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I want to be able to convert big ints into their full string derivatives.

For example.

$bigint = 9999999999999999999;
$bigint_string = (string) $bigint;
var_dump($bigint_string);

outputs

string(7) "1.0e+19"

but i need

string(19) "9999999999999999999"

Please don't tell me that I should just originally set the $bigint value as a string. That is not an option. I really am stuck and don't know if it is even possible?

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Precision has been lost. That's out of range for a float. You won't get the string output you want. –  mario Aug 22 '11 at 17:38
    
I guess the only way really is to initially cast as a string. balls. –  buggedcom Aug 22 '11 at 17:48
1  
Might have gotten more relevant answers if you explained the use case rather than what think you want. –  mario Aug 22 '11 at 17:49
    
I see no integer in your code. Where should it be? –  hakre Aug 22 '11 at 17:56
    
@hakre - sorry. I did not realise that the big int would be a float. I've never dealt with numbers this large before. –  buggedcom Aug 22 '11 at 17:58

4 Answers 4

up vote 5 down vote accepted

You actually should ensure that you type what you mean:

$bigint = 9999999999999999999;

Is not a PHP integer but float:

float(1.0E+19)

If you would have done

$bigint = (int) 9999999999999999999;

You would have set an integer in fact, but it would not be the number you might have expected:

int(-8446744073709551616)

It's no problem at all to turn that into string as you might have guessed. So take care when you write numbers into code that you actually write what you mean.

See this line again:

$bigint = 9999999999999999999;

try to understand what you have actually written. It's not an integer at all because PHP will turn it into a float. See Example #4 Integer overflow on a 64-bit system in the integer manual page.

If you need higher precision, checkout GNU Multiple Precision, it might have what you're looking for. However, this won't change how to write numbers in PHP:

$bigint = gmp_init("9999999999999999999");
$bigint_string = gmp_strval($bigint);
var_dump($bigint, $bigint_string);

Output:

resource(4) of type (GMP integer)
string(19) "9999999999999999999"
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Thanks hakre for the in-depth response. I guess I have got plenty more to learn. –  buggedcom Aug 22 '11 at 17:56
    
gmp_init() needs to start with a string or an int -- not a float. Which means, if you've already got it in a string or an int, you don't need gmp. –  Alex Howansky Aug 22 '11 at 17:59
    
@buggedcom: You're welcome. There is always something new to learn ;) –  hakre Aug 22 '11 at 18:06
    
this doesn't work if you pass it like this: $bigint = gmp_init(9999999999999999999); –  Phill Pafford Nov 4 '11 at 15:13
    
@PhillPafford: Pass the number as integer or string, not float. –  hakre Nov 5 '11 at 6:25

Use strval().

echo strval($bigint); // Will output "99999999999999999"

EDIT: After a slightly better research (> 5000ms), I see that it is impossible to echo numbers to that precision, because PHP cannot save an integer of that size (depends on OS bit system, 32/64). Seems like it's not possible to do it without losing precision.

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+1: Beat me! . . –  Evan Mulawski Aug 22 '11 at 17:37
    
@Evan ;) 5 seconds worth of Google search. –  Second Rikudo Aug 22 '11 at 17:38
1  
sorry, that is just the same as casting it as a string by (string) and it does not work. It will just output 1.0E+19 –  buggedcom Aug 22 '11 at 17:38
    
Actually, it calls _toString(), which isn't the same. But strval should have worked. –  Evan Mulawski Aug 22 '11 at 17:42
1  
You can use third-party libraries, though. See stackoverflow.com/questions/211345/… –  Evan Mulawski Aug 22 '11 at 17:51

Use printf(), it's made for that:

echo printf("%d", $bigint);
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Sorry nope. just outputs 01 –  buggedcom Aug 22 '11 at 17:41
    
This doesn't work for values greater than 32 bit. (Or 64, in whichever case.) –  Alex Howansky Aug 22 '11 at 17:42

Just store the value as string and display...!

   $bigint = '9999999999999999999';

    var_dump($bigint);

Output:

string(19) "9999999999999999999"
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