Linux Robot" of Swiss manufacturer Neuronics has been added to the robot for this thesis. This arm needs a driver software and path planner, so that the arm can reach its goal object "intelligently", avoiding obstacles and creating smooth, natural motions.
This dissertation provides an interdisciplinary contribution to the project ReGLaN-Health & Logistics. ReGLaN-Health & Logistics, is an international cooperation deriving benefits from the capabilities of scientists working on different fields. The aim of the project is the development of a socalled SDSS that supports decision makers working within health systems with a special focus on rural areas. In this dissertation, one important component for the development of the DSS named EWARS is proposed and described in detail. This component called SPATTB is developed with the intention of dealing with spatial data, i.e. data with additional geocoded information with regard to the special requirements of the EWARS.rnrnAn important component in the process of developing the EWARS is the concept of GIS. Classically, geocoded information with a vectorial character numerically describing spatial phenomena is managed and processed in a GIS. For the development of the EWARS, the manageability of the type of data exemplarily given by (x,y,o) with coordinates x,y ) and Ozon-concentration o is not sufficient. It is described, that the manageable data has to be extended to data of type (x,y,f ), where (x,y) are the geocoded information, but where f is not only a numerical value but a functional description of a certain phenomenom. An example for the existence and appearance of that type of data is the geocoded information about the variation of the Ozon-concentration in time or depending on temperature. A knowledge-base as important subsystem of DSS containing expert knowledge is mentioned. This expert-knowledge can be made manageable when using methods from the field of fuzzy logic. Thereby mappings, socalled fuzzy-sets, are generated. Within the EWARS, these mappings will be used with respect to additional geocoded data. The knowledge about the geocoded mapping information only at a finite set of locations (x,y) associated with mapping information f is not sufficient in applications that need continuous statements in a certain geographical area. To provide a contribution towards solving this problem, methods from the field of computer geometry and CAD, so-called Bezier-methods, are used for interpolating this geocoded mapping information. Classically, these methods operates on vectors a the multidimensional vector-space whose elements contain real-valued components but in terms of dealing with mapping information, there has to be an extension on topological vector spaces since mapping spaces can be defined as such spaces. This builds a new perspective and possibility in the application of these methods. Therefore, the according algorithms have to be extended; this work is presented. The field of Artificial Neural Networks plays an important role for the processing and management of the data within the EWARS, where features of biological processes and structures are modeled and implemented as algorithms. Generally, the developed methods can be divided as usable in terms of interpolation or approximation functional coherences and in such being applicable to classification problems. In this dissertation one method from each type is regarded in more detailed. Thereby, the classical algorithms of the so-called Backpropagation-Networks for approximation and the Kohonen-Networks for classification are described. Within the thesis, an extension of these algorithms is then proposed using coherences from mathematical measure-theory and approximation theory. The mentioned extension of these algorithms is based on a preprocessing of the mapping data using integration methods from measure theory.
Culture and violence
(2010)
The basic assumption of this study is that specific cultural conditions may lead to psychopathological reactions through which an increase in interpersonal violence may happen. The objective of this study was to define to what extent homicide rates across national cultures might be associated with the strength of their attitudes toward specific beliefs and values, and their scores in specific cultural dimensions. To answer this question, nine independent variables were defined six of which were related to the people- attitudes pertaining importance of religion (Religiosity), excessive feeling of choice and control (Omnipotence), clear-cut distinction between good and evil (Absolutism), proud of their nationality (Nationalism), approval of competition (Competitiveness), and high respect for authorities and emphasis on obedience (Authoritarianism). The data for these variables were collected from World Values Survey. For two cultural dimensions, Collectivism, and Power Distance, Hofstede- scores were used. The 9th variable was GNI per capita. After estimation of 7% missing values in the whole data through multiple imputation, a sample of 81 nations was used for further statistical analyses.
Results: Stepwise regression analysis indicated Omnipotence and GNI as the strongest predictors of homicide (β = .44 P = .000; β = -.27 P = .006 respectively). The 9 independent variables were loaded on two factors, socio-economic development (SED) and psycho-cultural factor (Psy-Cul), which were negatively correlated (-.47). The Psy-Cul was interpreted as an indicator of narcissism, and a mediator between SED and homicide. Hierarchical cluster analysis made a clear distinction among three main groups of Western, Developing, and post-Communist nations on the basis of the two factors.