发明授权
US08010356B2 Parameter learning in a hidden trajectory model 有权
隐藏轨迹模型中的参数学习

Parameter learning in a hidden trajectory model
摘要:
Parameters for distributions of a hidden trajectory model including means and variances are estimated using an acoustic likelihood function for observation vectors as an objection function for optimization. The estimation includes only acoustic data and not any intermediate estimate on hidden dynamic variables. Gradient ascent methods can be developed for optimizing the acoustic likelihood function.
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