Forging Self-Funded Marketplaces among Strategic Agents

📅 2026-08-14
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🤖 AI Summary
This study addresses the inherent challenge of simultaneously achieving budget balance and value maximization in self-financing markets under private information. We propose a sequential auction mechanism alongside a maximin share (MMS) benchmark. Our theoretical analysis demonstrates that no optimal benchmark can achieve bounded approximation; consequently, we design a sequential auction scheme satisfying subgame perfect equilibrium. This mechanism effectively ensures budget balance in environments with strategic agents while providing logarithmic and constant-factor approximation guarantees. These findings offer novel theoretical foundations and practical solutions for mechanism design in self-financing markets, resolving key trade-offs between incentive compatibility and economic efficiency under informational asymmetry.
📝 Abstract
We introduce the problem of designing mechanisms that incentivize strategic agents to form self-funded marketplaces. In our model, if agent $i$ exerts effort $x_i\in [0,1]$, they incur a cost of $x_i\cdot c_i$ (where $c_i$ is unknown to the mechanism designer) and they generate revenue $x_i\cdot r_i$; crucially, $c_i$ can be greater or smaller than $r_i$. Each effort profile $\mathbf{x}$ yields value $v(\mathbf{x})$ and the objective is to choose an effort vector that maximizes the value while ensuring that every agent $i$ receives a payment $p_i\geq x_i\cdot c_i$ and that $\mathbf{x}$ is budget-balanced, i.e., $\sum_{i} p_i \leq \sum_{i} x_i\cdot r_i$. This problem generalizes the well-studied budget-feasible mechanism design problem, where the requirement is that $\sum_{i} p_i \leq B$ for some predetermined budget $B$. To evaluate the performance of such mechanisms, we first consider the first-best benchmark (the optimal value achievable in the absence of any private information) and show that no truthful auction can achieve a bounded approximation of this benchmark. Also, even in restricted settings, no auction can achieve better than a logarithmic approximation. We complement these results by proposing a class of sequential auctions whose subgame perfect equilibria guarantee a logarithmic approximation of this benchmark. We then introduce an alternative benchmark, the maximin share (MMS), that better captures the thickness of the market and we provide an auction whose subgame perfect equilibria achieve a constant approximation of this benchmark.
Problem

Research questions and friction points this paper is trying to address.

Self-Funded Marketplaces
Mechanism Design
Strategic Agents
Budget-Balanced
Private Information
Innovation

Methods, ideas, or system contributions that make the work stand out.

Self-Funded Marketplaces
Sequential Auctions
Maximin Share
Budget-Balanced Mechanism
Subgame Perfect Equilibrium
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