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Energy 的代码
lpcrr2ar.m
function [ar,e]=lpcrr2ar(rr);
%LPCRR2AR convert autocorrelation coefs to ar coefs [AR,E]=(RR)
%E is the residual energy
% could test e each time and remove rows when it gets small
% Cop
uec.m
%UEC Minimum mean-squared error time domain equalizer design
% using the unit-energy constraint.
% [B, W, D, MSE, Dv] = UEC(X, Y, N, Nb, Nw, Dmin, Dmax) returns
% the optimal target impulse respon
cm_dpske.m
function [enc_comp] = cm_dpske(E,M,mapping,sequence);
% [enc_comp] = cm_dpske(E,M,mapping,sequence)
% CM_DPSKE differentially encodes a sequence.
% E is the average energy, M is the number of c
cm_dpske.m
function [enc_comp] = cm_dpske(E,M,mapping,sequence);
% [enc_comp] = cm_dpske(E,M,mapping,sequence)
% CM_DPSKE differentially encodes a sequence.
% E is the average energy, M is the number of c
lpcrr2ar.m
function [ar,e]=lpcrr2ar(rr);
%LPCRR2AR convert autocorrelation coefs to ar coefs [AR,E]=(RR)
%E is the residual energy
% could test e each time and remove rows when it gets small
% Cop
cm_dpske.m
function [enc_comp] = cm_dpske(E,M,mapping,sequence);
% [enc_comp] = cm_dpske(E,M,mapping,sequence)
% CM_DPSKE differentially encodes a sequence.
% E is the average energy, M is the number of c
cm_dpske.m
function [enc_comp] = cm_dpske(E,M,mapping,sequence);
% [enc_comp] = cm_dpske(E,M,mapping,sequence)
% CM_DPSKE differentially encodes a sequence.
% E is the average energy, M is the number of c
lpcrr2ar.m
function [ar,e]=lpcrr2ar(rr);
%LPCRR2AR convert autocorrelation coefs to ar coefs [AR,E]=(RR)
%E is the residual energy
% could test e each time and remove rows when it gets small
% Cop
cm_dpske.m
function [enc_comp] = cm_dpske(E,M,mapping,sequence);
% [enc_comp] = cm_dpske(E,M,mapping,sequence)
% CM_DPSKE differentially encodes a sequence.
% E is the average energy, M is the number of c
cm_dpske.m
function [enc_comp] = cm_dpske(E,M,mapping,sequence);
% [enc_comp] = cm_dpske(E,M,mapping,sequence)
% CM_DPSKE differentially encodes a sequence.
% E is the average energy, M is the number of c