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I am new to PHP and I was making this form and I wanted to print some data but it is not displaying. What is wrong with it? Here's the code:

<form name="input" action="check.php" method="get">
            Unit number: 
            <input type="number" name="unit" />
            <input type="submit" value="Submit" />
            </form>

            <table>
            <tr><td class="check-table">
            <?php
            if($_GET[unit] = null) $output="<p>Please Enter A Unit Number</p>";
            echo $output;
            ?>
            </td></tr></table>

Please Help?

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2 Answers 2

up vote 4 down vote accepted

The better way would be:

if (empty($_GET['unit'])) {
    $output="<p>Please Enter A Unit Number</p>";
    echo $output;
}

The reasons:

  1. You check if variable exists
  2. You use ' quotes for array key name
  3. You output $output variable only if it is necessary. And in your case - you output it even if it doesn't exist
  4. You've also confused == (comparison operator) and = (assignment operator)
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Thank you heaps! I know this was a dumb question but I really didnt know where I was going wrong. –  Nicholas Jul 13 '12 at 0:52

I think you missed the single quotes in the $_GET['unit']

<?php
            if($_GET['unit'] = null) $output="<p>Please Enter A Unit Number</p>";
            echo $output;
            ?>
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1  
Also, he's assigning null to $_GET['unit'] in your edit. :-) –  ninetwozero Jul 13 '12 at 0:43

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