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Table tution

institute | name | subject | students

--------------------------------------------
institute1 | john | maths | mary

institute1 | john | maths | stacy

institute2 | john | maths | david

institute2 | john | science | bruce

institute1 | tim | maths | steve

institute2 | tim | science | harry

institute1 | john | science | peter

Each teacher in each subject should have limited students, suppose 25 students should be present for each subject in class.

So, here I request a SQL query to fetch the details of each teacher in a searched institute and their subject strength where institute is equal to searched institue.

Show only that teacher details which is not having strength of 25 students in each subject where institue is equal to searched institute.

I'm able to fetch the data but it takes two queries and some php functions to get the result.

These are my queries

select * from tution where institute = '$search_institute'

From this query I fetch the values of institue. Then I build a two php functions to count the name values and in that another function is there to check the name values subject and then recheck the count with each subject.

This is the count php function in which another with the help of another function I will get the subject value

select count(*) from tution 
where name = '$institue_name' 
  and subject = '$institute_subject'.

First getting the rows of searched institute and then, with the values of institute and with a foreach loop and another count SQL query builtin PHP function I am creating an array with count values.

The problem is, I am getting the result in an array two different arrays as institute-teacher list and teacher count, and then I had to do a lot of work like merging and sorting.

I need a simple complete SQL solution for this.

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2  
Did you try anything yourself? –  djot Dec 17 '11 at 10:55
9  
We're not here to do your homework. –  Pekka 웃 Dec 17 '11 at 10:56
    
thanks, for your comments but this is not my homework. –  bhrmalik Dec 17 '11 at 10:59
3  
Either way - although I appreciate coming up with code is sometimes difficult, Stack Overflow is not meant to be a "please write my code for me" site. This would be a much more useful question if you had a specific, concrete problem while trying to build this yourself –  Pekka 웃 Dec 17 '11 at 11:05
    
first getting the rows of searched institute and then after with the values of institute and with foreach loop and another count sql query built in php function i am creating an array with count values, but the problem is i am getting the result in an array two different arrays as institute teacher list and teacher count and then after i had to do a lot of work like merge and sort. So, that's why i am here to take some guidance from experts to resolve my problem. My English is little weak. Thanks Pekka –  bhrmalik Dec 17 '11 at 11:18

1 Answer 1

up vote 0 down vote accepted

Why don't you combine both into a single SQL?

SQL query to fetch the details of each teacher in a searched institute and their subject strength where institute is equal to searched institue.

Show only that teacher details which is not having strength of 25 students in each subject where institue is equal to searched institute.


select name, subject, count(students) as Student_count
from tution 
where institute = '$search_institute'
group by name, subject
having count(students) != 25

the group by allows for aggregation of data across columns. Here, you're grouping the result set by Name & their subject along with the count. The where clause filters out the result to provide only those institutes matching '$search_institute' and the having clause filters our groups not having student count of 25

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Thanks Sathya for helping me resolve this problem. Any how I got answer in phpfreaks. Thanks once again for your help. I got the answer as "SELECT institute, teacher, subject, count(students) AS StudentCount FROM tuition WHERE institute = 'someinstitute' GROUP BY institute, teacher, subject HAVING StudentCount < 25" . Thanks Thanks Thanks Sathya. –  bhrmalik Dec 18 '11 at 3:18
    
You're welcome, @bhrmalik. If this helped, you should mark this as accepted answer by clicking on the green checkbox –  Sathya Dec 18 '11 at 9:20
    
Thanks. Sathya I had clicked. –  bhrmalik Dec 19 '11 at 5:13

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