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So i have the following code:

<?php
$users_id = $_POST['users_id'];
    if ($users_id=="1");
    {
    ?>
        <td><select name="User">
        <option></option>
        <option>John</option>
        <option>Jack</option>
        </select></td>  
<?php
    }
    if ($users_id!=="1");
    {
    ?>      
        <td align="left"> <input type="text" name="User" /><br></td></tr>
<?php
    }
    ?>

I want only one form to be shown (dropdown or input), but i always get both of them and I can't figure it out what is wrong with my if statement. Please help! Thank you for your time and effort!

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1  
Why using ; in the end of IF statement ??? Does PHP allow this –  zzzz Nov 19 '12 at 12:04
    
PHP (and many other C-influenced languages) does allow semicolon after IF, and it is a common source of bug... –  luiges90 Nov 19 '12 at 12:05

9 Answers 9

up vote 3 down vote accepted

Remove your code and paste this one... it will surely work

<?php
$user_id = (isset($_POST['users_id'])) ? $_POST['users_id'] : '';
if($user_id == 1){
?>
<td><select name="User">
<option></option>
<option>John</option>
<option>Jack</option>
</select></td>
<?php
} else {
?>
<td align="left"> <input type="text" name="User" /><br></td>
<?php
}
?>
</tr>

Changes made in your code done validation of post field, removed ; from if condition, used if-else instead of if-if, placed </tr> after all processing, else it will return an visible error

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It looks like you used identical operator !== when you should not, as I see you using equality == in the other if statement.

And, more importantly, you put semicolon after your if conditions! This will create an empty statement after the if condition and anything after that will run no matter it satisfies with the condition or not.

Try changing

if ($users_id!=="1");

into

if ($users_id!="1")

and

if ($users_id=="1");

to

if ($users_id=="1")
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if ($users_id!="1");

Try this.

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Instead of two if()s, use if/else blocks:

if( $users_id=="1" ) {

  // ... something

} else {

  // something else

}

Please do not use === unless you understand the difference between == and ===. See docs here: http://www.php.net/manual/en/language.operators.comparison.php

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I get error: Parse error: syntax error, unexpected 'else' (T_ELSE) –  user1758545 Nov 19 '12 at 12:08

Two changes

  1. Remove semi colon after if condition

    if ($users_id!="1")

  2. Change !== to !=

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remove semicolons from if-lines and change second if-condition to:

if ($users_id!="1")

or use this syntax:

if ($users_id=="1") {
    // select
} else {
   // input
}
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Yes, semicolons were the problem! Thank you very much! –  user1758545 Nov 19 '12 at 12:11

Remove semicolon which is present there after if condition

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please check your code change

if ($users_id!=="1");

to

if ($users_id!="1")

also drop if(); to if() and please read about If else

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if ($users_id!=="1");//correct->if ($users_id!=="1")

<?php
$users_id = $_POST['users_id'];

    if ($users_id==1);
    {

     echo   "<td><select name='User'>
        <option></option>
        <option>John</option>
        <option>Jack</option>
        </select></td>";  

    }
    if($users_id!=1)
    {

        echo "<td align='left'> <input type='text' name='User' /><br></td></tr>";

    }
    ?>
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