21

I have this number:

$double = '21.188624';

After using number_format($double, 2, ',', ' ') I get:

21,19

But what I want is:

21,18

Any ideea how can I make this work?

Thank you.

  • You can simply subtract 5 * 10 ^ - ( 1 + decimal places). So number_format($double - 0.005, 2, ',', ' ') – Pete Jun 5 '18 at 15:40

14 Answers 14

31

number_format will always do that, your only solution is to feed it something different:

$number = intval(($number*100))/100;

Or:

$number = floor(($number*100))/100;
  • 2
    Try this with this number : 0.29 , and it fails! – Arsham Aug 22 '13 at 10:59
  • do this: $finalCommishParts = explode('.',$commission); $commisshSuffix = (isset($finalCommishParts[1])?substr($finalCommishParts[1],0,2):'00'); $finalCommish = $finalCommishParts[0].'.'.$commisshSuffix; – Asaf Maoz May 15 '14 at 12:37
  • @AsafMaoz: beware ot decimal separator differences with locales. – Wrikken May 16 '14 at 0:03
  • @Arsham: that's because 0.29 does not exist as a float: printf('%.20f',0.29) shows you: 0.28999999999999998002, so, it correctly forces the round down. – Wrikken May 16 '14 at 0:07
  • 1
    @AsafMaoz: You could use str_pad($string, 2,'0',STR_PAD_RIGHT) instead of the substring method too BTW. – Wrikken May 16 '14 at 0:10
8

I know that this an old question, but it still actual :) .

How about this function?

function numberFormatPrecision($number, $precision = 2, $separator = '.')
{
    $numberParts = explode($separator, $number);
    $response = $numberParts[0];
    if(count($numberParts)>1){
        $response .= $separator;
        $response .= substr($numberParts[1], 0, $precision);
    }
    return $response;
}

Usage:

// numbers test
numberFormatPrecision(19, 2, '.'); // expected 19 return 19
numberFormatPrecision(19.1, 2, '.'); //expected 19.1 return 19.1
numberFormatPrecision(19.123456, 2, '.'); //expected 19.12 return 19.12

// negative numbers test
numberFormatPrecision(-19, 2, '.'); // expected -19 return -19
numberFormatPrecision(-19.1, 2, '.'); //expected -19.1 return -19.1
numberFormatPrecision(-19.123456, 2, '.'); //expected -19.12 return -19.12

// precision test
numberFormatPrecision(-19.123456, 4, '.'); //expected -19.1234 return -19.1234

// separator test
numberFormatPrecision('-19,123456', 3, ','); //expected -19,123 return -19,123  -- comma separator
7
floor($double*100)/100
3

Use the PHP native function bcdiv.

function numberFormat($number, $decimals = 2, $sep = ".", $k = ","){
    $number = bcdiv($number, 1, $decimals); // Truncate decimals without rounding
    return number_format($number, $decimals, $sep, $k); // Format the number
}

See this answer for more details.

  • This solution is very nice but you need to feed strings to bcdiv otherwise it will print 0.00000 if you try to numberFormat small numbers (I tested it and it does not work with 0.00001). Solution: $number = bcdiv(number_format($number, 30, '.', ''), '1', $decimals); – Gotenks Dec 6 '18 at 12:00
3

I use this function:

function cutNum($num, $precision = 2) {
    return floor($num) . substr(str_replace(floor($num), '', $num), 0, $precision + 1);
}

Usage examples:

cutNum(5)          //returns 5 
cutNum(5.6789)     //returns 5.67 (default precision is two decimals)
cutNum(5.6789, 3)  //returns 5.678
cutNum(5.6789, 10) //returns 5.6789
cutNum(5.6789, 0)  //returns 5. (!don't use with zero as second argument: use floor instead!)

Explanation: here you have the same function, just more verbose to help understanding its behaviour:

function cutNum($num, $precision = 2) {
    $integerPart = floor($num);
    $decimalPart = str_replace($integerPart, '', $num);
    $trimmedDecimal = substr($decimalPart, 0, $precision + 1);
    return $integerPart . $trimmedDecimal;
}
  • Used it today and it worked like a charm – samouray Jul 27 '17 at 12:18
  • You saved my time Thanks – Tejas Mehta Dec 20 '17 at 10:25
  • test cutNum(510.9) // return 510.89 – ustmaestro Feb 18 at 13:43
  • Thanks @ustmaestro, it's due to a Php floating conversion issue. I've replaced the floating calculation with string replace function, as a workaround for this scenarios. – T30 Feb 18 at 16:50
  • Your function isn't correct. 99.997092 will return 99.70 when it should return 99.99. Here is the proper function. pastebin.com/6i9X536G – OwN Apr 19 at 16:39
2
 **Number without round**        

   $double = '21.188624';
   echo intval($double).'.'.substr(end(explode('.',$double)),0,2);

**Output** 21.18
1
$double = '21.188624';

$teX = explode('.', $double);

if(isset($teX[1])){
    $de = substr($teX[1], 0, 2);
    $final = $teX[0].'.'.$de;
    $final = (float) $final;
}else{
    $final = $double;   
}

final will be 21.18

1

Function (only precision):

function numberPrecision($number, $decimals = 0)
{
    $negation = ($number < 0) ? (-1) : 1;
    $coefficient = pow(10, $decimals);
    return $negation * floor((string)(abs($number) * $coefficient)) / $coefficient;
}

