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<html>
<head>
 <?php

         $bldg_number=-1;
 ?>
                      <script language="javascript" type="text/javascript">
                      var bldg=<?php echo $bldg_number; ?>
                      if( bldg < 0)
                          {
                            alert("me");
                          }
                      else
                          {
                            alert("hi");
                          }
                    </script>

i was expecting the output a alert with message me but there is no output when i am running this page please tell me why the value of php variable is not passing to javscript variable

share|improve this question
    
Provided this page is being run via the PHP interpreter, that all looks fine other than the minor niggle that you should have a semicolon at the end of your var statement (the JavaScript interpreter will insert one for you automatically). So you'll have to quote more of the page and/or describe more of the context, the problem lies elsewhere. –  T.J. Crowder Jul 15 '11 at 8:36
    
No output whatsoever indicates there's likely a syntax error; check the source code that's generated by the PHP code, and see what that script actually ends up looking like. –  Anthony Grist Jul 15 '11 at 8:37
    
@Thief: Well, he's only asked five other questions, one of them closed. Perhaps he hasn't gotten any acceptable answers yet. @Jaspreet: If you have received answers you're satisfied with, here's a description of how accepting an answer works. –  T.J. Crowder Jul 15 '11 at 8:41
    
@Thief: Well, now @Jaspreet definitely has an answer he can accept. ;-) –  T.J. Crowder Jul 15 '11 at 10:00

2 Answers 2

Your code needs a semicolon at the end of the var line (keep reading for why):

<script language="javascript" type="text/javascript">
                      //               here --------------v
                      var bldg=<?php echo $bldg_number; ?>;
                      if( bldg < 0)
                          {
                            alert("me");
                          }
                      else
                          {
                            alert("hi");
                          }
                    </script>

JavaScript has a feature called "Automatic Semicolon Insertion" that would normally make that error harmless (whether the feature is harmless is another story), but unfortunately PHP messes it up because ASI only kicks in if there's a linebreak where the missing semicolon should be, and PHP eats the linebreak following the ?> tag:

...when PHP hits the ?> closing tags, it simply starts outputting whatever it finds (except for an immediately following newline - see instruction separation )

So what actually gets output to your page is:

var bldg=-1    if( bldg < 0)

...which is a syntax error in JavaScript. Adding the semicolon fixes it, because then the output is:

var bldg=-1;    if( bldg < 0)

...which is valid.

share|improve this answer
    
Just tried with FF and I get an "missing ;" error. –  Fabrizio D'Ammassa Jul 15 '11 at 8:36
    
T.J Crowder, adding the semicolon works, without semicolon doesn't work. I think most of the browsers doesn 't support Automatic Semicolon Insertioning. Chrome works the same. –  Fabrizio D'Ammassa Jul 15 '11 at 8:42
    
Ok, got it. Anyway, the problem with the above code was the missing breakline. I don't want to discuss about this feature that I wouldn't recommend to anyone. I've just proposed a solution to the problem arised. –  Fabrizio D'Ammassa Jul 15 '11 at 9:03
1  
@T.J Crowder Actually the missing ; does matter, as PHP as the habit of removing the first whitespace after a closing ?> (even newlines). So what happens here is, that the linebreak in the given code will not be there in the final rendered code. Breaking the javascript because of the missing ;. One could add a space after the ?> which would leave the newline (or just add the ;). –  Yoshi Jul 15 '11 at 9:20
    
@Yoshi: Ah hah! That's the crucial information missing from the answers here. (Wow is that a "feature" I would remove from PHP.) –  T.J. Crowder Jul 15 '11 at 9:23

Try with

var bldg=<?php echo $bldg_number; ?>;
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