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in my app i do some math and the result can be float or int

i want to show the final result with two digit after the decimal point max ... if result is a float number

there are two options to do this

number_format($final ,2);

and

sprintf ("%.2f", $final );

but problem is ... if my final result is a int like 25 i end up with

25.00 

or if final result is some thing like 12.3 it gives me

12.30

and i dont want that

is there any way to format a number to show 2 digits after float point ONLY IF it's a float number with more than 2 digits after decimal point ? or should i do some checking before formatting my number ?

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7 Answers 7

up vote 6 down vote accepted
<?php
$number = 25;
print round($number, 2);

print "\n";

$number = 25.3;
print round($number, 2);

print "\n";

$number = 25.33;
print round($number, 2);

prints:

25
25.3
25.33
share|improve this answer
    
its almost perfect but it shows 12.30 like 12.3 –  max Jul 21 '13 at 11:25
2  
There is no difference between 12.30 and 12.3, only between "12.30" and "12.3", but you're working with a float as input, not a string, so there's no way to differentiate the two. –  Tim Pietzcker Jul 21 '13 at 11:28
    
I agree, using round is more benificial... since you're using floats and not strings +1 –  SmootQ Jul 21 '13 at 11:42
    
@max Tim Pietzcker says absolutely right thing. You are working with float, not a string, so 12.30 is the same as 12.3 –  user4035 Jul 21 '13 at 11:50

Yes, you should do some checking. For example check if ceil($number) > floor($number); If you need specificly two digits, that is going to take more effort.

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I think there is no such short bypass for it.
Manually check if it has 2 or more digits after decimal.

How to know if it has less one or zero digits after decimal ? Just multiply with 10 and check if it is an integer. If it is, print the number as it is. If it's now use '%.2f' to print it.

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I don't like this.

<?php
function format($number) {
    return preg_replace(
        '~\.[0-9]0+$~',
        null,
        sprintf('%.2f', $number)
    );
}

echo format(23), PHP_EOL;       //23
echo format(23.3), PHP_EOL;     //23
echo format(23.33), PHP_EOL;    //23.33
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1  
..but 23.3 should output 23.3 –  bitWorking Jul 21 '13 at 11:36
    
It should? In which case, all the input values match the expected output values, and nothing is required. –  Anthony Sterling Jul 21 '13 at 11:37
    
if decimal places are <= 2 –  bitWorking Jul 21 '13 at 11:38

You have to add an if condition, if it has more than 0 digits after the point. I don't see any other solution.

A simple and fast way to do this.

$final=3.40;
$decimalNbr= strlen(substr(strrchr($final, "."), 1));
$final = number_format($final,(is_float($final) ? (($decimalNbr>2) ? 2 : $decimalNbr) : 0));


echo $final;

Keep in mind too, that I added another decimal digits count before using the number_format.

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1  
12.3 will output 12.30 –  bitWorking Jul 21 '13 at 11:16
    
Oh, really... Thankx, I added some tricks (edited) –  SmootQ Jul 21 '13 at 11:25
    
You can create a function for multiple use. –  SmootQ Jul 21 '13 at 11:35

I found another option. Cast to float to strip the trailing zeros:

echo (float)sprintf("%.2f", $final);
// or
echo (float)number_format($final ,2);

But these functions seems to round the number just like round:

echo sprintf("%.2f", 12.556); // 12.56
echo number_format(12.556, 2); // 12.56

So if you don't want this behaviour use this:

$final = 12.556;
echo (int)(($final*100))/100; // 12.55

echo (int)((12*100))/100; // 12
echo (int)((12.3*100))/100; // 12.3
echo (int)((12.34567*100))/100; // 12.34
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You can use this example

function num_format($number,$precision=0)
{
    $precision = ($precision == 0 ? 1 : $precision);    
    $pow = pow(10, $precision);
    $value = (int)((trim($number)*$pow))/$pow;

    return number_format($value,$precision);
}
echo num_format(71730116.048758);
//Output
//71,730,116.04
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