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Possible Duplicate:
'for' loop and typecasting hell ! (PHP)
PHP Math Precision

for ($x=0; $x<=1; $x+=.1) echo("-$x");
echo("<br>");
for ($x=0; $x<=1; $x+=.05) echo("-$x");

outputs:

-0-0.1-0.2-0.3-0.4-0.5-0.6-0.7-0.8-0.9-1
-0-0.05-0.1-0.15-0.2-0.25-0.3-0.35-0.4-0.45-0.5-0.55-0.6-0.65-0.7-0.75-0.8-0.85-0.9-0.95`

The first loop outputs a 1 as expected.

The second loop exits when x==1, it does not output a 1 as expected

It works with some step increments like .125, .025, .25, etc, but not with other values like .01, .02, .002, etc.

I've never noticed that before, and now I'm having to use while loops to get around it. Does anybody know what's going on there? I'm finding it in php version 5.3.8 and 5.2.11.

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marked as duplicate by KingCrunch, Juhana, nickb, Madara Uchiha, John Conde Jul 6 '12 at 20:34

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4  
floating-point-gui.de or in short: Don't rely on floats for comparison against equality. – KingCrunch Jul 6 '12 at 20:22
    
Have a look at this: stackoverflow.com/a/1316184/96603 – eWolf Jul 6 '12 at 20:23
    
hey, that was fast, and helpful, thanks..., I guess that rules out using a while loop with the same comparison, even though a while loop seemed to work as expected, that was a good explanation at the link provided by KingCrunch, thanks again... – user1507667 Jul 6 '12 at 20:31
    
Just cause this was closed (it's not a dupe), I'll put this here: for ($x=0; round($x,2)<=1; $x+=.05) echo("-$x");. the idea is when it gets to 1, it is internally stored as 0.99999999999998. Round it to 2 decimal places, and it will do what you need – JoeCortopassi Jul 6 '12 at 20:40

This will explain better than I could ever do myself: http://en.wikipedia.org/wiki/Binary_numeral_system#Fractions_in_binary

Fractions are not representable exactly in binary numbers. So you carry a small imprecision that turns out to make your ending test fail. Use integer in your loop, then display them as floating point numbers.

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