No, that is not correct. The way you are doing it is not giving the autocorrelation matrix. For one thing your matrix is not going to be Toeplitz.
For example:
x = randn(10,1);
rxx = x*x';
Note the above, rxx, is not Toeplitz.
But
[xc,lags] = xcorr(x,x,9,'biased');
r = xc(10:end);
rxx = toeplitz(r,conj(r)); % the conj() of course here is not needed
Now, rxx is Toeplitz and not that the autocorrelation matrix has full column rank.
rank(rxx)
Or you could do:
X = fft(x,2^nextpow2(2*size(x,1)-1));
R = ifft(abs(X).^2);
m = length(x);
R = R./m; % Biased autocorrelation estimate
rxx = toeplitz(R(1:length(x)),conj(R(1:length(x))));
