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I found this ad rotator script and I want to nest JavaScript inside like this below. I get errors thrown how would I accomplish this.

<?php 
// random number 1 - 100 $result_random = rand(1, 100); 

// if result less than or equal 70, display ad1 (70%) 
if($result_random <= 70){ 
  echo "<script type='text/javascript' src='http://myads.com'></script>"; 
} 
// if result less than or equal 90, display ad2 (20%) 
else if($result_random <= 90){ 
  echo "<script type='text/javascript' src='http://myads.com'></script>";
} 
// if result less than or equal 100, display ad3 (10%)
else { 
 echo "<script type='text/javascript' src='http://myads.com'></script>"; 
} 
share|improve this question
1  
What errors do you get? – ErJab Sep 8 '12 at 3:04
    
Could the error have to do with the fact that $result_random doesn't exist because it's commented out? – sachleen Sep 8 '12 at 3:06
    
I get errors in building because of the ticks '''' – CsharpBeginner Sep 8 '12 at 3:14
1  
What is the exact error message? The posted code, after you move $result_random = rand(1, 100); to a new line, works just fine. – sachleen Sep 8 '12 at 3:15
    
This is my error Parse error: syntax error, unexpected T_STRING, expecting ',' or ';' – CsharpBeginner Sep 11 '12 at 0:53
up vote 1 down vote accepted

You can use PHP to output the script source to the user's browser, but you can't just include and run Javascript inside of a PHP application.

Your output of:

<script type='text/javascript' src='http://myads.com'></script>

Is the correct behavior. The client would then try to include that script source.

If you're going to do conditional includes, you'll want to echo those out between the head tags of your page:

<html>
  <head>
    <?php
      // process, echo out a <script />
    ?>
  </head>
  <body>...</body>
</html>
share|improve this answer
    
basically anywhere you can write HTML, you can write out javascript or jQuery instead. – Brian Vanderbusch Sep 8 '12 at 3:06
    
My code lines like break because of the ticks though – CsharpBeginner Sep 8 '12 at 3:13
    
@CsharpBeginner: I just ran the code, and the output was <script type='text/javascript' src='http://myads.com'></script>. I'm not sure what is failing for you, unless you're not showing the full script source. – Josh Sep 8 '12 at 3:15
    
Im getting this error Parse error: syntax error, unexpected T_STRING, expecting ',' or ';' – CsharpBeginner Sep 11 '12 at 0:54

Problem/Cause:

Because this line

// random number 1 - 100 $result_random = rand(1, 100);

is commented out,

this line

if($result_random <= 70){ 

and this line

else if($result_random <= 90){ 

gonna cause an error something in the lines of Undefined Variable $result_random in line X

Your Code @ Codepad.org/saPRtKPU

(UPDATE: Ok, you are not getting any error, but because $result_random is undefined, only the last else(ads3) case is getting executed everytime. Any Undefined variable holds the NULL value http://codepad.org/vVHMrWkl)

Solution:

Change this line

// random number 1 - 100 $result_random = rand(1, 100);

to

// random number 1 - 100
$result_random = rand(1, 100);

I.e. insert a line-break / carriage return (Enter in Windows) before $result_random....

It should solve the problem, but if now, please post the exact error message you are getting.

BTW, Your all three SRCs for scripts are same i.e. http://myads.com/. I guess that it is just an example, but even then, while testing, we can't know if we are getting true random results. So I have appended ad1, ad2, ad3 to the respective URLs.

Full Code:

<?php 
// random number 1 - 100
$result_random = rand(1, 100); 

// if result less than or equal 70, display ad1 (70%) 
if($result_random <= 70){ 
  echo "<script type='text/javascript' src='http://myads.com/ad1'></script>"; 
} // if result less than or equal 90, display ad2 (20%) 
    else if($result_random <= 90){ 
      echo "<script type='text/javascript' src='http://myads.com/ad2'></script>";
    }// if result less than or equal 100, display ad3 (10%)
        else { 
             echo "<script type='text/javascript' src='http://myads.com/ad3'></script>"; 
        } 

//Just for testing
echo "\r\nRandom Number is: ".$result_random;

Live Demo @ Codepad.org http://codepad.org/oymuBk8w

share|improve this answer

You need to put this code in section of your File. Only then it will work

it will not wqrk inside Php.

Js file will work only when you include them in html or using dynamic code(php) n html

share|improve this answer
    
Downvoted. This is Wrong. The way OP is coding, JS should work, provided src attribute is valid. – Davinder Sep 8 '12 at 3:34

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