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Learning to Rank Personalized Search Results in Professional Networks

Record type:

paper
Creator:
Ha-Sin
Host:avatar
LinkedIn search is deeply personalized - for the same queries, different searchers expect completely different results. This paper presents our approach to achieving this by mining various data sources available in LinkedIn to infer searchers' intents (such as hiring, job seeking, etc.), as well as extending the concept of homophily to capture the searcher-result similarities on many aspects. Then, learning-to-rank (LTR) is applied to combine these signals with standard search features.

Visit

arxiv.org

Tasks

information retrieval

Tags

Information RetrievalMachine Learning

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