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Hello i am having a site which shows users their own profile picture. But i am unable to do so, I have built a code but it is not working & giving an error as Parse error: syntax error, unexpected T_CONSTANT_ENCAPSED_STRING in /home/u522159750/public_html/users/myaccount.php on line 156 i.e. the line $sql = mysqli_query($link, "SELECT id, name, avatar FROM users WHERE id="'.$id.'" ") ;Can anyone suggest me what could be the possible reasons. The code for showing image is as follow---

    <p>
 <?php
 //We check if the users ID is defined

$db_host = "xxxxxxxxxxxx"; 
$db_username = "xxxxxxxxxxxxxx"; 
$db_password = "xxxxxxxxx"; 
$db_database = "xxxxxxxxxxxxxx"; 

$link = mysqli_connect($db_host,$db_username,$db_password) or die("Cannot connect"); 
mysqli_select_db($link, $db_database) or die("Cannot select the database");
$sql = mysqli_query($link, "SELECT id, name, avatar FROM users WHERE id="'.$id.'" ") ;
while($result = mysqli_fetch_object($sql)):
<a href="http://www.mysite.tk/users/myaccount.php"> <img src="<?php echo $result->avatar; ?>" alt="<?php echo $result->name; ?>" width="200" height="300" /></a>
?> </p>
<?php   endwhile; ?>
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3 Answers 3

The part where you intend to output the link with the image, is html and should either be outside of the php part, or printed, as below.

 <?php
 //We check if the users ID is defined

$db_host = "xxxxxxxxxxxx"; 
$db_username = "xxxxxxxxxxxxxx"; 
$db_password = "xxxxxxxxx"; 
$db_database = "xxxxxxxxxxxxxx"; 

$link = mysqli_connect($db_host,$db_username,$db_password) or die("Cannot connect"); 
mysqli_select_db($link, $db_database) or die("Cannot select the database");
$sql = mysqli_query($link, "SELECT id, name, avatar FROM users WHERE id="'.$id.'" ") ;
while($result = mysqli_fetch_object($sql)) {
    print '<a href="http://www.mysite.tk/users/myaccount.php"> <img src="'.$result->avatar.'" alt="'.$result->name.'" width="200" height="300" /></a>';
}
?>
</p>
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oh you don't need to print so much of html, his approach is correct, it's just the path where he is missing –  Mr. Alien Oct 4 '12 at 8:28
    
Are you quite sure? I does not look valid, at all, to me. –  lix Oct 4 '12 at 8:35
    
oh yes sorry, he needs to echo out...right..but instead of printing out html with php, I wanted to tell you that –  Mr. Alien Oct 4 '12 at 8:36
    
Correct, as I've done in my response –  lix Oct 4 '12 at 8:37

after viewing at the browser, check the url src of each image, is it at the right path? and make sure the image is existed at the src path.

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In view page source it looks like this <img src=""> –  Cerefo Oct 8 '12 at 8:30

i will not show you a code or an example but this sugestions might be useful :

what does the avatar column in db takes ? does it take the image name or name.extension or location/name.extension

if it takes only the name : then you must define the location in php example

echo '<a href="#" > <IMG src="location/'.$avatar.'.jpg" alt="..." 
hight="200"width="200"/></a>';

but note : in this case all the avatars must be the same extension ( *.jpg )

if it takes the name.extension then you have just to define the location only

if it takes location/name.extension then you problem is not the $avatar

but still can be the avatar's name itself be sure to do not leave avatars names contains white spaces or non english alphabet characters. you have to renam them.

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