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Silentium! Run-Analyse-Eradicate the Noise out of the DB/OS Stack 

BTW 2021 Mauerer, Wolfgang; Ramsauer, Ralf; Lucas, Edson; Lohmann, Daniel; Scherzinger, Stefanie
When multiple tenants compete for resources, database performance tends to suffer. Yet there are several scenarios where guaranteed sub-millisecond latencies are crucial, such as in real-time scenarios, IoT, or when operating in safety-critical environments. In this paper, we study how to make query latencies deterministic ...

The Data Lake Architecture Framework 

BTW 2021 Giebler, Corinna; Gröger, Christoph; Hoos, Eva; Eichler, Rebecca; Schwarz, Holger; Mitschang, Bernhard
During recent years, data lakes emerged as a way to manage large amounts of heterogeneous data for modern data analytics. Although various work on individual aspects of data lakes exists, there is no comprehensive data lake architecture yet. Concepts that describe themselves as a “data lake architecture” are only partial. ...

Data Management in Multi-Agent Simulation Systems 

BTW 2021 Glake, Daniel; Panse, Fabian; Ritter, Norbert; Clemen, Thomas; Lenfers, Ulfia
Multi-agent simulations are an upcoming trend to deal with the urgent need to predict complex situations as they arise in many real-life areas, such as disaster or traffic management. Such simulations require large amounts of heterogeneous data ranging from spatio-temporal to standard object properties. This and the ...

Combining Programming-by-Example with Transformation Discovery from large Databases 

BTW 2021 özmen, Aslihan; Esmailoghli, Mahdi; Abedjan, Ziawasch
Data transformation discovery is one of the most tedious tasks in data preparation. In particular, the generation of transformation programs for semantic transformations is tricky because additional sources for look-up operations are necessary. Current systems for semantic transformation discovery face two major problems: ...

Applying Machine Learning Models to Scalable DataFrames with Grizzly 

BTW 2021 Kläbe, Steffen; Hagedorn, Stefan
The popular Python Pandas framework provides an easy-to-use DataFrame API that enables a broad range of users to analyze their data. However, Pandas faces severe scalability issues in terms of runtime and memory consumption, limiting the usability of the framework. In this paper we present Grizzly, a replacement for ...

BTW 2021 - Komplettband 

BTW 2021Unknown author

Towards Learned Metadata Extraction for Data Lakes 

BTW 2021 Langenecker, Sven; Sturm, Christoph; Schalles, Christian; Binnig, Carsten
An important task for enabling the efficient exploration of available data in a data lake is to annotate semantic type information to the available data sources. In order to reduce the manual overhead of annotation, learned approaches for automatic metadata extraction on structured data sources have been proposed recently. ...

Exploring Memory Access Patterns for Graph Processing Accelerators 

BTW 2021 Dann, Jonas; Ritter, Daniel; Fröning, Holger
Recent trends in business and technology (e.g., machine learning, social network analysis) benefit from storing and processing growing amounts of graph-structured data in databases and data science platforms. FPGAs as accelerators for graph processing with a customizable memory hierarchy promise solving performance ...

Multi-Party Privacy Preserving Record Linkage in Dynamic Metric Space 

BTW 2021 Sehili, Ziad; Rohde, Florens; Franke, Martin; Rahm, Erhard
We propose and evaluate several approaches for multi-party privacy-preserving record linkage (MP-PPRL) for multiple data sources. To reduce the number of comparisons for scalability we propose a new pivot-based metric space approach that dynamically adapts the selection of pivots for additional sources and growing data ...

Umbra as a Time Machine 

BTW 2021 Karnowski, Lukas; Schüle, Maximilian E.; Kemper, Alfons; Neumann, Thomas
Online lexicons such as Wikipedia rely on incremental edits that change text strings marginally. To support text versioning inside of the Umbra database system, this study presents the implementation of a dedicated data type. This versioning data type is designed for maximal throughput as it stores the latest string as ...
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Author

Rahm, Erhard (3)Kemper, Alfons (2)Markl, Volker (2)Neumann, Thomas (2)Schüle, Maximilian E. (2)Abedjan, Ziawasch (1)Auge, Tanja (1)Beer, Anna (1)Binnig, Carsten (1)Brendle, Michael (1)... View More

Subject

Clustering (3)actor programming (1)Affinity Propagation (1)B-tree (1)bias in machine learning (1)Bloom filter (1)bounded-time query processing (1)Buffering (1)cardinality estimation (1)CHASE (1)... View More

Date Issued

2021 (22)

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Yes (22)

About uns | FAQ | Help | Imprint | Datenschutz

Gesellschaft für Informatik e.V. (GI), Kontakt: Geschäftsstelle der GI
Diese Digital Library basiert auf DSpace.