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Not obviously manipulable allotment rules

Author

Listed:
  • R. Pablo Arribillaga

    (Universidad Nacional de San Luis)

  • Agustín G. Bonifacio

    (Universidad Nacional de San Luis)

Abstract

In the problem of allocating a single non-disposable commodity among agents whose preferences are single-peaked, we study a weakening of strategy-proofness called not obvious manipulability (NOM). If agents are cognitively limited, then NOM is sufficient to describe their strategic behavior. We characterize a large family of own-peak-only rules that satisfy efficiency, NOM, and a minimal fairness condition. We call these rules "simple". In economies with excess demand, simple rules fully satiate agents whose peak amount is less than or equal to equal division and assign, to each remaining agent, an amount between equal division and his peak. In economies with excess supply, simple rules are defined symmetrically. These rules can be thought of as a two-step procedure that involves solving a claims problem. We also show that the single-plateaued domain is maximal for the characterizing properties of simple rules. Therefore, even though replacing strategy-proofness with NOM greatly expands the family of admissible rules, the maximal domain of preferences involved remains basically unaltered.

Suggested Citation

  • R. Pablo Arribillaga & Agustín G. Bonifacio, 2025. "Not obviously manipulable allotment rules," Economic Theory, Springer;Society for the Advancement of Economic Theory (SAET), vol. 80(1), pages 355-380, August.
  • Handle: RePEc:spr:joecth:v:80:y:2025:i:1:d:10.1007_s00199-024-01633-1
    DOI: 10.1007/s00199-024-01633-1
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    More about this item

    Keywords

    Obvious manipulations; Allotment rules; Maximal domain; Single-peaked preferences; Single-plateaued preferences;
    All these keywords.

    JEL classification:

    • D70 - Microeconomics - - Analysis of Collective Decision-Making - - - General
    • D82 - Microeconomics - - Information, Knowledge, and Uncertainty - - - Asymmetric and Private Information; Mechanism Design

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