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Synthetically Controlled Bandits

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arxiv 2202.07079 v1 pith:DY3UPILR submitted 2022-02-14 stat.ML cs.LG

classification stat.MLcs.LG
keywords approachregretcontrolleddesignexperimentalexperimentationexperimentssettings
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This paper presents a new dynamic approach to experiment design in settings where, due to interference or other concerns, experimental units are coarse. `Region-split' experiments on online platforms are one example of such a setting. The cost, or regret, of experimentation is a natural concern here. Our new design, dubbed Synthetically Controlled Thompson Sampling (SCTS), minimizes the regret associated with experimentation at no practically meaningful loss to inferential ability. We provide theoretical guarantees characterizing the near-optimal regret of our approach, and the error rates achieved by the corresponding treatment effect estimator. Experiments on synthetic and real world data highlight the merits of our approach relative to both fixed and `switchback' designs common to such experimental settings.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Short-Term Pain for Long-Term Gain: Adaptive Experiment with Post-Commitment Reward Shift

    cs.LG 2026-07 accept novelty 6.0 of 10

    RAEC’s predetermined reserved exploration achieves matching minimax regret for post-commitment reward-shift bandits across short-experiment, balanced, and short-commitment regimes.

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