939 resultados para Cyber Physical System, Semantic Web, SPARQL, CHIRON, Android, RDF, Ontologia, Sensori, Telemedicina
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This paper deals with the self-scheduling problem of a price-taker having wind and thermal power production and assisted by a cyber-physical system for supporting management decisions in a day-ahead electric energy market. The self-scheduling is regarded as a stochastic mixed-integer linear programming problem. Uncertainties on electricity price and wind power are considered through a set of scenarios. Thermal units are modelled by start-up and variable costs, furthermore constraints are considered, such as: ramp up/down and minimum up/down time limits. The stochastic mixed-integer linear programming problem allows a decision support for strategies advantaging from an effective wind and thermal mixed bidding. A case study is presented using data from the Iberian electricity market.
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Semantic Web technologies provide the means to express the knowledge in a formal and standardized manner, enabling machines to automatically derive meaning from the data. Often this knowledge is uncertain or different degrees of certainty may be assigned to the same statements. This is the case in many fields of study such as in Digital Humanities, Science and Arts. The challenge relies on the fact that our knowledge about the surrounding world is dynamic and may evolve based on new data coming from the latest discoveries. Furthermore we should be able to express conflicting, debated or disputed statements in an efficient, effective and consistent way without the need of asserting them. We call this approach 'Expressing Without Asserting' (EWA). In this work we identify all existing methods that are compatible with actual Semantic Web standards and enable us to express EWA. In our research we were able to prove that existing reification methods such as Named Graphs, Singleton Properties, Wikidata Statements and RDF-Star are the most suitable methods to represent in a reliable way EWA. Next we compare these methods with our own method, namely Conjectures from a quantitative perspective. Our main objective was to put Conjectures into stress tests leveraging enormous datasets created ad hoc using art-related Wikidata dumps and measure the performance in various triplestores in relation with similar concurrent methods. Our experiments show that Conjectures are a formidable tool to express efficiently and effectively EWA. In some cases, Conjectures outperform state of the art methods such as singleton and Rdf-Star exposing their great potential. Is our firm belief that Conjectures represent a suitable solution to EWA issues. Conjectures in their weak form are fully compatible with Semantic Web standards, especially with RDF and SPARQL. Furthermore Conjectures benefit from comprehensive syntax and intuitive semantics that make them easy to learn and adapt.
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Wednesday 9th April 2014 Speaker(s): Guus Schreiber Time: 09/04/2014 11:00-11:50 Location: B32/3077 File size: 546Mb Abstract In this talk I will discuss linked data for museums, archives and libraries. This area is known for its knowledge-rich and heterogeneous data landscape. The objects in this field range from old manuscripts to recent TV programs. Challenges in this field include common metadata schema's, inter-linking of the omnipresent vocabularies, cross-collection search strategies, user-generated annotations and object-centric versus event-centric views of data. This work can be seen as part of the rapidly evolving field of digital humanities. Speaker Biography Guus Schreiber Guus is a professor of Intelligent Information Systems at the Department of Computer Science at VU University Amsterdam. Guus’ research interests are mainly in knowledge and ontology engineering with a special interest for applications in the field of cultural heritage. He was one of the key developers of the CommonKADS methodology. Guus acts as chair of W3C groups for Semantic Web standards such as RDF, OWL, SKOS and REFa. His research group is involved in a wide range of national and international research projects. He is now project coordinator of the EU Integrated project No Tube concerned with integration of Web and TV data with the help of semantics and was previously Scientific Director of the EU Network of Excellence “Knowledge Web”.
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Aquest projecte s'emmarca dintre la idea de la Web Semàntica. A la primera part introdueix progressivament al tema de la Web Semàntica fins arribar a establir la necessitat de tenir SGBDs. La segon part explota algun dels SGBDs estudiats per realitzar una aplicació web que permeti mostrar alguna aplicació de la Web Semàntica.
