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I am trying to display an entry from a MySql database which is selected by GET data.

if (isset($_GET["id"])){

        $id=$_GET["id"];
        $result = getSelectedBlog($id); 

        while($row = mysqli_fetch_array($result))
            { 
                extract($row); 
                ?>

                    <div class="headline"><?php echo $headline ?></div>
                    <div class="subtitle"><?php echo $subTitle ?></div>
                    <div class="content"><?php echo $content ?></div>
                    <?php
            } 

Here is the SQL statement:

function getSelectedBlog($id){

$con = mysqli_connect('localhost', 'root', '', 'michaelWebsite') or die('could not connect');
$sql = 'SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE "$id"';
$result = mysqli_query($con, $sql) or die('entry does not exist.:' . mysqli_error($con)); 
return $result; 

}

As you can see, I am passing the get data as $id to the method that returns the result. However nothing is being returned. There are three entries at the moment, if I change $id in the SQL statement to either 1, 2 or 3 it will show the corresponding data but it just will not work with the $id variable.

The URL does end with the correct info ?id=1.

Please excuse me if it is something stupid, I have just been stuck on this for hours now!!

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Try adding var_dump($id); inside the function to see what it is. –  Niet the Dark Absol Jun 4 '12 at 15:05
    
You've got an SQL injection hole in your code - directly using $_GET['id'] within the query. Read this before you go ANY FURTHER with this code. –  Marc B Jun 4 '12 at 15:06
    
You are using mysqli_* functions as if they were mysql_* functions. Try escaping the $id, your code is vulnerable to mysql injection ($id comes from $_GET, is not sanitized, and is inserted right into the query. Get your hands on a good mysql/mysqli/pdo&mysql tutorial. I recommend you go for PDO&MySQL. Good luck. –  Tiberiu-Ionuț Stan Jun 4 '12 at 15:06
    
try LIKE "%$id%"'; –  Norse Jun 4 '12 at 15:07
    
You're also using single quotes for your query string, which do NOT interpolate variables. You're trying to find a literal $id in your DB. –  Marc B Jun 4 '12 at 15:08
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5 Answers 5

up vote 1 down vote accepted

All of these answers will solve your problem, but none have mentioned or prevented SQL Injection.

In your case I recommend (assuming articleID is an integer field).

$sql = 'SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE "' . (int)$id . '"';

I'm also curious why you are using LIKE for an id field.

Note: Since you are using MySQLi, I'd encourage you to look at prepared statements.

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$sql = 'SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE "'.$id.'"';

escape your var in simple quote

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You should also escape it from SQL Injection. In this case, you could simply cast it. –  Jason McCreary Jun 4 '12 at 15:07
    
Ah, I was being stupid, thank you! –  Michael B Jun 4 '12 at 15:09
    
Yes use mysql_real_escape_string() or a DAO class like pdo for example –  ke20 Jun 4 '12 at 15:13
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Try with this:

$sql = "SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE '$id'";

or with

$sql = 'SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE "' . $id . '"';
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You need to use double quotes in order for php to correctly expand your variables :) so change your query to

$sql = "SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE '$id'";
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Change

'SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE "$id"'

to

"SELECT * FROM tblArticle WHERE tblArticle.articleID LIKE '$id'" 

Variables will be evaluated only if they're between double quotes "

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