github-code-2025 / README.md
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---
license: mit
modalities:
- Text
formats:
- parquet
size: 10M - 100M
libraries:
- Datasets
- Dask
- Croissant
- Polars
---
# πŸš€ GitHub Code 2025: The Clean Code Manifesto
> **A meticulously curated dataset of 1.5M+ repositories representing both quality and innovation in 2025's code ecosystem**
## 🌟 The Philosophy
**Quality Over Quantity, Purpose Over Volume**
In an era of data abundance, we present a dataset built on radical curation. Every file, every repository, every byte has been carefully selected to represent the **signal** in the noise of open-source development.
## 🎯 What This Dataset Is
### πŸ“Š Dual-Perspective Design
| Subset | πŸŽ–οΈ Above 2 Stars | 🌱 Below 2 Stars (2025) |
|--------|------------------|------------------------|
| **Scope** | 1M top repositories | 1M random 2025 repos |
| **Purpose** | Proven quality & patterns | Emerging trends & innovation |
| **Value** | What works | What's next |
### 🧹 The Clean Code Promise
```python
# What you WON'T find here:
🚫 Binary files # No images, executables, models
🚫 Build artifacts # No node_modules, __pycache__
🚫 Configuration noise # No .git, IDE files, lock files
🚫 License duplication # No repetitive legal text
🚫 Minified code # No compressed/obfuscated content
🚫 Empty files # No whitespace-only content
```
## πŸ“ Dataset Structure
```
github-code-2025/
β”œβ”€β”€ πŸ“ˆ above-2-stars/
β”‚ β”œβ”€β”€ train_000.parquet
β”‚ β”œβ”€β”€ train_001.parquet
β”‚ └── ...
└── 🌱 below-2-star/
β”œβ”€β”€ train_000.parquet
β”œβ”€β”€ train_001.parquet
└── ...
```
### πŸ“Š Schema
```python
{
"repo_id": "owner/repo_name", # πŸ“ Repository identifier
"file_path": "src/main.py", # πŸ—‚οΈ Relative file path
"content": "def clean_code():", # πŸ’Ž Actual source code
"size": 1024 # πŸ“ File size in bytes
}
```
## πŸ› οΈ How to Use
### πŸ”₯ Quick Start
```python
from datasets import load_dataset
# Load the quality benchmark
quality_ds = load_dataset("nick007x/github-code-2025", "above-2-stars")
# Load emerging trends
emerging_ds = load_dataset("nick007x/github-code-2025", "below-2-star")
# Mix for balanced training
balanced_ds = interleave_datasets([quality_ds, emerging_ds])
```
### 🎯 Ideal Use Cases
- **🧠 AI Training**: Clean, diverse code for language models
- **πŸ“Š Code Analysis**: Compare popular vs emerging patterns
- **πŸ” Trend Research**: 2025 development practices
- **πŸŽ“ Education**: High-quality examples for learning
- **πŸ› οΈ Tool Development**: Benchmarking code quality tools
## πŸ—οΈ Creation Methodology
### 🎨 Selection Strategy
| Phase | Action | Purpose |
|-------|--------|---------|
| **1** | 🎯 Dual population sampling | Balance quality & innovation |
| **2** | 🧹 Multi-layer filtering | Remove noise & binaries |
| **3** | πŸ“ Size normalization | Focus on meaningful content |
| **4** | πŸ” Content validation | Ensure text quality |
| **5** | 🏷️ Metadata preservation | Maintain context |
### 🚫 What We Filtered Out
**File Types Removed:**
- 50+ binary extensions (images, models, executables)
- 30+ build/system directories
- 15+ configuration file types
- All files outside 1KB-5MB range
**Quality Checks:**
- βœ… UTF-8 text validation
- βœ… Non-empty content check
- βœ… Binary detection
- βœ… Repository structure preservation
## πŸŽͺ Why This Dataset Matters
### πŸ’« The Quality Revolution
We reject the "more data is better" dogma. Instead, we offer:
- **🎯 Intentional Curation**: Every file serves a purpose
- **βš–οΈ Balanced Perspective**: Popular + Emerging = Complete picture
- **🧹 Unprecedented Cleanliness**: The cleanest code dataset available
- **πŸ“… Temporal Intelligence**: 2025-focused for relevance
## 🀝 Contributing & Feedback
This dataset is a living project. We welcome:
- πŸ› Bug reports and issues
- πŸ’‘ Feature requests for future versions
- πŸ“Š Validation of data quality
- 🎯 Suggestions for improvement
## πŸ“œ License
This dataset is provided under the **MIT License** - see the LICENSE file for details.
**Important**: Repository contents maintain their original licenses. Please respect individual project licenses when using this data.
## πŸ™ Acknowledgments
Built with gratitude for the entire open-source community. Every file in this dataset represents hours of dedication from developers worldwide.
---
**⭐ If this dataset helps your research or project, please consider starring the repository!**
> **"In the pursuit of AI that understands code, we must first understand what code is worth learning."**