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I am trying to add a new column to my MYSQL table using PHP. I am unsure how to alter my table so that the new column is created. In my assessment table I have

assessmentid | q1 | q2 | q3 | q4 | q5 

Say I have a page with a textbox and i type q6 in to the textbox and press a button then the table is updated to

assessmentid | q1 | q2 | q3 | q4 | q5 | q6

Thanks in advance

<?php 
include 'core/init.php';
include 'core/admininit.php';
include 'includes/overall/overall_header.php'; 
adminprotect_page();
include 'includes/adminmenu.php'; 
?>      
<?php

mysql_query("ALTER TABLE `assessment` ADD newq INT(1) NOT NULL AFTER `q10`");

?>
<h1>Input Career Name</h1>

    <form method="post" action="">

      Career Name
      <input type="text" name="newq" size="20">

     <input type="submit"
      name="submit" value="Submit">

</body>
</html>
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2  
    
Im unsure how to word my query, I have this and it does not work.. $sql=mysql_query("SELECT * FROM assessment"); if (!$sql){ mysql_query("ALTER TABLE assessment ADD q6 INT(1) NOT NULL AFTER q5"); echo 'Q6 created'; }ELSE{ //from here just continue the page as usual! echo 'Q6 already exists!'; –  Steven Trainor Apr 19 '13 at 21:18
1  
@StevenTrainor comments are not the best place for source code. If you are showing where you are having your problem it should be a part of the question. Could you edit your question to include the source? –  Nick Freeman Apr 19 '13 at 21:20
    
bad code. mysql_query will return boolean false on ANY failure, not just when you're trying to add a duplicate field. always check mysql_error() to see what went wrong. e.g. $result = mysql_query($sql) or die(mysql_error());. –  Marc B Apr 19 '13 at 21:21
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4 Answers

up vote 37 down vote accepted

you can also do

ALTER TABLE yourtable ADD q6 VARCHAR( 255 ) after q5
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Thanks, It worked with - mysql_query("ALTER TABLE assessment ADD q6 INT(1) NOT NULL AFTER q5"); –  Steven Trainor Apr 19 '13 at 21:33
    
How can i name the column whatever name i type into a textbox? –  Steven Trainor Apr 19 '13 at 21:43
    
if you mean a simple html form textbox, you can do it by getting the post or get parameters on the form target page –  Dima Goltsman Apr 19 '13 at 21:47
1  
the value of the text box should be in $_POST['newq'] after you submit –  Dima Goltsman Apr 19 '13 at 21:53
3  
@StevenTrainor: Do not use the string in your text box as such in the SQL statement. You must make sure you escape it in order to avoid an SQL injection vulnerability. –  Costi Ciudatu Feb 1 at 21:56
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 $table  = 'your table name';
 $column = 'q6'
 $add = mysql_query("ALTER TABLE $table ADD $column VARCHAR( 255 ) NOT NULL");

you can change VARCHAR( 255 ) NOT NULL into what ever datatype you want.

share|improve this answer
    
Got it thanks, how can i name the column whatever name i type into a textbox? –  Steven Trainor Apr 19 '13 at 21:45
1  
@StevenTrainor what do you mean by textbox? if you mean an input what type='text' write $column = $_POST['textbox']; –  Abdullah Salma Apr 19 '13 at 21:47
    
@StevenTrainor first you need to name your input name='textbox' or change textbox in $column = $_POST['textbox']; to the name of the input... –  Abdullah Salma Apr 19 '13 at 21:49
    
Thanks Abdullah - That worked a treat B-) –  Steven Trainor Apr 19 '13 at 21:53
    
@StevenTrainor my pleasure. –  Abdullah Salma Apr 19 '13 at 22:11
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Something like:

$db = mysqli_connect("localhost", "user", "password", "database");
$name = $db->mysqli_real_escape_string($name);
$query = 'ALTER TABLE assesment ADD ' . $name . ' TINYINT NOT NULL DEFAULT \'0\'';
if($db->query($query)) {
    echo "It worked";
}

Haven't tested it but should work.

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Thanks - How can i name the column whatever name i type into a textbox? –  Steven Trainor Apr 19 '13 at 21:45
    
Replace my $name assignment with: $name = $db->mysqli_real_escape_string($_GET['input']); assuming you submit your form normally. If it's ajax it's a little more complex. –  Alula Errorpone Apr 19 '13 at 21:48
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Based on your comment it looks like your'e only adding the new column if: mysql_query("SELECT * FROM assessment"); returns false. That's probably not what you wanted. Try removing the '!' on front of $sql in the first 'if' statement. So your code will look like:

$sql=mysql_query("SELECT * FROM assessment");
if ($sql) {
 mysql_query("ALTER TABLE assessment ADD q6 INT(1) NOT NULL AFTER q5");
 echo 'Q6 created'; 
}else...
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