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I'd like to make an SQL query where the condition is that column1 contains three or more words. Is there something to do that?

22
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maybe try counting spaces ?

SELECT * 
FROM table
WHERE (LENGTH(column1) - LENGTH(replace(column1, ' ', ''))) > 1

and assume words is number of spaces + 1

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  • 1
    Wont handle multiple spaces between words – ErstwhileIII Jan 7 '15 at 19:48
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    @ErstwhileIII . . . I don't think that limitation is really worth a downvote, given that the OP doesn't specify what the delimiters are. One space is a reasonable assumption (although the answers could make that explicit). – Gordon Linoff Jan 7 '15 at 19:55
  • len() is a microsoft invention, it's not portable – Jasen Jan 7 '15 at 20:28
  • Well ... only if one does not care about accuracy – ErstwhileIII Jan 7 '15 at 23:34
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    it has a syntax issue, one more bracket ) is required after )). – Deepika Janiyani Jan 22 '19 at 7:01
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If you want a condition that a column contains three or more words and you want it to work in a bunch of databases and we assume that words are separated by single spaces, then you can use like:

where column1 like '% % %'
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  • that would match a column containing only two spaces where column1 like '%_ %_ %_' is only slightly better. – Jasen Jan 7 '15 at 20:04
  • @Jasen . . . Read the answer. The assumption is clearly stated that words are separated by a single space. A string consisting only of spaces would not meet that condition. – Gordon Linoff Jan 7 '15 at 20:06
  • I must admit that your answer is the only one that will execute in all three databases. – Jasen Jan 7 '15 at 20:25
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In Postgres you can use regexp_split_to_array() for this:

select *
from the_table
where array_length(regexp_split_to_array(the_column, '\s+'), 1) >= 3;

This will split the contents of the column the_column into array elements. One ore more whitespace are used as the delimiter. It won't respect "quoted" spaces though. The value 'one "two three" four' will be counted as four words.

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  • Can you explain to me in detail what that "1" flag at the end of regexp_split_to_array does? I can't find the documentation on it – Tom Dec 14 '16 at 20:40
  • @Tom: that's a parameter for array_length() not for regexp_split_to_array() – a_horse_with_no_name Dec 14 '16 at 20:43
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The best way to do this, is to NOT do this.

Instead, you should use the application layer to count the words during INSERT and save the word count into its own column.

While I like, and upvoted, some of the answers here, all of them will be very slow and not 100% accurate.

I know people want a simple answer to SELECT the word count, but it just is NOT POSSIBLE with accuracy and speed.

If you want it to be 100% accurate, and very fast, then use this solution.

Steps to solve:

  1. Add a column to your table and index it: ALTER TABLE tablename ADD COLUMN wordcount INT UNSIGNED NULL, ADD INDEX idxtablename_count (wordcount ASC);.
  2. Before doing your INSERT, count the number of words using your application. For example in PHP: $count = str_word_count($somevalue);
  3. During the INSERT, include the value of $count for the column wordcount like insert into tablename (col1, col2, col3, wordcount) values (val1, val2, val3, $count);

Then your select statement becomes super easy, clean, uber-fast, and 100% accurate.

select * from tablename where wordcount >= 3;

Also remember when you are updating any rows that you will need to recount the words for that column.

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  • This is the best answer because it is the only one that is 100% accurate and does not do a full table scan (and so it is fast, unlike the other solutions) – Evan de la Cruz Mar 7 '16 at 23:20
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    This is not the best answer because it does not answer the question. – Ken Johnson Oct 28 '16 at 20:03
  • @KenJohnson "I'd like to make an SQL query where the condition is that column1 contains three or more words. Is there something to do that?" was the question and select * from tablename where wordcount >= 3; is my answer, if you want to be semantically accurate. OP asked for a query. OP got a query. – Evan de la Cruz Oct 28 '16 at 23:59
  • @KenJohnson, I'm a little late here, but sometimes a question can be answered by asking a different question and answering that one. In my experience, some hard problems become easy when adding a layer of abstraction or solving the problem at a different stage in the code's lifecycle. – Jared Menard May 15 '19 at 19:35
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    @JaredMenard I totally agree with that sentiment, and i believe that this answer has a place in this thread. I merely contest the statement that this is the "best answer" since it answers it in a roundabout way, with contrived constraints (albeit constraints that others may identify with). – Ken Johnson May 16 '19 at 21:23
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This can work:

SUM(LENGTH(a) - LENGTH(REPLACE(a, ' ', '')) + 1)

Where a is the string column. It will count the number of spaces, which is 1 less than the number of words.

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  • won't handle multiple spaces between "words" – ErstwhileIII Jan 7 '15 at 19:48
  • Microsoft's server doesn't do Length(), – Jasen Jan 7 '15 at 20:29
  • You shouldn't have SUM in there. – oneloop Jul 4 '16 at 14:39
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For "n" or more words

select *
from table
where (length(column)- length(replace(column, " ", "")) + 1) >= n

PS: This would not work if words have multiple spaces between them.

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0
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To handle multiple spaces too, use the method shown here

Declare @s varchar(100)
set @s='  See      how many                        words this      has  '
set @s=ltrim(rtrim(@s))

while charindex('  ',@s)>0
Begin
    set @s=replace(@s,'  ',' ')
end

select len(@s)-len(replace(@s,' ',''))+1 as word_count

https://exploresql.com/2018/07/31/how-to-count-number-of-words-in-a-sentence/

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I think David nailed it above. However, as a more complete answer:

LENGTH(RTRIM(LTRIM(REPLACE(column1,'  ', ' ')))) - LENGTH(REPLACE(RTRIM(LTRIM(REPLACE(column1, '  ', ' '))), ' ', '')) + 1 AS number_of_words

This will remove double spaces, as well as leading and trailing spaces in your string.

Of course, you may go further by adding replacements for more than 2 spaces in a row...

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