112

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

My code:

<?php 
  mysql_query("ALTER TABLE `assessment` ADD newq INT(1) NOT NULL AFTER `q10`");
?>
  <form method="post" action="">
    <input type="text" name="newq" size="20">
    <input type="submit" name="submit" value="Submit">
5
  • 3
    RTLM: dev.mysql.com/doc/refman/5.1/en/alter-table.html
    – Marc B
    Apr 19, 2013 at 21:13
  • 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!'; Apr 19, 2013 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? Apr 19, 2013 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, 2013 at 21:21
  • What does this question have to do with PHP? Nov 6, 2017 at 21:37

9 Answers 9

256

your table:

q1 | q2 | q3 | q4 | q5

you can also do

ALTER TABLE yourtable ADD q6 VARCHAR( 255 ) after q5
10
  • 2
    Thanks, It worked with - mysql_query("ALTER TABLE assessment ADD q6 INT(1) NOT NULL AFTER q5"); Apr 19, 2013 at 21:33
  • How can i name the column whatever name i type into a textbox? Apr 19, 2013 at 21:43
  • 1
    the value of the text box should be in $_POST['newq'] after you submit
    – Dima
    Apr 19, 2013 at 21:53
  • 11
    @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. Feb 1, 2014 at 21:56
  • 3
    It's 2015 and people are still trying to set themselves up for sql injection vulnerabilities—:facepalm:
    – CommandZ
    Jul 8, 2015 at 21:34
10
 $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.

3
  • Got it thanks, how can i name the column whatever name i type into a textbox? Apr 19, 2013 at 21:45
  • 1
    @StevenTrainor what do you mean by textbox? if you mean an input what type='text' write $column = $_POST['textbox']; Apr 19, 2013 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... Apr 19, 2013 at 21:49
8
  • You can add a new column at the end of your table

    ALTER TABLE assessment ADD q6 VARCHAR( 255 )

  • Add column to the begining of table

    ALTER TABLE assessment ADD q6 VARCHAR( 255 ) FIRST

  • Add column next to a specified column

    ALTER TABLE assessment ADD q6 VARCHAR( 255 ) after q5

and more options here

4

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.

2
  • Thanks - How can i name the column whatever name i type into a textbox? Apr 19, 2013 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. Apr 19, 2013 at 21:48
2

You should look into normalizing your database to avoid creating columns at runtime.

Make 3 tables:

  1. assessment
  2. question
  3. assessment_question (columns assessmentId, questionId)

Put questions and assessments in their respective tables and link them together through assessment_question using foreign keys.

1

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...
1

for WORDPRESS:

global $wpdb;


$your_table  = $wpdb->prefix. 'My_Table_Name';
$your_column =                'My_Column_Name'; 

if (!in_array($your_column, $wpdb->get_col( "DESC " . $your_table, 0 ) )){  $result= $wpdb->query(
    "ALTER     TABLE $your_table     ADD $your_column     VARCHAR(100)     CHARACTER SET utf8     NOT NULL     "  //you can add positioning phraze: "AFTER My_another_column"
);}
1
ALTER TABLE `stor` ADD `buy_price` INT(20) NOT NULL ;
0

The problem with the ALTER TABLE in the PHP code is in this line:

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

It should be AFTER q5 since there is no q10 in your table sample. So, it becomes ALTER TABLE assessment ADD newq INT(1) NOT NULL AFTER q5;

Tried the same logic in my own table in [Skyvia] and it should work as seen below. I added the description column after the To column in the Title table.

[Skyvia] - the link to https://skyvia.com/query/online-mysql-query-builder

[image alter-table-add-column]enter image description here

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