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Back to cmsflash/efficient-attention

Open-source alternatives to Efficient Attention

30 open-source projects similar to cmsflash/efficient-attention, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best Efficient Attention alternative.

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    0在 GitHub 上查看↗

    The table prvoides the models and results of various models on CIFAR100. Learning rate =0.1 and will be divided by 10 every 70 epochs. Total 300 epochs. Using SGD optimizer, momentum=0.9, weight_decay=5e-4. Loss is CrossEntropyLoss. Batch-size=512.

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    This repository is a PyTorch implementation of our coordinate attention (will appear in CVPR2021).

    Python
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    Code for the paper MSAF: Multimodal Split Attention Fusion. This is our implementation of the MSAF module and the three MSAF-powered multimodal networks.

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    ArdhenduBehera/cap

    82在 GitHub 上查看↗

    A repository for the code used to create and train the model defined in 'Context-aware Attentional Pooling (CAP) for Fine-grained Visual Classification' from AAAI 2021 (See the Paper section).

    Python
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    Python
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  • cfzd/fcanetcfzd 的头像

    cfzd/FcaNet

    602在 GitHub 上查看↗

    PyTorch implementation of the paper "FcaNet: Frequency Channel Attention Networks".

    Python
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    CHENGY12/APNet

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    The official PyTorch code implementation for TIP20' Submission: "Person Re-identification via Attention Pyramid"

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    BiSeNetV2 is faster and requires less memory, you can try BiSeNetV2 on cityscapes like this: ` $ export CUDAVISIBLEDEVICES=0,1 $ python -m torch.distributed.launch --nprocpernode=2 bisenetv2/train.py --fp16 ` This would train the model and then compute the mIOU on eval set.

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    56在 GitHub 上查看↗

    This project is built from IDN, and thanks for the contributions of all the other researchers those who made their codes accessible. paper_link:https://arxiv.org/ftp/arxiv/papers/2104/2104.07566.pdf

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    This is an official implementation of:

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    MXNet implementation for:

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  • guoxih/region-based-non-local-networkguoxih 的头像

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    Please ★star this repo and cite the following arXiv paper if you think our RNL is useful for you:

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  • hilab-git/ca-netHiLab-git 的头像

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    175在 GitHub 上查看↗

    This repository provides the code for "CA-Net: Comprehensive attention Convolutional Neural Networks for Explainable Medical Image Segmentation". Our work now is available on Arxivpaperlink. Our work is accepted by TMItmilink.

    Python
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  • holmesshuan/compact-global-descriptorHolmesShuan 的头像

    HolmesShuan/Compact-Global-Descriptor

    25在 GitHub 上查看↗

    The Pytorch implementation of "Compact Global Descriptor for Neural Networks" (CGD). arXiv

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    3,327在 GitHub 上查看↗

    This is the implementation for PyTroch 0.4.1. - The HRNet OCR version ia available here. - The PyTroch 1.1 version is available here.

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    在 GitHub 上查看↗3,327
  • hszhao/sanhszhao 的头像

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    751在 GitHub 上查看↗

    by Hengshuang Zhao, Jiaya Jia, and Vladlen Koltun, details are in paper.

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  • 13952522076/dcanet13952522076 的头像

    13952522076/DCANet

    125在 GitHub 上查看↗

    Figure 1. Illustration of our DCANet. We visualize intermediate feature activation using Grad-CAM. Vanilla SE-ResNet50 varies its focus dramatically at different stages. In contrast, our DCA enhanced SE-ResNet50 progressively and recursively adjusts focus, and closely pays attention to the…

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