can some one tell me how to find values of si1(0) and si1(1) usng matlab?

Question

Heya :) le 3 Jan 2017

0
Lien

Utiliser le lien direct vers cette question

https://fr.mathworks.com/matlabcentral/answers/318966-can-some-one-tell-me-how-to-find-values-of-si1-0-and-si1-1-usng-matlab

Commenté : Rena Berman le 20 Jan 2017

Réponse acceptée : Walter Roberson

6 commentaires
Afficher 4 commentaires plus anciensMasquer 4 commentaires plus anciens

Walter Roberson le 13 Jan 2017

The article appears to be https://arxiv.org/pdf/1108.2867.pdf

Nonlinear Schrödinger Equation: Generalized Darboux Transformation and Rogue Wave Solutions, by Boling Guo, Liming Ling, and Q. P. Liu

Rena Berman le 20 Jan 2017

(Answers Dev) Restored Question.

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Answer 1

Walter Roberson le 8 Jan 2017

0
Lien

Utiliser le lien direct vers cette réponse

https://fr.mathworks.com/matlabcentral/answers/318966-can-some-one-tell-me-how-to-find-values-of-si1-0-and-si1-1-usng-matlab#answer_249803

Ouvrir dans MATLAB Online

taylor() can only be used for functions whose differentiation can be evaluated at the point of expansion.

Your expression has a denominator of sqrt(h^2-1) which is a problem if h is 1. You have h = 1 + f^2 so that is equal to 1 when f is 0. Therefore your expression has a division by 0 at f = 0. Such a function has no taylor expansion.

You can create a series() expansion of X1 around f = 0, but it will not look like what they show, and furthermore for the same reason the series does not really exist at 0. The expression involves csgn(), the Complex Sign operator, and a division by f; if you restrict to real valued f (we cannot read the image well enough to tell if that is justified) then you end up with signum(f)/f and then you have the question of what signum(0) is. You could potentially rewrite the signum(f)/f in terms of abs(), in which case it comes out as 1/abs(f), which gives you a leading term of

-(1/2)*exp(-(1/2*I)*t)*sqrt(2)*(-i+I)/abs(f)

Perhaps everything except for the abs(f) could be rewritten to look like what they wrote, but the abs(f) cannot be eliminated.

Your C1 has a limit of infinity near h = 1 and there really is no way around that: any expansion around that point is going to be infinite.

You could potentially expand around f = epsilon instead of around f = 0, and then take the limit as epsilon approaches 0... but the limit does not exist.

Either you have made a typing mistake or else they describe something that we viewers cannot read (the image quality is poor), or else what they describe is incorrect.

13 commentaires
Afficher 11 commentaires plus anciensMasquer 11 commentaires plus anciens

Heya :) le 10 Jan 2017

Modifié(e) : Walter Roberson le 10 Jan 2017

Ouvrir dans MATLAB Online

thanku walter for your ans inspite of ur variable health.actually we dont have to put f=0 in taylor series.let me give u an example

>> syms k c t y x;
>> y=(k*(x+4*k^2+6*c)*t);
>> taylor(sin(y),k)
ans =
(t*((t^4*(6*c + x)^4)/120 - (4*t^2*(6*c + x))/3)*(6*c + x) - (2*t^3*(6*c + x)^2)/3)*k^5 + (4*t - (t^3*(6*c + x)^3)/6)*k^3 + t*(6*c + x)*k

in this particular example i expand taylor series of sin with respect to k so si1[0]=t*(6*c + x) and si1[1]=(4*t - (t^3*(6*c + x)^3)/6)* and so on..... so in my pic ans i want to expand taylor series w.r.t f buh matlab is not solving f terms

