How Define Delta Function

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Kutlu Yigitturk
Kutlu Yigitturk am 24 Mär. 2021
Beantwortet: Carlos M. Velez S. am 24 Jul. 2025
I have a problem about calculating with Delta Function. I am trying write matlab code for these function.
I wrote the following code for this function.
n = -5:1:7;
x = delta(n+1) - delta(n) + unit(n+1) - unit(n-2);
stem(n,x,'fill');
axis([-6 8 -1.5 1.5])
xlabel('n')
ylabel('x[n]')
grid
But I am getting the following error.
I don't now how can ı write the delta function in this way ,
function y = unit(x);
y = zeros(size(x));
y(x>0) = 1;
end
Can you help me write the delta function as the 'unit' function you see above? Thank you for your helping.

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Akzeptierte Antwort

Star Strider
Star Strider am 24 Mär. 2021
If you have the Symbolic Math Toolbox, use the dirac function. It can be used with non-symbolic arguments as well.
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Walter Roberson
Walter Roberson am 24 Mär. 2021
Ran in:
That is not a true Dirac δ function.
delta = @(x) x==0;
unit = @(x) x>=0;
n = -5:1:7;
x = delta(n+1) - delta(n) + unit(n+1) - unit(n-2);
stem(n,x,'fill');
axis([-6 8 -1.5 2])
xlabel('n')
ylabel('x[n]')
grid
Kutlu Yigitturk
Kutlu Yigitturk am 24 Mär. 2021
Thank you for your help Mr. Roberson. I got the result I wanted.

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Weitere Antworten (1)

Carlos M. Velez S.
Carlos M. Velez S. am 24 Jul. 2025
The examples above refer to the Kronecker delta function for discrete signals. If you want to apply the Dirac delta function in simulation to continuous-time systems, the following code is enough:
function y = delta_dirac(u)
[n,m] = size(u);
if max(n,m) ==1
dt = 1e-6; % Define a small time increment for the delta function
else
dt = u(2) - u(1);
end
y = zeros(n,m);
for i=1:max(m,n)
if u(i) == 0
y(i) = 1/dt;
else
y(i) = 0;
end
end

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