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A GPU-specialized Inference Parameter Server for Large-Scale Deep Recommendation Models

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Abstract

Recommendation systems are of crucial importance for a variety of modern apps and web services, such as news feeds, social networks, e-commerce, search, etc. To achieve peak prediction accuracy, modern recommendation models combine deep learning with terabyte-scale embedding tables to obtain a fine-grained representation of the underlying data. Traditional inference serving architectures require deploying the whole model to standalone servers, which is infeasible at such massive scale.

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Publication details

DOI
10.1145/3523227.3546765
OpenAlex
W4296591836
Document type
conference-paper
Language
EN
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