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I'm trying to count a table row and add 1 on the outcome, I have this snippet of code.

$countQuery = "SELECT COUNT(id) FROM donations";
$outcomeQuery = mysql_query($countQuery);
$countUp = mysql_fetch_array($outcomeQuery);
$plusOne = 1; 
$outcome = $countUp;
echo $outcome[0]
    or die(mysql_error());

But this gives me the error:

Fatal error: Unsupported operand types

I need this so I always have a unique number that's not used by a previous donator.

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1  
Note this will not always be guaranteed unique if it runs twice at the same time. –  lc. Sep 14 '12 at 12:19
2  
NB. Count(ID) is not the same as Max(ID), and your SQL platform probably has a better way to find the next ID. –  podiluska Sep 14 '12 at 12:21
    
@Ic. I know, but I'll use 4 random generated numbers to make 100% sure there are no duplicates. –  Laetificat Sep 14 '12 at 12:42

4 Answers 4

up vote 3 down vote accepted

use simple php

$countQuery = mysql_query("SELECT id FROM donations");
$count=mysql_num_rows($countQuery);
$count+=1;
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What happens when another row is inserted between the first read and the write that uses the $count variable that you pick up here? –  Fluffeh Sep 14 '12 at 12:39
    
user want to add one to the count and it works –  StaticVariable Sep 14 '12 at 12:42
    
Worked perfectly. –  Laetificat Sep 14 '12 at 12:43

You could use:

SELECT COUNT(id)+1 as IDCount FROM donations

as your query instead. This will save you any mucking about in PHP to do the math. The array you pull back will have the number that you want right off the bat.

Edit: The better alternative however is to use a column type that increments automatically. In MySQL, this is done with the syntax auto_increment in the create table syntax.

Using this, you never actually have to insert a value, but rather, you pass it a NULL as follows (assuming that ID is the field with Auto_increment on it:

insert into tableName (ID,Name) values (null, 'Fluffeh');

So you see you don't give it any values for the ID column - the database takes care of using the right number.

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Doing calculations in the query is always better and faster. –  Nagri Sep 14 '12 at 12:22
1  
@Quasarthespacething Yeah, I was making an edit as the comment popped up. The edit I think covers the comment you were addressing :) –  Fluffeh Sep 14 '12 at 12:31
    
I tried doing this and couldn't get it to work, for some reason it's stuck at "1". –  Laetificat Sep 14 '12 at 12:42
1  
@Laetificat You probably used the wrong column name to address it. Be careful with using the code in the accepted answer as it can go awry when two users use the script at the same time. –  Fluffeh Sep 14 '12 at 13:12
    
@Fluffeh That wouldn't be a problem because it also generates a 11 character long random string before it, this extra count is just to be 1000% sure it's unique in case the same string is generated twice by coincidence. –  Laetificat Sep 14 '12 at 13:20

It's dangerous to rely on COUNT to give you a unique number. What happens if two processes execute this query, and then both try and commit: you suddenly have the same value twice.

It would be much safer to implement some kind of sequence function independent of your table contents. This link shows one possibility:

http://forums.mysql.com/read.php?61,143867,238482#msg-238482

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I will use random generated numbers too, but it's easy to make sure there are no duplicates. –  Laetificat Sep 14 '12 at 12:44

This question is for a MySQL database. I suggest you use the AUTO INCREMENT field type. As you are using PHP, if you need to know the id after inserting a record, use:

mysql_query("INSERT INTO mytable (1, 2, 3, 'blah')");
$id = mysql_insert_id();

See mysql_insert_id().

Using

4 random generated numbers to make 100% sure there are no duplicates

will not make 100% sure there are no duplicates. Don't re-invent the wheel. This is how the problem of ensuring unique incrementing identifiers are used has been solved, you don't need the embarrassment of a homebrew solution that doesn't always work.

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