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Actually i want to pass a value to the second argument in a function , where the first argument is as default argument.

<?php
function a($a=5,$b) {
echo "a = ".$a."<br>";
echo "b = ".$b;
} 
a(,3);


?>

the first argument should remain default.

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1  
It never ever should be written like this. –  raina77ow Dec 18 '13 at 12:01
    
Pass the default or swap the function's parameters around. Your choice. –  George Dec 18 '13 at 12:02
    
I don't even understand the question oO –  Dave Dec 18 '13 at 12:02
    
i dont want to pass again because thats default and also i dont want swap how can pass value for second argument only like this. #oGeez –  user3107628 Dec 18 '13 at 12:05
    
i dont want swap tough, to be honest. If you think its a case of i need to not swap, then you have a bigger underlying problem. What's your need to try and do it this way? Or is it just at your preference? –  MLeFevre Dec 18 '13 at 12:10

3 Answers 3

up vote 1 down vote accepted

The best solution for this case is to revert parameters:

function a($b,$a=5) {}

and just call

a(3);
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better yet if $a is always to be the default just remove it from the parameters :) –  Dave Dec 18 '13 at 12:07
    
dear hsz this is the other type function my query actually focus on other concept if we pass first argument default and want to pass value of the function at running time how is it possible? –  user3107628 Dec 18 '13 at 12:09
    
You can use constants for example: define('DEFAULT_A', 5); function a($a = DEFAULT_A, $b){ ... }; a(DEFAULT_A, 3); –  hsz Dec 18 '13 at 12:11

you can't !

It's horrible. Write your function in the other side :

function a($b, $a = 5) {}
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Please try below code : change the function parameter position.

<?php
function a($b,$a=5) {
   echo "a = ".$a."<br>";
   echo "b = ".$b;
} 
a(3);

?> 
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