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El projecte es basa en estudiar i avaluar diferents sistemes gestors de bases de dades (SGBD) per desar informació dins del context de la Web Semàntica., tal com es veurà en el capítol 4. La Web Semàntica permet dotar de significat al contingut textual de la web, permetent que sigui interpretable per una màquina.
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Internet of Things based systems are anticipated to gain widespread use in industrial applications. Standardization efforts, like 6L0WPAN and the Constrained Application Protocol (CoAP) have made the integration of wireless sensor nodes possible using Internet technology and web-like access to data (RESTful service access). While there are still some open issues, the interoperability problem in the lower layers can now be considered solved from an enterprise software vendors' point of view. One possible next step towards integration of real-world objects into enterprise systems and solving the corresponding interoperability problems at higher levels is to use semantic web technologies. We introduce an abstraction of real-world objects, called Semantic Physical Business Entities (SPBE), using Linked Data principles. We show that this abstraction nicely fits into enterprise systems, as SPBEs allow a business object centric view on real-world objects, instead of a pure device centric view. The interdependencies between how currently services in an enterprise system are used and how this can be done in a semantic real-world aware enterprise system are outlined, arguing for the need of semantic services and semantic knowledge repositories. We introduce a lightweight query language, which we use to perform a quantitative analysis of our approach to demonstrate its feasibility.
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This paper deals with the application of an intelligent tutoring approach to delivery training in diagnosis procedures of a Power System. In particular, the mechanisms implemented by the training tool to support the trainees are detailed. This tool is part of an architecture conceived to integrate Power Systems tools in a Power System Control Centre, based on an Ambient Intelligent paradigm. The present work is integrated in the CITOPSY project which main goal is to achieve a better integration between operators and control room applications, considering the needs of people, customizing requirements and forecasting behaviors.
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El projecte es basa en estudiar i avaluar diferents sistemes gestors de bases de dades (SGBDs) per desar informació dins el context de la Web Semàntica. Els SGBDs hauran de tractar, emmagatzemar i gestionar la informació classificada segons uns criteris semàntics i interrelacionada amb conceptes afins, alhora que permetin la comunicació entre sistemes de manera transparent a l'usuari.
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Amb aquest projecte es vol solucionar aquesta manca d'accés a la informació i sobretot disposar d'un sistema que relacioni "tot amb tot", és a dir, muntar un sistema únic per documentar xarxa (física) independentment de l'element que es vulgui documentar. La idea és basar el projecte de documentació en una web semàntica basada en wiki semàntica amb un motor de cerca MediaWiki.
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Semantic Web technology is able to provide the required computational semantics for interoperability of learning resources across different Learning Management Systems (LMS) and Learning Object Repositories (LOR). The EU research project LUISA (Learning Content Management System Using Innovative Semantic Web Services Architecture) addresses the development of a reference semantic architecture for the major challenges in the search, interchange and delivery of learning objects in a service-oriented context. One of the key issues, highlighted in this paper, is Digital Rights Management (DRM) interoperability. A Semantic Web approach to copyright management has been followed, which places a Copyright Ontology as the key component for interoperability among existing DRM systems and other licensing schemes like Creative Commons. Moreover, Semantic Web tools like reasoners, rule engines and semantic queries facilitate the implementation of an interoperable copyright management component in the LUISA architecture.
