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@ARTICLE{AXCZ13,
author = {An, Xin and Xu, Shuo and Chen, Jiancheng and Zhang, Yuan},
title = {Distributed Risk Aversion Parameter Estimation for First-Price Auction
in Sensor Networks},
journal = {International Journal of Distributed Sensor Networks},
year = {2013},
volume = {2013},
pages = {1--9},
abstract = {Following the Internet, the Internet of Things (IoT) becomes a prime
vehicle for supporting auction. The use of market mechanisms to solve
computer science problems is gaining significant traction. More and
more clues show that the bidders tend to risk averse ones. However,
traditional nonparametric approach is only applicable for the case
of risk neutrality in a centralized server. This study proposes a
generalized nonparametric structural estimation procedure for the
first-price auctions in the distributed sensor networks. To evaluate
the performance of the aggregated parameter estimators, extensive
Monte Carlo simulation experiments are conducted for ten different
values of risk aversion parameters including the risk neutrality
case in multiple classic scenes. Moreover, in order to improve the
usability of the aggregated parameter estimators, some guidance is
also given for real-world applications.},
doi = {10.1155/2013/795630},
keywords = {Risk Aversion Parameter Estimation sep First-Price Auction sep Distributed
Sensor Networks sep Monte Carlo Simulation sep Non-parametric Method},
}
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