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    Mcp Dblp

    A Model Context Protocol (MCP) server that provides access to the DBLP computer science bibliography database for Large Language Models.

    13 stars
    Python
    Updated Oct 3, 2025

    Table of Contents

    • Overview
    • Features
    • Available Tools
    • Feedback
    • System Requirements
    • Installation
    • Claude Code
    • Claude Desktop
    • From Source (Development)
    • Instructions
    • Tool Details
    • search
    • fuzzy_title_search
    • get_author_publications
    • get_venue_info
    • calculate_statistics
    • add_bibtex_entry
    • export_bibtex
    • Example
    • Input text:
    • Output text:
    • Output Bibtex
    • Disclaimer
    • License

    Table of Contents

    • Overview
    • Features
    • Available Tools
    • Feedback
    • System Requirements
    • Installation
    • Claude Code
    • Claude Desktop
    • From Source (Development)
    • Instructions
    • Tool Details
    • search
    • fuzzy_title_search
    • get_author_publications
    • get_venue_info
    • calculate_statistics
    • add_bibtex_entry
    • export_bibtex
    • Example
    • Input text:
    • Output text:
    • Output Bibtex
    • Disclaimer
    • License

    Documentation

    MCP-DBLP

    MCP Compatible License: MIT Python Version

    A Model Context Protocol (MCP) server that provides access to the DBLP computer science bibliography database for Large Language Models (accompanying paper accepted to AI4SC @ AAAI-26).

    ------

    Overview

    The MCP-DBLP integrates the DBLP (Digital Bibliography & Library Project) API with LLMs through the Model Context Protocol, enabling AI models to:

    • Search and retrieve academic publications from the DBLP database
    • Process citations and generate BibTeX entries
    • Perform fuzzy matching on publication titles and author names
    • Extract and format bibliographic information
    • Process embedded references in documents
    • Direct BibTeX export that bypasses LLM processing for maximum accuracy

    Features

    • Comprehensive search capabilities with boolean queries
    • Fuzzy title and author name matching
    • BibTeX entry retrieval directly from DBLP
    • Publication filtering by year and venue
    • Statistical analysis of publication data
    • Direct BibTeX export capability that bypasses LLM processing for maximum accuracy

    Available Tools

    Tool NameDescription
    get_instructionsGet usage instructions and workflow guidance
    searchSearch DBLP for publications using boolean queries
    fuzzy_title_searchSearch publications with fuzzy title matching
    get_author_publicationsRetrieve publications for a specific author
    get_venue_infoGet detailed information about a publication venue
    calculate_statisticsGenerate statistics from publication results
    add_bibtex_entryAdd a BibTeX entry to collection by DBLP key
    export_bibtexExport all collected BibTeX entries to a .bib file

    Feedback

    Provide feedback to the author via this form.

    System Requirements

    • Python 3.11+
    • uv

    ------

    Installation

    Claude Code

    Simply run:

    bash
    claude mcp add mcp-dblp -- uvx mcp-dblp

    Claude Desktop

    Add to your Claude Desktop configuration file:

    • macOS/Linux: ~/Library/Application Support/Claude/claude_desktop_config.json
    • Windows: %APPDATA%\Claude\claude_desktop_config.json
    json
    {
      "mcpServers": {
        "mcp-dblp": {
          "command": "uvx",
          "args": ["mcp-dblp"]
        }
      }
    }

    From Source (Development)

    bash
    git clone https://github.com/szeider/mcp-dblp.git
    cd mcp-dblp
    uv venv && source .venv/bin/activate
    uv pip install -e .

    Then configure Claude Desktop with:

    json
    {
      "mcpServers": {
        "mcp-dblp": {
          "command": "uv",
          "args": ["--directory", "/path/to/mcp-dblp/", "run", "mcp-dblp"]
        }
      }
    }

    ------

    Instructions

    Usage instructions are available via the get_instructions tool. Key workflow points are shown in the tool description; call the tool for complete details. See also instructions_prompt.md.

