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I have PHP code that tries to output JavaScript and I do something like this:

trailhead_name = <?php echo $objkey->trailhead_name ?> + "";

And I get the unexpected identifier error in my JS.

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Try running your js through jslint.com, it will often give a more specific error. –  Evgeny Shadchnev Jun 6 '11 at 16:43
    
Don't show us what you do "something like", show us what you do. –  Quentin Jun 6 '11 at 16:44
2  
Don't show us some PHP that generates some JavaScript which throws an error, show us the JavaScript. –  Quentin Jun 6 '11 at 16:44

2 Answers 2

up vote 3 down vote accepted

If trailhead_name is a string, you need to put quotes around it (and properly escape anything within it that may not be a valid JavaScript string — like a quote!).

PHP's built-in JSON encoder can do that for you:

trailhead_name = <?php echo json_encode($objkey->trailhead_name) ?>;

Again, that assumes that trailhead_name is a string.

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Use json_encode:

var trailhead_name = <?php echo json_encode($objkey->trailhead_name); ?>;
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