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I have a basic code here:

<?        
include("inc_dblib.php");
include("inc_ecs.php");
$db = dbconnect();
$id = 10;
?>
<?php echo text_view($db,$id,"<h3><br />^lead^</h1>   <br />^text^");?>
    <br />

inside inc_ecs.php i have:

function text_view($dblink,$id,$code) {

if( !$rset = dbquery($dblink,"article_view",$id) )
return FALSE;
$item = mysql_fetch_assoc($rset);
$text=$item["text"];
$title=$item["title"];
$lead=$item["lead"];
$capelo=$item["capelo"];
$author=$item["author"];

$vowels = array("^text^","^title^","^capelo^","^lead^", "^author^");                                                        
$yummy = array($text, $title, $capelo, $lead,$author);      
$code = str_replace($vowels,$yummy,$code);
return $code;
}   

however every time I run my script it tells me

Fatal error: Call to undefined function text_view

. Any ideas? Thanks.

Ok so I found an other problem. I have tried to insert the echo "Hello World!"; in the code of the inc_ecs.php. When I browsed the page, I realised that a major part the code it is shown as text. I turned back to the remote version and it shows a blank page when called in a browser. the inc_ecs.php page start showning the code from "return $outputVar;" and the remaining hole code of the page is shown:

function graphical_counter ($db, $id){
    $str = counter($db, $id);
    $visitors_split = chunk_split ($str,1,'');
    $visitors = strlen($str);        
    for ($i ; $i< $visitors ; $i++){
        $outputVar .= "<img src='./images/counter/".$visitors_split[$i].".gif' width='15' height='20' border='0' align='absmiddle'>";
    }
    return $outputVar;
}
/*
End Counter Functions

Is there an error in this code ?

share|improve this question
1  
The function textview() as you posted it is invalid. Did you forget the closing bracket? –  arkascha Nov 21 '12 at 13:48
    
is this include("inc_ecs.php"); displayed as it is on your window screen –  Ravi Nov 21 '12 at 13:50
    
Use <?php instead of <? because the short_tag sometimes is not "on" by default in the php.ini –  aleation Nov 21 '12 at 15:33

1 Answer 1

up vote 3 down vote accepted

your include(); should be inside of the tag:

<?php
include("inc_ecs.php");
echo text_view($db,$id,"<h3><br />^lead^</h1>   <br />^text^");
?>
share|improve this answer
    
I corrected the mistake. In fact it was inside the tag –  user1842136 Nov 21 '12 at 15:30
    
In your question you have the include outside the php code. If you copied it like that by mistake and you have it inside the <?php tag, check: If the file name is correctly typed, and make sure both files are in the same directory, if not, specify the directory in the include: include("/directory/inc_ecs.php"); If that is still correct check that the function names coincide, and make sure it is declared within a <?php ?> tag as well. –  aleation Nov 21 '12 at 15:30
    
I verified all this and it is fucntionning. My problem is that on a remote server, the page runs normally. But on a local server ... impossible to get it working –  user1842136 Nov 21 '12 at 16:01
    
Are you sure you have both files? do a very simple test. On the inc_ecs.php add a echo "Hello World!" At beginning, so when you include it the page should show that. Do this to make sure the file is actually included. Because actually call to undefined function means that your main script can read your function text_view($dblink,$id,$code) { part –  aleation Nov 21 '12 at 16:21
    
try of the hello world inserted on the top question. –  user1842136 Nov 22 '12 at 8:33

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