Examples:

numberPrecision(2557.9999, 2);     // returns 2557.99
numberPrecision(2557.9999, 10);    // returns 2557.9999
numberPrecision(2557.9999, 0);     // returns 2557
numberPrecision(2557.9999, -2);    // returns 2500
numberPrecision(2557.9999, -10);   // returns 0
numberPrecision(-2557.9999, 2);    // returns -2557.99
numberPrecision(-2557.9999, 10);   // returns -2557.9999
numberPrecision(-2557.9999, 0);    // returns -2557
numberPrecision(-2557.9999, -2);   // returns -2500
numberPrecision(-2557.9999, -10);  // returns 0

Function (full functionality):

function numberFormat($number, $decimals = 0, $decPoint = '.' , $thousandsSep = ',')
{
    $negation = ($number < 0) ? (-1) : 1;
    $coefficient = pow(10, $decimals);
    $number = $negation * floor((string)(abs($number) * $coefficient)) / $coefficient;
    return number_format($number, $decimals, $decPoint, $thousandsSep);
}

Examples:

numberFormat(2557.9999, 2, ',', ' ');     // returns 2 557,99
numberFormat(2557.9999, 10, ',', ' ');    // returns 2 557,9999000000
numberFormat(2557.9999, 0, ',', ' ');     // returns 2 557
numberFormat(2557.9999, -2, ',', ' ');    // returns 2 500
numberFormat(2557.9999, -10, ',', ' ');   // returns 0
numberFormat(-2557.9999, 2, ',', ' ');    // returns -2 557,99
numberFormat(-2557.9999, 10, ',', ' ');   // returns -2 557,9999000000
numberFormat(-2557.9999, 0, ',', ' ');    // returns -2 557
numberFormat(-2557.9999, -2, ',', ' ');   // returns -2 500
numberFormat(-2557.9999, -10, ',', ' ');  // returns 0
  • OMG. Thanks. It's actually is what i searched. – Andrey Mar 22 at 10:14
0
public function numberFormatPrecision( $number, $separator = '.', $format = 2 ){

    $response = '';
    $brokenNumber = explode( $separator, $number );
    $response = $brokenNumber[0] . $separator;
    $brokenBackNumber = str_split($brokenNumber[1]);

    if( $format < count($brokenBackNumber) ){

        for( $i = 1; $i <= $format; $i++ )
            $response .= $brokenBackNumber[$i];
    }

    return $response;
}
  • You cannot have for( $i = 1;... because $brokenBackNumber[$i] will then miss the first character - since $brokenBackNumber is zero based. You should also have an 'else{}' section for your if statement. But I like your idea. – Gerhard Liebenberg Mar 23 '15 at 17:39
0
$finalCommishParts = explode('.',$commission);
$commisshSuffix = (isset($finalCommishParts[1])?substr($finalCommishParts[1],0,2):'00');
$finalCommish = $finalCommishParts[0].'.'.$commisshSuffix;
  • 1
    Please add explaining text. I don't see number_format(...) in this answer, so it is beyond me how this answers the question "How to make number_format() not to round numbers up" – Sumurai8 Jul 19 '14 at 17:48
  • This snippet does what number_format does, but without rounding up the number. As mentioned above, check for your local decimal separator. – Asaf Maoz Jul 20 '14 at 11:44
0

In case you don't care for what comes behind the decimal point, you can cast the float as an int to avoid rounding:

$float = 2.8;
echo (int) $float; // outputs '2'
0

The faster way as exploding(building arrays) is to do it with string commands like this:

$number = ABC.EDFG;
$precision = substr($number, strpos($number, '.'), 3); // 3 because . plus 2 precision  
$new_number = substr($number, 0, strpos($number, '.')).$precision;

The result ist ABC.ED in this case because of 2 precision If you want more precision just change the 3 to 4 or X to have X-1 precision

Cheers

-1

use this function:

function number_format_unlimited_precision($number,$decimal = '.')
{
   $broken_number = explode($decimal,$number);
   return number_format($broken_number[0]).$decimal.$broken_number[1]);
}
  • you have an extra ) $broken_number[1]); – ddjikic Aug 8 '13 at 20:24
  • 1
    This does nothing: simply returns the same input number as it's passed (also there is bracket mispelling). – T30 Apr 28 '15 at 14:36
  • I know it's an old response and it's not a really good answer, but let's get clear that there's an edit, and if you look at the history, the extra bracket was added by this Linus dude and not by the original answerer. – Joao Paulo Rabelo Mar 8 '17 at 20:59
-1

In Case you have small float values you can use number_format function this way.

$number = 21.23;

echo number_format($number, 2, '.', ',') ); // 21.23

In case you have you have long decimal number then also it will format number this way

$number = 201541.23;

echo number_format($number, 2, '.', ',') ); // 201,541.23
  • that's totally not an answer to the question – devman Jun 13 '18 at 19:23

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.