IS Atlas
ms·2019년 8월 1일

Harnessing the Wisdom of Crowds

Zhi Da, Xing Huang

Management Science

165
피인용
19.4
FWCI
9
IS/마케팅/OM 탑저널 피인용
34
IS/마케팅/OM 탑저널 참고문헌
01Abstract

When will a large group provide an accurate answer to a question involving quantity estimation? We empirically examine this question on a crowd-based corporate earnings forecast platform (Estimize.com). By tracking user activities, we monitor the amount of public information a user views before making an earnings forecast. We find that the more public information users view, the less weight they put on their own private information. Although this improves the accuracy of individual forecasts, it reduces the accuracy of the group consensus forecast because useful private information is prevented from entering the consensus. To address endogeneity concerns related to a user’s information acquisition choice, we collaborate with Estimize.com to run experiments that restrict the information available to randomly selected stocks and users. The experiments confirm that “independent” forecasts result in a more accurate consensus. Estimize.com was convinced to switch to a “blind” platform from November 2015 on. The findings suggest that the wisdom of crowds can be better harnessed by encouraging independent voices from among group members and that more public information disclosure may not always improve group decision making. This paper was accepted by Renee Adams, finance.

02연구 흐름

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03비슷한 논문

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04이후 연구

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05선행 연구

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06서지 정보