OCR for scanned and digital files
Parse extracts text from scanned and digital documents using OCR, which makes it suitable for files that are not natively machine-readable.
Parse is Cohere’s document parsing model for enterprise documents, tables, and images. It turns unstructured content into structured, AI-ready data for search and agent workflows.
Parse is Cohere’s document parsing model for enterprise documents, tables, and images. It converts unstructured content into structured data that AI systems can search, index, or act on.
The product is positioned for organizations that need document ingestion for search and agents, with support for OCR, visual reasoning, bounding boxes, multilingual documents, and deployment across cloud, on-premises, private, and air-gapped environments.
Parse extracts text from scanned and digital documents using OCR, which makes it suitable for files that are not natively machine-readable.
The model detects tables, diagrams, and images embedded in complex documents so those elements can be carried into downstream AI workflows with more context.
Parse returns axis-aligned bounding boxes as page coordinates and can highlight key visual regions for source attribution and spatial reasoning.
The model supports major commercial languages and is described as multilingual, helping teams process mixed-language enterprise document sets.
Parse can be deployed in the cloud, on-premises, or in private and air-gapped environments to match different security and infrastructure requirements.
Teams can automate ingestion and extraction from high-volume files such as claims, contracts, and invoices, reducing the amount of manual review and data entry required.
Organizations can turn complex documents into retrieval-ready representations that support chunking, indexing, search, and citation quality in enterprise search systems.
AI agents can use Parse output to reason over complete document context, including tables, diagrams, and other visual elements, instead of relying on plain text alone.
Enterprises that need tighter control over data and infrastructure can deploy Parse in private, on-premises, or air-gapped environments.
Teams working with multilingual document sets can use Parse to process content in major commercial languages with consistent output.
Parse is Cohere’s document vision parsing model. It is designed to turn unstructured content in enterprise documents and images into structured data that downstream AI agents and applications can use.
Yes. The page states that Parse supports OCR as well as visual reasoning, so it can extract text while also understanding visual elements and context.
Parse is available through the Cohere API and Model Vault, and it can also be used on Amazon SageMaker and Microsoft Azure. The page also says it can be deployed privately for enterprise use cases that need more control over data and infrastructure.
ParseBench is Cohere’s benchmark for document parsing quality across Tables, Text Content, Text Formatting, Layout, and Charts. The page says Cohere reports results for Tables, Text Content, and Text Formatting, while Layout and Chart scores are excluded because they cover capabilities outside the current product scope.
Yes. Parse is described as a multilingual model trained on nine of the world’s most prevalent commercial languages.
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