RFSeek and Ye Shall Find

Fuente: arXiv
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Main Authors: Rotman, Noga H., Ferreira, Tiago, Peleg, Hila, Silberstein, Mark, Silva, Alexandra
Format: Preprint
Published: 2025
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author Rotman, Noga H.
Ferreira, Tiago
Peleg, Hila
Silberstein, Mark
Silva, Alexandra
author_facet Rotman, Noga H.
Ferreira, Tiago
Peleg, Hila
Silberstein, Mark
Silva, Alexandra
contents Requests for Comments (RFCs) are extensive specification documents for network protocols, but their prose-based format and their considerable length often impede precise operational understanding. We present RFSeek, an interactive tool that automatically extracts visual summaries of protocol logic from RFCs. RFSeek leverages large language models (LLMs) to generate provenance-linked, explorable diagrams, surfacing both official state machines and additional logic found only in the RFC text. Compared to existing RFC visualizations, RFSeek's visual summaries are more transparent and easier to audit against their textual source. We showcase the tool's potential through a series of use cases, including guided knowledge extraction and semantic diffing, applied to protocols such as TCP, QUIC, PPTP, and DCCP. In practice, RFSeek not only reconstructs the RFC diagrams included in some specifications, but, more interestingly, also uncovers important logic such as nodes or edges described in the text but missing from those diagrams. RFSeek further derives new visualization diagrams for complex RFCs, with QUIC as a representative case. Our approach, which we term \emph{Summary Visualization}, highlights a promising direction: combining LLMs with formal, user-customized visualizations to enhance protocol comprehension and support robust implementations.
format Preprint
id arxiv_https___arxiv_org_abs_2509_10216
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle RFSeek and Ye Shall Find
Rotman, Noga H.
Ferreira, Tiago
Peleg, Hila
Silberstein, Mark
Silva, Alexandra
Networking and Internet Architecture
Human-Computer Interaction
Machine Learning
Requests for Comments (RFCs) are extensive specification documents for network protocols, but their prose-based format and their considerable length often impede precise operational understanding. We present RFSeek, an interactive tool that automatically extracts visual summaries of protocol logic from RFCs. RFSeek leverages large language models (LLMs) to generate provenance-linked, explorable diagrams, surfacing both official state machines and additional logic found only in the RFC text. Compared to existing RFC visualizations, RFSeek's visual summaries are more transparent and easier to audit against their textual source. We showcase the tool's potential through a series of use cases, including guided knowledge extraction and semantic diffing, applied to protocols such as TCP, QUIC, PPTP, and DCCP. In practice, RFSeek not only reconstructs the RFC diagrams included in some specifications, but, more interestingly, also uncovers important logic such as nodes or edges described in the text but missing from those diagrams. RFSeek further derives new visualization diagrams for complex RFCs, with QUIC as a representative case. Our approach, which we term \emph{Summary Visualization}, highlights a promising direction: combining LLMs with formal, user-customized visualizations to enhance protocol comprehension and support robust implementations.
title RFSeek and Ye Shall Find
topic Networking and Internet Architecture
Human-Computer Interaction
Machine Learning
url https://arxiv.org/abs/2509.10216