Different machine precision for scalars and vectors?

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Victoria Interrante
Victoria Interrante on 31 Aug 2020
Commented: Victoria Interrante on 31 Aug 2020
I was prearing a demonstration for my students on the topic of numerical error, and after some trial and error devised the sequence:
for i = 1:8
a = sin(i*(pi/2))
end
which reveals errors due to machine precision (a ≠ 0) when i is even. However, these errors do not show up if I store the result in a vector:
for i = 1:8
a(i) = sin(i*(pi/2))
end
Can anyone explain why? I'm guessing the reason is that somehow fewer bits are being used to encode the fractional part of the number in the latter case, but it's not clear to me why this would be the case.
  1 Comment
David Hill
David Hill on 31 Aug 2020
It is the same answer.
format long
a=sin(pi);
b=sin((1:8)*pi/2);
display(b(2));

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Accepted Answer

Jan
Jan on 31 Aug 2020
The only difference is the display in the command window. Matlab tries to display vectors in an abbreviated format, execpt if you instruct it to show the full precision. David Hill suggested format long g already. Then you see, that storing the values in a vector does not change the accuracy.

More Answers (1)

the cyclist
the cyclist on 31 Aug 2020
If you don't have a specific reason to be using a for loop here, why not also teach them canonical use of vectorized calculations?
i = 1:8;
a(i) = sin(i*(pi/2))
And either use the advice in David Hill's comment, or subtract the exact answer from a to show the error:
exact = [1 0 -1 0 1 0 -1 0];
floatingPointError = a - exact

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