Daniil Ryabko 
Universal Time-Series Forecasting with Mixture Predictors [PDF ebook] 

Soporte

The author considers the problem of sequential probability forecasting in the most general setting, where the observed data may exhibit an arbitrary form of stochastic dependence. All the results presented are theoretical, but they concern the foundations of some problems in such applied areas as machine learning, information theory and data compression.

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Tabla de materias

Introduction.- Notation and Definitions.- Prediction in Total Variation: Characterizations.- Prediction in KL-Divergence.- Decision-Theoretic Interpretations.- Middle-Case: Combining Predictors Whose Loss Vanishes.- Conditions Under Which One Measure Is a Predictor for Another.- Conclusion and Outlook.

Sobre el autor

Dr. Daniil Ryabko (HDR) has a full-time position at INRIA, he has recently been on research assignments in Belize and Madagascar.

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Idioma Inglés ● Formato PDF ● Páginas 85 ● ISBN 9783030543044 ● Tamaño de archivo 1.5 MB ● Editorial Springer International Publishing ● Ciudad Cham ● País CH ● Publicado 2020 ● Descargable 24 meses ● Divisa EUR ● ID 7628458 ● Protección de copia DRM social

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