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I want to fire a query on database:

$query="SELECT field1 from table_name where field2 like '%".$_REQUEST['var1']."%'";

Page is showing 500 internal server error.

At the time of debugging, I echo $query. It was like:

SELECT field1 from table_name where field2 like 'value_of_var1%'

Where does the first percent sign has gone? I searched on internet some said i have to put double percent sign(%%) in order to escape percent sign. If so, then why does the second percent sign doesn't need to be escaped?

This code(query) is executing in AJAX page, in order to debug i opened that AJAX page via URL. It is showing perfect result

SELECT field1 from table_name where field2 like '%value_of_var1%'

But when page is called via AJAX it showing without first percent sign. Can you please help me to understand what really the problem is?

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1  
You need to urlencode your query, since '%' is already the "start-code" of any urlencoded char. %20 for example would turn into a whitespace. –  dognose Apr 30 '13 at 13:53
    
Try this simpler form $query = "SELECT field1 from table_name where field2 like '%{$_REQUEST['var1']}%";. This way you don't have to deal with string concatenation. –  Rolando Isidoro Apr 30 '13 at 13:54
1  
Look at the HTML source code of the webpage in your browser. How is your query displayed there? Do you still notice missing characters? –  Jocelyn Apr 30 '13 at 16:07
    
If you're getting a 500 error specifically when the query is executed, you should check your error logs (or turn on error reporting and display_errors) and review the full error text. The query as displayed by echo may not be what you want, but it shouldn't be generating a server error, either; there could be more happening here than meets the eye. –  Brian Lacy May 30 '13 at 5:57

2 Answers 2

Assign the value to a variable.

$variable = $_REQUEST['var1'];  
$query = "SELECT field1 from table_name where field2 like '%".$variable."%'";

This query has been tested and its working.

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up vote 0 down vote accepted

Thanks for your response. My problem was, $_REQUEST['var1'] was a number. %number is parsed under HTML. For error 500, It was mistake in my code.

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