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20182022
most citedZero-Shot Cost Models for Out-of-the-box Learned Cost Prediction

4 citations · 10 across the 4 of their papers we have counts for

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cs.DB2022

Demonstrating CAT: Synthesizing Data-Aware Conversational Agents for Transactional Databases

Marius Gassen, Benjamin Hättasch, Benjamin Hilprecht +3

Databases for OLTP are often the backbone for applications such as hotel room or cinema ticket booking applications. However, developing a conversational agent (i.e., a chatbot-lik…

cs.DB20224 cited

Zero-Shot Cost Models for Out-of-the-box Learned Cost Prediction

Benjamin Hilprecht, Carsten Binnig

In this paper, we introduce zero-shot cost models which enable learned cost estimation that generalizes to unseen databases. In contrast to state-of-the-art workload-driven approac…

cs.DB2021

ReStore -- Neural Data Completion for Relational Databases

Benjamin Hilprecht, Carsten Binnig

Classical approaches for OLAP assume that the data of all tables is complete. However, in case of incomplete tables with missing tuples, classical approaches fail since the result…

cs.DB2019

DeepDB: Learn from Data, not from Queries!

Benjamin Hilprecht, Andreas Schmidt, Moritz Kulessa +3

The typical approach for learned DBMS components is to capture the behavior by running a representative set of queries and use the observations to train a machine learning model. T…

cs.DB20193 cited

Learning a Partitioning Advisor with Deep Reinforcement Learning

Benjamin Hilprecht, Carsten Binnig, Uwe Roehm

Commercial data analytics products such as Microsoft Azure SQL Data Warehouse or Amazon Redshift provide ready-to-use scale-out database solutions for OLAP-style workloads in the c…

cs.DB2018

Model-based Approximate Query Processing

Moritz Kulessa, Alejandro Molina, Carsten Binnig +2

Interactive visualizations are arguably the most important tool to explore, understand and convey facts about data. In the past years, the database community has been working on di…