Cross Domain Regularization for Neural Ranking Models using Adversarial Learning

被引:20
作者
Cohen, Daniel [1 ]
Mitra, Bhaskar [2 ]
Hofmann, Katja [2 ]
Croft, W. Bruce [1 ]
机构
[1] Univ Massachusetts Amherst, Ctr Intelligent Informat Retrieval, Amherst, MA 01003 USA
[2] Microsoft AI & Res, Redmond, WA USA
来源
ACM/SIGIR PROCEEDINGS 2018 | 2018年
关键词
D O I
10.1145/3209978.3210141
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Unlike traditional learning to rank models that depend on hand-crafted features, neural representation learning models learn higher level features for the ranking task by training on large datasets. Their ability to learn new features directly from the data, however, may come at a price. Without any special supervision, these models learn relationships that may hold only in the domain from which the training data is sampled, and generalize poorly to domains not observed during training. We study the effectiveness of adversarial learning as a cross domain regularizer in the context of the ranking task. We use an adversarial discriminator and train our neural ranking model on a small set of domains. The discriminator provides a negative feedback signal to discourage the model from learning domain specific representations. Our experiments show consistently better performance on held out domains in the presence of the adversarial discriminator-sometimes up to 30% on precision@1.
引用
收藏
页码:1025 / 1028
页数:4
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