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When concatenate php variable result not showing.

$a = 5;
$b = 4;
$o = '+';

echo $a.$o.$b;
result showing 5+4; but i want show result 9 

How can i do this, anybody can help me out. Thanks in advance.

share|improve this question
up vote 4 down vote accepted

'+' is a string, so if you concate it with a number you get a string. You have to look into the value:

if ($o == '+') {
    echo $a + $b;
}

Or what you probably want:

switch ($o) {
    case "+":
        echo $a + $b;
        break;
    case "-":
        echo $a - $b;
        break;
    case "*":
        echo $a * $b;
        break;
    case "/":
        echo $a / $b;
        break;
    default:
        echo 0;
}
share|improve this answer
1  
perhaps also default: echo 0; at the end of the switch, if you need to handle cases other than +-*/ – danneth Oct 28 '11 at 8:03
    
I like that! :) – PiTheNumber Oct 28 '11 at 8:05
    
this is working good, just for my acknowledgment how php work with this echo $a.$o.$b; i will try with evel also but no result showing. – divya Oct 28 '11 at 8:13
    
See below what Thai said. Use return in eval() to get a result. – PiTheNumber Oct 28 '11 at 8:16
    
thanks for your help. – divya Oct 28 '11 at 9:03

Use the "eval()" function

As in:--

echo eval($a.$o.$b)

But be careful never "eval" anything that comes from a web page without validation.

share|improve this answer
    
eval is evil. You should not use eval. And if you have to make sure to escape your parameters! if(in_array($o, array('+', '-', '*', '/'))) echo eval(intval($a).$o.intval($b)) – PiTheNumber Oct 28 '11 at 7:59
2  
Unlike in JavaScript, you need to use return in order to get anything out of eval, and a semicolon is required: "eval() returns NULL unless return is called in the evaluated code", so eval('return ' . intval($a) . $o . intval($b) . ';'). ;) – Thai Oct 28 '11 at 8:13
    
Good to know, took a few tries, but got this working. example – Mark Cameron Oct 28 '11 at 8:45

You are concatenating with the string "+", so you get a string. You want to actually add the numbers:

$o = $a + $b;
echo $o;
share|improve this answer
    
no operator also coming dynamically – divya Oct 28 '11 at 7:56

concatenate joins strings. If you want normal arithmetic, just use a plus sign:

$a = 5;
$b = 4;
echo ($a + $b)
share|improve this answer

When you use concatenate PHP automatically set type of parameters STRING. You should write $c=$b+$a; echo $c;

share|improve this answer

You can do this:

function calc($a, $b, $o) {
    $op = array('+', '-');

    if (in_array($o, $op)) 
        return eval('return '.(int)$a.$o.(int)$b.';');

    return False;
}


$a = 5;
$b = 4;
$o = '+';
var_dump(calc($a, $b, $o));

But this is very ugly, you should rethink your logic.

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