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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Evaluation zwischen Leistungsmessung und Lernschleife

Martinuzzi, Robert-Andre, Meyer, Wolfgang, Kopp, Ursula January 2007 (has links) (PDF)
Nachhaltige Entwicklung ist zu einem Leitmotiv von Politiken, Programmen und Projekten geworden. Doch wer entscheidet, was tatsächlich nachhaltig wirkt und auf Basis welcher Daten und Fakten? Das Projekt EASY ECO trainiert dazu Nachwuchsforscher aus ganz Europa und vermittelt Einblicke in die Evaluationspraxis.
2

Poster session: Constrained dynamic physical database design

Lehner, Wolfgang, Voigt, Hannes, Salem, Kenneth 12 August 2022 (has links)
Physical design has always been an important part of database administration. Today's commercial database management systems offer physical design tools, which recommend a physical design for a given workload. However, these tools work only with static workloads and ignore the fact that workloads, and physical designs, may change over time. Research has now begun to focus on dynamic physical design, which can account for time-varying workloads. In this paper, we consider a dynamic but constrained approach to physical design. The goal is to recommend dynamic physical designs that reflect major workload trends but that are not tailored too closely to the details of the input workloads. To achieve this, we constrain the number of changes that are permitted in the recommended design. In this paper we present our definition of the constrained dynamic physical design problem and discuss several techniques for solving it.
3

Error-Aware Density-Based Clustering of Imprecise Measurement Values

Lehner, Wolfgang, Habich, Dirk, Volk, Peter B., Dittmann, Ralf, Utzny, Clemens 15 June 2022 (has links)
Manufacturing process development is under constant pressure to achieve a good yield for stable processes. The development of new technologies, especially in the field of photomask and semiconductor development, is at its phys- ical limits. In this area, data, e.g. sensor data, has to be collected and analyzed for each process in order to ensure process quality. With increasing complexity of manufactur- ing processes, the volume of data that has to be evaluated rises accordingly. The complexity and data volume exceeds the possibility of a manual data analysis. At this point, data mining techniques become interesting. The application of current techniques is complex because most of the data is captured with sensor measurement tools. Therefore, every measured value contains a specific error. In this paper we propose an error-aware extension of the density-based al- gorithm DBSCAN. Furthermore, we present some quality measures which could be utilized for further interpretation of the determined clustering results. With this new cluster algorithm, we can ensure that masks are classified into the correct cluster with respect to the measurement errors, thus ensuring a more likely correlation between the masks.

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