    Tool Details

    search

    Search DBLP for publications using a boolean query string.

    Parameters:

    • query (string, required): A query string that may include boolean operators 'and' and 'or' (case-insensitive)
    • max_results (number, optional): Maximum number of publications to return. Default is 10
    • year_from (number, optional): Lower bound for publication year
    • year_to (number, optional): Upper bound for publication year
    • venue_filter (string, optional): Case-insensitive substring filter for publication venues (e.g., 'iclr')
    • include_bibtex (boolean, optional): Whether to include BibTeX entries in the results. Default is false

    fuzzy_title_search

    Search DBLP for publications with fuzzy title matching.

    Parameters:

    • title (string, required): Full or partial title of the publication (case-insensitive)
    • similarity_threshold (number, required): A float between 0 and 1 where 1.0 means an exact match
    • max_results (number, optional): Maximum number of publications to return. Default is 10
    • year_from (number, optional): Lower bound for publication year
    • year_to (number, optional): Upper bound for publication year
    • venue_filter (string, optional): Case-insensitive substring filter for publication venues
    • include_bibtex (boolean, optional): Whether to include BibTeX entries in the results. Default is false

    get_author_publications

    Retrieve publication details for a specific author with fuzzy matching.

    Parameters:

    • author_name (string, required): Full or partial author name (case-insensitive)
    • similarity_threshold (number, required): A float between 0 and 1 where 1.0 means an exact match
    • max_results (number, optional): Maximum number of publications to return. Default is 20
    • include_bibtex (boolean, optional): Whether to include BibTeX entries in the results. Default is false

    get_venue_info

    Retrieve detailed information about a publication venue.

    Parameters:

    • venue_name (string, required): Venue name or abbreviation (e.g., 'ICLR' or full name)

    calculate_statistics

    Calculate statistics from a list of publication results.

    Parameters:

    • results (array, required): An array of publication objects, each with at least 'title', 'authors', 'venue', and 'year'

    add_bibtex_entry

    Add a BibTeX entry to the collection for later export.

    Parameters:

    • dblp_key (string, required): The DBLP key from search results (e.g., "conf/nips/VaswaniSPUJGKP17")
    • citation_key (string, required): The citation key to use in the .bib file (e.g., "Vaswani2017")

    Behavior:

    • Fetches BibTeX entry directly from DBLP using the provided key
    • Replaces the citation key with your custom key
    • Adds to session collection (duplicate keys are overwritten)
    • Returns immediate success/failure feedback with collection count
    • Allows retry of individual failed entries

    export_bibtex

    Export all collected BibTeX entries to a .bib file.

    Parameters:

    • path (string, required): Absolute path for the .bib file (e.g., "/path/to/refs.bib")

    Behavior:

    • Saves all entries added via add_bibtex_entry to the specified path
    • The .bib extension is added automatically if missing
    • Parent directories are created if needed
    • Clears the collection after successful export
    • Returns the full path to the saved file
    • Returns error if collection is empty

    Important Note: The BibTeX entries are fetched directly from DBLP with a 10-second timeout protection and are not processed, modified, or hallucinated by the LLM. This ensures maximum accuracy and trustworthiness of the bibliographic data. Only the citation keys are modified as specified. If a request times out, an error message is returned and the entry is not added to the collection.

    ------

    Example

    Input text:

    Our exploration focuses on two types of explanation problems, abductive and contrastive, in local and global contexts (Marques-Silva 2023). Abductive explanations (Ignatiev, Narodytska, and Marques-Silva 2019), corresponding to prime-implicant explanations (Shih, Choi, and Darwiche 2018) and sufficient reason explanations (Darwiche and Ji 2022), clarify specific decision-making instances, while contrastive explanations (Miller 2019; Ignatiev et al. 2020), corresponding to necessary reason explanations (Darwiche and Ji 2022), make explicit the reasons behind the non-selection of alternatives. Conversely, global explanations (Ribeiro, Singh, and Guestrin 2016; Ignatiev, Narodytska, and Marques-Silva 2019) aim to unravel models' decision patterns across various inputs.

