We provide an exact analytical solution of the Nash equilibrium for - price auctions. We also introduce a new type of auction and demonstrate that it has fair solutions other than the second price auctions, therefore paving the way for replacing second price auctions.
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Optimizes bidding strategy for Maker Protocol auctions.
Deep network optimizes ad bidding for first-price auctions.
Efficient algorithms for second-price auctions with action-dependent censoring.
Study proposes a machine learning method for bid shading in first-price auctions.
Study learns optimal bidding strategy in auctions with dynamic values and aggregated feedback.
Optimizes reserve prices for first-price auctions to maximize revenue.
This paper tackles optimal bidding strategies in adversarial first-price auctions.
Many online companies sell advertisement space in second-price auctions with reserve. In this paper, we develop a probabilistic method to learn a profitable strategy to set the reserve price. We use historical auction data with features to fit a predictor of the best reserve price. This problem is delicate - the struct…
Optimistic Mirror Descent framework improves bidding strategies in non-stationary first-price auctions.
Study optimal auction formats for maximizing MEV on Ethereum.
A new RL approach optimizes reserve prices in multi-phase auctions, reducing revenue regret.
Study shows priority access in ELA auctions is less valuable due to volatility risks.
Optimizes web publisher revenues from RTB auctions.
We study revenue optimization learning algorithms for repeated second-price auctions with reserve where a seller interacts with multiple strategic bidders each of which holds a fixed private valuation for a good and seeks to maximize his expected future cumulative discounted surplus. We propose a novel algorithm that h…
Efficient methods estimate bid and value distributions in auctions.
Equity auctions show linear price impact up to a large volume, then non-linear.
In this paper, we study the non-stationary online second price auction problem. We assume that the seller is selling the same type of items in rounds by the second price auction, and she can set the reserve price in each round. In each round, the bidders draw their private values from a joint distribution unknown t…
Ad exchanges use CORP to set reserve prices against strategic buyers.
We investigate contextual online learning with nonparametric (Lipschitz) comparison classes under different assumptions on losses and feedback information. For full information feedback and Lipschitz losses, we design the first explicit algorithm achieving the minimax regret rate (up to log factors). In a partial feedb…
We first investigate the evolution of opening and closing auctions volumes of US equities along the years. We then report dynamical properties of pre-auction periods: the indicative match price is strongly mean-reverting because the imbalance is; the final auction price reacts to a single auction order placement or can…
The study compares uniform-price and discriminatory auctions in terms of learning difficulty.
Study adapts liquidity model to equity auctions, revealing accelerated event rates and reduced price impact.
The paper tackles auction market design flaws by randomizing closing times and optimizing transaction fees.
MiFID II impacts European stock liquidity and price formation.
We report statistical regularities of the opening and closing auctions of French equities, focusing on the diffusive properties of the indicative auction price. Two mechanisms are at play as the auction end time nears: the typical price change magnitude decreases, favoring underdiffusion, while the rate of these events…
In programmatic advertising, ad slots are usually sold using second-price (SP) auctions in real-time. The highest bidding advertiser wins but pays only the second-highest bid (known as the winning price). In SP, for a single item, the dominant strategy of each bidder is to bid the true value from the bidder's perspecti…
This study evaluates price improvements in order flow auctions on Ethereum.
Algorithm learns to bid optimally in repeated first-price auctions with censored feedback.
We study a phenomenological model for the continuous double auction, equivalent to two independent queues. The continuous double auction defines a continuous-time random walk for trade prices. The conditions for ergodicity of the auction are derived and, as a consequence, three possible regimes in the behavior …
New algorithm optimizes auction prices in real-time.
Improved learning algorithm for first-price auctions reduces regret significantly.
We consider an auction market in which market makers fill the order book during a given time period while some other investors send market orders. We define the clearing price of the auction as the price maximizing the exchanged volume at the clearing time according to the supply and demand of each market participants.…
Study on efficiency of Dutch auctions on blockchains considering various parameters.
Optimizes bidding in hourly and quarter-hourly electricity markets to reduce price impact.
AHEAD improves financial market efficiency through ad-hoc auctions.
We study the statistical regularities of opening call auction using the ultra-high-frequency data of 22 liquid stocks traded on the Shenzhen Stock Exchange in 2003. The distribution of the relative price, defined as the relative difference between the order price in opening call auction and the closing price of last tr…
The private car license plates issued in Shanghai are bestowed the title of "the most expensive sheet iron all over the world", more expensive than gold. A citizen has to bid in an monthly auction to obtain a license plate for his new private car. We perform statistical analysis to investigate the influence of the mini…
Over the last decade, digital media (web or app publishers) generalized the use of real time ad auctions to sell their ad spaces. Multiple auction platforms, also called Supply-Side Platforms (SSP), were created. Because of this multiplicity, publishers started to create competition between SSPs. In this setting, there…
We present an original theorem in auction theory: it specifies general conditions under which the sum of the payments of all bidders is necessarily not identically zero, and more generally not constant. Moreover, it explicitly supplies a construction for a finite minimal set of possible bids on which such a sum is not …
This paper studies an environment of simultaneous, separate, first-price auctions for complementary goods. Agents observe private values of each good before making bids, and the complementarity between goods is explicitly incorporated in their utility. For simplicity, a model is presented with two first-price auctions …
Walraswap solves batch auction pricing by finding optimal AMM swaps.
Real-time bidding (RTB) systems, which utilize auctions to allocate user impressions to competing advertisers, continue to enjoy success in digital advertising. Assessing the effectiveness of such advertising remains a challenge in research and practice. This paper proposes a new approach to perform causal inference on…
In Chinese societies, superstition is of paramount importance, and vehicle license plates with desirable numbers can fetch very high prices in auctions. Unlike other valuable items, license plates are not allocated an estimated price before auction. I propose that the task of predicting plate prices can be viewed as a …
The call auction is a widely used trading mechanism, especially during the opening and closing periods of financial markets. In this paper, we study a standard call auction problem where orders are submitted according to Poisson processes, with random prices distributed according to a general distribution, and may be c…
We propose a model for price formation in financial markets based on clearing of a standard call auction with random orders, and verify its validity for prediction of the daily closing price distribution statistically. The model considers random buy and sell orders, placed following demand- and supply-side valuation di…
Study optimizes rebate design in auction markets to enhance efficiency.
COAD maximizes online auction revenue by quantifying uncertainty without known distributions.