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UPDATE:

Thank you all so much for your help on this. I've taken a different tack and decided to use just one table.


I have a database set up consisting of 3 tables. I have three short forms and I want to use the same add_player.php to write the form data to the database.

Depending on which form is submitted (I have a hidden field defining form_id in each form), data would get written to one of three tables: ff_offense, ff_kicker, ff_defense.

I am getting an unexpected } error. I know my syntax is off, but I'm not well versed enough in PHP to be able to spot the culprit. Here is the code of add_player.php:

<?php
$con = mysql_connect("localhost","dariia","celtic03");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }

mysql_select_db("football", $con);

if($form_id ="offense") {$query="INSERT INTO ff_offense (ID, PLAYER, POSITION, TEAM, PASS_YDS, RUSH_YDS, REC_YDS, RECEPTIONS, TD) 
    VALUES ('NULL','$_POST[PLAYER]','$_POST[POSITION]','$_POST[TEAM]','$_POST[PASS_YDS]','$_POST[RUSH_YDS]','$_POST[REC_YDS]','$_POST[RECEPTIONS]','$_POST[TD]')"}

    elseif($form_id="kicker") {$query="INSERT INTO ff_kicker {K_ID, K_PLAYER, K_TEAM, K_EXTRA_PTS, K_FG)
        VALUES ('NULL','$_POST[K_PLAYER]','$_POST[K_TEAM]','$_POST[K_EXTRA_PTS]','$_POST[K_FG]')"}

    elseif($form_id="defense")  { $query= "INSERT INTO ff_defense {D_ID, D_TEAM, D_SACKS, D_INT, D_TD}
        VALUES ('NULL','$_POST[D_TEAM]','$_POST[D_SACKS]','$_POST[D_INT]','$_POST[D_TD]')"} ;

$db->setQuery($query);
$db->query();   

if (!mysql_query($query,$con))
  {
  die('Error: ' . mysql_error());
  }
echo "1 record added";

mysql_close($con);
?>

The error was for line 11, which would be VALUES line for if($form_id="offense").

share|improve this question

6 Answers 6

up vote 2 down vote accepted

Looks like you are missing some semi-colons after your strings as well.

if($form_id == "offense") {
    $query="INSERT INTO ff_offense (ID, PLAYER, POSITION, TEAM, PASS_YDS, RUSH_YDS, REC_YDS, RECEPTIONS, TD) 
    VALUES ('NULL','$_POST[PLAYER]','$_POST[POSITION]','$_POST[TEAM]','$_POST[PASS_YDS]','$_POST[RUSH_YDS]','$_POST[REC_YDS]','$_POST[RECEPTIONS]','$_POST[TD]')";
} elseif($form_id=="kicker") {
    $query="INSERT INTO ff_kicker {K_ID, K_PLAYER, K_TEAM, K_EXTRA_PTS, K_FG)
        VALUES ('NULL','$_POST[K_PLAYER]','$_POST[K_TEAM]','$_POST[K_EXTRA_PTS]','$_POST[K_FG]')";
} elseif($form_id=="defense")  { 
    $query= "INSERT INTO ff_defense {D_ID, D_TEAM, D_SACKS, D_INT, D_TD}
        VALUES ('NULL','$_POST[D_TEAM]','$_POST[D_SACKS]','$_POST[D_INT]','$_POST[D_TD]')";
} 
share|improve this answer
    
Now I'm getting another error :) It reads: PHP Fatal error: Call to a member function setQuery() on a non-object in C:\\xampp\\htdocs\\kickass\\add_player.php on line 21 Line 21 is this: $db->setQuery($query); GAH! –  Cynthia May 17 '12 at 16:09
    
Try commenting out`$db->setQuery($query); $db->query();` and running your script again if that solves it you don't need those two lines. –  Jrod May 17 '12 at 16:31
    
Tried that and got a Error: Query was empty error. Ack! –  Cynthia May 17 '12 at 16:33
    
The $query variable was empty? –  Jrod May 17 '12 at 20:32

UPDATE

You're using curly braces instead of parenthesis in your queries.

