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🕸 Ethereum Transaction Graph Dataset (GNN)

This dataset represents Ethereum transactions as edges between addresses.
It is designed for Graph Neural Networks (GNN), both static embeddings and temporal graph learning.
The dataset contains 2-hop graphs, i.e., it includes neighbors of neighbors for each address.


📑 Contents

  • edges_all/edges.parquet — all transactions (full edge list).
  • edges_by_week/week=YYYY-Www/edges.parquet — weekly slices.
  • edges_by_month/month=YYYY-MM/edges.parquet — monthly slices.
  • meta/{week,month}_window_meta.parquet — time window ranges and statistics.
  • labels/targets_global.parquet — labeled addresses (node_id, is_scam, is_contract, address).
  • mapping/address_id_map_labels.parquet(address, node_id) mapping.
  • targets/{week,month}_targets.parquet — labeled nodes active in each window.

🔑 Edge Schema

Field Type Units Description
src_id UInt64 Source node ID (hash of lowercase Ethereum address).
dst_id UInt64 Destination node ID (hash of lowercase Ethereum address).
ts Int64 seconds Unix timestamp of the transaction (UTC).
value_wei STRING wei Transaction value in wei (exact decimal stored as string).
tx_fee_wei STRING wei Transaction fee in wei (exact decimal stored as string).
block_number Int64 block Ethereum block number of the transaction.
contract_creation Bool True if transaction created a smart contract.
tx_hash STRING hex Unique transaction hash.

Notes

  • Transactions are not filtered: all edges included.
  • Supervision: loss computed only on labeled addresses.
  • Dynamic GNN: use edges_by_week/ or edges_by_month/.
  • Static embeddings: use edges_all/edges.parquet.