Model card for resnet18
A ResNet-B image classification model.
This model features:
- ReLU activations
- Single layer 7x7 convolution with pooling
- 1x1 convolution shortcut downsample
Trained on ImageNet-1k in timm
using recipe template described below.
Recipe details:
- ResNet Strikes Back
A1
recipe - LAMB optimizer with BCE loss
- Cosine LR schedule with warmup
Model Details
- Model Type: Image classification / feature backbone
- Model Stats:
- Params (M): 11.7
- GMACs: 1.8
- Activations (M): 2.5
- Image size: train = 224 x 224, test = 288 x 288
- Papers:
- ResNet strikes back: An improved training procedure in timm: https://arxiv.org/abs/2110.00476
- Deep Residual Learning for Image Recognition: https://arxiv.org/abs/1512.03385
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