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It seems that I'm asking a simple question but I haven't been able to find an answer that works for me. I hope you can help!

I'm writing a php script that takes some form data from an html-file (name, artist, song) and put it into a table with the columns (name, artist, song, queue, newcomer). Now, the column newcomer is a boolean; and I want this boolean value to change from the default of false or 0, to true, or 1, if the name value of the incoming form data is unique.

This is my try:

$newcomer = mysql_query(
                'IF NOT EXISTS (SELECT DISTINCT name FROM tbl_queue) 
                 THEN UPDATE tbl_queue newcomer=1'
            );

but obviously, it doesn't work...

Thanks in advance!!


Hi and thanks for the answer! HOwever it still doesn't work for me =( THis is the code from the php:

$newcomer = mysql_query("UPDATE tbl_queue SET newcomer=1 WHERE name='" . $_POST[name] . "' AND NOT EXISTS (SELECT DISTINCT name FROM tbl_queue WHERE name='" . $_POST[name] . "')" );

share|improve this question
1  
Just an FYI: Using $_POST directly in your sql query would make your php script vulnerable to SQL injection attacks. –  klennepette May 10 '13 at 9:35

4 Answers 4

up vote 0 down vote accepted

I would be tempted to do your initial insert like this:-

INSERT INTO tbl_queue (name, artist, song, queue, newcomer)
SELECT DISTINCT a.name, a.artist, a.song, a.queue, CASE WHEN b.newcomer IS NULL THEN 0 ELSE 1 END as newcomer
FROM (SELECT '$name' AS name, '$artist' AS artist, '$song' AS song, '$queue' AS queue) a
LEFT OUTER JOIN tbl_queue b
ON a.name = b.name

Have a dummy select of the values you want to insert, and left join that against the existing table based on name, using a CASE statement to check if a matching row was found or not.

EDIT - Below is some php showing the var assignments and escaping the values. I have used mysql_ functions here as you have in your original post, but really should be using mysqli_ functions to future proof things.

<?php

$name = mysql_real_escape_string($_POST['name']);
$artist = mysql_real_escape_string($_POST['artist']);
$song = mysql_real_escape_string($_POST['song']);
$fcfs_queue = mysql_real_escape_string($_POST['fcfs_queue']);

$sql = ("INSERT INTO tbl_queue (name, artist, song, fcfs_queue, newcomer)
SELECT DISTINCT a.name, a.artist, a.song, a.fcfs_queue, CASE WHEN b.newcomer IS NULL  THEN 0 ELSE 1 END as newcomer
FROM (SELECT '$name' AS name, '$artist' AS artist, '$song' AS song, '$fcfs_queue' AS  fcfs_queue) a
LEFT OUTER JOIN tbl_queue b
ON a.name = b.name");


if (!mysql_query($sql))
{
    die('Error: ' . mysql_error());
}
echo "success";


?>
share|improve this answer
    
Ok, I could try this but I am a newbie :) And I don't get what a. and b. is? –  Kei May 8 '13 at 7:06
    
a and b are aliases. a. is an alias name for the subselect while b. is an alias name for the table tbl_queue. –  Kickstart May 8 '13 at 8:02
    
tried to comment on this but my answer didn't fit within the limits, so answering my own question instead with code. –  Kei May 10 '13 at 8:13
    
YES!!! Now it works!!! Thank you, you're awesome! :) –  Kei May 10 '13 at 10:40
"UPDATE tbl_queue SET newcomer=1
    WHERE   name = '" . $name_variable . "' AND
            NOT EXISTS (SELECT DISTINCT name
                            FROM tbl_queue
                            WHERE name='" . $name_variable . "')"

Is that what you are trying to do? Obviously replace $name_variable with the correct variable.

Edit: reformatted SQL

share|improve this answer
    
I have answered this as a reply to the thread but it was deleted; now it's in the original post as an edit. I tried your solution but unfortunately it didn't work. Sadly, because this is the only answer I really understand =)) –  Kei May 10 '13 at 8:48
    
Why didn't it work? –  Ryan May 10 '13 at 8:50
    
It returns "Warning: mysql_error() expects parameter 1 to be resource, boolean given in /customers/b/6/d/coriantes.com/httpd.www/insert_records.php on line 34 Error:" Code: $sql = mysql_query("UPDATE tbl_queue SET newcomer=1 WHERE name='" . $_POST[name] . "' AND NOT EXISTS (SELECT DISTINCT name FROM tbl_queue WHERE name='" . $_POST[name] . "')" ); –  Kei May 10 '13 at 9:18

I wanted this to be a comment to Kickstart but it doesn't fit within the limits of a comment, so.. i hope it's ok I answer here?

