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I have a while loop in my content.php and I want to use $result like a parameter. How can i call a function from content.php file and get $result to use in my while loop?

  while ($row = mysql_fetch_array($result)) 
                    $ename = stripslashes($row['name']);
                    $eemail = stripslashes($row['email']);
                    $ebox = stripslashes($row['lund']);
                    $ecategori = stripslashes($row['LundaBlogg']);
                    $epost = stripslashes($row['post']);
                    $grav_url = "".md5(strtolower($eemail))."&size=70";

                            <div class="datum">'.$row['date'].'</div>
                            <div class="meta"><img src="'.$grav_url.'" alt="Gravatar" /><p>'.$ename.'</p></div>
                            <div class="categori"><p>Kategori: '.$ecategori.'</p></div>
                            <div class="topic"><p>'.$ebox.'</p></div>   
                            <div class="shout"><p>'.$epost.'</p></div>
                            <div class="raderaknapp"><a href="../delete_ac.php?id=' . $row['id'] . '"class=\"icon-2 info-tooltip\">Radera Inlägg</a></div>
                            <div class="raportpost"><p><a href="">Rapportera inlägg</a></p></div>

                        <form action="<?php echo $self?>" method="POST">
                            <input type="hidden" name="id" value="<?php echo $row['id']?>"/>
                            <input type = "submit" name="Gilla" value = 'Gilla'"/>

                        <div id="radera-infotwo">
                            <span onmouseover="ShowText('Messagetwo'); return true;" onmouseout="HideText('Messagetwo'); return true;" href="javascript:ShowText('Messagetwo')">
                                <img src="">

                        <div id="radera-info">
                            <span onmouseover="ShowText('Message'); return true;" onmouseout="HideText('Message'); return true;" href="javascript:ShowText('Message')">
                                <img src="">


                    echo ("Antal Gilla: " .$row['likes']); 

                    if(isset($_POST['Gilla']) && $_POST['id'] == $row['id']){echo '<h5><img src="../images/tummen-upp.png"/>Du har Gillat detta inlägg.</h5>';}

                    echo "<hr>";  

This is my functions.php file where I have my function blogPosts_get()

function blogPosts_get(){ 
  $query = "SELECT * FROM shouts ORDER BY `id` DESC LIMIT 8;";
  $result = mysql_query($query) or die('<p class="error">Wrong.</p>');   

I have tried with a return in my function blogPosts_get(), but I can not understand how its work. Can somebody help me get the $result variabel from my function blogPosts_get() so I can use It in my while loop?

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closed as too localized by Jocelyn, Till Helge, Madara Uchiha, PeeHaa, Charles Mar 13 '13 at 21:43

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

What's the problem with return $result;? – Barmar Mar 13 '13 at 18:08
@Barmar When I use result i get this error Warning: mysql_fetch_array() expects parameter 1 to be resource, null given in /Applications/MAMP/web/blogg/pages/content.php on line 70 – Bruno Chavez Mar 13 '13 at 18:11
Are you doing $result = blogPosts_get(); in the main code? – Barmar Mar 13 '13 at 18:12
@Barmar Yes Im using $result = blogPosts_get(); in my content.php file, buy I get the same error like before – Bruno Chavez Mar 13 '13 at 18:16
Then that error shouldn't happen. blogPosts_get() can never return null if it does result $result;, because it will call die() in that case. – Barmar Mar 13 '13 at 18:20

2 Answers 2

up vote 1 down vote accepted

First include your functions.php inside content.php using require_once(./'your path'/functions.php'); and it should be at the beginning of your file content.php to be loaded before all then modify your code in functions.php as:

function blogPosts_get(){ 
  $query = "SELECT * FROM shouts ORDER BY `id` DESC LIMIT 8;";
  $result = mysql_query($query) or die('<p class="error">Wrong.</p>');  
return $result; 

when you call it before the loop in content.php as follow:

$result = blogPosts_get();
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@Bruno Chavez you're welcome, nice to help – Alyafey Mar 13 '13 at 18:24

First off, the easy way is to modify the function to get the results AND build an array object for you to work with rather than returning a MySQL Query Object.

function blogPosts_get(){
    $query = "SELECT * FROM shouts ORDER BY `id` DESC LIMIT 8;";
    $result = mysql_query($query);
        return array();
        while($row = mysql_fetch_array($result))
            $posts[] = $row;
       return $posts;

This will handle getting the posts and will always return an array object for you to work with.

Next you have to make sure you're including the functions with require or require_once. You can call this by

$posts = blogPosts_get();

Then use a

foreach ($posts as $post){

NOTICE: MySQL_* has been deprecated as of PHP 5.5. Use MySQLi_* or PDO.

share|improve this answer
You've removed his error reporting! – Barmar Mar 13 '13 at 18:13
He could check the size of the array or modify as such for his likings. – UnholyRanger Mar 13 '13 at 18:15
An empty result is not the same thing as an error from mysql_query(). – Barmar Mar 13 '13 at 18:15
return array('error' => mysql_error()); would do the trick with a check of isset($posts['error']); – UnholyRanger Mar 13 '13 at 18:16
@UnholyRanger Thanks for the NOTICE info I will check on that – Bruno Chavez Mar 13 '13 at 18:22

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