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Back to t-vi/candlegp

Open-source alternatives to Candlegp

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

  • taolei87/sruAvatar de taolei87

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    Training RNNs as Fast as CNNs (https://arxiv.org/abs/1709.02755)

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  • zhanghang1989/pytorch-encodingAvatar de zhanghang1989

    zhanghang1989/PyTorch-Encoding

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    A CV toolkit for my papers.

    Pythonbatchnormdeep-learningencoding-layer
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  • msamogh/nonechucksM

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  • lanpa/tensorboard-pytorchAvatar de lanpa

    lanpa/tensorboard-pytorch

    7,983Voir sur GitHub↗

    This project is a machine learning experiment tracker and event file generator that enables the recording of scalars, images, and histograms to monitor model performance. It functions as an integration bridge that allows training metrics from PyTorch to be logged into files compatible with the TensorBoard dashboard. The system includes a remote log synchronizer designed to stream experiment data to cloud services. This allows for the remote management and analysis of training results and the comparison of datasets across different training runs. The utility covers a broad range of monitoring

    Python
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    nasimrahaman/inferno

    0Voir sur GitHub↗
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  • cvxgrp/cvxpylayersAvatar de cvxgrp

    cvxgrp/cvxpylayers

    2,106Voir sur GitHub↗

    CVXPYlayers is a Python library for constructing differentiable convex optimization layers in PyTorch, JAX, and MLX using CVXPY. A convex optimization layer solves a parametrized convex optimization problem in the forward pass to produce a solution. It computes the derivative of the solution…

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  • henryre/pytorch-fitmoduleAvatar de henryre

    henryre/pytorch-fitmodule

    102Voir sur GitHub↗

    Super simple fit method for PyTorch Modules

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    Voir sur GitHub↗102
  • iamaziz/pytorch-docsetI

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    maciejkula/spotlight

    3,045Voir sur GitHub↗

    Deep recommender models using PyTorch.

    Pythondeep-learninglearning-to-rankmachine-learning
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    0Voir sur GitHub↗
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  • dmlc/dglAvatar de dmlc

    dmlc/dgl

    14,283Voir sur GitHub↗

    DGL is a Python library for building and training graph neural networks. It functions as a graph message passing framework and a geometric deep learning tool, enabling the development of models that analyze graph-structured data. The library is designed for large-scale graph processing, utilizing distributed training and neighbor sampling to handle datasets with billions of edges. It provides specialized support for heterogeneous graph modeling, allowing for the representation of complex real-world entities with multiple node and edge types. Its capabilities cover a wide range of graph tasks

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  • bachili/rednerAvatar de BachiLi

    BachiLi/redner

    1,439Voir sur GitHub↗

    Differentiable rendering without approximation.

    NASLcomputer-graphicscomputer-visiondifferentiable-rendering
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  • cadene/pretrained-models.pytorchAvatar de Cadene

    Cadene/pretrained-models.pytorch

    9,102Voir sur GitHub↗

    This project is a pretrained model library for PyTorch, providing a collection of convolutional neural network architectures and weights. It serves as a computer vision model zoo for image classification and feature extraction, offering a framework for transfer learning where pretrained networks are adapted for custom image recognition tasks. The library focuses on transforming images into high-level numerical representations and calculating class probability scores. It includes utilities for downloading and initializing standard architectures such as ResNet, Inception, and Xception. Capabil

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    Voir sur GitHub↗9,102
  • cogitare-ai/cogitareAvatar de cogitare-ai

    cogitare-ai/cogitare

    77Voir sur GitHub↗

    🔥 Cogitare - A Modern, Fast, and Modular Deep Learning and Machine Learning framework for Python

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  • cornellius-gp/gpytorchAvatar de cornellius-gp

    cornellius-gp/gpytorch

    3,893Voir sur GitHub↗

    GPyTorch is a GPU-accelerated probabilistic framework and PyTorch library for implementing scalable Gaussian process models. It provides a system for Gaussian process modeling and uncertainty estimation, designed to perform efficient matrix operations on graphics hardware. The framework features a modular kernel system for constructing custom covariance functions and modeling complex data dependencies. It specifically integrates Gaussian processes with deep neural networks to create hybrid models for regression and classification. The system employs numerical linear algebra techniques, inclu

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    Voir sur GitHub↗3,893
  • deepcraft/torchcraft-pyD

    deepcraft/torchcraft-py

    0Voir sur GitHub↗
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  • aditya-khant/neural-assembly-compilerA

    aditya-khant/neural-assembly-compiler

    0Voir sur GitHub↗
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  • ferrine/geooptAvatar de ferrine

    ferrine/geoopt

    1,080Voir sur GitHub↗

    Riemannian Adaptive Optimization Methods with pytorch optim

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    Voir sur GitHub↗1,080
  • glample/arnoldG

    glample/Arnold

    0Voir sur GitHub↗
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  • albanie/pytorch-mcnA

    albanie/pytorch-mcn

    0Voir sur GitHub↗
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  • aiqm/torchaniAvatar de aiqm

    aiqm/torchani

    548Voir sur GitHub↗

    TorchANI 2.0 is an open-source library that supports training, development, and research of ANI-style neural network interatomic potentials. It was originally developed and is currently maintained by the Roitberg group.

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  • longcw/pytorch2caffeL

    longcw/pytorch2caffe

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  • loudinthecloud/dpwaL

    loudinthecloud/dpwa

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  • marvis/pytorch-caffe-darknet-convertM

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