erfc with complex number

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rahman il 10 Mag 2011

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https://it.mathworks.com/matlabcentral/answers/7153-erfc-with-complex-number

Commentato: Dilip Jose il 13 Feb 2020

Risposta accettata: Matt Fig

Hi all

I want to compute erfc(.) of a complex number. How can I do that? Is there any way to use erfc(.) of matlab?

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Matt Fig il 10 Mag 2011

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https://it.mathworks.com/matlabcentral/answers/7153-erfc-with-complex-number#answer_9795

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Dilip Jose il 30 Gen 2020

Apri in MATLAB Online

close all
syms z;
gr=5;
gc=5;
M=1;
w=0.5;
pr=7;
sc=2.01;
t=0.4;
m=(M+(2*1i*w));
s1=z;
s2=(2*sqrt(t));
x=((s1)./(s2));
a1=(x*t);
a2=(2*m*(sqrt(pi)));
a=((m)./(pr-1));
b=((m)./(sc-1));
x=((s1)./(s2));
u1=((x^2+(m*t))*t);
u2=4*m;
d1=(x*(sqrt(t)))*(1-(4*m*t));
d2=(8*m^3/2);
v1=gr;
v2=(a*(1-pr));
k1=gc;
k2=(b*(1-sc));
h1=exp(a*t);
h2=2;
e1=(exp(2*x*(sqrt(m*t))));
e2=(erfc(x+(sqrt(m*t))));
e3=(exp(-2*x*(sqrt(m*t))));
e4=(erfc(x-(sqrt(m*t))));
b1=(exp(2*x*((sqrt((m+a)*t)))));
b2=(erfc(x+(sqrt((m+a)*t))));
b3=(exp(-2*x*(sqrt((m+a)*t))));
b4=(erfc(x-(sqrt((m+a)*t))));
b5=(exp(2*x*((sqrt((m+b)*t)))));
b6=(erfc(x+(sqrt((m+b)*t))));
b7=(exp(-2*x*(sqrt((m+b)*t))));
b8=(erfc(x-(sqrt((m+b)*t))));
e5=exp(-(x^2+(m*t)));
c1=(exp(2*x*(sqrt(pr*a*t))));
c2=(erfc(x*(sqrt(pr)+(sqrt(a*t)))));
c3=((exp(-2*x*(sqrt(pr*a*t)))));
c4=(erfc(x*(sqrt(pr)-(sqrt(a*t)))));
l1=(exp(2*x*(sqrt(sc*b*t))));
l2=(erfc(x*(sqrt(sc)+(sqrt(b*t)))));
l3=((exp(-2*x*(sqrt(sc*b*t)))));
l4=(erfc(x*(sqrt(sc)-(sqrt(b*t)))));
f1=(exp(b*t));
f2=2;
l=((a1)./(a2));
f=((f1)./(f2));
h=((h1)./(h2));
j1=((u1)./(u2));
j2=((d1)./(d2));
j3=((v1)./(v2));
j4=((k1)./(k2));
q1=(2*(j1*((e1*e2)+(e3*e4))+(j2*((e3*e4)-(e1*e2))-(l*e5))));
q2=((j3+j4)*(1/2)*((e1*e2)+(e3*e4)));
q3=((j3*(h*(b1*b2)+(b3*b4))));
q4=((j4*(f*(b5*b6)+(b7*b8))));
q5=(j3*(erfc(x*sqrt(pr))));
q6=(j4*erfc(x*sqrt(sc)));
q7=(j3*(h*((c1*c2)+(c3*c4))));
q8=(j4*(f*((l1*l2)+(l3*l4))));
q=(q1+q2-q3-q4-q5-q6+q7+q8);
fplot(z,q);
xlim([0 5])
ylim([0 1])
hold on
title('Axial velocity profiles for different values of gr & gc');
hold off

Walter Roberson il 5 Feb 2020

Apri in MATLAB Online

To check, you have

d2=(8*m^3/2);

Is it possible that that should be

d2=(8*m^(3/2));

The current expression would be equivalent to the clearer

d2=4*m^3;

Or even 8/2 instead of 4 if that somehow made documentation sense. With the /2 where it is and with the leading multiplier already even, people are going to wonder.

Dilip Jose il 13 Feb 2020

thank you so much sir ...got some results...hope the best.

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