prismAId
Enables the use of Google AI's Gemini models (1.5, 2.0, 2.5, 3) to power AI-based screening and analysis of scientific literature.
Enables the use of OpenAI's language models (GPT-4, GPT-4o, GPT-5, o1, o3) to power AI-based screening and analysis of scientific literature.
Enables the use of Perplexity's Sonar models (including Pro and Reasoning variants) to power AI-based screening and analysis of scientific literature.
Provides tools for importing and downloading papers from Zotero collections into the systematic review workflow.
Click on "Install Server".
Wait a few minutes for the server to deploy. Once ready, it will show a "Started" state.
In the chat, type
@followed by the MCP server name and your instructions, e.g., "@prismAIdScreen and download papers for my systematic review"
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Here is a step-by-step guide with screenshots.
prismAId
Open Science AI Tools for Systematic, Protocol-Based Literature Reviews
prismAId offers a suite of tools using generative AI models to streamline systematic reviews of scientific literature.
It provides simple-to-use, efficient, and replicable methods for screening and analyzing research papers with no coding skills required.
Toolkit Overview
prismAId offers a comprehensive set of tools for systematic literature reviews:
Core Tools
Screening - Filter and tag manuscripts to identify items for exclusion
Download - Download papers from Zotero collections or from URL lists
Convert - Convert files (PDF, DOCX, HTML) to plain text for analysis
Review - Process systematic literature reviews based on TOML configurations
RevAIse documentation support - Optionally document review stages as RevAIse review records
Workflow
Our tools support a comprehensive systematic review workflow following the standard sequence: Search → Screen → Download → Convert → Review. RevAIse support can document Zotero download, screening, and review/extraction stages in one cumulative review record.
Access Methods
AI agents via the MCP server - A main entry point: connect an AI assistant to the prismAId MCP server and drive every tool in conversation
Command Line Interface - For users who prefer terminal-based workflows
Web Initializer - A browser-based setup tool for configuring reviews
Programming Libraries - API access through multiple languages:
Go (native implementation)
Python package
R package
Julia package
Related MCP server: pubmed-search-mcp
Specifications
Review protocol: Supports any literature review protocol with a preference for PRISMA 2020, which inspired our project name.
Review documentation: Optional RevAIse review-record support with cumulative updates and automatic backups; see the RevAIse integration guide.
Protocol conformance: Check RevAIse review records against reporting protocols such as PRISMA 2020, and get a protocol's full requirement checklist, using the SHACL shapes published by RevAIse; see the conformance and guidance docs.
Distribution: Available as:
Supported LLMs:
OpenAI: GPT-3.5 Turbo, GPT-4 Turbo, GPT-4o, GPT-4o Mini, GPT-4.1, GPT-4.1 Mini, GPT-4.1 Nano, GPT-5, GPT-5.1, GPT-5.2, GPT-5 Mini, GPT-5 Nano, o1, o1 Mini, o3, o3 Mini, and o4 Mini
GoogleAI: Gemini 1.5 Pro, Gemini 1.5 Flash, Gemini 2.0 Flash, Gemini 2.0 Flash Lite, Gemini 2.5 Pro, Gemini 2.5 Flash, Gemini 2.5 Flash Lite, Gemini 3 Pro Preview, and Gemini 3 Flash Preview
Cohere: Command, Command Light, Command R, Command R+, Command R7B, Command R (August 2024), Command A, and Command A Reasoning
Anthropic: Claude 3 Sonnet, Claude 3 Opus, Claude 3 Haiku, Claude 3.5 Haiku, Claude 3.5 Sonnet, Claude 3.7 Sonnet, Claude 4.0 Sonnet, Claude 4.0 Opus, Claude 4.5 Opus, Claude 4.5 Sonnet, and Claude 4.5 Haiku
DeepSeek: DeepSeek Chat v3, and DeepSeek Reasoner v3
Perplexity: Sonar, Sonar Pro, Sonar Reasoning Pro, and Sonar Deep Research
Cloud Providers: AWS Bedrock, Azure AI, Vertex AI
Self-Hosted: OpenAI-compatible endpoints
Screening capabilities: Deduplication, language filtering, article type classification, and off-topic detection
Output format: Data in CSV or JSON formats
Performance: Efficiently processes extensive datasets with minimal setup and no coding required
Programming Language: Core implementation in Go with bindings for Python, R, and Julia
Documentation
All information on installation, usage, and development is available at prismaid.review and in the prismAId User Manual.
Credits
Authors
Riccardo Boero - ribo@nilu.no
Acknowledgments
This project was initiated with the generous support of a SIS internal project from NILU. Their support was crucial in starting this research and development effort. Further, acknowledgment is due for the research credits received from the OpenAI Researcher Access Program and the Cohere For AI Research Grant Program, both of which have significantly contributed to the advancement of this work.
License
GNU AFFERO GENERAL PUBLIC LICENSE, Version 3

Contributing
Contributions are welcome! Please follow guidelines at https://github.com/open-and-sustainable/prismaid?tab=contributing-ov-file.
Citation
Boero, R. (2024). prismAId - Open Science AI Tools for Systematic, Protocol-Based Literature Reviews. Zenodo. DOI: 10.5281/zenodo.11210796
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