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I am trying my hand at inserting into a mysql db via a php form and im running into an issue where only the second form field is being entered but not the first.

EDIT

Here is the code after rewrite.

HTML

<form action="submit.php" method="post">
First Name: <input name="first_name" type="text" size="20" maxlength="25"><br>
Last Name: <input name="last_name" type="text" size="20" maxlength="25"><br>
</form> 

PHP

$dbhost  = 'xx';
$dbname  = 'xx';
$dbuser  = 'xx';
$dbpass  = 'xx'; 
$con = mysqli_connect($dbhost, $dbuser, $dbpass);


$first_name = mysqli_real_escape_string($con, $_POST['first_name']);
$last_name = mysqli_real_escape_string($con, $_POST['last_name']);


$query = "INSERT INTO tbl_customerinfotest VALUES ('$first_name','$last_name');";
echo $query;

mysqli_close($con)

The database is connecting fine.. but still the same issue. First name is giving a null value. Doing a print on the $post gives me: Array ( [first_name] => [last_name] => collingwood

EDIT I changed the form name to firstname without the _ and now it works?

Also, Is this more secure now that it is sqli? Would the next step in security be to use a prepared statement?

share|improve this question
    
I would add some debugging code into the page with the SQL statement. Something like: mail('none@example.com', 'My Subject', $sql); This will help you figure out if the SQL is bad, or if you're somehow missing a variable. –  Lawson May 30 '13 at 20:39
3  
please sanitise user inputs before you get hacked. –  Dagon May 30 '13 at 20:41
1  
Any sql errors? Try mysql_query($sql) or die(mysql_error()); to output any errors. Also, please note that your method is vulnerable to SQL injection. Consider sanitizing user-defined values or, better yet, use PDO. –  showdev May 30 '13 at 20:41
2  
Please use mysqli if you are using the deprecated mysql functions and also it appears that this will be vulnerable to injection. –  wazy May 30 '13 at 20:42
1  
Just wait for Little Bobby Tables to register for an account. –  Barmar May 30 '13 at 20:44

4 Answers 4

up vote 3 down vote accepted

I would first get the posted data into variables, like this (I'm also adding real_escape_string function which is really important):

$first_name = mysql_real_escape_string($_POST['first_name']);
$last_name = mysql_real_escape_string($_POST['last_name']);

Please note the single quotes inside $_POST array

And then try the query:

INSERT INTO tbl_customerinfotest (first_name, last_name) VALUES ('$first_name','$last_name')";

Lastly, you shoud use mysqli or PDO functions, as mysql_* are deprecated.

If it still doesn't work, add print_r($_POST); add the beginning of your PHP script, to see if posted data is correct and has correct names.

share|improve this answer
    
Ok, let me give it a whirl. It looks like I need to figure out how to this in Mysqli from the posts above. I am using this code as it was the sample code given on w3cschools –  Jamie Collingwood May 30 '13 at 21:08
    
If you're familiar with mysql_* functions, use mysqli_*. They are almost the same :) –  Marcelo Pascual May 30 '13 at 21:10
    
Try first with your old mysql_* functions, to see if syntax is OK and that there are no other mistakes. Then change to mysqli. Please note that most mysqli_* functions need the link identifier as first argument. That link is what you get when you connect to the database. See <php.net/manual/en/mysqli.query.php>; –  Marcelo Pascual May 30 '13 at 21:32
    
I did figure that out after googling the error. I have changed everything over and I am still getting the same issue.. first name is not storing. See my original comment edit. –  Jamie Collingwood May 30 '13 at 21:38
    
Curious what firstname and lastname are you testing with? –  wazy May 30 '13 at 21:47

EDIT:

In response to OP's edit this works fine for me:

Index.html

<form action="submit.php" method="post">
First Name: <input name="first_name" type="text" size="20" maxlength="25"><br>
Last Name: <input name="last_name" type="text" size="20" maxlength="25"><br>
<input type="submit" value="Submit">
</form>

Submit.php

<?php 
    $dbhost  = '';
    $dbname  = '';
    $dbuser  = '';
    $dbpass  = ''; 
    $con = mysqli_connect($dbhost, $dbuser, $dbpass);


    $first_name = mysqli_real_escape_string($con, $_POST['first_name']);
    $last_name = mysqli_real_escape_string($con, $_POST['last_name']);


    $query = "INSERT INTO test.tbl_customerinfotest VALUES ('$first_name','$last_name');";
    echo $query;

    mysqli_query($con, $query);
    echo mysqli_error();

    mysqli_close($con)
?>

It is much better that you use mysqli functions now instead of the deprecated mysql_* ones. Read the docs here http://us2.php.net/manual/en/mysqli.overview.php for a more detailed explanation of why you should use mysqli_* over mysql_*.

share|improve this answer
    
I added the code and get the following output. Connected to databaseINSERT INTO tbl_customerinfotest (first_name, last_name) VALUES ('','collingwood') –  Jamie Collingwood May 30 '13 at 20:52
    
You see that there is no firstname in your query. See Marcelo's answer as it is more detailed and redundant for me to repeat most of it. –  wazy May 30 '13 at 21:02

From what I see it should work but I think there is a part of code that you haven't posted that is messing things up.

While coding PHP you should always have PHP warnings enabled!

Like others mentioned you needs to sanitise your data before using it, this means you have to test it for any unwanted input (this is where regular expressions functions are very handy)

Also your HTML code has unclosed tags!

<input name="first_name" type="text" size="20" maxlength="25"><br>

should be

<input name="first_name" type="text" size="20" maxlength="25" /><br />
share|improve this answer
    
For some reason the _ in first_name was the cause. Changing it to just firstname fixed the issue. –  Jamie Collingwood May 30 '13 at 22:29
    
that's why I was wondering about the rest of your code, maybe there was another field named like this one and they both got messed up. –  Daniel P May 30 '13 at 23:16
    
Anyway, glad you solved it, but try following the given advices and sanitise you data before using it, that also means to check for existence (things that PHP would warn you about if you activate PHP warnings during development) –  Daniel P May 30 '13 at 23:18
    
This is my first PHP code so I appreciate the advice. I need to take some more tutorials to understand how to use the php warnings. And you are right.. just going back to the code there was another field with that name that I had thought was commented out but wasn't... so there you go. Thanks man! –  Jamie Collingwood May 30 '13 at 23:42

Try this:

$sql="INSERT INTO tbl_customerinfotest (first_name, last_name) VALUES  ('%s','%s')";
$sql = sprintf( $sql, $_POST['first_name'], $_POST['last_name'] );
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