Question about Taylor series

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Qiuyi Wei
Qiuyi Wei el 2 de Abr. de 2019
Respondida: Torsten el 2 de Abr. de 2019
I am trying to write a code that output a scalor apporximation for function "sin(x)" that have an error less than 0,05. I try to write Taylor series myself(I cannot use "taylor" code) but my error keep getting larger and larger( the wrror supposed to be smaller and smaller). My math is really bad and I don't know why I keep getting wrong answer. Can anyone help me figure out what's wrong for my code and how can I fix it?
Thanks
  2 comentarios
Qiuyi Wei
Qiuyi Wei el 2 de Abr. de 2019
x=randi([-20 20]);
a=x+randi([2 20]);
k = sin(x); % true value
y = zeros(1,201); % approximation
y(1) = sin(a);
d = zeros(1,200) % derivative
for n = 1:200
e = mod(n,4);
if e==1;
d(n) = sin(a);
elseif e==2;
d(n) = cos(a);
elseif e==3;
d(n) = -sin(a);
elseif e==0;
d(n) = -cos(a);
end
y(n+1) = y(n)+d(n).*(x-a).^(n)./factorial(n);
end
error = abs((y-k)./k);
check = error<=0.05
t = find(check==1);
w = y(t);
est = k(1);
Qiuyi Wei
Qiuyi Wei el 2 de Abr. de 2019
Here is my code

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Respuestas (1)

Torsten
Torsten el 2 de Abr. de 2019
d(1) = cos(a), d(2) = -sin(a), d(3) = -cos(a), d(4) = sin(a)
So your if-statement to determine f^(n)(a) is wrong.
Further, "error" must be defined as
error = abs((y(end)-k)/k)
Further, you should not always explicitly calculate (x-a)^n/n!. Note that
(x-a)^(n+1)/(n+1)! = (x-a)^n/n! * (x-a)/(n+1).
So you can use a recursion to determine (x-a)^(n+1)/(n+1)! from (x-a)^n/n!.

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