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Enterprise-Resource-Planning-Systeme (ERP-Systeme) bilden für die meisten mittleren und großen Unternehmen einen essentiellen Bestandteil ihrer IT-Landschaft zur Verwaltung von Geschäftsdaten und Geschäftsprozessen. Geschäftsdaten werden in ERP-Systemen in Form von Geschäftsobjekten abgebildet. Ein Geschäftsobjekt kann mehrere Attribute enthalten und über Assoziationen zu anderen Geschäftsobjekten einen Geschäftsobjektgraphen aufspannen. Existierende Schnittstellen ermöglichen die Abfrage von Geschäftsobjekten, insbesondere mit Hinblick auf deren Attribute. Die Abfrage mit Bezug auf ihre Position innerhalb des Geschäftsobjektgraphen ist jedoch über diese Schnittstellen häufig nur sehr schwierig zu realisieren. Zur Vereinfachung solcher Anfragen können semantische Technologien, wie RDF und die graphbasierte Abfragesprache SPARQL, verwendet werden. SPARQL ermöglicht eine wesentlich kompaktere und intuitivere Formulierung von Anfragen gegen Geschäftsobjektgraphen, als es mittels der existierenden Schnittstellen möglich ist. Die Motivation für diese Arbeit ist die Vereinfachung bestimmter Anfragen gegen das im Rahmen dieser Arbeit betrachtete SAP ERP-System unter Verwendung von SPARQL. Zur Speicherung von Geschäftsobjekten kommen in ERP-Systemen typischerweise relationale Datenbanken zum Einsatz. Die Bereitstellung von SPARQL-Endpunkten auf Basis von relationalen Datenbanken ist ein seit längerem untersuchtes Gebiet. Es existieren verschiedene Ansätze und Tools, welche die Anfrage mittels SPARQL erlauben. Aufgrund der Komplexität, der Größe und der Änderungshäufigkeit des ERP-Datenbankschemas können solche Ansätze, die direkt auf dem Datenbankschema aufsetzen, nicht verwendet werden. Ein praktikablerer Ansatz besteht darin, den SPARQL-Endpunkt auf Basis existierender Schnittstellen zu realisieren. Diese sind weniger komplex als das Datenbankschema, da sie die direkte Abfrage von Geschäftsobjekten ermöglichen. Dadurch wird die Definition des Mappings erheblich vereinfacht. Das ERP-System bietet mehrere Schnittstellen an, die sich hinsichtlich des Aufbaus, der Zielsetzung und der verwendeten Technologie unterscheiden. Unter anderem wird eine auf OData basierende Schnittstelle zur Verfügung gestellt. OData ist ein REST-basiertes Protokoll zur Abfrage und Manipulation von Daten. Von den bereitgestellten Schnittstellen weist das OData-Interface gegenüber den anderen Schnittstellen verschiedene Vorteile bei Realisierung eines SPARQL-Endpunktes auf. Es definiert eine Abfragesprache und einen Link-Adressierungsmechanismus, mit dem die zur Beantwortung einer Anfrage benötigten Service-Aufrufe und die zu übertragende Datenmenge erheblich reduziert werden können. Das Ziel dieser Arbeit besteht in der Entwicklung eines Verfahrens zur Realisierung eines SPARQL-Endpunktes auf Basis von OData-Services. Dazu wird zunächst eine Architektur vorgestellt, die als Grundlage für die Implementierung eines entsprechenden Systems dienen kann. Ausgehend von dieser Architektur, werden die durch den aktuellen Forschungsstand noch nicht abgedeckten Bereiche ermittelt. Nach bestem Wissen ist diese Arbeit die erste, welche die Abfrage von OData-Schnittstellen mittels SPARQL untersucht. Dabei wird als Teil dieser Arbeit ein neuartiges Konzept zur semantischen Beschreibung von OData-Services vorgestellt. Dieses ermöglicht die Definition von Abbildungen der von den Services bereitgestellten Daten auf RDF-Graphen. Aufbauend auf den Konzepten zur semantischen Beschreibung wird eine Evaluierungssemantik erarbeitet, welche die Auflösung von Ausdrücken der SPARQL-Algebra gegen semantisch annotierte OData-Services definiert. Dabei werden die Daten aller OData-Services ermittelt, die zur vollständigen Abarbeitung einer Anfrage benötigt werden. Zur Abfrage der relevanten Daten wurden Konzepte zur Erzeugung der entsprechenden OData-URIs entwickelt. Das vorgestellte Verfahren wurde prototypisch implementiert und anhand zweier Anwendungsfälle für die im betrachteten Szenario maßgeblichen Servicemengen evaluiert. Mit den vorgestellten Konzepten besteht nicht nur die Möglichkeit, einen SPARQL-Endpunkt für ein ERP-System zu realisieren, vielmehr kann jede Datenquelle, die eine OData-Schnittstelle anbietet, mittels SPARQL angefragt werden. Dadurch werden große Datenmengen, die bisher für die Verarbeitung mittels semantischer Technologien nicht zugänglich waren, für die Integration mit dem Semantic Web verfügbar gemacht. Insbesondere können auch Datenquellen, deren Integration miteinander bisher nicht oder nur schwierig möglich war, über Systeme zur föderierten Abfrage miteinander integriert werden.
