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I have this code. It's just for testing purposes, so you don't need to tell me to use parameter binding and prepared statements and PDO to avoid SQL Injection.

foreach($dd->getElementsByTagName("ReportItem") as $elmt){
    foreach ($elmt->childNodes as $node){
        if($node->nodeName==="ModuleName")
            $name = $node->nodeValue;

            if($result=mysqli_query($conn,"select * from technology_info where name = $name")){
                if(mysqli_num_rows($result)==0){

                    mysqli_query($conn,"insert into technology_info(id,name,tool_id) values(null,$name,'2')");
                    //ERROR: Undefined variable: name 

                }

            }
        }
}

This is what the code is meant to accomplish: if variable $name is a value that is already in the database, do nothing. Otherwise, add it to the database.

However, I'm getting an error message: Notice: Undefined variable: name in /var/www/teste/index5.php

I mean, the variable is there. Any idea what might be happening?

share|improve this question
    
echo the variable after the $name = $node->nodeValue; to see what the output is – Packet Tracer Mar 14 '12 at 19:30
    
well as the if says $name is not always set. – Dagon Mar 14 '12 at 19:31
up vote 3 down vote accepted

Because $name is only being set if($node->nodeName==="ModuleName"). That if statement only applies to that one line, yet the code below it (the mysql statements) will continue to run regardless.

share|improve this answer

$node->nodeValue is probably null, which sets $name to null. PHP would render that as undefined.

share|improve this answer
    
The if statement right above the assignment would prevent this. – thetaiko Mar 14 '12 at 19:31
    
Also, null is certainly not the same as "undefined" – thetaiko Mar 14 '12 at 19:33
    
@thetaiko that checks nodeName, not nodeValue, and PHPs looseness sometimes renders null as undefined. – Jon Mar 14 '12 at 19:34
    
my bad on the nodeName/nodeValue. You're correct there. But I will stand by my assertion that PHP will never render null as undefined. – thetaiko Mar 14 '12 at 19:37
    
@thetaiko I have had a couple cases where this happened. It's rare and depends on whether the variable is an object or not (and more stuff, I don't remember my exact case). – Jon Mar 14 '12 at 19:39

You left out a set of squiggly brackets

foreach($dd->getElementsByTagName("ReportItem") as $elmt){
foreach ($elmt->childNodes as $node){
    if($node->nodeName==="ModuleName")

    { // *** You left this out 

        $name = $node->nodeValue;

        if($result=mysqli_query($conn,"select * from technology_info where name = $name")){
            if(mysqli_num_rows($result)==0){

                mysqli_query($conn,"insert into technology_info(id,name,tool_id) values(null,$name,'2')");
                //ERROR: Undefined variable: name 

            }

        }
    }
}
}

Also going to need some quotes around $name in your query.

share|improve this answer

Well not always if $node->nodeName doesn't equal "ModuleName" then the $name variable never gets created. Try defining your $name variable outside your loops or even just outside your if statement.

share|improve this answer

$name is out of scope.

Try

foreach($dd->getElementsByTagName("ReportItem") as $elmt){
    foreach ($elmt->childNodes as $node){
        if($node->nodeName==="ModuleName"){
            $name = $node->nodeValue;
            if($result=mysqli_query($conn,"select * from technology_info where name = $name")){
                if(mysqli_num_rows($result)==0){
                    mysqli_query($conn,"insert into technology_info(id,name,tool_id) values(null,$name,'2')");
                    //ERROR: Undefined variable: name 
                }
            }
        }
    }
}
share|improve this answer

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