Exponential Family Embeddings
–Neural Information Processing Systems
In this paper, we develop exponential family embeddings, a class of methods that extends the idea of word embeddings to other types of high-dimensional data. As examples, we studied neural data with real-valued observations, count data from a market basket analysis, and ratings data from a movie recommendation system. The main idea is to model each observation conditioned on a set of other observations.
Neural Information Processing Systems
Mar-23-2026, 00:22:22 GMT
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