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Graphs are known to be a good representation of structured data. TGraphs, which are typed, attributed, ordered, and directed graphs, are a very general kind of graphs that can be used for many domains. The Java Graph Laboratory (JGraLab) provides an efficient implementation of TGraphs with all their properties. JGraLab ships with many features, including a query language (GReQL2) for extracting data from a graph. However, it lacks a generic library for important common graph algorithms. This mid-study thesis extends JGraLab with a generic algorithm library called Algolib, which provides a generic and extensible implementation of several important common graph algorithms. The major aspects of this work are the generic nature of Algolib, its extensibility, and the methods of software engineering that were used for achieving both. Algolib is designed to be extensible in two ways. Existing algorithms can be extended for solving specialized problems and further algorithms can be easily added to the library.
Die nächste Generation des World Wide Web, das Semantic Web, erlaubt Benutzern, Unmengen an Informationen über die Grenzen von Webseiten und Anwendungen hinaus zu veröffentlichen und auszutauschen. Die Prinzipien von Linked Data beschreiben Konventionen, um diese Informationen maschinenlesbar zu veröffentlichen. Obwohl es sich aktuell meist um Linked Open Data handelt, deren Verbreitung nicht beschränkt, sondern explizit erwünscht ist, existieren viele Anwendungsfälle, in denen der Zugriff auf Linked Data in Resource Description Framework (RDF) Repositories regelbar sein soll. Bisher existieren lediglich Ansätze für die Lösung dieser Problemstellung, weshalb die Veröffentlichung von vertraulichen Inhalten mittels Linked Data bisher nicht möglich war.
Aktuell können schützenswerte Informationen nur mit Hilfe eines externen Betreibers kontrolliert veröffentlicht werden. Dabei werden alle Daten auf dessen System abgelegt und verwaltet. Für einen wirksamen Schutz sind weitere Zugriffsrichtlinien, Authentifizierung von Nutzern sowie eine sichere Datenablage notwendig.
Beispiele für ein solches Szenario finden sich bei den sozialen Netzwerken wie Facebook oder StudiVZ. Die Authentifizierung aller Nutzer findet über eine zentrale Webseite statt. Anschließend kann beispielsweise über eine Administrationsseite der Zugriff auf Informationen für bestimmte Nutzergruppen definiert werden. Trotz der aufgezeigten Schutzmechanismen hat der Betreiber selbst immer Zugriff auf die Daten und Inhalte aller Nutzer.
Dieser Zustand ist nicht zufriedenstellend.
Die Idee des Semantic Webs stellt einen alternativen Ansatz zur Verfügung. Der Nutzer legt seine Daten an einer von ihm kontrollierten Stelle ab, beispielsweise auf seinem privaten Server. Im Gegensatz zum zuvor vorgestellten Szenario ist somit jeder Nutzer selbst für Kontrollmechanismen wie Authentifizierung und Zugriffsrichtlinien verantwortlich.
Innerhalb der vorliegenden Arbeit wird ein Framework konzeptioniert und entworfen, welches es mit Hilfe von Regeln erlaubt, den Zugriff auf RDF-Repositories zu beschränken. In Kapitel 2 werden zunächst die bereits existierenden Ansätze für die Zugriffssteuerung vertraulicher Daten im Sematic Web vorgestellt. Des Weiteren werden in Kapitel 3 grundlegende Mechanismen und Techniken erläutert, welche in dieser Arbeit Verwendung finden. In Kapitel 4 wird die Problemstellung konkretisiert und anhand eines Beispielszenarios analysiert.
Nachdem Anforderungen und Ansprüche erhoben sind, werden in Kapitel 6 verschiedene Lösungsansätze, eine erste Implementierung und ein Prototyp vorgestellt. Abschließend werden die Ergebnisse der Arbeit und die resultierenden Ausblicke in Kapitel 7 zusammengefasst.
SPARQL can be employed to query RDF documents using RDF triples. OWL-DL ontologies are a subset of RDF and they are created by using specific OWL-DL expressions. Querying such ontologies using only RDF triples can be complicated and can produce a preventable source of error depending on each query.
SPARQL-DL Abstract Syntax (SPARQLAS) solves this problem using OWL Functional-Style Syntax or a syntax similar to the Manchester Syntax for setting up queries. SPARQLAS is a proper subset of SPARQL and uses only the essential constructs to obtain the desired results to queries on OWL-DL ontologies implying least possible effort in writing.
