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We have several pages generated using PHP on our website with the following titles (for example):

Each one is created dynamically with the same page layout with each showing a different database result depending on the predefined conditions.

I would like an image to be displayed at the top of the page for just one of the results, let's say for - how can I go about this?

The relevant code on our page is this:

$category=mysql_fetch_array(mysql_query("select * from project_category where project_category_id='".$project_category_id."'"));?>

If we go down the if statement route can you show an example of how to display an example image by modifying the above code to get me started?

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2 Answers 2

I would probably make it a property (can be a as simple yes/no) in the database, and use the existing db-result to determine if the category has to display a page. Although this might seem overkill - I'd definitely pick this dynamic solution over a if ($categoryId == 2) { } solution any day. Keeps it dynamic and your code clean and generic.

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Just out of interest why would you not the if ($categoryId == 2) { } option? – JoeW Feb 7 '12 at 11:54
It keeps your code dynamic - any future categories can show the logo in the blink of an eye. It also keeps your business logic clear, where code with many if exceptions can become really confusing. – Wesley van Opdorp Feb 7 '12 at 11:59
up vote 0 down vote accepted

In the end I opted for an if statement (as found here

The original code above was modified in the following way:

$category=mysql_fetch_array(mysql_query("select * from project_category where project_category_id='".$project_category_id."'"));

 if ( $project_category_id == "2" ) {
    echo '<a href="" target="_self"><img src="" width="675" height="75" border="0" /></a>';
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