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How can I check if user gave input to input-form and say if there is an error? I tried to put

if (!isset($_POST['email'])) {
  die('You have to give an email address.');
}

but the problem here is that it appears also if the user goes to the page first time and has not gave any input. XHTML is the following:

<form action=<?php echo SITEADDRESS.'register.php'?> method="post">
 <p>
  <label for="email">Sähköposti:</label>
  <input type="text" id="email" name="email" />
  <label for="password">Salasana:</label>
  <input type="password" id="pwd" name="pwd" />
 </p>
 <p>
  <input type="submit" value="Rekisteröidy" />
 </p>
</form> 
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2 Answers 2

up vote 5 down vote accepted

but the problem here is that it appears also if the user goes to the page first time and has not gave any input. XHTML is the following:

You need to do so when user clicks the submit button, so your code should look like this:

if (isset($_POST['submit'])) {
  if (empty($_POST['email'])) {
    die('You have to give an email address.');
  }  
}

Now the above code will only execute when a user clicks the submit button unlike when he visits the page without clicking the button. Hence, above code will execute only after a user click the submit button.

You should give the name to your submit button:

<input type="submit" value="Rekisteröidy" name="submit" />

Note: Rather than using die, you could show a message and continue to show your form something like this:

if (isset($_POST['submit'])) {
  if (empty($_POST['email'])) {
    echo 'You have to give an email address.';
  }  
}
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!isset( $_POST['email'] ) should be empty( $_POST['email'] ). The field will be set when the form has been sent, even if it's empty. –  Juhana Nov 14 '10 at 12:56
    
@Juhana: Good catch, updated :) –  Sarfraz Nov 14 '10 at 12:59

You can check it by javascript like this: onsubmit="return checkIt();"

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