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How come the result for

intval("19.90"*100)

is

1989

and not 1990 as one would expect (PHP 5.2.14)?

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PHP Converting to integer as @Artefacto mentions it will always be rounded towards zero –  Rudu Feb 8 '11 at 15:02

5 Answers 5

up vote 10 down vote accepted

That's because 19.90 is not exactly representable in base 2 and the closest approximation is slightly lower than 19.90.

Namely, this closest approximation is exactly 2^-48 × 0x13E66666666666. You can see its exact value in decimal form here, if you're interested.

This rounding error is propagated when you multiply by 100. intval will force a cast of the float to an integer, and such casts always rounds towards 0, which is why you see 1989. Use round instead.

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but intval won't evaluate the inside numbers until after the multiplication so I think it's the 19.90 in quotations, I believe that messes with PHP's number parsing –  Patrick Feb 8 '11 at 15:02
    
Towards zero you mean ;) –  Rudu Feb 8 '11 at 15:02
    
@Rudu Right, fixed. In fact, I don't think it's necessarily true because C89 doesn't require rounding towards 0 (well, it doesn't even require IEEE 754, which would render half my answer wrong), but most (all?) mainstream platforms will do it. –  Artefacto Feb 8 '11 at 15:07

You can also use bc* function for working with float :

$var = bcmul("19.90", "100");
echo intval($var);
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1  
Which in the case of what you posted will print exactly the same. You'd need to do bcmul("19.90", "100") otherwise you're example throws an error since bcmul expects a second parameter, and you're embedding a float instead of a string... –  ircmaxell Feb 8 '11 at 15:06
    
My mistake, Bad copy/paste :P. Original post edited –  grunk Feb 8 '11 at 15:09
    
You still need to make them strings rather than numbers otherwise you're still going to have the float->string conversion issues. "19.90" instead of 19.90... –  ircmaxell Feb 8 '11 at 15:12
    
Works well (display 1990) without string conversion on my 5.3.5 php –  grunk Feb 8 '11 at 15:24

intval converts doubles to integers by truncating the fractional component of the number. When dealing with some values, this can give odd results. Consider the following:

print intval ((0.1 + 0.7) * 10);

This will most likely print out 7, instead of the expected value of 8.

For more information, see the section on floating point numbers in the PHP manual

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Why are you using intval on a floating point number? I agree with you that the output is a little off but it has to do with the relative inprecision of floating point numbers.

Why not just use floatval("19.90"*100) which outputs 1990

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I believe the php doc at http://de2.php.net/manual/en/function.intval.php is omitting the fact that intval will not deliver "the integer value" but the integer (that is non-fractional) part of the number. It does not round.

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