>> syms x t f;
h=1+f^2;
L=1i*h;
A=sqrt(h^2-1)*(x+1i*h*t);
C1=sqrt(h-sqrt(h^2-1))/sqrt(h^2-1);
C2=sqrt(h+sqrt(h^2-1))/sqrt(h^2-1);
X1=1i*(C1*exp(A)-C2*exp(-A))*exp(-1i*t/2);
>> taylor(X1,2,f^2);
>> collect(ans,f)
ans =
(-(1/exp((t*i)/2))*(exp((t*(f^2*i + i) + f^2)*((f^2 + 1)^2 - 1)^(1/2))*(f^2 - ((f^2 + 1)^2 - 1)^(1/2) + 1)^(1/2)*i + ((((f^2 + 1)^2 - 1)^(1/2) + f^2 + 1)^(1/2)*i)/exp((t*(f^2*i + i) + f^2)*((f^2 + 1)^2 - 1)^(1/2))))*f^2 + (1/exp((t*i)/2))*((exp((t*(f^2*i + i) + f^2)*((f^2 + 1)^2 - 1)^(1/2))*(f^2 - ((f^2 + 1)^2 - 1)^(1/2) + 1)^(1/2)*i)/((f^2 + 1)^2 - 1)^(1/2) - ((((f^2 + 1)^2 - 1)^(1/2) + f^2 + 1)^(1/2)*i)/(exp((t*(f^2*i + i) + f^2)*((f^2 + 1)^2 - 1)^(1/2))*((f^2 + 1)^2 - 1)^(1/2))) + x*(1/exp((t*i)/2))*(exp((t*(f^2*i + i) + f^2)*((f^2 + 1)^2 - 1)^(1/2))*(f^2 - ((f^2 + 1)^2 - 1)^(1/2) + 1)^(1/2)*i + ((((f^2 + 1)^2 - 1)^(1/2) + f^2 + 1)^(1/2)*i)/exp((t*(f^2*i + i) + f^2)*((f^2 + 1)^2 - 1)^(1/2)))
>> pretty(ans)
/              /                                                                                          2     2     1/2    2     1/2        \ \ 
|       1      |          2           2     2     2     1/2    2      2     2     1/2     1/2         (((f  + 1)  - 1)    + f  + 1)    i      | |  2 
| - ---------- | exp((t (f  i + i) + f ) ((f  + 1)  - 1)   ) (f  - ((f  + 1)  - 1)    + 1)    i + ------------------------------------------- | | f  + 
|      / t i \ |                                                                                           2           2     2     2     1/2  | | 
|   exp| --- | \                                                                                  exp((t (f  i + i) + f ) ((f  + 1)  - 1)   ) / | 
\      \  2  /                                                                                                                                  / 
                /          2           2     2     2     1/2    2      2     2     1/2     1/2                       2     2     1/2    2     1/2                 \ 
         1      | exp((t (f  i + i) + f ) ((f  + 1)  - 1)   ) (f  - ((f  + 1)  - 1)    + 1)    i                 (((f  + 1)  - 1)    + f  + 1)    i               | 
     ---------- | ------------------------------------------------------------------------------ - -------------------------------------------------------------- | + 
        / t i \ |                                  2     2     1/2                                          2           2     2     2     1/2     2     2     1/2 | 
     exp| --- | \                               ((f  + 1)  - 1)                                    exp((t (f  i + i) + f ) ((f  + 1)  - 1)   ) ((f  + 1)  - 1)    / 
        \  2  / 
                  /                                                                                          2     2     1/2    2     1/2        \ 
           1      |          2           2     2     2     1/2    2      2     2     1/2     1/2         (((f  + 1)  - 1)    + f  + 1)    i      | 
     x ---------- | exp((t (f  i + i) + f ) ((f  + 1)  - 1)   ) (f  - ((f  + 1)  - 1)    + 1)    i + ------------------------------------------- | 
          / t i \ |                                                                                           2           2     2     2     1/2  | 
       exp| --- | \                                                                                  exp((t (f  i + i) + f ) ((f  + 1)  - 1)   ) / 
          \  2  /

i.e its no solving (f^2)^1/2 terms

Walter Roberson le 12 Jan 2017

Ouvrir dans MATLAB Online

The reason you are seeing a taylor expansion is that your X1 has multiple variables and you are not telling taylor which variable to use, so it is expanding around a different variable than your are expecting. You should be using

expression = X1;
variable = f;
order = 2;
expansion_location = 0;
taylor(expression, variable, order, expansion_location)

which will tell you

??? Error using ==> mupadmex
Error in MuPAD command: exp(-(t*I)/2)*((exp((x + t*(f^2*I + I))*((f^2 + 1)^2 - 1)^(1/2))*(f^2 - ((f^2 + 1)^2 - 1)^(1/2) + 1)^(1/2)*I)/((f^2 + 1)^2 - 1)^(1/2) -
((((f^2 + 1)^2 - 1)^(1/2) + f^2 + 1)^(1/2)*I)/(exp((x + t*(f^2*I + I))*((f^2 + 1)^2 - 1)^(1/2))*((f^2 + 1)^2 - 1)^(1/2))) does not have a Taylor series
expansion... [taylor]

The X1 you are giving does not have a taylor or series expansion near f = 0, for the reasons I explained above.

(A) You might have made a typing mistake. Or (B) in the part of the image that is not readable to us, there is some information or expression that would allow us to proceed. Or else (C) what they describe is incorrect.

I cannot assist you with (A) or (B) without seeing a clearer image. What you posted is dark and does not include much of the text, and my eyesight is not good today.

Heya :) le 14 Jan 2017

Modifié(e) : Walter Roberson le 16 Jan 2017

Ouvrir dans MATLAB Online

>> syms x t f;
h=1+f^2;
L=1i*h;
A=sqrt(h^2-1)*(x+1i*h*t);
C1=sqrt(h-sqrt(h^2-1))/sqrt(h^2-1);
C2=sqrt(h+sqrt(h^2-1))/sqrt(h^2-1);
X1=1i*(C1*exp(A)-C2*exp(-A))*exp(-1i*t/2);
Y1=(C2*exp(A)-C1*exp(-A))*exp(1i*t/2);
limit(X1,f,0)
limit(Y1,f,0)
ans =
-(1/exp((t*i)/2))*(2*t - 2*x*i + i)
ans =
exp((t*i)/2)*(2*x + 1 + 2*t*i)

Heya :) le 14 Jan 2017

but i am not getting si1(1)....

Connectez-vous pour commenter.

can some one tell me how to find values of si1(0) and si1(1) usng matlab?

6 commentaires
Afficher 4 commentaires plus anciensMasquer 4 commentaires plus anciens

Réponse acceptée

13 commentaires
Afficher 11 commentaires plus anciensMasquer 11 commentaires plus anciens

Plus de réponses (0)

Voir également

Catégories

Tags

Community Treasure Hunt

can some one tell me how to find values of si1(0) and si1(1) usng matlab?

6 commentaires Afficher 4 commentaires plus anciensMasquer 4 commentaires plus anciens

Réponse acceptée

13 commentaires Afficher 11 commentaires plus anciensMasquer 11 commentaires plus anciens

Plus de réponses (0)

Voir également

Catégories

Tags

Community Treasure Hunt

6 commentaires
Afficher 4 commentaires plus anciensMasquer 4 commentaires plus anciens

13 commentaires
Afficher 11 commentaires plus anciensMasquer 11 commentaires plus anciens