Automated Negotiation Agents for Modeling Single-Peaked Bidders: An Experimental Comparison

Author:

Hassanvand Fatemeh1ORCID,Nassiri-Mofakham Faria1ORCID,Fujita Katsuhide2ORCID

Affiliation:

1. Faculty of Computer Engineering, University of Isfahan, Azadi Square, Isfahan 81746-73441, Iran

2. Institute of Global Innovation Research, Tokyo University of Agriculture and Technology, Tokyo 184-8588, Japan

Abstract

During automated negotiations, intelligent software agents act based on the preferences of their proprietors, interdicting direct preference exposure. The agent can be armed with a component of an opponent’s modeling features to reduce the uncertainty in the negotiation, but how negotiating agents with a single-peaked preference direct our attention has not been considered. Here, we first investigate the proper representation of single-peaked preferences and implementation of single-peaked agents within bidder agents using different instances of general single-peaked functions. We evaluate the modeling of single-peaked preferences and bidders in automated negotiating agents. Through experiments, we reveal that most of the opponent models can model our benchmark single-peaked agents with similar efficiencies. However, the accuracies differ among the models and in different rival batches. The perceptron-based P1 model obtained the highest accuracy, and the frequency-based model Randomdance outperformed the other competitors in most other performance measures.

Publisher

MDPI AG

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