MIXTURES OF BAYESIAN NETWORKS

Patent №

US 6,807,537

Granted

2004-10-19

Filed 1997

Owner

MICROSOFT CORPORATION

AI components

5

ml · vision · kr · planning · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

08985114

One aspect of the invention is the construction of mixtures of Bayesian networks. Another aspect of the invention is the use of such mixtures of Bayesian networks to perform inferencing. A mixture of Bayesian networks (MBN) consists of plural hypothesis-specific Bayesian networks (HSBNs) having possibly hidden and observed variables. A common external hidden variable is associated with the MBN, but is not included in any of the HSBNs. The number of HSBNs in the MBN corresponds to the number of states of the common external hidden variable, and each HSBN is based upon the hypothesis that the common external hidden variable is in a corresponding one of those states. In one mode of the invention, the MBN having the highest MBN score is selected for use in performing inferencing. In another mode of the invention, some or all of the MBNs are retained as a collection of MBNs which perform inferencing in parallel, their outputs being weighted in accordance with the corresponding MBN scores and the MBN collection output being the weighted sum of all the MBN outputs. In one application of the invention, collaborative filtering may be performed by defining the observed variables to be choices made among a sample of users and the hidden variables to be the preferences of those users.

AI classification

Machine learning1.00
AI hardware1.00
Planning1.00
Vision0.93
Knowledge representation0.53
Natural language0.01
Speech0.00
Evolutionary computation0.00

Ownership

MICROSOFT CORPORATION

assignment · 90700355

Assignors

THIESSON, BO, MEEK, CHRISTOPHER A., CHICKERING, DAVID MAXWELL, HECKERMAN, DAVID EARL

On an employer assignment, the assignors are typically the inventors.

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