arrayfun with different dimensions

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Dimitri
Dimitri le 4 Mai 2014
Commenté : Jos (10584) le 7 Mai 2014
Hi guys, I have the following question.
I am trying to calculate sum_(j=1)^k (sum_(i=1)^(k-1) ( (i+j)! ))
I defined a function f=@(k) sum(factorial(1:k)+factorial(1:k-1))
Then x=1:5 in order to evaluate the sum for the first 5 natural numbers
But arrayfun(f,x) produces a mistake since it says that I have different dimensions. Which is correct.. but why should it be a problem? And how should I evaluate the sum then?
Many thanks,Dimitri
  1 commentaire
Star Strider
Star Strider le 4 Mai 2014
It would help if you posted all your relevant code. Be sure to include your arrayfun call.

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Jos (10584)
Jos (10584) le 4 Mai 2014
factorial(1:k) will give you a vector with k values while factorial(1:k-1) will a vector with k-1 values. You simply cannot add vectors of unequal lengths ...

Plus de réponses (4)

Jan
Jan le 4 Mai 2014
Start with two simple for loops:
S = 0;
for jj = 1:k
for ii = 1:k-1
S = S + ...
end
end
Dimitri
Dimitri le 4 Mai 2014
Guys, thanks a lot for all your comments. I understand the problem of unequal length, and so was looking for an alternative formulation. Jan thank you, I'll try it tomorrow. If it would not work I put the code, star strider.
Dimitri
Dimitri le 5 Mai 2014
Modifié(e) : Dimitri le 5 Mai 2014
Hi again. I decided to put the code to make it more clear. I have a simple case of a double sum where the first sum is running from 1..k, the second from 1..l, where k,l might have different sizes. The sum refers to factorial of (i+j):
sum_(i=1)^k sum_(j=1)^l (i+j)!
Ok, so here I define the sum:
f=@(k,l) sum( factorial((1:k)+(1:l)) )
x=1:5
y=1:4 %say, I want to evaluate the sum where the first index runs utp 5 and the second up to 4 Then:
arrayfun(f,x,y)
What am I doing wrong? Maybe I have to define differently the matrix (x,y) which has to be assigned to the sum?
Many thanks!
Jos (10584)
Jos (10584) le 6 Mai 2014
So you want 20 sums in total (5 values of x combined with 4 values of y)?
x = 1:5
y = 1:4
[XX,YY] = ndgrid(x,y)
f = @(k) sum(factorial((1:XX(k))+(1:YY(k))) )
S = arrayfun(f,1:numel(XX))
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Dimitri
Dimitri le 7 Mai 2014
Hi Jos, unfortunately it still shows the same mistake as before: that the "matrix dimensions must agree".
Jos (10584)
Jos (10584) le 7 Mai 2014
Oops. Yes, of course, because again you want to add two vectors that are not equally long. This means that your formula is not right! Can you split your formula into sub-formulaes like this, and show the expected output for each step when you specify a specific a and b?
a =
b =
c = a + b % !! this errors when a and b do not have the same number of elements
d = factorial(c)
e = sum(d)

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