G-reen / effnet_b0_iNat2019_deepmoe_lambda0.0015

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Total runs: 3
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7-day runs: -4
30-day runs: -10
Model's Last Updated: April 21 2026
image-classification

Introduction of effnet_b0_iNat2019_deepmoe_lambda0.0015

Model Details of effnet_b0_iNat2019_deepmoe_lambda0.0015

DeepMoE EfficientNet-B0 fine-tuned on iNaturalist 2019

This model is a Mixture-of-Experts (DeepMoE) variant of EfficientNet-B0, fine-tuned on the iNaturalist 2019 dataset to optimize both accuracy and computational efficiency (FLOP reduction).

Training Results
  • Final Score (Acc/FLOPs composite) : 82.5712
  • Final Validation Accuracy : 65.7%
  • Expert Activation Ratio : 24.5%
  • FLOPs Usage : 49.2% (compared to baseline B0)
  • Baseline B0 Reference FLOPs : 388,184,000
  • Total Runtime : 5446.97 seconds
Hyperparameters
  • Batch Size : 256
  • Gradient Accumulation Steps : 4
  • Weight Decay : 0.005
Epochs
  • Total Epochs : 10
    • Joint Training Epochs: 10
    • Routing-Frozen Finetuning Epochs: 0
DeepMoE Architecture & Routing
  • MoE Start Stage : 1
  • Latent Dimension : 32
  • Sparsity Penalty ($\lambda_g$) : 0.0015
  • Target Sparsity ($\mu$) : 0.5
  • ReLU Init (Val / Std) : 1 / 1
Learning Rates
  • MoE Routing Parameters : 8.00e-03
  • Classification Head : 2.00e-02
  • Base Model (Body) : 2.00e-03
  • Finetune Phase (Frozen Routing) : 0.00e+00

Training was tracked using Weights & Biases .

Runs of G-reen effnet_b0_iNat2019_deepmoe_lambda0.0015 on huggingface.co

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