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pytorch/QNNPACKArchived

0
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1,549 stars·222 forks·C·7 viewscode.fb.com/ml-applications/qnnpack↗

QNNPACK

Quantized Neural Network PACKage - mobile-optimized implementation of quantized neural network operators

Features

  • Data and Graph Processing - Mobile-optimized quantized neural network operators.
  • Developer Tools - Quantized neural network package.

Star history

Star history chart for pytorch/qnnpackStar history chart for pytorch/qnnpack

How this analysis was created: This summary and feature list were written by an AI model that read the project's README and public documentation pages. Each feature links to the documentation it came from; stars, license and language come straight from the GitHub API. The model does not read the source code, and the analysis is refreshed when the project is re-analysed. Learn more on our About page.

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Frequently asked questions

What does pytorch/qnnpack do?

Quantized Neural Network PACKage - mobile-optimized implementation of quantized neural network operators

What are the main features of pytorch/qnnpack?

The main features of pytorch/qnnpack are: Data and Graph Processing, Developer Tools.

What are some open-source alternatives to pytorch/qnnpack?

Open-source alternatives to pytorch/qnnpack include: bharathgs/nalu. cvxgrp/cvxpylayers — CVXPYlayers is a Python library for constructing differentiable convex optimization layers in PyTorch, JAX, and MLX… aiqm/torchani — TorchANI 2.0 is an open-source library that supports training, development, and research of ANI-style neural network… bachili/redner — Differentiable rendering without approximation. cornellius-gp/gpytorch — GPyTorch is a GPU-accelerated probabilistic framework and PyTorch library for implementing scalable Gaussian process… dmlc/dgl — DGL is a Python library for building and training graph neural networks. It functions as a graph message passing…

Open-source alternatives to QNNPACK

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    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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