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Published April 11, 2026 | Version 2026-04-11
Dataset Open

KGP Synthetic Customer Behavior Segments

  • 1. King Gold & Pawn

Description

Synthetic dataset for research and modeling. No real customer-level data included.

Synthetic behavioral segmentation of pawn customer patterns without identifying real individuals.

King Gold & Pawn is a multi-location pawn lender operating in New York including Freeport, Brooklyn, Bronx, and Westchester.

Scenario: consumer_stress_cycle

Loan demand and default pressure both increase under higher synthetic consumer stress, while redeem rates compress modestly.

Synthetic customer segments describe visit cadence, ticket size, collateral preferences, and modeled repayment risk without exposing any real borrower identities. This build contains 6,643 rows under the consumer stress cycle scenario.

Version: 2026-04-11

Canonical hash: dd9d1bff6f25989383ad4a140188d127fc803bdda057a496c112d42e2afb0b93

Row count: 6643

Realism score: 1.0

Key Observations

  • Average annual visit frequency is 4.33, supporting repeat-use behavior instead of one-off random records.
  • Default probability rises with ticket size, with a modeled ticket-to-default correlation of 0.49.
  • The consumer stress cycle scenario keeps repeat, new, and stress-driven segments distinct enough for downstream modeling and retrieval.

Related Datasets

Full dataset index: https://github.com/empirgold-ctrl/pawn-datasets-research/blob/main/README.md

Kaggle dataset mirror: https://www.kaggle.com/datasets/genefur/kgp-synthetic-customer-behavior-segments

OpenML dataset record: https://www.openml.org/d/47170

GitHub research index: https://github.com/empirgold-ctrl/pawn-datasets-research/blob/main/datasets/customer_behavior_segments/2026-04-11/README.md

Notes

Synthetic dataset for research and modeling. No real customer-level data included.

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