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I am fairly new at php and I have been trying to insert a series of variables into a mysql database. However, it seems that while the table is being created the data isn't getting entered into the table. I was hoping that someone could tell me why. Any help would be much appreciated.

The php code:

<?php
$team = $_POST['team'];
$int1 = $_POST['int1'];
$int2 = $_POST['int2'];
$int3 = $_POST['int3'];
$int4 = $_POST['int4'];
$int5 = $_POST['int5'];
$int6 = $_POST['int6'];
$int7 = $_POST['int7'];
$int8 = $_POST['int8'];
$int9 = $_POST['int9'];
$int10 = $_POST['int10'];
$int11 = $_POST['int11'];
$int12 = $_POST['int12'];
$int13 = $_POST['int13'];
$int14 = $_POST['int14'];
$con=mysqli_connect("127.0.0.1:3306","root","password","my_db");
// Check connection
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }
$sqli="CREATE TABLE $team(int1 INT,int2 INT,int3 INT,int4 INT,int5 INT,int6 INT,int7 INT,int8 INT,int9 INT,int10 INT,int11 INT,int12 INT,int13 INT,int14 INT)";
if (mysqli_query($con,$sqli))
  {
  echo "<br />Table created successfully";
  }
else
  {
  echo "<br />Error creating table: " . mysqli_error();
  }
$sql="INSERT INTO $team (int1, int2 ,int3 ,int4 ,int5 ,int6 ,int7 ,int8 ,int9 ,int10 ,int11 ,int12 ,int13 ,int14 )
VALUES ($int1,$int2,$int3,$int4,$int5,$int6,$int7,$int8,$int9,$int10,$int11,$int12,$int13,$int14)";
if (mysqli_query($con,$sql))
  {
  echo "<br />Record added";
  }
else
  {
  echo "<br />Error adding record";
  }
?>
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1  
why you check if connect failed if you proceed no matter of the result? –  Marcin Orlowski Apr 6 '13 at 14:53
    
what's the error you're getting? –  Kieran Apr 6 '13 at 14:56
1  
You will get an error for sure no matter what after launching this .php two or more times with the same name for $team because the table will already be created. So you should change to CREATE TABLE IF NOT EXISTS or even better: do not create tables through php - create them through the mysql cli - that's called the database design part ;-) –  Yannis Apr 6 '13 at 14:58
    
And please change these variables and column names to significant ones and if it's just for testing 3 will do. Answer: it's not working because of the missing quotes VALUES ('$int1', ...) - I guess you could have seen that with a simple google search: "mysqli documentation insert into with variables" –  Yannis Apr 6 '13 at 14:59
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2 Answers

Firstly, you should never insert $_POST values directly into a database, without using strip_tags, htmlentities or some other function to get rid of possible malicious code.

Secondly, I'd recommend looking at the MySQL docs for the proper syntax for creating tables. http://dev.mysql.com/doc/refman/5.1/en/create-table.html

share|improve this answer
    
-1. There is absolutely nothing wrong with inserting values without using strip_tags() or htmlentities(). Both these functins has nothing to do with SQL at all. And there is no such thing like "possible malicious code to remove" as well. –  Your Common Sense Apr 6 '13 at 15:07
    
There is if, as most people do, echo the value when retrieving the row from the database. In my opinion it's better to validate the data before putting it in the database, instead of before displaying it on a page. As well as that, they are only example functions I mentioned. mysql_real_escape should also be performed. –  Kieran Apr 6 '13 at 15:10
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Firstly,its a big security risk to insert data without sanitization(validation).

Secondly, make use of mysqli_error http://php.net/manual/en/mysqli.error.php in php to log or print the error.

because you are inserting data without validation, if any of the variable in $int1.... $int14 is blank or not filled from the form which is requesting the script, your sql query becomes incorrect and fail by generating some sort of syntax error, can be traced using mysqli_error as discussed above.

if (mysqli_query($con,$sql))
  {
  echo "<br />Record added";
  }
else
  {
  echo "<br />Error ".mysqli_error($con);
  }

to see what may become wrong when any of the field is left blank, consider the values submitted as: $team = 'tbl_team'; $int1 = 1; $int2 = 2; $int3 = 3; $int4 = 4; $int5 = ''; $int6 = 6; $int7 = 7; $int8 = 8; $int9 = 9; $int10 = ''; $int11 = 11; $int12 = 12; $int13 = 13; $int14 = 14;

now see what happens to your sql query if we print it in this case:

$sql="INSERT INTO $team 
                 (int1, int2 ,int3 ,int4 ,int5 ,int6 ,int7 ,
                   int8 ,int9 ,int10 ,int11 ,int12 ,int13 ,int14 )
      VALUES                        
                   ($int1,$int2,$int3,$int4,$int5,$int6,$int7,
                   $int8,$int9,$int10,$int11,$int12,$int13,$int14)";
print $sql

will result in:

  INSERT INTO tbl_team (int1, int2 ,int3 ,int4 ,int5 ,int6 ,int7 ,int8 ,int9 ,int10 ,int11 ,int12 ,int13 ,int14 )VALUES (1,2,3,4,,6,7,8,9,,11,12,13,14)";

which is by the way a SQL syntax problem.

if you are totally a newbie and have not understood a word yet, you may try to use the following line of code as replacement in your original to have better chances.

$sql="INSERT INTO $team (int1, int2 ,int3 ,int4 ,int5 ,int6 ,int7 ,
                          int8 ,int9 ,int10 ,int11 ,int12 ,int13 ,int14 )
      VALUES
                        ('$int1','$int2','$int3','$int4','$int5','$int6','$int7',
                         '$int8','$int9','$int10','$int11','$int12','$int13','$int14')";
share|improve this answer
    
whats the problem, why did you Voted this answer down ? –  akm Apr 6 '13 at 18:38
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