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error:

Notice:  Undefined variable: user_input in C:\xampp\htdocs\tutorials\stringfun\wordsensor.php on line 14

program:

<?php

     $find = array('Viva','Gunji'.'Urmi');
     $replace = array('VIVA','ALKA','QWACK');
     if(isset($_POST['user_input'])&&!empty($_POST['user_input']))
     {
      echo $user_input =  $_POST['user_input'];
     }

    ?>

     <form action = "wordsensor.php" method ="POST">
     <textarea name="user_input" rows="7" cols="30">
     <?php echo $user_input;?>
     </textarea><br><br>
  <input type="submit" value="Submit">
 </form>
?>
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closed as unclear what you're asking by feeela, brasofilo, andrewsi, Ian, Stefan Steinegger Jul 8 '13 at 13:30

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

    
What is your question? What do you mean by "deal with errors in an effective manner"? –  feeela Jul 8 '13 at 12:15
3  
The most effective manner is to correct them. –  X.L.Ant Jul 8 '13 at 12:17

5 Answers 5

up vote 3 down vote accepted

You should initialize variable before using first time in any conditional block.

like

$a = 0; // or any other value
if( condition ){
  $a = 10;
}

echo $a;

And in your code you are using $user_input first time in conditional block, so it won't be set if condition is not true. If it is not set, the you'll get this notice.

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This error is occurs due to this line:

<?php echo $user_input;?>

you need to change the code as below:

<?php echo (isset($user_input)?$user_input:'');?>

And you need to define the variable value and variable above. assign the value above like that:

$user_input = "";
if(isset($_POST['submit']) && isset($_POST['user_input'])) {
  $user_input = $_POST['user_input'];
}

As here you have assign it before the block so you can access the value of it easily.

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Just Define:

    $user_input ='';

You can put this line top above the code.

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This is because of the variable $user_input is not inialized

<?php
     $user_input=NULL; //inialize the variable
     $find = array('Viva','Gunji'.'Urmi');
     $replace = array('VIVA','ALKA','QWACK');
     if(isset($_POST['user_input'])&&!empty($_POST['user_input']))
     {
      echo $user_input =  $_POST['user_input'];
     }

    ?>

     <form action = "wordsensor.php" method ="POST">
     <textarea name="user_input" rows="7" cols="30">
     <?php echo $user_input;?>
     </textarea><br><br>
  <input type="submit" value="Submit">
 </form>
?>
share|improve this answer

The simple answer is to Initialise your variables before using them.

For example this code is checking for the existance of $_POST['user_input'] but if it does not exists you do nothing with the variable $user_input.

 if(isset($_POST['user_input'])&&!empty($_POST['user_input']))
 {
  echo $user_input =  $_POST['user_input'];
 }

So when you get here

<?php echo $user_input;?>

$user_input has not even been defined.

Either pre-initialise your variables at the top of the code:

$user_input = '';

Or when is fails this test, have an else coded to create and initialise the variable:

 if(isset($_POST['user_input'])&&!empty($_POST['user_input']))
 {
  echo $user_input =  $_POST['user_input'];
 } else {
  $user_input = '';
}
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