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AirNet-PyTorch

Implementation of the paper ''Attention Inspiring Receptive-fields Network'' (under review), which contains the evaluation code and trained models. By:

Lu Yang, Qing Song, Yingqi Wu and Mengjie Hu

<p align="center"> <img src="https://github.com/soeaver/AirNet-PyTorch/blob/master/images/air_bottleneck.png" height="320"> <img src="https://github.com/soeaver/AirNet-PyTorch/blob/master/images/air_module.png" height="320"> </p>

Install

Evaluation

Results

ImageNet1k

Single-crop (224x224) validation error rate is reported.

Network                Flops (G)Params (M)Top-1 Error (%)Top-5 Error (%)Download
AirNet50-1x64d (r=16)4.3625.722.116.18GoogleDrive
AirNet50-1x64d (r=2)4.7227.421.835.89GoogleDrive
AirNeXt50-32x4d5.2925.520.875.52GoogleDrive

Other Resources (from DPNs)

ImageNet-1k Trainig/Validation List:

ImageNet-1k category name mapping table: