Trying to convert this "0.274509817" to a nice precentage like 27%

The string is a dynamic value from an API.

  • x 100 and floor/round ? – Russell Dias Feb 20 '11 at 5:22
up vote 35 down vote accepted
$percent = round((float)$str * 100 ) . '%';

Where $str = "0.274509817"

  • Is it necessary to have (float)? – AndrewFerrara Feb 20 '11 at 5:27
  • 1
    No, but it makes things clear. And in case $str == false for whatever reason, it makes sure things don't break. – Alec Gorge Feb 20 '11 at 5:30
  • 1
    @AndrewFerrara: Since the OP wrote the vale using double-quotes, we assume it is a string. And its good practice to always typecast such cases, and do not rely on implicit conversions. And makes code easier to read and understand. – MestreLion Feb 20 '11 at 12:58
$number = 0.274509817;
echo round( $number * 100 ), '%';
  • 1
    This is perfect, and so much easier ;3 – Albert MN. Jan 18 '16 at 8:30

What's the problem with intval($a * 100) . '%'?

round((float)$value * 100) . '%'

and after that, append

"%" 

to get the percent sign (e.g. if used with sprintf).

  • Why use ASCII code for % ? Makes code much harder to read, while '%' works perfectly – MestreLion Feb 20 '11 at 13:00
  • Just a suggestion in case the real code used sprintf. I should have clarified this. Yes, if it's just string concatenation, then adding '%' is the way to go. – Scott C Wilson Feb 20 '11 at 18:12

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