Deep & Cross Network for Ad Click Predictions
August 17, 2017 ยท Declared Dead ยท ๐ ADKDD@KDD
"No code URL or promise found in abstract"
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Authors
Ruoxi Wang, Bin Fu, Gang Fu, Mingliang Wang
arXiv ID
1708.05123
Category
cs.LG: Machine Learning
Cross-listed
stat.ML
Citations
1.4K
Venue
ADKDD@KDD
Last Checked
2 months ago
Abstract
Feature engineering has been the key to the success of many prediction models. However, the process is non-trivial and often requires manual feature engineering or exhaustive searching. DNNs are able to automatically learn feature interactions; however, they generate all the interactions implicitly, and are not necessarily efficient in learning all types of cross features. In this paper, we propose the Deep & Cross Network (DCN) which keeps the benefits of a DNN model, and beyond that, it introduces a novel cross network that is more efficient in learning certain bounded-degree feature interactions. In particular, DCN explicitly applies feature crossing at each layer, requires no manual feature engineering, and adds negligible extra complexity to the DNN model. Our experimental results have demonstrated its superiority over the state-of-art algorithms on the CTR prediction dataset and dense classification dataset, in terms of both model accuracy and memory usage.
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