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Theo Archambault / visapp2023
MIT LicenseUpdated -
Laurent Prosperi / Vardac
Apache License 2.0Updated -
ALMASTY / High-Performance Xbred
The UnlicenseUpdated -
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pequan / Promise
GNU General Public License v3.0 or laterUpdated -
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Alexandre Pham / Data Poisoning Attacks in Gossip Learning
Apache License 2.0Updated -
Alex Elenter / OneWayTrading
MIT LicenseUpdated -
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Theo Archambault / JAMES2024
MIT LicenseUpdated -
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PCCMerge: a parallel method based on merging partial connected components in large graphs
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Parallel Programming / EasyPAP Student Edition 2024-2025
BSD 3-Clause "New" or "Revised" LicenseUpdated -
equipebd / Atem
GNU General Public License v2.0 or laterATEM is a novel framework for studying topic evolution in scientific archives. ATEM is based on dynamic topic modeling and dynamic graph embedding techniques that explore the dynamics of content and citations of documents within a scientific corpus. ATEM explores a new notion of contextual emergence for the discovery of emerging interdisciplinary research topics based on the dynamics of citation links in topic clusters. Our experiments show that ATEM can efficiently detect emerging cross-disciplinary topics within the DBLP archive of over five million computer science articles. paper: https://arxiv.org/abs/2306.02221
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pequan / cadna / cadnapy
GNU General Public License v3.0 onlyControl of accuracy and debugging for Python applications
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