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I implemented if condition in my code, Condition is if john is set than show abc.jpg else xyz.jpg but it is not working it shows me the the xyz .jpg image everytime. Please help me. If my syntax is wrong than please tell me where is the mistake.

<?php
if($extra = "John" || "Kevin" || "Cameron" || "Santosh" || "Ali"){ ?>
    <img src="http://yespricer.com/theme/Freshness/images/maria2.png" width="75"/>
<?php }else{ ?>
    <img src="http://yespricer.com/theme/Freshness/images/maria.png" width="75"/>
<?php } ?>
share|improve this question
    
Thank god no ones said about using ' because they are faster than ". Oh, wait, D'OH! >< –  VBAssassin Nov 1 '12 at 12:18
    
The syntax is fine, but you have expressed something different and code than you wanted to. php.net/expressions –  hakre Nov 1 '12 at 12:25

6 Answers 6

How to learn more about what is happening? Assign your condition to a variable:

$result = $extra = "John" || "Kevin" || "Cameron" || "Santosh" || "Ali";

Then make your condition visible:

var_dump($result);

This will give you:

bool(true)

Meaning that the condition resulted in boolean true (demo). Why does this happen you might ask yourself now. For that you can pick the condition apart:

"John" || "Kevin" || "Cameron" || "Santosh" || "Ali"

This is an expression of true in PHP. You can replace it just with true. The next part then:

$extra = true;

That is easy. You assign true to the variable $extra. Now the final part:

$result = true;

Again, now assigning the result of the expression to $result so you see true.

Instead you probably wanted to check that the variable $extra contains any of the names. There are some caveats here in PHP to do that properly. First of all make your life easier and put all names you would like to check against into an array:

$names = array("John", "Kevin", "Cameron", "Santosh", "Ali");

Then check strictly that $extra is in that array:

$result = in_array($extra, $names, true);

Note the third parameter being true here, that is for strict checking (see in_arrayDocs). Otherwise you might see that if $extra is 0 that $result is true. Then process the result, but make your life easy again, you just need a variable:

$image = $result ? 'maria2.png' : 'maria.png';

And then finally do the output:

printf(
    '<img src="http://yespricer.com/theme/Freshness/images/%s" width="75"/>'
    , $image
);

And you have solved your issue. The code example in full:

$names  = array("John", "Kevin", "Cameron", "Santosh", "Ali");
$result = in_array($extra, $names, true);
$image  = $result ? 'maria2.png' : 'maria.png';
printf(
    '<img src="http://yespricer.com/theme/Freshness/images/%s" width="75"/>'
    , $image
);

Demo

See as well:

share|improve this answer

You Can't Use

if($extra = "John" || "Kevin" || "Cameron" || "Santosh" || "Ali"){

Reason Why

Because if you go from left to right, $extra == "John"... ok, thats fine because it could evaluate to true or false depending on the value of $extra. However, the next one is like doing this:

if ("Kevin") {

Since non empty strings evaluate to true, you had might as well have written this:

if($extra = "John" || true || true || true || true){

Since you are using logical OR, it does not matter what $extra is, because every single one will result in the if condition being TRUE.

Solution 1 - Messy Conditional

if($extra == "John" || $extra == "Kevin" || $extra == "Cameron" 
|| $extra == "Santosh" || $extra == "Ali"){

Solution 2 - As des Suggested

$names = array("John", "Kevin", "Cameron", "Santosh", "Ali");
if(in_array($extra, $names)) {
    // $extra is in $names
}

Solution 3 - Cleaner than ifs, Faster than arrays & still flexible

switch ($extra) {
    case "John":
    case "Kevin":
    case "Cameron":
    case "Santosh":
    case "Ali":
        //code here for TRUE, if any of those names match $extra


        break;
    default:
        //code here for FALSE, if non of the names match $extra



}
share|improve this answer

It should be

if($extra == "John" || $extra == "Kevin" || $extra == "Cameron" || $extra == "Santosh" || $extra == "Ali"){

}

EDIT

As des suggest in_array you can use this solution also

$names = array("John", "Kevin", "Cameron", "Santosh", "Ali");

echo "<img src='http://yespricer.com/theme/Freshness/images/".(in_array($extra, $names)?'maria1':'maria').".png' width='75'/>";
share|improve this answer
3  
= or == ??? –  Dev Nov 1 '12 at 11:58
    
This is wrong. You probably meant to use == instead of =. –  MatsLindh Nov 1 '12 at 12:00
1  
@Dev: Thanks for correction.. –  MR Srinivas Nov 1 '12 at 12:02
    
@fiskfisk: Yes... –  MR Srinivas Nov 1 '12 at 12:02

A better and efficient way is to use in_array():

<?php
if(in_array($extra, array("John", "Kevin", "Cameron", "Santosh", "Ali")){ ?>
    <img src="http://yespricer.com/theme/Freshness/images/maria2.png" width="75"/>
<?php }else{ ?>
    <img src="http://yespricer.com/theme/Freshness/images/maria.png" width="75"/>
<?php } ?>
share|improve this answer

Very similar way to what others above have suggested but a little tidier in my opinion

<?php
    $name = "";
    if($extra == "John" || $extra =="Kevin" || $extra =="Cameron" || $extra =="Santosh" || $extra == "Ali"){ 
        $name = "maria2.png";
    }else{
        $name = "maria.png";
    }
?>
<img src="http://yespricer.com/theme/Freshness/images/<?php echo $name;?>" width="75" />
share|improve this answer

You need to check if $extra is equal to value every time. Your code does this only once. You can group all the values inside an array and check wheter your value is in it:

$names = array("John", "Kevin", "Cameron", "Santosh", "Ali");
if(in_array($extra, $names)) {
    // $extra is in $names
}
share|improve this answer
    
This^^ That way adding new names is much easier too –  Rick Calder Nov 1 '12 at 12:00
    
Yeah, it's certainly better than adding || $extra == "NewName" every time you add new name :) –  walkhard Nov 1 '12 at 12:01
    
May I know why I was downvoted? –  walkhard Nov 1 '12 at 12:27
    
Probably not, there seems to be a rash of uncommented and unwarranted downvoting in the past day, honestly it makes me wonder why I bother. I had one answer accepted yesterday with a -1 score... –  Rick Calder Nov 1 '12 at 12:33
    
This is sad, I've experienced it before, but I always have hope that it wasn't another "I just don't want you to have it" (or the like) downvote. –  walkhard Nov 1 '12 at 12:35

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