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$_GET['id'] = $id1;
$result = mysql_query("SELECT * FROM example WHERE id = '$id1'");
while ($row = mysql_fetch_array($result)) {
   //some code
}

Why isn't this code working? It doesn't obey the id='$id2' bit. It gets everything from table example.

How can I fix it?


The example table contains id,text,time rows. The file name is example.php?id=1.

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What makes you think it isn't working? –  hughes Jul 20 '11 at 13:10
3  
It doesn't obey the id='$id2' bit. there is no $id2 in your code –  marto Jul 20 '11 at 13:10
1  
Note: SQL injection: php.net/manual/en/security.database.sql-injection.php –  marto Jul 20 '11 at 13:11
1  
Dude, you're doing it wrong. You're not assigning $id1 to something. –  dierre Jul 20 '11 at 13:12

7 Answers 7

shouldn't that be $id1 = $GET['id'] ?

But you should watch out because your code is vulnerable to SQL injection attack, someone could query a crafted url like example.php?'; delete from example;

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2  
Actually in this case they couldn't, but it's worth getting into the habit of sanitising inputs. –  Lightness Races in Orbit Jul 20 '11 at 13:12

Is $_GET['id'] = $id1; supposted to be $id1 = mysql_real_escape_string($_GET['id']);?

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will this work for you ? Its been a long time since i used php the last time...

$id1 = $_GET['id']; 
$result = mysql_query("SELECT * FROM example WHERE id = '$id1'"); 
while($row = mysql_fetch_array($result)) 
{ 
    //some code 
}
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  • Did you mean $id1 = $_GET['id'];?
  • Where did you protect yourself from SQL injection?
  • Why is all your code on one line?
  • Please don't write signatures/thanks in your posts.
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If id is a numeric field on your table, try removing quotes:

"select * from example where id = $id1"

And of course:

$GET['id'] = $id1;

Should be:

$id1 = $GET['id'];
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Shouldn't it be $id1 = $_GET['id']; instead of $_GET['id'] = $id1;?

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$id1 = $_GET['1'];
$id1 = (int)$id1;
$result = mysql_query("SELECT * FROM example WHERE id = $id1 "); 

Try Doesn't use *

Try call real names of poles like tablename.user_name,tablename.user_login

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