Heuristic structural modifications to the HMM for efficient resource utilization
نویسندگان
چکیده
Embedded speech processing systems require stringent memory allocation a,nd computing resources. To minimize such resources, a simple, flexible HMM evaluation technique is presented which employs a state-space formulation in conjunction with a simplified likelihood measure. The method offers several advantages including the ability to reduce redundant computation and memory allocation across models, and a flexible structure that can exploit known results concerning statespace systems. Although performance is insignificantly effected in preliminary experiments, these benefits are achieved at the cost of a weaker coupling between the two stochastic processes that define the HMM. We augment the method with a Markov chain model of the ohservations to compensate for the weaker state coupling. Preliminary experiments are used Lo analyze recognition performance and as a basis for discussion.
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تاریخ انتشار 2003