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E.g:- BRAKE,CRANE etc.

In my employees table , I have ENAME,ENO,JOB,SALARY.

Here, I want to extract out those enames that have an 'A' as the center character in their name.

If length of ename is odd,then center one, so i need to detect odd and even position in ename.

So, I tried this, but stuck up ,so can i expect a help from here?

SELECT ENAME
FROM EMPLOYEES
WHERE A IN
(SELECT ENAME,
       SUBSTR(ENAME,LENGTH(ENAME)/2+1,1)
FROM EMPLOYEES)
;
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4  
What happens when ENAME is has an even length, do you still want to detect the 'a'? –  Lamak Jul 21 '11 at 18:54
    
yes, as even won't have a exact middle, so near to it –  parmanand Jul 21 '11 at 18:55
    
What is the problem with your current approach? –  Daniel Hilgarth Jul 21 '11 at 18:56
    
WHY QUESTION IS DOWN VOTED,WHATS WRONG WITH THAT –  parmanand Jul 21 '11 at 19:00
    
@Demla - I'm guessing for all the caps in the original version –  JNK Jul 21 '11 at 19:08

5 Answers 5

up vote 3 down vote accepted

This works for odd length strings, which I think is what you wanted. Next time please don't use caps like that. It took me 5 minutes just to read your post.

SELECT `ENAME` FROM  `EMPLOYEES` WHERE SUBSTR(`ENAME`, LENGTH(`ENAME`)/2+1, 1) =  'A'
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thanks man it works, but how to get it for even characters –  parmanand Jul 21 '11 at 18:58
    
I figured out, is like same as yours , along with: OR SUBSTR(ENAME, LENGTH(ENAME)/2, 1) = 'A' –  parmanand Jul 21 '11 at 18:59
    
That depends, for even do you want the ENAME to have two A's like bAAb, or would you also accept the string bAbb and bbAb? –  Paulpro Jul 21 '11 at 19:00

You may even try this one:

select ename from emp where substr(ename,ceil((length(ename))/2),1)='A';

This will work for both even and odd length strings...hope it helped.

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This checks first that they have an odd number of letters in the name, then does the check.

The second part checks the middle 2 letters for even-numbered lengths to see if either is A.

This is SQL Server syntax but I think Oracle should be similar.

SELECT ENAME
FROM EMPLOYEES
WHERE ((LEN(ENAME) %2) = 1
AND SUBSTRING(ENAME, LEN(Ename)/2+1, 1) = 'A')
OR
((LEN(ENAME) %2) = 0
AND SUBSTRING(ENAME, LEN(ENAME)/2-1, 2) LIKE '%A%')
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I don't think your second substring is correct. For a six-character string, wouldn't it return the first two characters instead of the middle two? Unless string indexing starts at 0, but even then I think it wouldn't be right. –  Dave Costa Jul 21 '11 at 19:06
    
+1, Yes, just changing LEN(ENAME)%2 for MOD(LENGTH(ENAME,2)) should do it –  Lamak Jul 21 '11 at 19:07
1  
@DAve No you're right, it should be -1 not -2. I'll correct. Good eye. –  JNK Jul 21 '11 at 19:07
    
this may not work in oracle,by the way, what database you run this –  parmanand Jul 21 '11 at 19:12
    
I mentioned in the answer it's for SQL Server. You will need to make changes to the functions as indicated by Lamak. –  JNK Jul 21 '11 at 19:12
SELECT ename
  FROM employees
WHERE
INSTR(
CASE
  WHEN MOD(LENGTH(ename),2) = 0 THEN SUBSTR( ename, LENGTH(ename)/2, 2 )
  ELSE SUBSTR( ename, (1+LENGTH(ename)/2), 1 )
END,
'A'
) > 0
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thanks man, I know, your solution is most compact, buts its way too high for newbie like me as it involves so much pl/sql may be. –  parmanand Jul 21 '11 at 19:31

I think this is what you mean:

SELECT ENAME FROM EMPLOYEES where ENAME=SUBSTR(ENAME,LENGTH((ENAME+1)/2),1)

What Database service are you using? (for instance in MS SQL server you must use Len)

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thanks for correction man –  parmanand Jul 21 '11 at 19:31

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