    Output text:

    Our exploration focuses on two types of explanation problems, abductive and contrastive, in local and global contexts \cite{MarquesSilvaI23}. Abductive explanations \cite{IgnatievNM19}, corresponding to prime-implicant explanations \cite{ShihCD18} and sufficient reason explanations \cite{DarwicheJ22}, clarify specific decision-making instances, while contrastive explanations \cite{Miller19}; \cite{IgnatievNA020}, corresponding to necessary reason explanations \cite{DarwicheJ22}, make explicit the reasons behind the non-selection of alternatives. Conversely, global explanations \cite{Ribeiro0G16}; \cite{IgnatievNM19} aim to unravel models' decision patterns across various inputs.

    Output Bibtex

    All references have been successfully exported to a BibTeX file at: /absolute/path/to/bibtex/20250305_231431.bib

    code
    @article{MarquesSilvaI23,
     author       = {Jo{\~{a}}o Marques{-}Silva and
                     Alexey Ignatiev},
     title        = {No silver bullet: interpretable {ML} models must be explained},
     journal      = {Frontiers Artif. Intell.},
     volume       = {6},
     year         = {2023},
     url          = {https://doi.org/10.3389/frai.2023.1128212},
     doi          = {10.3389/FRAI.2023.1128212},
     timestamp    = {Tue, 07 May 2024 20:23:47 +0200},
     biburl       = {https://dblp.org/rec/journals/frai/MarquesSilvaI23.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }
    
    @inproceedings{IgnatievNM19,
     author       = {Alexey Ignatiev and
                     Nina Narodytska and
                     Jo{\~{a}}o Marques{-}Silva},
     title        = {Abduction-Based Explanations for Machine Learning Models},
     booktitle    = {The Thirty-Third {AAAI} Conference on Artificial Intelligence, {AAAI}
                     2019, The Thirty-First Innovative Applications of Artificial Intelligence
                     Conference, {IAAI} 2019, The Ninth {AAAI} Symposium on Educational
                     Advances in Artificial Intelligence, {EAAI} 2019, Honolulu, Hawaii,
                     USA, January 27 - February 1, 2019},
     pages        = {1511--1519},
     publisher    = {{AAAI} Press},
     year         = {2019},
     url          = {https://doi.org/10.1609/aaai.v33i01.33011511},
     doi          = {10.1609/AAAI.V33I01.33011511},
     timestamp    = {Mon, 04 Sep 2023 12:29:24 +0200},
     biburl       = {https://dblp.org/rec/conf/aaai/IgnatievNM19.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }
    
    @inproceedings{ShihCD18,
     author       = {Andy Shih and
                     Arthur Choi and
                     Adnan Darwiche},
     editor       = {J{\'{e}}r{\^{o}}me Lang},
     title        = {A Symbolic Approach to Explaining Bayesian Network Classifiers},
     booktitle    = {Proceedings of the Twenty-Seventh International Joint Conference on
                     Artificial Intelligence, {IJCAI} 2018, July 13-19, 2018, Stockholm,
                     Sweden},
     pages        = {5103--5111},
     publisher    = {ijcai.org},
     year         = {2018},
     url          = {https://doi.org/10.24963/ijcai.2018/708},
     doi          = {10.24963/IJCAI.2018/708},
     timestamp    = {Tue, 20 Aug 2019 16:19:08 +0200},
     biburl       = {https://dblp.org/rec/conf/ijcai/ShihCD18.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }
    
