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$string = 'some_name@somedomain.com';
$res = explode('@', $string);
$ext = '.jpg';
$newString = $res . $ext;

my result turn out to be only .jpg when I expected some_name.jpg

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Your result is not just .jpg but Array.jpg. because explode returns an array. You want $res[0]. –  Gordon Feb 16 '12 at 8:36
    
Initially it was Array.jpg. my string was empty because I forgot to set it as my post parameter in my Java. Lol. Solved. Thanks! –  DroidMatt Feb 16 '12 at 9:52
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9 Answers 9

up vote 3 down vote accepted

explode returns an array, so you'll need to pick an element:

$newString = $res[0] . $ext;
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hello, i still get .jpg after modifying it. –  DroidMatt Feb 16 '12 at 8:43
    
Cannot reproduce, sorry. codepad.viper-7.com/7UU532 –  deceze Feb 16 '12 at 8:46
    
Im sorry, the code work, I did some mistake on the other part of the code! Cheers!! –  DroidMatt Feb 16 '12 at 9:51
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You need to index into the array you're creating with explode():

$newString = $res[0] . $ext;
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$res contains an array, use this:

$newString = $res[0] . $ext;
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You should concatenate $res[0] and $ext:

$newString = $res[0] . $ext;
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After exploding the string it convert into array :

$res is an array. So try

$newString = $res[0] . $ext;

and you can check this by print_r($res); and use that index which you want.

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You're trying to join an array with a string. Choose an element and concatenate.

$string = 'blablabla@gmail.com';
$result = explode('@', $string);
$ext = '.jpg';
$newString = $result[0] . $ext;
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$res is an array. You need $res[0] instead.

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$string = 'some_name@somedomain.com';
$res = explode('@', $string);
$ext = '.jpg';
$newString = $res[0] . $ext;
share|improve this answer
add comment

$newString = $res[0] . $ext;

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