Thank you! However that didn't work either... It returns this error: Warning: mysql_error() expects parameter 1 to be resource (regarding this row: die('Error: ' . mysql_error($sql)); in the if statement)

My code is:

$sql = ("INSERT INTO tbl_queue (name, artist, song, fcfs_queue, newcomer)
SELECT DISTINCT a.name, a.artist, a.song, a.fcfs_queue, CASE WHEN b.newcomer IS NULL  THEN 0 ELSE 1 END as newcomer
FROM SELECT '$name' AS name, '$artist' AS artist, '$song' AS song, '$fcfs_queue' AS  fcfs_queue) a
LEFT OUTER JOIN tbl_queue b
ON a.name = b.name");


if (!mysql_query($sql))
  {
  die('Error: ' . mysql_error($sql));
  }
echo "success";
share|improve this answer
    
You have a bracket missing in the SQL. Add an open bracket between FROM and SELECT (ie FROM (SELECT '$name' AS name ) –  Kickstart May 10 '13 at 8:30
    
Ohhh how embarrassing :o Changed it. However still no luck =( Still the same error message. Code: $sql = ("INSERT INTO tbl_queue (name, artist, song, fcfs_queue, newcomer) SELECT DISTINCT a.name, a.artist, a.song, a.fcfs_queue, CASE WHEN b.newcomer IS NULL THEN 0 ELSE 1 END as newcomer FROM SELECT ('$name' AS name, '$artist' AS artist, '$song' AS song, '$fcfs_queue' AS fcfs_queue) a LEFT OUTER JOIN tbl_queue b ON a.name = b.name"); –  Kei May 10 '13 at 8:37
    
Could the problem be that I use MySQL version 3.x..? –  Kei May 10 '13 at 8:53
    
You have added the bracket in the wrong place. You have added it after the SELECT . It needs to be after the FROM and before the SELECT. The missing bracket wasn't your fault, it is something I made a mess of with my original code. Sorry. I will fix mine now –  Kickstart May 10 '13 at 9:00
    
Ah!! Now we have progress! It adds the row to the queue! However it doesn't add the form content, it just switches the boolean to 1. So my form values (name, artist, song) aren't inserted into the table =( –  Kei May 10 '13 at 9:09

I would use a trigger for that, as it is a "fixed" requirement for your table:

DROP TRIGGER IF EXISTS `newComerCheck`//
CREATE TRIGGER `newComerCheck` BEFORE INSERT ON `songs`
 FOR EACH ROW BEGIN
    DECLARE c integer;
    SELECT COUNT(name) FROM `songs` WHERE `name`=NEW.name INTO c;

    IF (c >= 1) THEN
      SET NEW.newcomer=0;
    ELSE 
      SET NEW.newcomer=1;
    END IF;
  END
//

See fiddle: http://sqlfiddle.com/#!2/3e73b5/1

share|improve this answer
    
Thanks a lot! I'll try this if Kickstart's solution doesn't work out (now that I'm trying that). –  Kei May 10 '13 at 8:39
    
@Kei don't forget to set the delimiter to // when adding the trigger. (DELIMITER //) Otherwhise you'll get Syntax errors. –  dognose May 10 '13 at 9:08
    
Ok. Thanx! I'm not sure what a delimiter is though, is it what calls the trigger? The newComerCheck on lines 1 and 2? –  Kei May 10 '13 at 9:22
1  
The Delimiter is just the line Seperater. Normaly ; is used, but as the Trigger ITSELF is containing ;s you need to tell mysql, that the WHOLE trigger is one statement. This is done by using another delimiter OUTSIDE of the trigger query. Note the //s after the Drop and the complete trigger statement. MYSQL now sees "Two statements", where the second one is made of many statements, but seperated by ;. –  dognose May 10 '13 at 9:25
    
@Kei On a side node: A Trigger needs to be defined ONCE (using your favourite Database-Management-Tool). The Table then will keep that trigger until the table itself is dropped, or the Trigger is dropped. –  dognose May 10 '13 at 9:27

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