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Now I understand floats are less accurate than double, but does this explain when I have the std::string:

"7.6317"

and I do:

float x = atof(myString.c_str());

getting 7.63170004 is expected? Is there any way I can tell the assignment of x to only read the first 4 decimal places? Or is this because of the way the float representation stores the number 7.6317?

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marked as duplicate by πάντα ῥεῖ, Oswald, 0x499602D2 Jul 27 at 18:35

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No, a float cannot store X decimal places. You can tell it to print with a specific precision. And double has the same behaviour. And use std::stof. –  chris Jul 27 at 18:21
2  
The closest float to 7.6317 is 7.631700038909912109375 –  harold Jul 27 at 18:31

3 Answers 3

Some floating point literals do not have an accurate representation in the computer, even if -- in decimal notation -- the number seems harmless. This is because the computer uses 2 as a base. So even if a number might have a finite representation in base 10, it might not have on in base 2.

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Yes. It is expected. It is so-called floating point error.

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. –  Bongs Jul 27 at 18:53
2  
This does answer the question "Is it expected". –  Dan Neely Jul 27 at 18:57
    
1. He asked if it is to be expected - I answered that, giving out tips where to look at. 2. I cannot comment any post other than mine ATM. 3. I would probably flag this post if I could. –  Midas Jul 27 at 21:53

you can do it like:

float x = floorf(val * 10000) / 10000;

i think it should work! see See

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1  
What does this accomplish? The number is already rounded to four decimal places. –  chris Jul 27 at 18:31
    
Yeah thats right, i forgot the float error with matisse and the exponent. sry –  Exciter Jul 27 at 18:34

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