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Round My number?

I have an number

$n = -5665.36
$round_set = can be : 1,10,10,100,1000

use the $round_set condition to get the $m

if $round_set = 1

  $m = $n

if $round_set = 10

$m = -5660

if $round_set = 100

  $m = -5600

if $round_set = 1000

  $m = -5000

Anybody know how to round these kind of case?

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There is a certain inconsistency with the way you use $roundset. I'd expect 0 to return a whole number, not a decimal part. Its not a problem of course, just might confuse others looking at this code (or you in 6 months time). –  Chris Feb 23 '11 at 17:14

6 Answers 6

up vote 1 down vote accepted

http://codepad.viper-7.com/1EHFWEJ test it here.

<?php
$n = -5665.36;
$round_set = 100;
$precision =  -log10($round_set);
$m = ($round_set == 1 ? $n : round($n, $precision) + $round_set);
echo $m;
?>
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what is difference between you and @Gaurav? –  kn3l Feb 24 '11 at 10:47
    
using intval is shorter ;-) but when you use Gaurav's solution you need to add an exception for $roundset = 1. –  Stofke Feb 24 '11 at 11:20

Use this

intval($m/$round_set) * $round_set
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Look my case if $round_set = 100 I want 5600 not 5700 like you did here –  kn3l Feb 24 '11 at 8:57
    
I changed my answer. –  Gaurav Feb 24 '11 at 9:01

Wouldn't something like this work?

function rounded_nb($number, $round_set) {
    return floor($number/$round_set)*$round_set;
}

For any non 0 $round_set ?

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Look my case if $round_set = 100 I want 5600 not 5700 like you did here –  kn3l Feb 24 '11 at 8:57

You don't need the switch, do

if($round_set > 0) {
  $rounded = $round_set * floor($n / $round_set);
} else {
  $rounded = $n;
}

This should pretty much do.

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1  
You're missing some bits. in the first part of the if you need to multiply by $round_set again to get back to the right order of magnitude. And in the second return $n, not 0. –  Chris Feb 23 '11 at 17:13
    
Yes, you're right, I guess I shouldn't write posts in hurry :) –  michal kralik Feb 23 '11 at 17:21
    
look my case if $round_set = 100 I want 5600 not 5700 like you did here –  kn3l Feb 24 '11 at 8:41
$rs1 = max(1, $round_set);
$m = $rs1 * floor($n / $rs1);

However a 1,10,100,... valued $round_set might make more sense.

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Why not take advantage of PHP's round

$m = round($n, ($round_set == 0 ? 0 : -1 * log10($round_set)) );

Edit: Corrected edge-case of log10(0).

Edit 2: Corrected the precision.

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+1 for mentioning this option; -1 for not being able to use round as the requirement is to round the number to ceil if it's negative. -5665 (with round_set 100) would round to 5700 if I'm not wrong.; -1 for not including minus (-log10($round_set)) –  michal kralik Feb 23 '11 at 17:30
    
I had already corrected the lack of a negative long before you commented. But yes, it would round to -5700, should have paid more attention. –  Spencer Hakim Feb 23 '11 at 17:36
    
look my case if $round_set = 100 I want 5600 not 5700 like you did here –  kn3l Feb 24 '11 at 8:47
    
@stackunderflow: I'm aware of the mistake. –  Spencer Hakim Feb 24 '11 at 14:11

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