Forward, Reverse finite difference question

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kjw
kjw le 15 Déc 2024
Déplacé(e) : Torsten le 15 Déc 2024
%forward
function df1_forward = forward_first(f,x,h)
df1_forward = (f(x(2:end))-f(x(1:end-1)))/h;
end
function df2_forward = forward_second(f,x,h)
df2_forward = (f(x(3:end))-2*f(x(2:end-1))+f(x(1:end-2)))/h^2;
end
function df3_forward = forward_third(f,x,h)
df3_forward = (f(x(4:end))-3*f(x(3:end-1))+3*f(x(2:end-2))-f(x(1:end-3)))/h^3;
end
function df4_forward = forward_fourth(f,x,h)
df4_forward = (f(x(5:end))-4*f(x(4:end-1))+6*f(x(3:end-2))-4*f(x(2:end-3))+f(x(1:end-4)))/h^4;
end
%reverse
function df1_reverse = reverse_first(f,x,h)
df1_reverse = (f(x(2:end))-f(x(1:end-1)))/h;
end
function df2_reverse = reverse_second(f,x,h)
df2_reverse = (f(x(3:end))-2*f(x(2:end-1))+f(x(1:end-2)))/h^2;
end
function df3_reverse = reverse_third(f,x,h)
df3_reverse = (f(x(4:end))-3*f(x(3:end-1))+3*f(x(2:end-2))-f(x(1:end-3)))/h^3;
end
function df4_reverse = reverse_fourth(f,x,h)
df4_reverse = (f(x(5:end))-4*f(x(4:end-1))+6*f(x(3:end-2))-4*f(x(2:end-3))+f(x(1:end-4)))/h^4;
end
I made a forward and backward finite difference code, and the forward and backward codes come out the same. Is this correct?

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Réponse acceptée

Torsten
Torsten le 15 Déc 2024
Déplacé(e) : Torsten le 15 Déc 2024
Ran in:
x = 0:0.1:1;
f = @(x)x.^2;
derf = (f(x(2:end))-f(x(1:end-1)))/0.1;
hold on
plot(x(2:end),derf); % backward
plot(x(1:end-1),derf); % forward
plot(x,2*x) % analytical
grid on
hold off

Plus de réponses (1)

KALYAN ACHARJYA
KALYAN ACHARJYA le 15 Déc 2024
In your code, you have written both forward and reverse functions identically, please check it again and make the reverse code.

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