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Detecting Behavioral Biases in Mixed Human-Proxy Online Auction Markets

机译:在混合人为代理的在线拍卖市场中检测行为偏差

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摘要

Currently many auction websites directly or indirectly provide support for the use of automated proxies or agents. Buyers can use proxies to monitor auctions and bid at the appropriate time and with the appropriate bid price, sellers can use proxies to set prices or negotiate deals. Proxy complexity varies, however most proxies first require some input on the part of the human trader and then perform the trading task autonomously. This paper proposes and tests a theoretical model of human behavior that can be used to detect behavioral biases in electronic market environments populated by humans and software agents. The paper also quantifies the effect of these biases on individual and business profits.
机译:当前,许多拍卖网站直接或间接为使用自动代理或代理提供支持。买方可以使用代理来监视拍卖并在适当的时间以适当的出价进行出价,卖方可以使用代理来设定价格或协商交易。代理的复杂程度各不相同,但是大多数代理首先需要人工交易者提供一些输入,然后自动执行交易任务。本文提出并测试了人类行为的理论模型,该模型可用于检测由人类和软件代理商组成的电子市场环境中的行为偏差。本文还量化了这些偏见对个人和企业利润的影响。

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