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Get Started Free →Convert various file formats (PDF, Office documents, images, audio, web content, structured data) to Markdown optimized for LLM processing. Use when converting documents to markdown, extracting text from PDFs/Office files, transcribing audio, performing OCR on images, extracting YouTube transcripts, or processing batches of files. Supports 20+ formats including DOCX, XLSX, PPTX, PDF, HTML, EPUB, CSV, JSON, images with OCR, and audio with transcription.
| Test case | Without → With | Effect | Δ tokens | Δ turns |
|---|---|---|---|---|
| case-08 | ✗→✓ | ▲ Improved | 38% | 0% |
| case-01 | ✗→✓ | ▲ Improved | 5% | 0% |
| case-06 | ✗→✓ | ▲ Improved | 58% | 0% |
| case-07 | ✗→✓ | ▲ Improved | -16% | 0% |
| case-09 | ✗→✓ | ▲ Improved | -6% | 0% |
MarkItDown is a Python utility that converts various file formats into Markdown format, optimized for use with large language models and text analysis pipelines. It preserves document structure (headings, lists, tables, hyperlinks) while producing clean, token-efficient Markdown output.
Use this skill when users request:
Convert Office documents and PDFs to Markdown while preserving structure.
Supported formats:
Basic usage:
pythonfrom markitdown import MarkItDown md = MarkItDown() result = md.convert("document.pdf") print(result.text_content)
Command-line:
bashmarkitdown document.pdf -o output.md
See references/document_conversion.md for detailed documentation on document-specific features.
Extract text from images using OCR and transcribe audio files to text.
Supported formats:
Image with OCR:
pythonfrom markitdown import MarkItDown md = MarkItDown() result = md.convert("image.jpg") print(result.text_content) # Includes EXIF metadata and OCR text
Audio transcription:
pythonresult = md.convert("audio.wav") print(result.text_content) # Transcribed speech
See references/media_processing.md for advanced media handling options.
Convert web-based content and e-books to Markdown.
Supported formats:
YouTube transcript:
pythonfrom markitdown import MarkItDown md = MarkItDown() result = md.convert("https://youtube.com/watch?v=VIDEO_ID") print(result.text_content)
See references/web_content.md for web extraction details.
Convert structured data formats to readable Markdown tables.
Supported formats:
CSV to Markdown table:
pythonfrom markitdown import MarkItDown md = MarkItDown() result = md.convert("data.csv") print(result.text_content) # Formatted as Markdown table
See references/structured_data.md for format-specific options.
Enhance conversion quality with AI-powered features.
Azure Document Intelligence: For enhanced PDF processing with better table extraction and layout analysis:
pythonfrom markitdown import MarkItDown md = MarkItDown(docintel_endpoint="<endpoint>", docintel_key="<key>") result = md.convert("complex.pdf")
LLM-Powered Image Descriptions: Generate detailed image descriptions using GPT-4o:
pythonfrom markitdown import MarkItDown from openai import OpenAI client = OpenAI() md = MarkItDown(llm_client=client, llm_model="gpt-4o") result = md.convert("presentation.pptx") # Images described with LLM
See references/advanced_integrations.md for integration details.
Process multiple files or entire ZIP archives at once.
ZIP file processing:
pythonfrom markitdown import MarkItDown md = MarkItDown() result = md.convert("archive.zip") print(result.text_content) # All files converted and concatenated
Batch script: Use the provided batch processing script for directory conversion:
bashpython scripts/batch_convert.py /path/to/documents /path/to/output
See scripts/batch_convert.py for implementation details.
Full installation (all features):
bashuv pip install 'markitdown[all]'
Modular installation (specific features):
bashuv pip install 'markitdown[pdf]' # PDF support uv pip install 'markitdown[docx]' # Word support uv pip install 'markitdown[pptx]' # PowerPoint support uv pip install 'markitdown[xlsx]' # Excel support uv pip install 'markitdown[audio]' # Audio transcription uv pip install 'markitdown[youtube]' # YouTube transcripts
Requirements:
MarkItDown produces clean, token-efficient Markdown optimized for LLM consumption:
Preparing documents for RAG:
pythonfrom markitdown import MarkItDown md = MarkItDown() # Convert knowledge base documents docs = ["manual.pdf", "guide.docx", "faq.html"] markdown_content = [] for doc in docs: result = md.convert(doc) markdown_content.append(result.text_content) # Now ready for embedding and indexing
Document analysis pipeline:
bash# Convert all PDFs in directory for file in documents/*.pdf; do markitdown "$file" -o "markdown/$(basename "$file" .pdf).md" done
MarkItDown supports extensible plugins for custom conversion logic. Plugins are disabled by default for security:
pythonfrom markitdown import MarkItDown # Enable plugins if needed md = MarkItDown(enable_plugins=True)
This skill includes comprehensive reference documentation for each capability:
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