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--- |
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language: |
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- en |
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license: apache-2.0 |
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tags: |
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- nist-csf |
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- grc |
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- cybersecurity |
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- compliance |
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- policy |
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- qna |
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task_categories: |
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- text-generation |
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pretty_name: GRC NIST CSF 2.0 QA Dataset (v1) |
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configs: |
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- config_name: alpaca |
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data_files: nist_csf2_qa_alpaca.jsonl |
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- config_name: chatml |
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data_files: nist_csf2_qa_chat.jsonl |
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--- |
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# Dataset Card for GRC NIST CSF 2.0 QA Dataset (v1) |
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This dataset contains **question–answer and dialogue pairs** based on the **NIST Cybersecurity Framework (CSF) 2.0**. |
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It is intended for training large language models to provide **Governance, Risk, and Compliance (GRC)** guidance. |
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--- |
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## Dataset Details |
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### Dataset Description |
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- **Curated by:** Independent GRCora Project (educational initiative) |
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- **Funded by [optional]:** None |
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- **Shared by [optional]:** zeezhu (Hugging Face username) |
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- **Language(s) (NLP):** English |
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- **License:** Apache-2.0 (permissive, allows reuse with attribution) |
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### Dataset Sources |
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- **Repository:** https://huggingface.co/datasets/zeezhu/grc-nist-csf2-qa-v1 |
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- **Paper [optional]:** NIST CSF 2.0 (official source: https://www.nist.gov/cyberframework) |
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- **Demo [optional]:** None yet |
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--- |
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## Uses |
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### Direct Use |
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- Fine-tuning instruction-following models (e.g., LLaMA, Mistral, Qwen). |
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- Training chat assistants for cybersecurity and compliance. |
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- Educational tools for NGOs, SMEs, and consultants who need simplified NIST CSF guidance. |
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### Out-of-Scope Use |
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- **Not** a replacement for legal, regulatory, or compliance advice. |
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- **Not** suitable as the only source for enterprise risk assessments. |
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- Should not be used for critical decision-making without human review. |
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--- |
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## Dataset Structure |
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- **alpaca.jsonl**: Instruction–input–output triples. |
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- Fields: |
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- `instruction` (string) |
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- `input` (string, optional) |
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- `output` (string) |
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- **chatml.jsonl**: Chat-formatted dialogues. |
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- Fields: |
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- `messages`: list of objects with `role` (`system`, `user`, `assistant`) and `content` (string). |
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- **Splits**: Current version contains a single combined dataset (~3,300 records). Users may create `train/validation/test` splits using random sampling or Unsloth utilities. |
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--- |
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## Dataset Creation |
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### Curation Rationale |
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Created to provide **structured Q&A data** around the NIST CSF 2.0 framework, enabling AI models to learn compliance concepts in an approachable format. |
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### Source Data |
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#### Data Collection and Processing |
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- Extracted from NIST CSF 2.0 JSON exports. |
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- Reformatted into Alpaca and ChatML formats for model fine-tuning. |
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- Quality checks: ensured valid JSONL (UTF-8), removed empty or duplicate entries. |
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#### Who are the source data producers? |
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- Primary source: NIST (official CSF 2.0 framework text). |
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- Reformatted and curated by the GRCora Project team. |
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### Annotations |
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- No manual human annotations; transformation was automated. |
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#### Personal and Sensitive Information |
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- Dataset **does not contain personal, sensitive, or private data**. |
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- Content is limited to framework descriptions and compliance Q&A. |
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--- |
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## Bias, Risks, and Limitations |
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- **Bias**: Only covers NIST CSF 2.0; does not reflect other frameworks equally (e.g., ISO 27001, SOC 2). |
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- **Risk**: Users may mistake generated answers as authoritative compliance advice. |
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- **Limitations**: Simplified responses may not capture full legal/regulatory complexity. |
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### Recommendations |
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- Use as **training/evaluation data**, not as a compliance checklist. |
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- Pair with domain expert review for production use. |
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--- |
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## Citation |
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**BibTeX:** |
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```bibtex |
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@misc{grc_nist_csf2_qa, |
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title = {GRC NIST CSF 2.0 QA Dataset (v1)}, |
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author = {A.O.A}, |
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year = {2025}, |
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howpublished = {Hugging Face Datasets}, |
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url = {https://huggingface.co/datasets/zeezhu/grc-nist-csf2-qa-v1} |
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} |
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APA: |
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A.O.A. (2025). GRC NIST CSF 2.0 QA Dataset (v1) [Dataset]. Hugging Face. https://huggingface.co/datasets/zeezhu/grc-nist-csf2-qa-v1 |
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Glossary |
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NIST CSF 2.0: National Institute of Standards and Technology Cybersecurity Framework, version 2.0. |
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GRC: Governance, Risk, and Compliance. |
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Alpaca format: Instruction–input–output JSONL structure used in fine-tuning. |
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ChatML: Chat-format schema for conversational AI training. |
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More Information |
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NIST CSF 2.0 official page: https://www.nist.gov/cyberframework |
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Dataset curated as part of GRCora (AI-driven GRC SaaS project). |
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Dataset Card Authors |
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A.O.A (curator, dataset creator) |
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Dataset Card Contact |
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Hugging Face: https://huggingface.co/zeezhu |