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Extreme-Prvc-Opsec
Made with ❤️ using 🦥 Unsloth StudioOp.sec guide was generated with Unsloth Recipe Studio. It contains 999 generated records.
🚀 Quick Start
from datasets import load_dataset
# Load the main dataset
dataset = load_dataset("johnpeters992342/extreme-prvc-opsec", "data", split="train")
df = dataset.to_pandas()
📊 Dataset Summary
📈 Records: 999
📋 Columns: 3
✅ Completion: 99.9% (1,000 requested)
📋 Schema & Statistics
| Column | Type | Column Type | Unique (%) | Null (%) | Details |
|---|---|---|---|---|---|
llm_structured_1 |
dict |
llm-structured | 994 (99.5%) | 0 (0.0%) | Tokens: 85 out / 360 in |
⚙️ Generation Details
Generated with 3 column configuration(s):
llm-structured: 1 column(s)
seed-dataset: 2 column(s)
📄 Full configuration available in builder_config.json and detailed metadata in metadata.json.
📚 Citation
If you use Data Designer in your work, please cite the project as follows:
@misc{nemo-data-designer,
author = {The NeMo Data Designer Team, NVIDIA},
title = {NeMo Data Designer: A framework for generating synthetic data from scratch or based on your own seed data},
howpublished = {\url{https://github.com/NVIDIA-NeMo/DataDesigner}},
year = 2026,
note = {GitHub Repository},
}
💡 About NeMo Data Designer
NeMo Data Designer is a general framework for generating high-quality synthetic data that goes beyond simple LLM prompting. It provides:
- Diverse data generation using statistical samplers, LLMs, or existing seed datasets
- Relationship control between fields with dependency-aware generation
- Quality validation with built-in Python, SQL, and custom local and remote validators
- LLM-as-a-judge scoring for quality assessment
- Fast iteration with preview mode before full-scale generation
For more information, visit: https://github.com/NVIDIA-NeMo/DataDesigner (pip install data-designer)
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