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Back to mattvitelli/gruv

Open-source alternatives to GRUV

30 open-source projects similar to mattvitelli/gruv, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best GRUV alternative.

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    This project is a PyTorch library for building and training Kolmogorov-Arnold Networks. It implements a neural network architecture that replaces fixed activation functions with learnable spline-based functions on edges, serving as a tool for interpretable machine learning. The implementation utilizes reformulated matrix operations to reduce memory overhead and increase computation speed. It employs L1 regularization to sparsify network weights, which improves the transparency of the model's internal logic and decisions. The framework covers a range of capabilities including grid-based funct

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    ai-edu is a comprehensive AI education curriculum and machine learning courseware collection. It provides theoretical tutorials, deep learning lab exercises, and project blueprints designed to teach artificial intelligence fundamentals through a combination of study and practical implementation. The project focuses on a learning-by-doing approach, guiding users from Python programming and neural network basics to advanced topics. It includes specialized instructional content on distributed AI training, MLOps educational guides for model quantization and pruning, and detailed frameworks for im

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  • pageman/sutskever-30-implementationsAvatar pageman

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    This project is a collection of deep learning research implementations and a reproduction kit designed to translate theoretical AI papers into working code. It provides a library of neural network architectures and reference implementations for reproducing seminal research concepts through interactive notebooks. The repository distinguishes itself through the implementation of AI theory and scaling laws, covering complexity dynamics, information theory, and the simulation of universal AI agents. It also includes a benchmarking suite for synthetic reasoning, allowing for the evaluation of mode

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    facebookresearch/SlowFast

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    SlowFast is a PyTorch video understanding framework and spatiotemporal neural network library. It serves as a toolset for video action recognition, enabling the training and evaluation of models designed to classify complex activities and objects within video sequences. The framework is distinguished by its use of dual-pathway spatiotemporal sampling to capture both slow and fast motions. It supports self-supervised video learning for pre-training models on unlabeled data and employs multigrid spatiotemporal training to optimize learning across multiple spatial and temporal resolutions. The

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    Reimplementation Antol et al 2015 Keras-based LSTM/CNN models for Visual Question Answering

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    d-li14/regnet.pytorch

    69Vezi pe GitHub↗

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  • dennybritz/nn-from-scratchAvatar dennybritz

    dennybritz/nn-from-scratch

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    Implementing a Neural Network from Scratch

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    dennybritz/nn-theano

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    dennybritz/rnn-tutorial-rnnlm

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    facebookresearch/FixRes

    1,044Vezi pe GitHub↗

    This repository reproduces the results of the paper: "Fixing the train-test resolution discrepancy" https://arxiv.org/abs/1906.06423

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    facebookresearch/pycls

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    google-research/noisystudent

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  • karpathy/char-rnnAvatar karpathy

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    This project is a character-level language modeling system that uses recurrent neural networks to predict and generate text one character at a time. It implements LSTM and GRU architectures to learn sequential patterns and probability distributions from text corpora. The system includes mechanisms for text generation sampling, allowing users to produce new sequences from trained models. It features temperature-based stochasticity to control the randomness and diversity of the generated output. The implementation covers the full model lifecycle, including training, state persistence through c

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  • kemaloksuz/objectdetectionimbalanceAvatar kemaloksuz

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    This repository provides an up-to-date the list of studies addressing imbalance problems in object detection. It follows the taxonomy provided in the following paper (please cite the paper if you benefit from this repository):

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  • kjw0612/awesome-deep-visionAvatar kjw0612

    kjw0612/awesome-deep-vision

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    Vezi pe GitHub↗11,167
  • kjw0612/awesome-rnnAvatar kjw0612

    kjw0612/awesome-rnn

    6,208Vezi pe GitHub↗

    Recurrent Neural Network - A curated list of resources dedicated to RNN

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  • kuan-wang/pytorch-mobilenet-v3Avatar kuan-wang

    kuan-wang/pytorch-mobilenet-v3

    806Vezi pe GitHub↗

    MobileNetV3 in pytorch and ImageNet pretrained models

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    Vezi pe GitHub↗806