 $query="INSERT INTO ff_kicker {K_ID, K_PLAYER, K_TEAM, K_EXTRA_PTS, K_FG)

should be

 $query="INSERT INTO ff_kicker (K_ID, K_PLAYER, K_TEAM, K_EXTRA_PTS, K_FG)

You did it multiple times so check all of your queries for this error.

OLD ANSWER

You should be using the comparison operator (== or ===) instead of the assignment operator:

if($form_id="offense")

should be

if($form_id==="offense")

Two points to note:

  1. You are wide open to SQL injections
  2. mysql_* is going to be depracated. You should switch to mysqli_* or PDO.
share|improve this answer
    
True, but this is not what's causing the error –  orourkek May 17 '12 at 15:52
    
Found the real error. –  John Conde May 17 '12 at 15:56
    
Ha, I didn't notice that, only looked at the guts of the first query. He's also missing semicolons for all of them :] –  orourkek May 17 '12 at 15:58
if($form_id="offense").

Should be

 if($form_id=="offense")

Also, you are wide open to SQL injection, make sure you sanitize your input. Even if you do sanitize your input I would advice you to start using PDO, which is much safer!

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lol @ whoever downvoted me and John Conde's awnser –  Bono May 17 '12 at 15:48
1  
It wasn't me, but maybe because they're not answers? The syntax is valid even if the logic is flawed. The question was about a specific syntax error, which is solved with semicolons, not fixing equalities –  orourkek May 17 '12 at 15:50
    
Maybe so, still that would mean this awnser and John Conde's awnser are "not useful", which imo it is. And I know, I upvoted yours ;) –  Bono May 17 '12 at 15:52
    
I agree, but I find it hard to upvote an answer that doesn't address the specific error the OP pasted. My downvotes are reserved for the answers that are completely wrong :] –  orourkek May 17 '12 at 16:12
    
@orourkek that's not a problem =D –  Bono May 17 '12 at 16:13

If you want to test if a variable is equal to a value, you have to use the comparison operator, which is ==

Here, you are using the assignment operator, which is = -- it take the value you write on its right, and put it inside the variable you've written on its left.


Basically, you should update your three conditions, so they look like this :

if($form_id == "offense")
elseif($form_id == "kicker")
elseif($form_id == "defense")
share|improve this answer
    
This only addresses the logic flaw, not the two syntax errors –  orourkek May 17 '12 at 15:59

assignment operator is =

checking condition is ==

and when we want to check data type as well we use ===

so you got problem in your condition it should be like below

if(variable == 'string'){
    // logic
}
share|improve this answer

These other answers are right, but there's a missing semicolon at the end of this declaration also, which is what's causing the syntax error:

if($form_id ="offense") { $query="INSERT INTO ff_offense (ID, PLAYER, POSITION, TEAM, PASS_YDS, RUSH_YDS, REC_YDS, RECEPTIONS, TD) 
    VALUES ('NULL','$_POST[PLAYER]','$_POST[POSITION]','$_POST[TEAM]','$_POST[PASS_YDS]','$_POST[RUSH_YDS]','$_POST[REC_YDS]','$_POST[RECEPTIONS]','$_POST[TD]')"; }

edit: To be clear, all of the declarations are missing a semicolon, not just the one.

share|improve this answer
    
if($form_id ="offense") erm....? –  itachi May 17 '12 at 15:47
1  
That's technically valid syntax, and is not what's causing the error to be thrown –  orourkek May 17 '12 at 15:47
    
if you write an answer and see sql injection vulnerability, you should mention it. same as here. It's not hard to add just 1 more = the above code, is it? –  itachi May 17 '12 at 16:07
    
Well considering the number of answers on the page that only corrected the equality, this answer was just an addition to those. No one seems to notice the semicolons, which is what would cause the error he pasted. Hence why I started with "these other answers are right" –  orourkek May 17 '12 at 16:10

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