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Here's the error I'm shown when performing the SQL Query in question

#1062 - Duplicate entry '67302165' for key 'Player_Resource'

I understand this means that the record already exists, but it actually doesn't, here's what's returned when I run a SELECT query, to check against that specific Player_Resource

SELECT * FROM `players` WHERE `Player_Resource` = '67302165'

MySQL returned an empty result set (i.e. zero rows). (Query took 0.0003 sec)

And as for the INSERT query that I'm trying to perform, it's as followed;

INSERT INTO 
    `players` 
    (
        `Player_ID`, 
        `Player_Resource`, 
        `Player_Name`, 
        `Player_Common`, 
        `Player_Club`,
    ) 
SELECT 
    `Player_ID`, 
    '67302165', 
    Player_Name, 
    Player_Common, 
    Player_Club,
FROM 
    `players` 
WHERE 
    `Player_ID` = '193301'

The table description is like such

|      Field     |    Type        |   Null   |   Key   | Default |      Extra       |
+----------------+----------------+----------+---------+---------+------------------+
  Players_id         int(11)          NO        PRI      NULL       auto_increment
  Player_ID          int(6)           NO         0    
  Player_Resource    varchar(255)     NO        UNI       0
  Player_Name        varchar(255)     NO        NULL
  Player_Common      varchar(255)     NO        NULL  
  Player_Club        int(10)          NO        NULL

Any explainable reason as to why this error would be shown? bare in mind I've placed a UNIQUE Index on the Player_Resource column

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2  
Is there a chance that you have more than one row in that table with Player_ID=193301? –  cherouvim Jun 1 '14 at 12:04
    
Can you show us the table description please? –  Jens Jun 1 '14 at 12:06
    
@cherouvim that's correct, theirs 2 rows, but they both have a unique ID (not Player_ID) and both have a unique Player_Resource –  Curtis Jun 1 '14 at 12:14

1 Answer 1

You seem to have more than one row in that table with Player_ID=193301. The fact that they have a different Player_Resource doesn't matter because you never use the actual value in your insert query. You use the fixed value of 67302165 in all insertions:

...
SELECT 
    `Player_ID`, 
    '67302165', 
    Player_Name, 
    Player_Common, 
    Player_Club,
FROM 
    `players` 
...
share|improve this answer
    
That's exactly what I'm doing now anyway? –  Curtis Jun 1 '14 at 12:23
    
I'm explaining why you get the error. I'm not providing a solution because I don't know exactly what you are trying to achieve. Please read again. –  cherouvim Jun 1 '14 at 12:25

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