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I was trying to change the style of only a part of php. This is my codes;

if($fetch_array)
{
    $foto_destination = $fetch_array['foto'];
echo "<img src = '$foto_destination' height='150px' width='150px'>";
}
else
{



?>
<div style= "position:absolute; left:350px; top:70px;">
<?php
echo "<img src = 'images/avatar_default.png' height='150px' width='150px'>";
?>
</div>

But, this php part is inside if. This is why i could not change it? I want to display the image where i define it inside the div tag if the statement of "if" is true. How can i do this? Where am i missing? Thanks

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Where is the if? I can't see it in your code. –  Andreas Aug 24 '11 at 4:40
    
Post your complete code. Where is IF??? –  AlphaMale Aug 24 '11 at 4:42
    
sorry:) Apparently, I could not post –  user893970 Aug 24 '11 at 4:43
    
if is on the first line –  austinbv Aug 24 '11 at 4:44
    
Do you think there is overwrite or something in somewhere of my whole codes(If i can do that inside is statement.I am new for php and style.) –  user893970 Aug 24 '11 at 4:46
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4 Answers 4

up vote 2 down vote accepted

If I understand you correctly, it should be:

<?php

if($fetch_array){
?>
<div style= "position:absolute; left:350px; top:70px;">
<?php
    $foto_destination = $fetch_array['foto'];
    print "  <img src = '$foto_destination' height='150px' width='150px'>";
}else{
?>
<div style= "position:absolute; left:350px; top:70px;">
  <img src = 'images/avatar_default.png' height='150px' width='150px'>
<?php
}
?>

</div>

It shows the $foto_destination, if there is one.

HTH

share|improve this answer
    
Yes, you are correct. This way works( if i put it at the top) but what i want using style attribute inside "if" so that i can change it according to the statements. –  user893970 Aug 24 '11 at 4:50
    
Btw, why my codes did not work because if i understand the reason, i will not ask silly question no more.Can not i define div inside "if"? –  user893970 Aug 24 '11 at 4:55
    
I changed it. Did you mean that? –  Andreas Aug 24 '11 at 4:55
    
oh yes. I meant that. thanks:) –  user893970 Aug 24 '11 at 4:56
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Did you mean like this?

<?php
if($fetch_array) {


    $photo = $fetch_array['foto'];
    $styles = 'position:absolute; left:350px; top:70px;';

} else {

    $photo = 'images/avatar_default.png';
    $styles = 'position:absolute; left:350px; top:70px;';

}
?>
<div style="<?php echo $styles; ?>">
<img src="<?php echo $photo; ?>" height="150" width="150" />
</div>
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That is correct or you can do an isset()

if (isset($fetch_array) {
  ...

The only advantage being that it will not error if the variable is undefined

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Here's a more compact version, shorttags must be enabled.

<div style="position:absolute; left:350px; top:70px;">
  <img src="<?= isset($fetch_array['foto']) ? "images/avatar_default.png" : $foto_destination['foto'] ?>" height="150px" width="150px" />
</div>

otherwise:

<div style="position:absolute; left:350px; top:70px;">
  <img src="<?php echo isset($fetch_array['foto']) ? "images/avatar_default.png" : $foto_destination['foto'] ?>" height="150px" width="150px" />
</div>
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