EXAONE-4.0-1.2B-math-aggressive

🎯 MATH-optimized | 📦 Aggressive pruning | ⚡ 15% weights pruned

This model is a aggressively pruned version of LGAI-EXAONE/EXAONE-4.0-1.2B, specialized for MATH tasks using activation-aware weight pruning (Wanda-style).

✨ Key Features

  • Specialization: Optimized for Math tasks
  • Pruning Method: Wanda-style (|W| × |activation|) importance scoring
  • Size Reduction: 15% weights pruned
  • Use Case: Maximum compression for edge deployment

📊 Performance Comparison

Category Original Pruned Change
Python 20.0% 0.0% ↓ 20.0%
Html 6.7% 6.7%
Trivia 26.7% 26.7%
Math 60.0% 46.7% ⭐ ↓ 13.3%
Reasoning 60.0% 60.0%
Medical 73.3% 60.0% ↓ 13.3%
Linux 93.3% 66.7% ↓ 26.7%
Writing 60.0% 20.0% ↓ 40.0%

Average: 50.0% → 35.8% (-14.2%)

Math Retention: 77.8% of original performance

Comparison Graph

🚀 Quick Start

from transformers import AutoModelForCausalLM, AutoTokenizer

model = AutoModelForCausalLM.from_pretrained("CompactAI/EXAONE-4.0-1.2B-math-aggressive")
tokenizer = AutoTokenizer.from_pretrained("CompactAI/EXAONE-4.0-1.2B-math-aggressive")

# Example usage
inputs = tokenizer("Your prompt here", return_tensors="pt")
outputs = model.generate(**inputs, max_new_tokens=100)
print(tokenizer.decode(outputs[0], skip_special_tokens=True))

📋 Technical Details

Property Value
Base Model LGAI-EXAONE/EXAONE-4.0-1.2B
Specialization Math
Prune Mode Aggressive
Pruning Method Activation-based weight pruning (Wanda)
Weight Reduction 15% weights pruned

🔗 Related Models

This model is part of the EXAONE-4.0-1.2B pruned model collection. Variants:

  • Safe - Conservative pruning (~10-20%), high accuracy retention
  • Aggressive - Maximum compression (~40-50%), best for edge deployment

📜 License

This model inherits the license from the base model LGAI-EXAONE/EXAONE-4.0-1.2B.


Generated by ZANNPS [Zeto Automatic Neural Network Pruning System]

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