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I read the manual from the php homepage

It writes:

// this doesn't go for 
//hexadecimal specified integers above 2^32-1:

var_dump( 0x100000000 );

// output: int(2147483647)

But it has 4.5 bytes which is larger than int(4 bytes), and I test it.

It outputs float.

I don't understand why they contradict?

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What does echo PHP_INT_MAX; tell you? –  hakre Jun 14 '12 at 19:28
    
I test in the class which is 32 and my desktop is 64 and it output 9223372036854775807 –  Liang-Yu Pan Jun 14 '12 at 19:31
1  
You have not yet reached the limit. The 2^32 boundary is typical for 32 bit systems, but the actual value can vary. –  hakre Jun 14 '12 at 19:42
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2 Answers

up vote 3 down vote accepted

From the PHP manual page on integers: "If PHP encounters a number beyond the bounds of the integer type, it will be interpreted as a float instead. Also, an operation which results in a number beyond the bounds of the integer type will return a float instead."

Since the integer type is too small to represent that number, PHP is automagically converting it to a float so you don't lose data. This is expected behavior.

However, the specific example that you quoted is clearly wrong in the manual. It looks like someone made an error when writing the manual, or it may be that the behavior of oversize hexadecimal literals was changed since the time that manual page was written.

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It outputs a float for me: float(4294967296)

DEMO: http://codepad.org/otsGOiWf

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then is the manul page wrong? –  Liang-Yu Pan Jun 14 '12 at 19:32
    
    
and what is " this doesn't go for hexadecimal specified integers above 2^32-1:" mean? –  Liang-Yu Pan Jun 14 '12 at 19:34
1  
Interpret the comment as "Hexadecimal-specified integers greater than PHP_INT_MAX are not interpreted as a float." However, this is no longer true. –  cbuckley Jun 14 '12 at 19:44
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