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When i try to run this code i get the error:

"Warning: mysql_fetch_array() expects parameter 1 to be resource, string given"

i've been trying to debug it but i cant seem to.

it's connecting to a table with 6 fields:

id (int) | name (varchar) | image (BLOB) | description (text) | url (text) | keywords (text)

Could anyone try to fix this?!?!?!

the function is written below....

function get_images()
{
    $limit = 5;
    $count = 0;

    $row = mysql_fetch_array("SELECT * FROM images");
    echo "<table border='1'>";
    while($row)
    {
    $img = $row['name'];
    if ($count < $limit)
        {
            if($count == 0)
                {
                echo "<tr>";
                }
            echo "<td>$img</td>";
        }
    else
        {
        $count = 0;
        echo "</tr><tr><td>$img</td>";
        }
    $count++;
    }
    echo "</td></table>";
}
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It looks like you're new to PHP. Please consider learning the modern PDO database functions instead of the old and busted "mysql" functions. –  Charles Mar 15 '11 at 21:36
    
Are you surprised that someone is asking for help with a mysql function?! Are you advertising?! I don't understand the title. May I refer you to this website: english.stackexchange.com ? –  Alin Purcaru Mar 15 '11 at 21:41
    
@Alin Purcaru You clearly understood the problem, you clearly understood that Rahulpwns has a problem with that function, I don't think this is the right place to point that out, instead use your reputation to edit the title. –  Ozmah Mar 15 '11 at 21:52
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7 Answers

up vote 4 down vote accepted

You're using it wrong:

$result = mysql_query("SELECT * from images");
$row = mysql_fetch_array($result);

Then do what you need...

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thx... everyone was helpful... u were just at the top –  Rahulpwns Mar 16 '11 at 1:29
    
yay reputation! –  jpea Mar 16 '11 at 13:53
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mysql_fetch_array expects parameter 1 to be a valid mysql query object.

So, call mysql_query first.

$query = mysql_query("SELECT * FROM images");
$row = mysql_fetch_array($query);
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Where is the connection of DB? You should use like this;

$result = msql_query('SELECT id, name FROM people', $con);
    if (!$result) {
die('Query execution problem: ' . msql_error());
}

while ($row = msql_fetch_array($result, MSQL_ASSOC)) {
    echo $row['id'] . ': ' . $row['name'] . "\n";
}
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You have passed wrong parameter to the mysql_fetch_array()

function get_images()
{
    $limit = 5;
    $count = 0;
    $resource = mysql_query("SELECT * FROM images"$res);
    $row = mysql_fetch_array($resource );
    echo "<table border='1'>";
    while($row)
    {

        $img = $row['name'];
        if ($count < $limit)
            {
                if($count == 0)
                    {
                    echo "<tr>";
                    }
                echo "<td>$img</td>";
            }
        else
            {
            $count = 0;
            echo "</tr><tr><td>$img</td>";
            }
        $count++;
        }
        echo "</td></table>";
    }
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Your error is here:

$row = mysql_fetch_array("SELECT * FROM images");

You need to do this:

$sql = "SELECT * FROM images"; 
$res = mysql_query ($sql); 
$row = mysql_fetch_array($res);

The problem is that you are trying to send the query in an incorrect way, first you need to execute the query with mysql_query which returns a "resource", then use that resource and extract the information with mysql_fetch_array.

hope this helps :)

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Not as a direct answer, but as a more generic comment, it's a good idea to use the MySQL link identifier that mysql_connect() returns to explicit tell mysql_*() functions what connection to use.

So use:

mysql_query('SELECT * FROM `bar`, $link);

And not:

mysql_query('SELECT * FROM `bar`);

Why?

Well, lets say your code is running happily. Then you need to add a new feature that requires a different database.

...This is where you'll start running into problems ...

Also, by the way, note how I used backticks (`) to escape the column names. Just last week did a coworker try to modify a column named "desc" (Short for description) without using backticks ... Which resulted in an error for obvious reasons.

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$query = mysql_query("SELECT * FROM images");
while ($row = mysql_fetch_array($query)){
 do_something();
}
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