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---
base_model: microsoft/resnet-101
library_name: transformers
pipeline_tag: image-classification
tags:
- probex
- model-j
- weight-space-learning
---
# Model-J: ResNet Model (model_idx_0700)
This model is part of the **Model-J** dataset, introduced in:
**Learning on Model Weights using Tree Experts** (CVPR 2025) by Eliahu Horwitz*, Bar Cavia*, Jonathan Kahana*, Yedid Hoshen
<p align="center">
🌐 <a href="https://horwitz.ai/probex" target="_blank">Project</a> | 📃 <a href="https://arxiv.org/abs/2410.13569" target="_blank">Paper</a> | 💻 <a href="https://github.com/eliahuhorwitz/ProbeX" target="_blank">GitHub</a> | 🤗 <a href="https://huggingface.co/ProbeX" target="_blank">Dataset</a>
</p>

## Model Details
| Attribute | Value |
|---|---|
| **Subset** | ResNet |
| **Split** | train |
| **Base Model** | `microsoft/resnet-101` |
| **Dataset** | CIFAR100 (50 classes) |
## Training Hyperparameters
| Parameter | Value |
|---|---|
| Learning Rate | 0.0005 |
| LR Scheduler | cosine_with_restarts |
| Epochs | 2 |
| Max Train Steps | 666 |
| Batch Size | 64 |
| Weight Decay | 0.05 |
| Seed | 700 |
| Random Crop | True |
| Random Flip | False |
## Performance
| Metric | Value |
|---|---|
| Train Accuracy | 0.9192 |
| Val Accuracy | 0.8507 |
| Test Accuracy | 0.8538 |
## Training Categories
The model was fine-tuned on the following 50 CIFAR100 classes:
`ray`, `castle`, `boy`, `leopard`, `sweet_pepper`, `willow_tree`, `cup`, `motorcycle`, `turtle`, `tank`, `shrew`, `raccoon`, `seal`, `snail`, `palm_tree`, `rocket`, `pear`, `bowl`, `aquarium_fish`, `oak_tree`, `lion`, `mouse`, `beaver`, `cloud`, `crocodile`, `hamster`, `bear`, `man`, `flatfish`, `mountain`, `maple_tree`, `camel`, `worm`, `chimpanzee`, `orchid`, `baby`, `cockroach`, `crab`, `forest`, `plate`, `chair`, `train`, `kangaroo`, `bus`, `tiger`, `caterpillar`, `table`, `fox`, `skyscraper`, `dolphin`
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