Due to the decrease in size of the query and having a familiar syntax the user is able to rely on, complex and nested queries on OWL-DL ontologies can be more easily realized. The Eclipse plugin EMFText is utilized for generating the specific SPARQLAS syntax. For further implementation of SPARQLAS, an ATL transformation to SPARQL is included as well. This transformation saves developing a program to directly process SPARQLAS queries and supports embedding SPARQLAS into running development environments.
In this thesis, I study the spectral characteristics of large dynamic networks and formulate the spectral evolution model. The spectral evolution model applies to networks that evolve over time, and describes their spectral decompositions such as the eigenvalue and singular value decomposition. The spectral evolution model states that over time, the eigenvalues of a network change while its eigenvectors stay approximately constant.
I validate the spectral evolution model empirically on over a hundred network datasets, and theoretically by showing that it generalizes arncertain number of known link prediction functions, including graph kernels, path counting methods, rank reduction and triangle closing. The collection of datasets I use contains 118 distinct network datasets. One dataset, the signed social network of the Slashdot Zoo, was specifically extracted during work on this thesis. I also show that the spectral evolution model can be understood as a generalization of the preferential attachment model, if we consider growth in latent dimensions of a network individually. As applications of the spectral evolution model, I introduce two new link prediction algorithms that can be used for recommender systems, search engines, collaborative filtering, rating prediction, link sign prediction and more.
The first link prediction algorithm reduces to a one-dimensional curve fitting problem from which a spectral transformation is learned. The second method uses extrapolation of eigenvalues to predict future eigenvalues. As special cases, I show that the spectral evolution model applies to directed, undirected, weighted, unweighted, signed and bipartite networks. For signed graphs, I introduce new applications of the Laplacian matrix for graph drawing, spectral clustering, and describe new Laplacian graph kernels. I also define the algebraic conflict, a measure of the conflict present in a signed graph based on the signed graph Laplacian. I describe the problem of link sign prediction spectrally, and introduce the signed resistance distance. For bipartite and directed graphs, I introduce the hyperbolic sine and odd Neumann kernels, which generalize the exponential and Neumann kernels for undirected unipartite graphs. I show that the problem of directed and bipartite link prediction are related by the fact that both can be solved by considering spectral evolution in the singular value decomposition.
We present the user-centered, iterative design of Mobile Facets, a mobile application for the faceted search and exploration of a large, multi-dimensional data set of social media on a touchscreen mobile phone. Mobile Facets provides retrieval of resources such as places, persons, organizations, and events from an integration of different open social media sources and professional content sources, namely Wikipedia, Eventful, Upcoming, geo-located Flickr photos, and GeoNames. The data is queried live from the data sources. Thus, in contrast to other approaches we do not know in advance the number and type of facets and data items the Mobile Facets application receives in a specific contextual situation. While developingrnMobile Facets, we have continuously evaluated it with a small group of fifive users. We have conducted a task-based, formative evaluation of the fifinal prototype with 12 subjects to show the applicability and usability of our approach for faceted search and exploration on a touchscreen mobile phone.
In dieser Arbeit wird das MobileFacets System präsentiert, dass ein bequemes facettiertes Browsen und Suchen von semantischen Daten auf einem mobilen Endgerät ermöglicht. Anwender bekommen in Abhängigkeit ihres lokalen Ortskontextes, weitreichende Informationen wie Orte, Personen, Organisationen oder Events dargeboten. Basierend auf der Theorie von Facetten, wird das facettierte Browsen zur Erkundung von strukturierten Datensätzen anhand einer Client Anwendung realisiert. Die Anwendung bedient sich dabei eines lokalen Servers, der für Anfragen der Clients, die Anbindung an externe Datenquellen und die Aufbereitung der strukturierten Daten zuständig ist.
Expert-driven business process management is an established means for improving efficiency of organizational knowledge work. Implicit procedural knowledge in the organization is made explicit by defining processes. This approach is not applicable to individual knowledge work due to its high complexity and variability. However, without explicitly described processes there is no analysis and efficient communication of best practices of individual knowledge work within the organization. In addition, the activities of the individual knowledge work cannot be synchronized with the activities in the organizational knowledge work.rnrnSolution to this problem is the semantic integration of individual knowledgernwork and organizational knowledge work by means of the patternbased core ontology strukt. The ontology allows for defining and managing the dynamic tasks of individual knowledge work in a formal way and to synchronize them with organizational business processes. Using the strukt ontology, we have implemented a prototype application for knowledge workers and have evaluated it at the use case of an architectural fifirm conducting construction projects.