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Sensor networks are increasingly being deployed in the environment for many different purposes. The observations that they produce are made available with heterogeneous schemas, vocabularies and data formats, making it difficult to share and reuse this data, for other purposes than those for which they were originally set up. The authors propose an ontology-based approach for providing data access and query capabilities to streaming data sources, allowing users to express their needs at a conceptual level, independent of implementation and language-specific details. In this article, the authors describe the theoretical foundations and technologies that enable exposing semantically enriched sensor metadata, and querying sensor observations through SPARQL extensions, using query rewriting and data translation techniques according to mapping languages, and managing both pull and push delivery modes.
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The Web of Data currently comprises ? 62 billion triples from more than 2,000 different datasets covering many fields of knowledge3. This volume of structured Linked Data can be seen as a particular case of Big Data, referred to as Big Semantic Data [4]. Obviously, powerful computational configurations are tradi- tionally required to deal with the scalability problems arising to Big Semantic Data. It is not surprising that this ?data revolution? has competed in parallel with the growth of mobile computing. Smartphones and tablets are massively used at the expense of traditional computers but, to date, mobile devices have more limited computation resources. Therefore, one question that we may ask ourselves would be: can (potentially large) semantic datasets be consumed natively on mobile devices? Currently, only a few mobile apps (e.g., [1, 9, 2, 8]) make use of semantic data that they store in the mobile devices, while many others access existing SPARQL endpoints or Linked Data directly. Two main reasons can be considered for this fact. On the one hand, in spite of some initial approaches [6, 3], there are no well-established triplestores for mobile devices. This is an important limitation because any po- tential app must assume both RDF storage and SPARQL resolution. On the other hand, the particular features of these devices (little storage space, less computational power or more limited bandwidths) limit the adoption of seman- tic data for different uses and purposes. This paper introduces our HDTourist mobile application prototype. It con- sumes urban data from DBpedia4 to help tourists visiting a foreign city. Although it is a simple app, its functionality allows illustrating how semantic data can be stored and queried with limited resources. Our prototype is implemented for An- droid, but its foundations, explained in Section 2, can be deployed in any other platform. The app is described in Section 3, and Section 4 concludes about our current achievements and devises the future work.
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While semantic search technologies have been proven to work well in specific domains, they still have to confront two main challenges to scale up to the Web in its entirety. In this work we address this issue with a novel semantic search system that a) provides the user with the capability to query Semantic Web information using natural language, by means of an ontology-based Question Answering (QA) system [14] and b) complements the specific answers retrieved during the QA process with a ranked list of documents from the Web [3]. Our results show that ontology-based semantic search capabilities can be used to complement and enhance keyword search technologies.
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The semantic web vision is one in which rich, ontology-based semantic markup will become widely available. The availability of semantic markup on the web opens the way to novel, sophisticated forms of question answering. AquaLog is a portable question-answering system which takes queries expressed in natural language and an ontology as input, and returns answers drawn from one or more knowledge bases (KBs). We say that AquaLog is portable because the configuration time required to customize the system for a particular ontology is negligible. AquaLog presents an elegant solution in which different strategies are combined together in a novel way. It makes use of the GATE NLP platform, string metric algorithms, WordNet and a novel ontology-based relation similarity service to make sense of user queries with respect to the target KB. Moreover it also includes a learning component, which ensures that the performance of the system improves over the time, in response to the particular community jargon used by end users.