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Jonathan Hüls / FEP_Text2SQL_DPO_ORPO
Apache License 2.0Updated -
Fabian Poker / Ldap3
GNU General Public License v3.0 onlyUpdated -
Retrieval augmented generation für Seminar Informatik 2024; Maurice Borgmann & Jonas Thalmann
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In this project, the current state of research on the application of neural networks regarding topology-optimizaion is reviewed. Based on this, an experimental tool is developed that implements Sosnovik and Oseledets’ approach to AI-supported topology optimisation. A convolutional neural network is used here, which optimises structures based on initial iterations using training data. The developed programme uses Python and the Keras deep-learning-library. The aim is to use AI to reduce the computational effort of topology optimisation without compromising accuracy. The results show that neural networks reveal potential to significantly accelerate optimisation processes, especially for recurring, complex problems. Nontheless there are challenges in generalizing the methods to appropriately handle the aimed range of problems.
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Sebastian Rennert / XPRAHTML
BSD 3-Clause "New" or "Revised" LicenseUpdated -
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Daniel Knüppe / Algorithmen und Datenstrukturen
BSD 2-Clause "Simplified" LicenseTesting out algorithms and data structures.
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