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I am using the money_format() function in PHP, which gives the following error:

Fatal error: Call to undefined function money_format()

Searches about this error reveal that the function money_format() is only defined if the system has strfmon capabilities. For example, Windows does not, so money_format() is undefined in Windows.

Is there an equivalent PHP function available for Windows?

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1  
No, you can't, manual explicitly says so - so does googling. –  Michael J.V. Jun 16 '11 at 9:46

7 Answers 7

up vote 14 down vote accepted

If you have the Intl extension, you can use

Example from Manual

$fmt = new NumberFormatter( 'de_DE', NumberFormatter::CURRENCY );
echo $fmt->formatCurrency(1234567.891234567890000, "EUR")."\n";
echo $fmt->formatCurrency(1234567.891234567890000, "RUR")."\n";
$fmt = new NumberFormatter( 'ru_RU', NumberFormatter::CURRENCY );
echo $fmt->formatCurrency(1234567.891234567890000, "EUR")."\n";
echo $fmt->formatCurrency(1234567.891234567890000, "RUR")."\n";

Output

1.234.567,89 €
1.234.567,89 RUR
1 234 567,89€
1 234 567,89р.

Also see my answer on how to parse that formatted money string back into a float:

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For US Dollors $fmt = new NumberFormatter( 'en_US', NumberFormatter::CURRENCY ); echo $fmt->formatCurrency($float, 'USD'); –  danielson317 Apr 29 at 17:01
<?php
function toMoney($val,$symbol='$',$r=2)
{


    $n = $val; 
    $c = is_float($n) ? 1 : number_format($n,$r);
    $d = '.';
    $t = ',';
    $sign = ($n < 0) ? '-' : '';
    $i = $n=number_format(abs($n),$r); 
    $j = (($j = $i.length) > 3) ? $j % 3 : 0; 

   return  $symbol.$sign .($j ? substr($i,0, $j) + $t : '').preg_replace('/(\d{3})(?=\d)/',"$1" + $t,substr($i,$j)) ;

}

echo toMoney(9856478521456.256);
?>

try this the out put of above code is "$9,856,478,521,456.26"

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+1 for responding after a long time –  Pramod Jul 24 '12 at 8:56
    
not working for 8 starting numbers –  Bharanikumar Feb 18 '13 at 7:45

Keep it simple!

sprintf('%01.2f', $val);
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This is a good suggestion, but what if you want the - sign in front of the $ for negative dollar amounts? What if you want () instead of -? –  CharityAbbott Jan 4 '14 at 16:31

@Ajeet toMoney function looks good, but it is not working for the '0899'

Change length Into strlen()

$j = (($j = $i.length) > 3) ? $j % 3 : 0;

so change into below like

$j = (($j = strlen($i)) > 3) ? $j % 3 : 0;

Now this will work for any data.

<?php
function toMoney($val,$symbol='$',$r=2)
{


    $n = $val; 
    $c = is_float($n) ? 1 : number_format($n,$r);
    $d = '.';
    $t = ',';
    $sign = ($n < 0) ? '-' : '';
    $i = $n=number_format(abs($n),$r); 
    $j = (($j = strlen($i)) > 3) ? $j % 3 : 0; 

   return  $symbol.$sign .($j ? substr($i,0, $j) + $t : '').preg_replace('/(\d{3})(?=\d)/',"$1" + $t,substr($i,$j)) ;

}

echo toMoney('0899'/100); //Note: single quotes mandatory

?>
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2  
I wonder what $c and $d does. They never used in the function? –  Sisir Dec 13 '13 at 6:12

I don't understand why @Ajeet is making it so complicated why not do like this, It also now works for 4 digit numbers to answer @bharanikumar "but it is not working for the '0899'"

function toMoney($val,$symbol='$',$r=2)
{
    $n = $val;
    $sign = ($n < 0) ? '-' : '';
    $i = number_format(abs($n),$r);

    return  $symbol.$sign.$i;
}
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@Y Talansky your function could be the next code:

function number_to_money($value, $symbol = '$', $decimals = 2)
{
    return $symbol . ($value < 0 ? '-' : '') . number_format(abs($value), $decimals);
}
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 function toMoney($val,$symbol='$',$r=2)
{


    $n = $val; 
    $c = is_float($n) ? 1 : number_format($n,$r);
    $d = '.';
    $t = ',';
    $sign = ($n < 0) ? '-' : '';
    $i = $n=number_format(abs($n),$r); 
    $j = (($j = strlen($i)) > 3) ? $j % 3 : 0; 

   return  $symbol.$sign .($j ? substr($i,0, $j) + $t : '').preg_replace('/(\d{3})(?=\d)/',"$1" + $t,substr($i,$j)) ;

}

echo toMoney(45); ; 

output:$45.00

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