    @inproceedings{DarwicheJ22,
     author       = {Adnan Darwiche and
                     Chunxi Ji},
     title        = {On the Computation of Necessary and Sufficient Explanations},
     booktitle    = {Thirty-Sixth {AAAI} Conference on Artificial Intelligence, {AAAI}
                     2022, Thirty-Fourth Conference on Innovative Applications of Artificial
                     Intelligence, {IAAI} 2022, The Twelveth Symposium on Educational Advances
                     in Artificial Intelligence, {EAAI} 2022 Virtual Event, February 22
                     - March 1, 2022},
     pages        = {5582--5591},
     publisher    = {{AAAI} Press},
     year         = {2022},
     url          = {https://doi.org/10.1609/aaai.v36i5.20498},
     doi          = {10.1609/AAAI.V36I5.20498},
     timestamp    = {Mon, 04 Sep 2023 16:50:24 +0200},
     biburl       = {https://dblp.org/rec/conf/aaai/DarwicheJ22.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }
    
    @article{Miller19,
     author       = {Tim Miller},
     title        = {Explanation in artificial intelligence: Insights from the social sciences},
     journal      = {Artif. Intell.},
     volume       = {267},
     pages        = {1--38},
     year         = {2019},
     url          = {https://doi.org/10.1016/j.artint.2018.07.007},
     doi          = {10.1016/J.ARTINT.2018.07.007},
     timestamp    = {Thu, 25 May 2023 12:52:41 +0200},
     biburl       = {https://dblp.org/rec/journals/ai/Miller19.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }
    
    @inproceedings{IgnatievNA020,
     author       = {Alexey Ignatiev and
                     Nina Narodytska and
                     Nicholas Asher and
                     Jo{\~{a}}o Marques{-}Silva},
     editor       = {Matteo Baldoni and
                     Stefania Bandini},
     title        = {From Contrastive to Abductive Explanations and Back Again},
     booktitle    = {AIxIA 2020 - Advances in Artificial Intelligence - XIXth International
                     Conference of the Italian Association for Artificial Intelligence,
                     Virtual Event, November 25-27, 2020, Revised Selected Papers},
     series       = {Lecture Notes in Computer Science},
     volume       = {12414},
     pages        = {335--355},
     publisher    = {Springer},
     year         = {2020},
     url          = {https://doi.org/10.1007/978-3-030-77091-4\_21},
     doi          = {10.1007/978-3-030-77091-4\_21},
     timestamp    = {Tue, 15 Jun 2021 17:23:54 +0200},
     biburl       = {https://dblp.org/rec/conf/aiia/IgnatievNA020.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }
    
    @inproceedings{Ribeiro0G16,
     author       = {Marco T{\'{u}}lio Ribeiro and
                     Sameer Singh and
                     Carlos Guestrin},
     editor       = {Balaji Krishnapuram and
                     Mohak Shah and
                     Alexander J. Smola and
                     Charu C. Aggarwal and
                     Dou Shen and
                     Rajeev Rastogi},
     title        = {"Why Should {I} Trust You?": Explaining the Predictions of Any Classifier},
     booktitle    = {Proceedings of the 22nd {ACM} {SIGKDD} International Conference on
                     Knowledge Discovery and Data Mining, San Francisco, CA, USA, August
                     13-17, 2016},
     pages        = {1135--1144},
     publisher    = {{ACM}},
     year         = {2016},
     url          = {https://doi.org/10.1145/2939672.2939778},
     doi          = {10.1145/2939672.2939778},
     timestamp    = {Fri, 25 Dec 2020 01:14:16 +0100},
     biburl       = {https://dblp.org/rec/conf/kdd/Ribeiro0G16.bib},
     bibsource    = {dblp computer science bibliography, https://dblp.org}
    }

    ------

    Disclaimer

    This MCP-DBLP is in its prototype stage and should be used with caution. Users are encouraged to experiment, but any use in critical environments is at their own risk.

    ------

    License

    This project is licensed under the MIT License - see the LICENSE file for details.

    ------

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