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I am trying to extract a value from a string in a table like this below,

query table,

query_id    value
1           type={"page":"page"}&parent_id=10&image=on&content=on
2           type={"page":"page"}&parent_id=self
3           type={"category":"contact"}

as you can see the parent_id is in the query and sometimes is not.

I want to extract parent_id so I get this result,

query_id    page_id     value
1           10          type={"page":"page"}&parent_id=10&image=on&content=on
2           self        type={"page":"page"}&parent_id=self
3           null        type={"category":"contact"}

I try with this query,

SELECT 
    *,
    CAST(
        SUBSTRING(
            value,PATINDEX('%parent_id=%', value) + 8,(PATINDEX('%&%', substring(value,PATINDEX('%parent_id=%', value),50)) - 9)
            ) AS INT
        ) AS page_id
FROM query

however I get this error,

1064 - 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 'INT ) AS page_id FROM query LIMIT 0, 30' at line 6

EDIT:

Maybe I should not be using PATINDEX as I tested it with the query below,

SELECT 
    *,
    SUBSTRING(
            value,PATINDEX('%parent_id=%', value) + 8,(PATINDEX('%&%', substring(value,PATINDEX('%parent_id=%', value),50)) - 9)
            ) AS test
FROM query

I get this error,

#1305 - FUNCTION mydb.PATINDEX does not exist

EDIT:

Got my answer,

SELECT 
    *,
    IF(LOCATE('parent_id=', value)>0,SUBSTRING_INDEX(SUBSTRING(value,LOCATE('parent_id=', value) + 10),'&',1),null)AS page_id
FROM query
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1  
And this is why people invented relation databases and normalisation. Normalise your database and the answer would have been SELECT page_id instead. –  Berry Langerak May 1 '12 at 13:10
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1 Answer

INT is already used in MYSQL. Use the right syntax

SELECT 
    *,
    CAST(
        SUBSTRING(
            `value`,PATINDEX('%parent_id=%', `value`) + 8,(PATINDEX('%&%', substring(`value`,PATINDEX('%parent_id=%', `value`),50)) - 9)
            ) AS `INT`
        ) AS `page_id`
FROM `query`
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1  
Yep, always escape your fieldnames and aliases to avoid having MySQL mix it up with a reserved name (like INT). +1 –  Oldskool May 1 '12 at 12:25
    
sorry I still get the same error... –  tealou May 1 '12 at 12:26
    
How your code looks now? –  Bondye May 1 '12 at 12:29
    
@Bondye I just made an edit, please have a read. thanks. –  tealou May 1 '12 at 12:31
1  
I never used PATINDEX, i catched these things in PHP. Maby this helps you: owalog.com/blog.php?myess1=57 –  Bondye May 1 '12 at 12:33
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