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In my image.php file i have code

$id=abs($_GET['id']);
$query = mysql_query("SELECT image FROM table1 WHERE id=$id");
$data=mysql_fetch_array($query);

header('Content-type: image/jpg');
echo $data['image'];

And while retrieving i am using query

$query = mysql_query("SELECT id FROM table1");
  while($data=mysql_fetch_array($query)) {
  echo '<'.'img src="image.php?id='.$data['id'].'">';

It is perfectly displaying images from my data base... But i want to detect which image user clicked for that i tried

echo '<'.'img src="image.php?id='.$data['id'].'" onclick="doSomething()">';

this onclick java script function doesn't getting call..(i am using mozilla fire fox) I am new to PHP.

Finally I need to detect the clicked image among the images which are displayed using PHP echo from Mysql.Is there any other way that i can follow for this?

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What is rendered html? Did you check rendered page source (view source), maybe has syntax error? –  arunes Mar 7 '12 at 12:37
    
Why are you concatenating '<' and the rest of the string? '<img..' would work the same –  Damien Pirsy Mar 7 '12 at 12:38
    
Check your error console in Firefox. Check that doSomething() is actually defined, keep in mind the function name is case sensitive. –  MrCode Mar 7 '12 at 12:48

3 Answers 3

I think the error is in escaping quotes

echo" < img src='image.php?id=". $data['id']. "' onclick='doSomething()' >";
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1  
Quotes were fine –  Damien Pirsy Mar 7 '12 at 12:40
    
echo '<img src= "1.jpeg" onclick="alert("alert")>'; it displaying image but onclick is not working for this too.. –  AshokiPhone Mar 7 '12 at 12:52
    
echo '<img src= "1.jpeg" onclick="alert(\"alert\")>'; try this –  sandeep Mar 7 '12 at 13:06
    
Then check if your javascript tag <script type='text/javascript'> function doSomething() {} </script> –  Naveen Kumar Mar 8 '12 at 3:59
echo '<'.'img src="image.php?id='.$data['id'].'" onclick="doSomething(this.id)" 
id="img_'.$data['id'].'">';

try this and in dosomething use ajax andpass id to PHP and process it

share|improve this answer
    
For first Onclick is not getting call on this for me.Is it correct syntax that i wrote? –  AshokiPhone Mar 7 '12 at 12:43
    
This code has a syntax error. You can't use variables inside a single quoted string, the PHP interpreter does not parse them. Concatenate the $data['id'] part in the id attribute. I would also suggest a prefix on the id like id="img_x". –  MrCode Mar 7 '12 at 12:46
    
yup..it will be echo '<'.'img src="image.php?id='.$data['id'].'" onclick="doSomething(this.id)" id="'.$data['id'].'">' –  sandeep Mar 7 '12 at 12:48
    
IIRC IDs cannot be just numeric –  Damien Pirsy Mar 7 '12 at 12:52
    
AshokiPhone , can you provide doSomething() code –  sandeep Mar 7 '12 at 12:53

put the image inside a link tag.

echo '<a href="#" onclick="doSomething()"><img src="image.php?id='.$data['id'].'"></a>';

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echo '<a onclick="alert(\'alert\');"><img src= "1.jpeg"></a>'; this should work fine! –  tadeuzagallo Mar 7 '12 at 12:53
    
Put a href attribute in the link –  Damien Pirsy Mar 7 '12 at 12:54
    
Yeah, it should have, thanks, I just forgot, but it's not that what is causing the problem once I got it working as it is in my comment... –  tadeuzagallo Mar 7 '12 at 12:56
    
even i have tried like using echo'<a href = "#" onclick="alert("alert");"><img src= "1.jpeg"></a>' it displaying image for me but onclick is not getting called if i put it in either anchor tag or image tag. –  AshokiPhone Mar 7 '12 at 13:05
    
Did you notice that I changed the quotes? copy and paste my code and have a look... –  tadeuzagallo Mar 7 '12 at 13:08

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