RoxyBot-06: Stochastic Prediction and Optimization in TAC Travel

Author:

Greenwald A.,Lee S.,Naroditskiy V.

Abstract

In this paper, we describe our autonomous bidding agent, RoxyBot, who emerged victorious in the travel division of the 2006 Trading Agent Competition in a photo finish. At a high level, the design of many successful trading agents can be summarized as follows: (i) price prediction: build a model of market prices; and (ii) optimization: solve for an approximately optimal set of bids, given this model. To predict, RoxyBot builds a stochastic model of market prices by simulating simultaneous ascending auctions. To optimize, RoxyBot relies on the sample average approximation method, a stochastic optimization technique.

Publisher

AI Access Foundation

Subject

Artificial Intelligence

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Self-confirming price-prediction strategies for simultaneous one-shot auctions;Games and Economic Behavior;2017-03

2. Programmatic Buying Bidding Strategies with Win Rate and Winning Price Estimation in Real Time Mobile Advertising;Advances in Knowledge Discovery and Data Mining;2014

3. Rank and Impression Estimation in a Stylized Model of Ad Auctions;Lecture Notes in Business Information Processing;2012

4. Trading Agents;Synthesis Lectures on Artificial Intelligence and Machine Learning;2011-06-25

5. Learning Improved Entertainment Trading Strategies for the TAC Travel Game;Lecture Notes in Business Information Processing;2010

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