is the cosh(Hyperbolic cosine) wrong?

3 vues (au cours des 30 derniers jours)
cheng sy
cheng sy le 24 Juin 2015
Réponse apportée : cheng sy le 24 Juin 2015
In recent days, I have confused by the function of cosh(Hyperbolic cosine) in matlab. Suppose the matrix is the following:
S=[ 1.0e-05 *
-0.1293 + 0.0195i -0.0128 + 0.0079i -0.0144 + 0.0090i
-0.0141 + 0.0085i -0.1266 + 0.0197i -0.0141 + 0.0085i
-0.0144 + 0.0090i -0.0128 + 0.0079i -0.1293 + 0.0195i]
The cosh of S with matlab function cosh, the result is:
ans =
1.0000 - 0.0000i 1.0000 - 0.0000i 1.0000 - 0.0000i
1.0000 - 0.0000i 1.0000 - 0.0000i 1.0000 - 0.0000i
1.0000 - 0.0000i 1.0000 - 0.0000i 1.0000 - 0.0000i
In factor, cosh is can be expended by the Maclaurin’s series:
When x is a matrix, the first term of the Maclaurin’s series is unite matrix or identity matrix.
So the result should be :
ans =
1.0000 - 0.0000i 0.0000 - 0.0000i 0.0000 - 0.0000i
0.0000 - 0.0000i 1.0000 - 0.0000i 0.0000 - 0.0000i
0.0000 - 0.0000i 0.0000 - 0.0000i 1.0000 - 0.0000i

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Réponse acceptée

cheng sy
cheng sy le 24 Juin 2015
The cosh of S with matlab function cosh, the result is:
ans =
1.0000 - 0.0000i 1.0000 - 0.0000i 1.0000 - 0.0000i
1.0000 - 0.0000i 1.0000 - 0.0000i 1.0000 - 0.0000i
1.0000 - 0.0000i 1.0000 - 0.0000i 1.0000 - 0.0000i
  1 commentaire
Torsten
Torsten le 24 Juin 2015
cosh(A) is evaluated elementwise.
If you want matrix exponential, use Y=(expm(S)+expm(-S))/2.
Best wishes
Torsten.

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Plus de réponses (3)

cheng sy
cheng sy le 24 Juin 2015
In factor, cosh is can be expended by the Maclaurin’s series:
Walter Roberson
Walter Roberson le 24 Juin 2015
"cosh(X) is the hyperbolic cosine of the elements of X."
In other words, cosh() is applied one by one to the elements of X, independently of the others.
cheng sy
cheng sy le 24 Juin 2015
thanks!

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