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Изворен канал @pythonotes · Post #160 · 7 окт.

А вы ждёте Qt6 как жду его я? ))) Наверняка, те кто ждёт, уже в курсе, но я уточню даты релизов. - Qt 6.0 Feature freeze - 31.8.2020 - Qt 6.0 Alpha - 2.10.2020 - Qt 6.0 Beta 1 - 15.10.2020 - Qt 6.0.0 RC - 17.11.2020 - Qt 6.0.0 Final - 1.12.2020 Полный список https://wiki.qt.io/Qt_6.0_Release Между тем, библиотеки PySide3 ждать не стоит. Дело в том, что разработчики решили синхронизировать версии библиотек C++ и Qt for Python. Так что ждём сразу PySide6! #qt

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Repositorio data science

@repo_science · Post #4131 · 18.05.2024 г., 21:06

​​#DL 📱 Zeus New Pytorch Ecosystem Tool Zeus is an open source toolkit for measuring and optimizing power consumption of deep learning workloads. 🖥Github ----- Main channel: @repo_science Coupons: @freecoupons_reposcience -----

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Am Neumarkt 😱

@amneumarkt · Post #691 · 05.10.2025 г., 07:41

#dl Park, Chanwook, Sourav Saha, Jiachen Guo, Hantao Zhang, Xiaoyu Xie, Miguel A. Bessa, Dong Qian, et al. 2025. “Unifying Machine Learning and Interpolation Theory via Interpolating Neural Networks.” Nature Communications 16 (1): 1–12. https://www.nature.com/articles/s41467-025-63790-8

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Am Neumarkt 😱

@amneumarkt · Post #683 · 28.06.2025 г., 07:04

#dl A few cool ideas in this model. Introducing Gemma 3n: The developer guide - Google Developers Blog https://developers.googleblog.com/en/introducing-gemma-3n-developer-guide/

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Am Neumarkt 😱

@amneumarkt · Post #602 · 20.07.2024 г., 05:48

#dl There is this new lib called scale. One could compile CUDA code to use it on AMD GPU. https://docs.scale-lang.com/manual/how-to-use/ I don't know who is more pissed off, NVidia or AMD.

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Am Neumarkt 😱

@amneumarkt · Post #556 · 16.03.2024 г., 09:09

#dl This repo is really nice. yuanchenyang/smalldiffusion: Simple and readable code for training and sampling from diffusion models https://github.com/yuanchenyang/smalldiffusion

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Am Neumarkt 😱

@amneumarkt · Post #506 · 13.11.2023 г., 08:30

#dl Google & USC benchmarked a prompt based forecasting method, and the results are amazing. Cao D, Jia F, Arik SO, Pfister T, Zheng Y, Ye W, et al. TEMPO: Prompt-based Generative Pre-trained Transformer for time series forecasting. arXiv [cs.LG]. 2023. Available: http://arxiv.org/abs/2310.04948

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