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polars-fastdataframes
RSK World
polars-fastdataframes
High-performance DataFrames with Polars
polars-fastdataframes
  • data
  • images
  • notebooks
  • scripts
  • .gitignore505 B
  • LICENSE1.2 KB
  • PROJECT_SUMMARY.md5 KB
  • README.md3.2 KB
  • RELEASE_NOTES_v1.0.0.md2.8 KB
  • index.html9.9 KB
  • requirements.txt249 B
script.jsPROJECT_SUMMARY.mdLICENSErequirements.txt
PROJECT_SUMMARY.md
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PROJECT_SUMMARY.md

# Polars Fast DataFrames - Project Summary

<!--
Author: RSK World
Website: https://rskworld.in
Email: help@rskworld.in
Phone: +91 93305 39277
-->

## Project Overview

This project demonstrates **Polars**, a high-performance DataFrame library written in Rust, for fast data processing, querying, and analysis on large datasets.

## Project Metadata

- **ID**: 10
- **Title**: Polars Fast DataFrames
- **Category**: Data Processing
- **Difficulty**: Intermediate
- **Source Link**: https://github.com/rskworld/polars-fastdataframes/archive/refs/heads/main.zip
- **Demo Link**: ./polars-fastdataframes/

## Features

1. ⚡ Fast DataFrame operations
2. 🔄 Lazy evaluation and optimization
3. 💾 Memory-efficient processing
4. 🎯 Query optimization
5. 🔗 Pandas compatibility

## Technologies

- Python
- Polars
- Pandas
- Jupyter Notebook
- NumPy
- Matplotlib
- Seaborn

## Project Structure

```
polars-fastdataframes/
├── README.md # Main project documentation
├── requirements.txt # Python dependencies
├── LICENSE # MIT License
├── .gitignore # Git ignore rules
├── index.html # Demo/landing page
├── PROJECT_SUMMARY.md # This file
├── notebooks/ # Jupyter notebooks
│ ├── 01_basic_operations.ipynb # Basic DataFrame operations
│ ├── 02_lazy_evaluation.ipynb # Lazy evaluation demo
│ ├── 03_performance_comparison.ipynb # Polars vs Pandas comparison
│ └── 04_advanced_queries.ipynb # Advanced query patterns
├── scripts/ # Python scripts
│ ├── basic_operations.py # Basic operations script
│ ├── lazy_evaluation.py # Lazy evaluation script
│ ├── performance_comparison.py # Performance comparison script
│ └── data_generator.py # Data generation utility
├── data/ # Sample data files
│ └── sample_data.csv # Sample dataset
└── images/ # Project images
├── README.md # Images directory info
└── polars-fastdataframes.png.placeholder # Image placeholder
```

## Files Created

### Documentation
- ✅ README.md - Main project documentation with author details
- ✅ LICENSE - MIT License with author attribution
- ✅ PROJECT_SUMMARY.md - This summary document
- ✅ index.html - Interactive demo/landing page

### Jupyter Notebooks
- ✅ 01_basic_operations.ipynb - Basic DataFrame operations tutorial
- ✅ 02_lazy_evaluation.ipynb - Lazy evaluation and optimization
- ✅ 03_performance_comparison.ipynb - Performance benchmarks
- ✅ 04_advanced_queries.ipynb - Advanced query patterns

### Python Scripts
- ✅ basic_operations.py - Basic operations demonstration
- ✅ lazy_evaluation.py - Lazy evaluation demonstration
- ✅ performance_comparison.py - Performance comparison tool
- ✅ data_generator.py - Data generation utility

### Data Files
- ✅ data/sample_data.csv - Sample dataset for demonstrations

### Configuration
- ✅ requirements.txt - Python package dependencies
- ✅ .gitignore - Git ignore rules

### Assets
- ✅ images/README.md - Images directory documentation
- ✅ images/polars-fastdataframes.png.placeholder - Image placeholder

## Author Information

All files include the following author details in comments:

```
Author: RSK World
Website: https://rskworld.in
Email: help@rskworld.in
Phone: +91 93305 39277
```

## Installation & Usage

### Installation

```bash
pip install -r requirements.txt
```

### Running Scripts

```bash
# Basic operations
python scripts/basic_operations.py

# Lazy evaluation
python scripts/lazy_evaluation.py

# Performance comparison
python scripts/performance_comparison.py

# Generate sample data
python scripts/data_generator.py
```

### Jupyter Notebooks

```bash
jupyter notebook
```

Then open any notebook from the `notebooks/` directory.

## Key Concepts Demonstrated

1. **Basic Operations**: Creating DataFrames, filtering, selecting, grouping, aggregating
2. **Lazy Evaluation**: Query planning, optimization, and execution
3. **Performance**: Benchmarking Polars against Pandas
4. **Advanced Queries**: Window functions, conditional aggregations, pivots, complex joins

## Performance Highlights

- Polars is typically **5-30x faster** than Pandas
- **Memory efficient** due to Apache Arrow columnar format
- **Query optimization** through lazy evaluation
- **Parallel processing** capabilities

## License

MIT License - See LICENSE file for details.

## Contact

- **Website**: https://rskworld.in
- **Email**: help@rskworld.in
- **Phone**: +91 93305 39277

---

*Project generated and maintained by RSK World*

LICENSE
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MIT License

Copyright (c) 2024 RSK World

Permission is hereby granted, free of charge, to any person obtaining a copy
of this software and associated documentation files (the "Software"), to deal
in the Software without restriction, including without limitation the rights
to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
copies of the Software, and to permit persons to whom the Software is
furnished to do so, subject to the following conditions:

The above copyright notice and this permission notice shall be included in all
copies or substantial portions of the Software.

THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
SOFTWARE.

<!--
Author: RSK World
Website: https://rskworld.in
Email: help@rskworld.in
Phone: +91 93305 39277
-->

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requirements.txt
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# Polars Fast DataFrames - Requirements
# Author: RSK World
# Website: https://rskworld.in
# Email: help@rskworld.in
# Phone: +91 93305 39277

polars>=0.19.0
pandas>=2.0.0
jupyter>=1.0.0
matplotlib>=3.7.0
seaborn>=0.12.0
numpy>=1.24.0

14 lines•249 B
text
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