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I have a database called articles and I just wanna print out the amount of rows in my database. This is my code:

<?php
$con = mysql_connect('link', 'database', 'password');
if (!$con) { 
  die('Could not connect: ' . mysql_error());
}           
$result = mysql_query("SELECT COUNT(*) FROM articles");  
$row=mysql_fetch_array($result)
?>
<p>The amount of rows is <?php echo $row ?>.</p>

When I test this code, is just gives me 'The amount of rows is .' as output. What am I doing wrong?

Edit: This is my full code now, but it still doens't work:

$con = mysqli_connect('url', 'database', 'password');
if (!$con) { 
    die('Could not connect: ' . mysqli_error());
}           
$result = mysqli_query($con, "SELECT COUNT(URL) AS row_count FROM articles"); 
if (!$result ) {
    echo "DB Error, could not query the database\n";
    echo 'MySQL Error: ' . mysqli_error($con);
    exit;
}           
$row=mysqli_fetch_array($result)
?>
<p>The amount of rows is <?= $row['row_count'] ?>.</p>

The error: DB Error, could not query the database MySQL Error: No database selected

share|improve this question
    
You have no semicolon ; after $row=mysqli_fetch_array($result) –  Notulysses Jun 14 at 0:52
    
You should avoid using the deprected mysql_* functions and use PDO or MySQLi instead, –  Joe Meyer Jun 14 at 5:35

3 Answers 3

You're trying to print the row.

Use echo $row[0] instead

Also, as it's printing nothing, I suspect your query is failing, as FALSE will be echoed as nothing in PHP.

Sidenote: mysql_* is deprecated, consider using PDO instead.

EDIT:

full code below

    <?php
$con = new mysqli('url', 'database', 'password', 'db_name');
if (!$con) { 
    die('Could not connect: ' . mysqli_error());
}

$result = $con->query("SELECT COUNT(*) AS row_count FROM articles");

if (!$result) {
    echo "DB Error, could not query the database\n";
    echo 'MySQL Error: ' . $con->error;
    exit;
}           

$row = $result->fetch_assoc();
?>
<p>The amount of rows is <?= $row['row_count'] ?>.</p>
share|improve this answer
    
I don't actually wanna print a full array, I just wanna print 1 value: the amount of rows. How do I have to do that? –  user3739400 Jun 14 at 0:09
    
I just told you how to.. use $row[0] –  David Xu Jun 14 at 0:09
    
Yes, I tried it, but it doesn't work. Gives still no output. –  user3739400 Jun 14 at 0:11
    
That means your query is failing, you might want to add if (!$row) die(mysql_error()); and tell us what the error is. –  David Xu Jun 14 at 0:12
    
I checked my error log, this is what I get: PHP Warning: mysqli_query() expects parameter 1 to be mysqli, resource given in /hermes/bosnaweb01b/b676/ipg.splasjcom/Admin.php on line 45 PHP Warning: mysqli_fetch_array() expects parameter 1 to be mysqli_result, null given in /hermes/bosnaweb01b/b676/ipg.splasjcom/Admin.php on line 46 –  user3739400 Jun 14 at 0:19

You are echoing an array (which should give you error). Instead you can set alias for COUNT:

$result = mysqli_query($con, "SELECT COUNT(*) AS Total FROM articles"); 

And echo it like:

<p>The amount of rows is <?php echo $row['Total'] ?>.</p> 
share|improve this answer
    
What is the point for downvote? –  Notulysses Jun 14 at 0:05
    
This still doesn't work, it gives no output –  user3739400 Jun 14 at 0:07
    
@user3739400 : Then your query is failing and there can be a lot of reasons for that from the misspelled table name to the failed connection. You should look in your error log for details or display them in the browser along with mysql_ error() function. –  Notulysses Jun 14 at 0:14
    
this is what I get when I check my error log: PHP Warning: mysqli_query() expects parameter 1 to be mysqli, resource given in /hermes/bosnaweb01b/b676/ipg.splasjcom/Admin.php on line 45 PHP Warning: mysqli_fetch_array() expects parameter 1 to be mysqli_result, null given in /hermes/bosnaweb01b/b676/ipg.splasjcom/Admin.php on line 46 –  user3739400 Jun 14 at 0:21
    
@user3739400 : Are you using mysqli_ and mysql_ functions together? Cause this is totally wrong. –  Notulysses Jun 14 at 0:22

As others said, you're trying to print the array (hence the fetch_array), when you need to print something in the array.

Also, mysql_* is depreciated, I use mysqli_* which is very similar and easy to switch to.

Also, instead of *, try a fieldname in the count. I usually use the index, or primary key or something.

<?php
  $link = mysqli_connect(DB_HOST, DB_USERNAME, DB_PASSWORD, DB_NAME);

  if (mysqli_connect_errno($link)) {
        echo 'Could not select database:' . DB_NAME;
        exit;
  }          

  $result = mysqli_query($link, "SELECT COUNT(fieldname) AS row_count FROM articles");  
  if (!$result ) {
            echo "DB Error, could not query the database\n";
            echo 'MySQL Error: ' . mysqli_error($link);
            exit;
  }

  $row=mysqli_fetch_array($result)
?>
<p>The amount of rows is <?= $row['row_count'] ?>.</p>
share|improve this answer
    
Why the votedown? –  Dizzy49 Jun 14 at 0:12
    
Added code to catch the error if the query is failing. –  Dizzy49 Jun 14 at 0:14
    
I tried your code but it's still not working... –  user3739400 Jun 14 at 0:17
    
1) Don't just vote down answers if they don't copy/paste work. 2) Try with the code I added to catch a query error. 3) My code requires you to use mysqli_ and requires you to replace some values such as the DB_HOST, DB_USERNAME etc. I also suggested you use a fieldname, did you use a field/column, or did you just copy what I had verbatim? –  Dizzy49 Jun 14 at 0:19
    
I didn't vote down your code, why would I? And I will try your code, thank you. –  user3739400 Jun 14 at 0:22

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