Autonomous Bidding Agents: Strategies and Lessons from the Trading Agent Competition (Hardcover)
暫譯: 自主出價代理:來自交易代理競賽的策略與教訓 (精裝版)

Michael P. Wellman, Amy Greenwald, Peter Stone

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商品描述

Description

E-commerce increasingly provides opportunities for autonomous bidding agents: computer programs that bid in electronic markets without direct human intervention. Automated bidding strategies for an auction of a single good with a known valuation are fairly straightforward; designing strategies for simultaneous auctions with interdependent valuations is a more complex undertaking. This book presents algorithmic advances and strategy ideas within an integrated bidding agent architecture that have emerged from recent work in this fast-growing area of research in academia and industry.

The authors analyze several novel bidding approaches that developed from the Trading Agent Competition (TAC), held annually since 2000. The benchmark challenge for competing agents--to buy and sell multiple goods with interdependent valuations in simultaneous auctions of different types--encourages competitors to apply innovative techniques to a common task. The book traces the evolution of TAC and follows selected agents from conception through several competitions, presenting and analyzing detailed algorithms developed for autonomous bidding.

Autonomous Bidding Agents provides the first integrated treatment of methods in this rapidly developing domain of AI. The authors--who introduced TAC and created some of its most successful agents--offer both an overview of current research and new results.

商品描述(中文翻譯)

**描述**

電子商務日益為自主競標代理提供機會:這些是能在電子市場中進行競標的計算機程式,無需直接的人類干預。對於已知估價的單一商品拍賣,自動競標策略相對簡單;而為具有相互依賴估價的同時拍賣設計策略則是一項更為複雜的任務。本書介紹了在這一快速增長的學術和產業研究領域中,從最近的工作中出現的算法進展和策略構想,並將其整合於一個競標代理架構中。

作者分析了幾種新穎的競標方法,這些方法源自自2000年以來每年舉辦的交易代理競賽(Trading Agent Competition, TAC)。競爭代理的基準挑戰是:在不同類型的同時拍賣中,購買和銷售多個具有相互依賴估價的商品,這鼓勵競爭者將創新技術應用於共同任務。本書追溯了TAC的演變,並跟蹤選定的代理從構思到幾次競賽的過程,呈現並分析為自主競標開發的詳細算法。

《自主競標代理》提供了這一快速發展的人工智慧領域方法的首次綜合處理。作者們是TAC的創始人,並創造了一些最成功的代理,提供了當前研究的概述和新成果。