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1下载:
c++实现HMM,向前向后算法,Viterbi算法,Baum-Welch算法。其中包括用c++定义的HMM数据结构。全部是cpp和h的文件-c achieve HMM, forward backward algorithm, Viterbi algorithm, Baum-Welch algorithm. C including the use of the HMM definition data structure. Cpp all the documents and h
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This code implements in C++ a basic left-right hidden Markov model
and corresponding Baum-Welch (ML) training algorithm. It is meant as
an example of the HMM algorithms described by L.Rabiner (1) and
others. Serious students are directed to the
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Hidden_Markov_model_for_automatic_speech_recognition
This code implements in C++ a basic left-right hidden Markov model
and corresponding Baum-Welch (ML) training algorithm. It is meant as
an example of the HMM algorithms described by L.Rabiner
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该程序实现了Baum-Welch算法,对于通信里面的调制解调有很大帮助,其次,该程序具有通用性。-The program achieved the Baum-Welch algorithm, for the communication modem inside helps a lot, and secondly, the program has the versatility.
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采用Baum-Welch重估计算法对隐马尔科夫模型进行训练,使得结果达到最优化-Using Baum-Welch re-estimation algorithm for training hidden Markov models, making the results of optimized
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一个可执行的HMM语音识别程序例程,实现了对10个数字音的识别程序,包含了HMM语音识别中的分段,MFCC特征提取,Baum-Welch训练,及Viterbi等算法,通过此例程可以很好的理解HMM的算法原理-An executable HMM-based 10 digits speech recogntion program example. this code zip file includes segmentation, MFCC feature extraction, Baum-Welc
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基于MATLAB的HMM算法的实现(Machine Learning Toolbox)包含Baum-Welch 算法的应用-MATLAB-based HMM Algorithm
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this document is about baum-welch algorithm
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hmm文件时运用HMM算法实现噪声环境下语音识别的。其中vad.m是端点检测程序;mfcc.m是计算MFCC参数的程序;pdf.m函数是计算给定观察向量对该高斯概率密度函数的输出概率;mixture.m是计算观察向量对于某个HMM状态的输出概率,也就是观察向量对该状态的若干高斯混合元的输出概率的线性组合;getparam.m函数是计算前向概率、后向概率、标定系数等参数;viterbi.m是实现Viterbi算法;baum.m是实现Baum-Welch算法;inithmm.m是初始化参数;trai
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This code implements in C++ a basic left-right hidden Markov model
and corresponding Baum-Welch (ML) training algorithm. It is meant as
an example of the HMM algorithms described by L.Rabiner (1) and
others.-This code implements in C++ a basic
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用viterbi算法和baum-welch训练找到和更新best path-find best path using Viterbi algorithm and Baum-Welch training
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此代码包含了HMM的backward算法,viterbi算法以及,前后向算法-This code includes backward,vitibi and
Baum-Welch algorithm of HMM.
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隐马尔可夫算法的实现,其中包括前向算法,后向算法,Viterbi算法,Baum-Welch算法-Hidden Markov algorithm, including backward algorithm, Viterbi algorithm, Baum-Welch algorithm to the algorithm,
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標準Baum-Welch演算法之離散觀察HMM模型(基礎版本)-Implements the standard Baum-Welch (any-path) algorithm for discrete-observation HMMs.
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了解隐马尔科夫模型HMM的概念、组成和需要解决的问题;通过matlab分析和三个基本算法分析读研和就业问题:forward算法、Viterbi算法和Baum-Welch算法-Understand the concept of Hidden Markov Model HMM, composition and problems to be solved matlab analysis by three basic algorithms: forward algorithm, Viterbi alg
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了解隐马尔科夫模型HMM的概念、组成和需要解决的问题;掌握三个基本算法:forward算法、Viterbi算法和Baum-Welch算法,并利用matlab进行实验分析一道具体问题-Understand the concept of Hidden Markov Model HMM, composition and problems to be solved mastered three basic algorithms: forward algorithm, Viterbi algorithm
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用Baum-Welch算法来迭代估计一个隐马尔科夫模型(HMM)的初始状态概率分布以及其状态转移概率矩阵。其中文件有mainfile_B_W.m为主函数,Baum_Welch.m为Baum-Welch算法迭代函数,Forward_variable.m与Backward_variable.m与Gamma_variable.m与Ksi_variable.m是需要计算的四种因子,B_pdf.m为混淆散射概率密度函数。-It s Baum-Welch algorithm for iteratively
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%函数名称:HMMTrain
%参数:V-------训练观察序列(n X 1Cell矩阵),IPI,IA,IB-------模型参数初始值
%返回值:PI,A,B-------模型参数的学习结果
%函数功能:隐含马尔科夫模型的Baum-Welch学习算法(% function name: HMMTrain
% parameters: V------- trains the observation sequence (n, X, 1Cell matrix), IPI, IA, and I
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离散HMM的matlab程序,包含有前向—后向算法、 Baum-Welch算法以及Vertebi算法(The matlab program of discrete HMM, including forward-backward algorithm, Baum-Welch algorithm and Vertebi algorithm)
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