Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This question already has an answer here:

<html>
<head>
<?php
$your_name=$_POST['name'];
?>
<script language="javascript">
function fash(at1,at2)
{
    alert(at1+at2);
}
</script>
</head>
<body>
<?php
echo $your_name;
echo '<script language="javascript">fash("the key is: "+'<?php echo $your_name; ?>');</script>';
?>
</body>
</html>

The output is:

the key is : undefined

How can I fix this?

share|improve this question

marked as duplicate by Second Rikudo May 19 at 15:39

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
Edit edit edit edit –  thirtydot Jan 20 '11 at 1:13

6 Answers 6

up vote 3 down vote accepted

This can't be the right code, it has syntax errors (e.g. you have a <?php block inside another <?php block). Probably the line that outputs a script tag is supposed to look like this:

echo "<script language=\"javascript\">fash(\"the key is: $your_name\");</script>";

Or like this:

?>
<script language="javascript">fash("the key is: <?php echo $your_name; ?>");</script>
<?php

That will get it to output "the key is: testnameundefined" (if $your_name is testname). The undefined comes from you defining fash to take two arguments and concatenate them, but you only passing one; at2 is undefined

share|improve this answer
    
This will break if $your_name contains a doublequote. Best to do something like 'var somevar = <?php echo json_encode($your_name) ?>;` beforehand and use somevar instead. –  Marc B Jan 20 '11 at 1:32
    
@Marc Good point; some sort of sanitation is always a good idea, just outputting form variables directly won't end well –  Michael Mrozek Jan 20 '11 at 2:04

It's hard to see what´s going on with all the editing, but it seems you are using <?php ?> tags when you are already inside php tags.

Just echoing and removing the inner <?php ?> should solve part of your problem, although it seems that your javascript function wants 2 paramenters as well instead of one (the text given).

share|improve this answer

You're passing only one parameter into your function:

fash("the key is: "+'php_value');

"the key is: " and your php string are concatenated before the function is called.

Try

fash("the key is: ", 'php_value');

instead.

share|improve this answer
    
thanks for your help! it works. –  NamoBhagavan Jan 20 '11 at 1:17

The function fash takes two parameters. You are only passing one.

Use:

fash("the key is: ", "$your_name");

This will correctly display the alert after it concatenates these two strings. You do not need the PHP tags here because you are already in a PHP code block.

share|improve this answer
    
thanks, the problem fixed :D –  NamoBhagavan Jan 20 '11 at 1:16

Because in your definition of fash, you take two parameters and concatenate them there, but in your echoed script, you concatenate them there and so only pass one parameter. So at2 is passed as undefined. Clearly your name is also blank.

share|improve this answer
echo '<script language="javascript">fash("the key is: "+'<?php echo $your_name; ?>');</script>';

It looks like you're echo'ing php code inside a php echo. Try changing it to:

echo '<script language="javascript">fash("the key is: "+'$your_name;');</script>';

Not sure if that solves the entire problem but I'm pretty sure you can't echo a new echo inside an echo.

share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.