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This is my code in my php page:

$status = "active";
$date = getdate();
$afid = $afid + 1;

mysql_connect("localhost","xxxxxxx","xxxxxxx");
mysql_select_db("xxxxxxxx");
$sql="INSERT INTO fx_aff_affiliates (affiliate_id, name, email, from_date, thru_date, status, type)
    VALUES
('".$afid."','".$value[0]."','".$value[2]."','".$date."','".NULL."','".$status."','".NULL."')";

  mysql_query($sql) or die;
  mysql_close();


and in my database it should say this:

affiliate_id    name      email          from_date    thru_date    status    type
     1         Robert   cc@cc.com        2013-07-15     NULL     active      NULL


but it is showing nothing

$status = "active";  <---should print this word in my database
$date = getdate();   <---is this correct to get the current date
$afid = $afid + 1;   <---this would be the next id increment. Its not listed as id in this databse.. its affiliate_id

$value[0] and $value[2] are both ok, ad they work in another database as they are from a form when signing up. But its the affilaite id and the rest I seem to be having a problem with. Can anyone help please?

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closed as off-topic by nickb, deceze, Lion, GolezTrol, Prix Jul 15 '13 at 17:38

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – nickb, deceze, Lion, Prix
If this question can be reworded to fit the rules in the help center, please edit the question.

2  
What exactly is the problem? Are you getting an error? What are the runtime values which generate the error? –  David Jul 15 '13 at 17:35
1  
And your problem is what exactly? –  deceze Jul 15 '13 at 17:35
1  
It would be quite helpful if you explained what the problem is. What should be going into the database? Where is $afid defined? –  andrewsi Jul 15 '13 at 17:36
1  
So you showed us what it should say, what does it actually say? –  Eric Petroelje Jul 15 '13 at 17:36
    
Echo the query and let me know the outcome –  user2541120 Jul 15 '13 at 17:37

2 Answers 2

Your first big problem is

$date = getdate();

From the PHP docs: getdate() Returns an associative array of information related to the timestamp.

Key word being array. You're passing an array as a parameter for a MySQL query. You'll need to find another way to get the date that you're looking for. If you want today's date:

$date = date("Y-m-d");

Once you fix this, it looks like the rest of your query should work.

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thank for that.. still doesnt work.. it matches my other database entries but im not sure why this one wont specifially work.. i think it has somethign to do with the auto increment? –  user2066488 Jul 15 '13 at 17:45

Change your VALUES line from this

('".$afid."','".$value[0]."','".$value[2]."','".$date."','".NULL."','".$status."','".NULL."')";

to this

('','$value[0]','$value[2]','$date','NULL','$status','NULL')";

If $afid is auto-increment, you don't even need to calculate the value.

Also, change your date variable to $date = date("Y-m-d"); as Eric suggested.

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That shouldn't matter, although changing to prepared statements would be a good change. –  Marcel Korpel Jul 15 '13 at 17:42
    
thank for that.. still doesnt work.. it matches my other database entries but im not sure why this one wont specifially work.. i think it has somethign to do with the auto increment? –  user2066488 Jul 15 '13 at 17:46
    
REALLY on hold? off topic? whatever.. what happened to helping people around here? –  user2066488 Jul 15 '13 at 17:52
    
See my updated answer –  adamdehaven Jul 15 '13 at 18:23

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