Walverine: A walrasian trading agent
TAC-02 was the third in a series of Trading Agent Competition events fostering research in automating trading strategies by showcasing alternate approaches in an open-invitation market game. TAC presents a challenging travel-shopping scenario where agents must satisfy client preferences for compleme...
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2005
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sg-smu-ink.sis_research-10462019-11-18T06:39:02Z Walverine: A walrasian trading agent CHENG, Shih-Fen LEUNG, Evan LOCHNER, Kevin M. O'MALLEY, Kevin REEVES, Daniel M. SCHVARTZMAN, Julian L. WELLMAN, Michael P. TAC-02 was the third in a series of Trading Agent Competition events fostering research in automating trading strategies by showcasing alternate approaches in an open-invitation market game. TAC presents a challenging travel-shopping scenario where agents must satisfy client preferences for complementary and substitutable goods by interacting through a variety of market types. Michigan's entry, Walverine, bases its decisions on a competitive (Walrasian) analysis of the TAC travel economy. Using this Walrasian model, we construct a decision-theoretic formulation of the optimal bidding problem, which Walverine solves in each round of bidding for each good. Walverine's optimal bidding approach, as well as several other features of its overall strategy, are potentially applicable in a broad class of trading environments. 2005-04-01T08:00:00Z text application/pdf https://ink.library.smu.edu.sg/sis_research/47 info:doi/10.1016/j.dss.2003.10.005 https://ink.library.smu.edu.sg/context/sis_research/article/1046/viewcontent/1_s20_S0167923603001386_main.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Artificial Intelligence and Robotics Business |
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Artificial Intelligence and Robotics Business CHENG, Shih-Fen LEUNG, Evan LOCHNER, Kevin M. O'MALLEY, Kevin REEVES, Daniel M. SCHVARTZMAN, Julian L. WELLMAN, Michael P. Walverine: A walrasian trading agent |
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TAC-02 was the third in a series of Trading Agent Competition events fostering research in automating trading strategies by showcasing alternate approaches in an open-invitation market game. TAC presents a challenging travel-shopping scenario where agents must satisfy client preferences for complementary and substitutable goods by interacting through a variety of market types. Michigan's entry, Walverine, bases its decisions on a competitive (Walrasian) analysis of the TAC travel economy. Using this Walrasian model, we construct a decision-theoretic formulation of the optimal bidding problem, which Walverine solves in each round of bidding for each good. Walverine's optimal bidding approach, as well as several other features of its overall strategy, are potentially applicable in a broad class of trading environments. |
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CHENG, Shih-Fen LEUNG, Evan LOCHNER, Kevin M. O'MALLEY, Kevin REEVES, Daniel M. SCHVARTZMAN, Julian L. WELLMAN, Michael P. |
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CHENG, Shih-Fen LEUNG, Evan LOCHNER, Kevin M. O'MALLEY, Kevin REEVES, Daniel M. SCHVARTZMAN, Julian L. WELLMAN, Michael P. |
author_sort |
CHENG, Shih-Fen |
title |
Walverine: A walrasian trading agent |
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Walverine: A walrasian trading agent |
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Walverine: A walrasian trading agent |
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Walverine: A walrasian trading agent |
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Walverine: A walrasian trading agent |
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walverine: a walrasian trading agent |
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Institutional Knowledge at Singapore Management University |
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2005 |
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https://ink.library.smu.edu.sg/sis_research/47 https://ink.library.smu.edu.sg/context/sis_research/article/1046/viewcontent/1_s20_S0167923603001386_main.pdf |
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