Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a the following code for inputing data in a database..i specifically echoed the values to see whether they have correct values or not...they have correct values but the values i get in the database are totally different.

Here is my code

    <?php
    $con = mysql_connect("localhost","root","");
    if (!$con)
      {
      die('Could not connect: ' . mysql_error());
      }

    mysql_select_db("sm_sample");
    $source=$_POST['source'];
    $username=$_POST['username'];
    $location=$_POST['location'];
    $category=$_POST['category'];
    $complaint=$_POST['complaint'];
    $status=$_POST['status'];
    $date=$_POST['date'];
    echo $source.$username.$location.$category.$complaint.$status.$date;

    $sql="INSERT INTO sample VALUES(ID=NULL,source='$source',username=
            '$username', location='$location', category='$category',complaint=
            '$complaint',date='$date',status='$status')";
    if (!mysql_query($sql,$con))
      {
      die('Error: ' . mysql_error());
      }
    echo "1 record added";
    echo "<BR>";
    echo "<a href='usercom1.php'>View result</a>";
    mysql_close($con)
    ?> 

the values i get in the database r like this: List data from mysql

Source Username  Location   Category Complaint     Date      Status     Update 
 0     Singapore                0    0000-00-00    Pending      Edit 
share|improve this question
    
Give us the var_dump or print_r of $_POST and the corresponding MySQL row –  Rolando Cruz Sep 8 '11 at 7:03
    
"i specifically echoed the values to see whether they have correct values or not" That's great. But then you turn to ask us what's wrong with your code. But we're unable to see your values! So, how we are supposed to tell what's wrong with your results?! –  Your Common Sense Sep 8 '11 at 7:16
2  
Please, read this and this. –  Albireo Sep 8 '11 at 7:18
    
Your code is open to sql injection attacks! –  markus Sep 8 '11 at 7:22
    
@rolando: i dont think $_post has a problem coz i specifically echoed to check that n they show correct values –  vedant Sep 8 '11 at 7:22
show 3 more comments

4 Answers

The correct syntax:

$sql="INSERT INTO `sample`(`ID`,`source`,`username`, `location`,`category`,`complaint`,`date`,`status`) 
      VALUES (0, '$source','$username','$location','$category','$complaint','$date','$status')";

later edit ... you are using wrong mysql_query and connection syntax

$con = mysql_connect("localhost","root","") or die('database connection?');
mysql_select_db("sm_sample", $con) or die('wrong database?');
// and for $_POST you sould use mysql_real_escape_string
$source = mysql_real_escape_string($_POST['source']);
// ........................................
$sql="INSERT INTO `sample`(`ID`,`source`,`username`, `location`,`category`,`complaint`,`date`,`status`) 
      VALUES (0, '$source','$username','$location','$category','$complaint','$date','$status')";
mysql_query($sql) or die('Error: '.mysql_error().': '.mysql_errno());
// ........................................
mysql_close($con);
share|improve this answer
    
why downvote? Just for fun or you don;t have anything to do ? –  Mihai Iorga Sep 8 '11 at 7:15
    
is it necesary??coz my previous codes used to work even without that –  vedant Sep 8 '11 at 7:25
    
you should always use correct syntax-es as you will never know when deprecated/wrong syntax will disappear/not work anymore ... –  Mihai Iorga Sep 8 '11 at 7:26
    
you are free to share your opinion as a comment, not answer. –  Your Common Sense Sep 8 '11 at 7:28
    
@Col. Shrapnel i don't understand, what did I do wrong? –  Mihai Iorga Sep 8 '11 at 8:18
show 5 more comments
<?php
    $con = mysql_connect("localhost","root","");
    if (!$con)
      {
      echo ('Could not connect: ' . mysql_error());
      }

    mysql_select_db("sm_sample",$con);
    $source=$_POST['source'];
    $username=$_POST['username'];
    $location=$_POST['location'];
    $category=$_POST['category'];
    $complaint=$_POST['complaint'];
    $status=$_POST['status'];
    $date=$_POST['date'];
    echo $source.$username.$location.$category.$complaint.$status.$date;

    $sql="INSERT INTO sample ('source','username','location','category','complaint','status') VALUES('$source','$username','location','category','complaint','status' )";
    if (!mysql_query($sql))
      {
        echo ('Error: ' . mysql_error());
      }
    echo "1 record added";
    echo "<BR>";
    echo "<a href='usercom1.php'>View result</a>";
    mysql_close($con);
    ?> 

First thing you do not have to add id if it is auto increment and date if it uses current timestamp and one more thing that never use die(); , use echo instead.

share|improve this answer
add comment

You should provide only VALUES of data with no column names:

$sql="INSERT INTO sample VALUES(ID, '$source', '$username', '$location', '$category', '$complaint', '$date', '$status')";

Also if you have only one DB connection you can not to define $con variable in mysql_query(). Like this: mysql_query($sql).

share|improve this answer
    
@vedant You should check out the documentation about INSERT as webbandit is right about this. –  str Sep 8 '11 at 7:11
    
@webbandit i didnt get the $con part you said...what shud i do? –  vedant Sep 8 '11 at 7:20
    
Making assumptions about the order of columns is risky. If you don't want a mismatch between two lists, use the INSERT INTO ... SET col = value, col = value syntax. –  Emyr Sep 8 '11 at 7:47
add comment

The problem is with the following line:

<?php
$sql="INSERT INTO sample VALUES(ID=NULL,source='$source',username='$username', location='$location', category='$category',complaint=
'$complaint',date='$date',status='$status')";
?>

If you check the result in the database, you'll see that the values are getting in the wrong order, use this instead:

<?php
$sql="INSERT INTO sample(ID, source, username, location, category, complaint, date, status)  VALUES(NULL, '$source', '$username', '$location', '$category', '$complaint','$date','$status')";
?>

PLEASE read what Albireo posted in his comment. Your code is extremely vulnerable.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.