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metadata
license: cc-by-sa-4.0
task_categories:
  - text-generation
  - graph-ml
language:
  - en

CTNSG Graph Curriculum Dataset

This dataset contains preprocessed graphs from WebNLG (v3.0), ATOMIC, and Spider. It is explicitly designed for the Canonical Tractable Neuro-Symbolic Generation (CTNSG) framework.

Preprocessing

All raw data has been parsed into continuous node and edge embeddings using sentence-transformers/all-MiniLM-L6-v2. Crucially, the graphs have been mathematically canonicalized using the Reverse Cuthill-McKee (RCM) algorithm. This minimizes the adjacency-matrix bandwidth, ensuring that structurally proximal nodes have nearby indices and breaking node symmetry reproducibly.

Topological Logic

  • ATOMIC events are processed using an Entity Re-use Mechanism to create multi-hop Directed Acyclic Graphs (DAGs) representing deep causal chains.
  • Spider text-to-SQL logic queries are structured into schema DAGs (Tables -> Columns).
  • Arbor TDP: Linear agent traces are evaluated to find independent steps and mapped into true parallel DAGs.
  • SDRT: Discourse parsing maps Elementary Discourse Units (EDUs) connected by rhetorical relations.
  • Verification: SAIGuard multi-agent contagion graphs and Brick Router chat transcripts with Semantic Outlier Detection (SOD) scoring.

Splits

  • WebNLG (v3.0): 13,211 train
  • ATOMIC: 202,271 train (Causal Reasoning)
  • Spider: 7,000 train (SQL Generation)
  • FAAP (Fully Autonomous Atomic Propositions): 6,812 train (Decontextualization)

Privacy & Legal

This dataset complies with the Right to be Forgotten via the CTNSG TRACE module architecture. WebNLG and Spider subsets are provided under CC BY-SA 4.0.