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Clustered Switchback Designs for Experimentation Under Spatio-temporal Interference

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arxiv 2312.15574 v5 pith:NDOVUIE3 submitted 2023-12-25 math.ST cs.LGstat.TH

classification math.STcs.LGstat.TH
keywords interferencetreatmentunderaveragecitetclustereddescribeddesign
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abstract

We consider experimentation in the presence of non-stationarity, inter-unit (spatial) interference, and carry-over effects (temporal interference), where we wish to estimate the global average treatment effect (GATE), the difference between average outcomes having exposed all units at all times to treatment or to control. We suppose spatial interference is described by a graph, where a unit's outcome depends on its neighborhood's treatments, and that temporal interference is described by an MDP, where the transition kernel under either treatment (action) satisfies a rapid mixing condition. We propose a clustered switchback design, where units are grouped into clusters and time steps are grouped into blocks, and each whole cluster-block combination is assigned a single random treatment. Under this design, we show that for graphs that admit good clustering, a truncated Horvitz-Thompson estimator achieves a $\tilde O(1/NT)$ mean squared error (MSE), matching the lower bound up to logarithmic terms for sparse graphs. Our results simultaneously generalize the results from \citet{hu2022switchback,ugander2013graph} and \citet{leung2022rate}. Simulation studies validate the favorable performance of our approach.

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Cited by 3 Pith papers

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

  1. Balancing Interference and Correlation in Spatial Experimental Designs: A Causal Graph Cut Approach

    cs.LG 2025-05 conditional novelty 7.0 of 10

    A surrogate for the ATE estimator's MSE is optimized with spectral graph cuts to produce cluster-randomized designs that adapt to the spatial covariance and accommodate moderate-to-large interference.

  2. Calibrated Horizon-Weighted Local Projection Designs for Markov Switchbacks

    stat.ME 2026-07 conditional novelty 6.0 of 10

    Optimal Markov switchback persistence for a horizon-weighted local-projection target has a closed form under a balanced homoskedastic AR(1) assignment benchmark, and field designs should replace that formula with cali...

  3. Robust and efficient multiple-unit switchback experimentation

    stat.ME 2025-06 conditional novelty 6.0 of 10

    Regular Balanced Switchback Designs combine item- and time-randomization with balanced treatment counts, yielding unbiased, lower-variance estimates of average treatment effects that are robust to carryover effects.

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