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I always have trouble mixing languages and I recently started with MYSQL. In this case I have this code:

<?php
 $data = mysql_query("SELECT * FROM Badges") 
 or die(mysql_error()); 
 while($info = mysql_fetch_array( $data )) 
 { 
 Print "http://www.google.com/s2/favicons?domain=".$info['Website'] . ""; 
 } 
?>

And I need it to print an image instead of the link it's printing.

http://www.google.com/s2/favicons?domain=".$info['Website'] . " being the image's url

How would that be written? Thanks a lot

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2 Answers 2

up vote 3 down vote accepted
print '<img src="http://www.google.com/s2/favicons?domain=' . $info['Website'] . '" alt="" />'; 

Some other tips...

  • mysql_* are old functions, PDO is much better to use now it is available.
  • or die() is old too - have you considered exceptions?
  • echo is more commonly used than print, and you should use the case that is stated in the manual, e.g. print instead of Print.
  • You should learn about separation of concerns, e.g. you should do your query and data management on a different layer where you pass the relevant data to your view which would consist solely of HTML and some PHP constructs used to generate it.
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thanks, I'll check on all that. I just started with databases today! –  lisovaccaro May 1 '11 at 1:59

i usually find it easier to try and express what differs from case to case in an abstract manner. in your case it's the website (after ?domain=) that differs, all the rest is the same. so the url to the image could abstractly be expressed as http://www.google.com/s2/favicons?domain={website} where {website} is a place holder for future replacement.

replacement would then be performed using the function

$result = str_replace($what_to_replace, $what_to_replace_with, $original_string);

the advantage of this is that you're never mixing languages on one line, and this makes the code easier to develop :) just look at this quite easily read piece of code:

<?php
    $img = '<img src="http://www.google.com/s2/favicons?domain={website}" />';
    $data = mysql_query("SELECT * FROM Badges") 
    or die(mysql_error()); 

    while($info = mysql_fetch_array( $data )) 
    {
        $concrete_img = str_replace("{website}", $info['Website'], $img);
        print $concrete_img; 
    }
?>
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