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I have a large number of descriptions that can be anywhere from 5 to 20 sentences each. I am trying to put a script together that will locate and remove a sentence that contains a word with numbers before or after it.

before example: Hello world. Todays department has 345 employees. Have a good day. after example: Hello world. Have a good day.

My main problem right now is identifying the violation.
Here "345 employees" is what causes the sentence to be removed. However, each description will have a different number and possibly a different variation of the word employee. I would like to avoid having to create a table of all the different variations of employee.

JTB

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Can you explain what you mean by "different variations of employee". –  Conrad Frix Nov 9 '12 at 19:00
    
Will this be the only occurrence of a number in the text? Will it be correct to locate the number, and then remove all text preceding it (back to the previous . or the start of the string), and all text succeeding it (up to the next . or the end of the string)? –  Damien_The_Unbeliever Nov 9 '12 at 19:03
    
Does it have to be one of a specific set of words or any word that is preceded by numbers? –  Asad Nov 9 '12 at 19:03
    
Conrad---Different variations of employee can be employee, employment, employees, employed, ect.... Damien---It will not be the only occurrence of a number in the text. Asad---It can not be any word pro/preceding numbers. The word must have a variation of employee with a number preceding or proceding it. –  I_AM_JARROD Nov 9 '12 at 19:11
    
Would it be possible to use regular expressions some how? –  I_AM_JARROD Nov 9 '12 at 19:14
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3 Answers

up vote 3 down vote accepted

This would make a good SQL Puzzle.

Disclaimer: there are probably TONS of edge cases that would blow this up

This would take a string, split it out into a table with a row for each sentence, then remove the rows that matched a condition, and then finally join them all back into a string.

CREATE FUNCTION dbo.fn_SplitRemoveJoin(@Val VARCHAR(2000), @FilterCond VARCHAR(100))
RETURNS VARCHAR(2000)
AS 
BEGIN
    DECLARE @tbl TABLE (rid INT IDENTITY(1,1), val VARCHAR(2000))
    DECLARE @t VARCHAR(2000)

    -- Split into table @tbl
    WHILE CHARINDEX('.',@Val) > 0
    BEGIN
        SET @t = LEFT(@Val, CHARINDEX('.', @Val))
        INSERT @tbl (val) VALUES (@t)
        SET @Val = RIGHT(@Val, LEN(@Val) - LEN(@t))
    END

    IF (LEN(@Val) > 0)
        INSERT @tbl VALUES (@Val)


    -- Filter out condition 
    DELETE FROM @tbl WHERE val LIKE @FilterCond

    -- Join back into 1 string
    DECLARE @i INT, @rv VARCHAR(2000)
    SET @i = 1
    WHILE @i <= (SELECT MAX(rid) FROM @tbl)
    BEGIN
        SELECT @rv = IsNull(@rv,'') + IsNull(val,'') FROM @tbl WHERE rid = @i
        SET @i = @i + 1
    END
    RETURN @rv

END
go


CREATE TABLE #TMP (rid INT IDENTITY(1,1), sentence VARCHAR(2000))
INSERT #tmp (sentence) VALUES ('Hello world. Todays department has 345 employees. Have a good day.')
INSERT #tmp (sentence) VALUES ('Hello world. Todays department has 15 emps. Have a good day. Oh and by the way there are 12 employees somewhere else')


SELECT 
    rid, sentence, dbo.fn_SplitRemoveJoin(sentence, '%[0-9] Emp%')
FROM #tmp t

returns

rid | sentence |  |
1 | Hello world. Todays department has 345 employees. Have a good day. | Hello world. Have a good day.|
2 | Hello world. Todays department has 15 emps. Have a good day. Oh and by the way there are 12 employees somewhere else | Hello world. Have a good day. |
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I've used the split/remove/join technique as well.

The main points are:

  • This uses a pair of recursive CTEs, rather than a UDF.
  • This will work with all English sentence endings: . or ! or ?
  • This removes whitespace to make the comparison for "digit then employee" so you don't have to worry about multiple spaces and such.

Here's the SqlFiddle demo, and the code:

-- Split descriptions into sentences (could use period, exclamation point, or question mark)
-- Delete any sentences that, without whitespace, are like '%[0-9]employ%'
-- Join sentences back into descriptions
;with Splitter as (
    select ID
        , ltrim(rtrim(Data)) as Data
        , cast(null as varchar(max)) as Sentence
        , 0 as SentenceNumber
    from Descriptions -- Your table here
    union all
    select ID
        , case when Data like '%[.!?]%' then right(Data, len(Data) - patindex('%[.!?]%', Data)) else null end
        , case when Data like '%[.!?]%' then left(Data, patindex('%[.!?]%', Data)) else Data end
        , SentenceNumber + 1
    from Splitter
    where Data is not null
), Joiner as (
    select ID
        , cast('' as varchar(max)) as Data
        , 0 as SentenceNumber
    from Splitter
    group by ID
    union all
    select j.ID
        , j.Data +
            -- Don't want "digit+employ" sentences, remove whitespace to search
            case when replace(replace(replace(replace(s.Sentence, char(9), ''), char(10), ''), char(13), ''), char(32), '') like '%[0-9]employ%' then '' else s.Sentence end
        , s.SentenceNumber
    from Joiner j
        join Splitter s on j.ID = s.ID and s.SentenceNumber = j.SentenceNumber + 1
)
-- Final Select
select a.ID, a.Data
from Joiner a
    join (
        -- Only get max SentenceNumber
        select ID, max(SentenceNumber) as SentenceNumber
        from Joiner
        group by ID
    ) b on a.ID = b.ID and a.SentenceNumber = b.SentenceNumber
order by a.ID, a.SentenceNumber
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One way to do this. Please note that it only works if you have one number in all sentences.

declare @d VARCHAR(1000) = 'Hello world. Todays department has 345 employees. Have a good day.'
declare @dr VARCHAR(1000)

set @dr = REVERSE(@d)

SELECT   REVERSE(RIGHT(@dr,LEN(@dr) - CHARINDEX('.',@dr,PATINDEX('%[0-9]%',@dr))))

 + RIGHT(@d,LEN(@d) - CHARINDEX('.',@d,PATINDEX('%[0-9]%',@d)) + 1)
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