4

For some reason 2^52 is equal to 2^52+1 in Matlab, but why ? And how can i fix this ? For more info please run the code below and check the results.

Here it is the outputs(with vpa):

>> format long
>> digits(500)
>> vpa(2^52)

ans =

4503599627370496.0

>> vpa(2^52+1)

ans =

4503599627370496.0

>> isequal(vpa(2^52), vpa(2^52+1))

ans =

     1

>> vpa(2^52+1)

ans =

4503599627370496.0

>> ans+1

ans =

4503599627370497.0

>> vpa(2^52+1000)

ans =

4503599627371496.0

https://ibb.co/iDDAwF

(the outputs without vpa)

>> 2^52

ans =

    4.503599627370496e+015

>> 2^52+1

ans =

    4.503599627370497e+015

>> isequal(2^52, 2^52+1)

ans =

     0

>> 2^52+1

ans =

    4.503599627370497e+015

>> ans+1

ans =

    4.503599627370498e+015

>> 2^52+1000

ans =

    4.503599627371496e+015

Edit: This isn't a duplicate and has nothing to do with floating point errors.

  • Thats odd. I just ran all the commands in matlab you have in your image and got all the expected answers – RSon1234 Feb 22 '17 at 7:19
  • Please, don't post pictures to code. It is difficult to copy. Then, what is vpa? My Matlab does not have it. – Bernhard Feb 22 '17 at 7:22
  • 1
    edit your post and put the code there – RSon1234 Feb 22 '17 at 7:25
  • 3
    Possible duplicate of Why is 24.0000 not equal to 24.0000 in MATLAB? – Adriaan Feb 22 '17 at 7:27
  • 1
    You have a basic floating point error; you reached the end of the largest numbers MATLAB can represent without loosing precision. – Adriaan Feb 22 '17 at 7:27
7
vpa_item=vpa('2^52');
vpa_item2=vpa('1+2^52');
disp(isequal(vpa_item, vpa_item2));

results in 0

You can use "symbolic expressions" to bypass limitations of finite or floating point arithmetic on the input end.

--edit--

The linked page says vpa(1+sym(2)^52) is the paradigmatic expression, although both methods should work.

What will not work (in general) is

value_affected_by_imprecise_arithemetic = 1+2^52;
vpa(value_affected_by_imprecise_arithemetic)
  • So do you know why I am getting the correct result doing this as the OP did and the OP is getting incorrect results? – RSon1234 Feb 22 '17 at 7:41
  • @RSon1234 So, in R2015a isequal(vpa(2^52), vpa(2^52+1)) results in 0 which is the correct behavior. Maybe due to a version mismatch? idk... – Mikhail Feb 22 '17 at 7:42
  • @Mikhail I just tested isequal(vpa(num2str(2^52)), vpa(num2str(2^52+1))) and it worked, thanks. – Kitiara Feb 22 '17 at 8:33
  • @Mikhail Which begs the question why isequal(vpa(num2str(2^57)), vpa('2^57')) = 0 ? and isequal(vpa(str2num(num2str(2^57))), vpa('2^57')) = 1 ? That is absolutely weird. – Kitiara Feb 22 '17 at 9:02
  • 1
    Don't use strings with symbolic math – this is advised against at the top of the documentation for vpa – and this functionality won't even work in future versions of Matlab. Use vpa(2)^52+1 or 2^vpa(52)+1, etc. Expression like vpa(2^52+1) may not work as 2^52+1 may be evaluated first in floating point (behavior in older Matlab versions may differ). – horchler Feb 22 '17 at 17:14

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.