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Running into the following error in MySQL. I have tried using convert as well with no luck. The customer would like to be able to filter data where a customer ID will be something like: BOB102, REB293, REC203. I will need to pretty much be searching for customer numbers > 200, and so on.

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'INTEGER)) > 0 )' at line 6

SELECT `orders_jobs`.* 
FROM (`orders_jobs`) 
INNER JOIN `orders_users` ON `orders_jobs`.`customer` = `orders_users`.`id` 
WHERE `orders_jobs`.`active` = 1 
AND `orders_users`.`active` = 1 
AND ( CAST(orders_users.cust_number AS INTEGER)) > 0 )

Now these may not always be 3 string characters long it might be 4 also, ie: BKER2938

NOTE: As Edga mentioned, I needed to use UNSIGNED instead of integer, but because of the characters it is converting all to 0 instead, is there possibly a different method?

Data Examples (for the field cust_number): MTQ32499,BGM31620,RES42935,CAM31717,CRED31672 (note the last one is 4 chars. I believe it will only be 3 or 4 characters long)

I need to return only the customers who have cust_number > 40000

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1 Answer 1

up vote 1 down vote accepted

You should use

CAST AS SIGNED

or

CAST AS UNSIGNED

More information here

-- edit

As a workaround you can use SUBSTRING if 5 last characters are always numeric

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Thank you, this did remove the issue though I guess CAST is not what I need as it seems all are set as 0 now (Since it's not interpreting the number). Is there a way I can either remove the strings and cast it or a different function that might be helpful? –  kilrizzy Dec 27 '12 at 16:55
    
Have you tried using CONVERT ? –  Edga Dec 27 '12 at 17:04
    
Seems to give me the same result (nothing is returned greater than 0) when using CONVERT(orders_users.cust_number, SIGNED) > 0 –  kilrizzy Dec 27 '12 at 17:11
    
Could you please give us sample of data you want to convert, and your desired result ? –  Edga Dec 27 '12 at 17:15
    
Just added to the question –  kilrizzy Dec 27 '12 at 17:21

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