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I am pretty new to PHP so I apologise if this seems like a dumb question. I am using PHP code with a MYSQL database.

I basically have the code below which has an HTML menu with its link being generated by a PHP variable. This is for the home page(this file ends in "pg1"). I want the file to check in my MYSQL database if there is a document with the same name but ending in "pg2". I am creating two variables one with pg1($fpname1) at the end and another with pg2($fpname2). How do I then have it look in my database for a table with a name = $fpname2? I know that then if it finds the table I can put a "else" and then the html which I want to include in the menu link.

This is the relevant code so far:

$fpname1 = $web_user."ID".$web_number."webID_"."pg1".".php";
$fpname2 = $web_user."ID".$web_number."webID_"."pg2".".php";

?>
<div class="menu">
<ul>
<li><a href="<?php echo $fpname1; ?>">Home</a></li>
</ul>
</div>

thank you for any help

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5 Answers 5

up vote -1 down vote accepted

You have to use the mysql_num_rows function.

$fetch = mysql_query("SELECT * FROM example") or die(mysql_error());
$count = mysql_num_rows($fetch);

http://www.tizag.com/mysqlTutorial/index.php

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1  
Just a heads up, you don't pass $count to the mysql_num_rows function, you pass the query result, so $fetch in this case. See (the doc)[php.net/manual/en/function.mysql-num-rows.php] –  jedwards Apr 28 '12 at 21:09
    
Updated. Thanks. –  desbest Apr 29 '12 at 8:10
    
this is wrong answer to the wrong question –  Your Common Sense Apr 29 '12 at 8:33
    
I want the file to check in my MYSQL database if there is a document with the same name but ending in "pg2". He doesn't want to check a file. He wants to check whether a database row exists. He's new to php so he's mixing up the terminology. So therefore, I gave him code to check how much rows a query matches as a count, so he can check whether the "file" exists, by reading the variable of $count. So no, I am actually right, giving a right answer. –  desbest Apr 29 '12 at 9:30

SELECT * FROM table WHERE page LIKE '%variable%'

Then you would check the amount of rows the query returned, if that number is greater than 0 at least 1 page was returned, else it was never found.

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SELECT * FROM table WHERE page LIKE '%pg_.php'

this will select all pages ranging between pg0 to pg9

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you have a information_schema database I presume. In that there is a table called TABLE. in that all the table_names are kept. so if u give a query in database information_schema: SELECT table_schema FROM TABLES where table_name = example if the table_schema is null then there is no table otherwise there is the database the table is in.

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Looks like your database setup is wrong.
You have to store all your pages in one table, not many.

You are suffering from the SQL injection as a direct consequence. As well as overcomplicated and unmaintainable code.

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