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Binary Mechanisms under Privacy-Preserving Noise

Farzad Pourbabaee and Federico Echenique

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Abstract: We study mechanism design for public-good provision under a noisy privacy-preserving transformation of individual agents' reported preferences. The setting is a standard binary model with transfers and quasi-linear utility. Agents report their preferences for the public good, which are randomly ``flipped,'' so that any individual report may be explained away as the outcome of noise. We study the tradeoffs between preserving the public decisions made in the presence of noise (noise sensitivity), pursuing efficiency, and mitigating the effect of noise on revenue.

Date: 2023-01, Revised 2024-05
New Economics Papers: this item is included in nep-des, nep-gth and nep-mic
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