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boone891214 avatar

boone891214/GaP

0
View on GitHub↗
9 stele·2 fork-uri·Python·2 vizualizări

GaP

ICLR 2022 paper "Effective Model Sparsification by Scheduled Grow-and-Prune Methods". Model and test code are available for downloading.

Features

  • Weight Pruning - Scheduled grow-and-prune methods for effective sparsification.

Istoric stele

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Întrebări frecvente

Ce face boone891214/gap?

ICLR 2022 paper "Effective Model Sparsification by Scheduled Grow-and-Prune Methods". Model and test code are available for downloading.

Care sunt principalele funcționalități ale boone891214/gap?

Principalele funcționalități ale boone891214/gap sunt: Weight Pruning.

Care sunt câteva alternative open-source pentru boone891214/gap?

Alternativele open-source pentru boone891214/gap includ: tencent/pocketflow — PocketFlow is an integrated toolkit for deep learning model compression, distributed training, and mobile format… dchiji-ntt/iterand — by Daiki Chijiwa\*, Shin’ya Yamaguchi, Yasutoshi Ida, Kenji Umakoshi, Tomohiro Inoue. dem123456789/pruning-deep-neural-networks-from-a-sparsity-perspective — [ICLR 2023] Pruning Deep Neural Networks from a Sparsity Perspective. densoitlab/bitprune — This is the official repo for ICLR 2023 Paper "Bit-Pruning: A Sparse Multiplication-Less Dot-Product" Yusuke Sekikawa… dingxiaoh/gsm-sgd — This repository contains the codes for the following NeurIPS-2019 paper. chrundle/biprop — This method identifies a binary weight or binary weight and activation subnetwork within a randomly initialized…

Alternative open-source pentru GaP

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  • tencent/pocketflowAvatar Tencent

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    PocketFlow is an integrated toolkit for deep learning model compression, distributed training, and mobile format optimization. It provides a system for reducing the size and complexity of neural networks to improve inference efficiency, featuring a dedicated engine for knowledge distillation and a mobile model optimizer. The framework differentiates itself through an automated hyperparameter tuning system that uses reinforcement learning and statistical models to determine optimal compression ratios and layer-wise bit allocation. It also includes a distributed training system that utilizes mu

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  • dchiji-ntt/iterandAvatar dchiji-ntt

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    by Daiki Chijiwa\*, Shin’ya Yamaguchi, Yasutoshi Ida, Kenji Umakoshi, Tomohiro Inoue

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  • dem123456789/pruning-deep-neural-networks-from-a-sparsity-perspectiveAvatar dem123456789

    dem123456789/Pruning-Deep-Neural-Networks-from-a-Sparsity-Perspective

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  • chrundle/bipropAvatar chrundle

    chrundle/biprop

    51Vezi pe GitHub↗

    This method identifies a binary weight or binary weight and activation subnetwork within a randomly initialized network that achieves performance comparable to, and sometimes better than, a weight-optimized network. The resulting binarized and pruned networks that achieve comparable performance…

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Vezi toate cele 30 alternative pentru GaP→