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[КНИГА][B] Dynamic bayesian networks: representation, inference and learning
KP Murphy - 2002 - search.proquest.com
Modelling sequential data is important in many areas of science and engineering. Hidden
Markov models (HMMs) and Kalman filter models (KFMs) are popular for this because they …
Markov models (HMMs) and Kalman filter models (KFMs) are popular for this because they …
Discriminative training of HMMs for automatic speech recognition: A survey
H Jiang - Computer Speech & Language, 2010 - Elsevier
Recently, discriminative training (DT) methods have achieved tremendous progress in
automatic speech recognition (ASR). In this survey article, all mainstream DT methods in …
automatic speech recognition (ASR). In this survey article, all mainstream DT methods in …
Systems and methods for mobile image capture and processing
A Macciola, A Shustorovich, CW Thrasher - US Patent 8,855,375, 2014 - Google Patents
2022-07-20 Assigned to CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH, AS
COLLATERAL AGENT reassignment CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH …
COLLATERAL AGENT reassignment CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH …
MedLDA: maximum margin supervised topic models
A supervised topic model can use side information such as ratings or labels associated with
documents or images to discover more predictive low dimensional topical representations of …
documents or images to discover more predictive low dimensional topical representations of …
[КНИГА][B] Machine learning: discriminative and generative
T Jebara - 2012 - books.google.com
Machine Learning: Discriminative and Generative covers the main contemporary themes
and tools in machine learning ranging from Bayesian probabilistic models to discriminative …
and tools in machine learning ranging from Bayesian probabilistic models to discriminative …
Arabic text classification methods: Systematic literature review of primary studies
W Alabbas, HM Al-Khateeb… - 2016 4th IEEE …, 2016 - ieeexplore.ieee.org
Recent research on Big Data proposed and evaluated a number of advanced techniques to
gain meaningful information from the complex and large volume of data available on the …
gain meaningful information from the complex and large volume of data available on the …
[PDF][PDF] Bayesian inference with posterior regularization and applications to infinite latent svms
Existing Bayesian models, especially nonparametric Bayesian methods, rely on specially
conceived priors to incorporate domain knowledge for discovering improved latent …
conceived priors to incorporate domain knowledge for discovering improved latent …
Discriminative learning in sequential pattern recognition
In this article, we studied the objective functions of MMI, MCE, and MPE/MWE for
discriminative learning in sequential pattern recognition. We presented an approach that …
discriminative learning in sequential pattern recognition. We presented an approach that …
Supervised classification with conditional Gaussian networks: Increasing the structure complexity from naive Bayes
Most of the Bayesian network-based classifiers are usually only able to handle discrete
variables. However, most real-world domains involve continuous variables. A common …
variables. However, most real-world domains involve continuous variables. A common …
Forecasting the occurrence of extreme electricity prices using a multivariate logistic regression model
Extreme electricity prices occur with a higher frequency and a larger magnitude in recent
years. Accurate forecasting of the occurrence of extreme prices is of great concern to market …
years. Accurate forecasting of the occurrence of extreme prices is of great concern to market …