I am trying to find a MySQL query that will find DISTINCT values in a particular field, count the number of occurrences of that value and then order the results by the count.
example db
id name
----- ------
1 Mark
2 Mike
3 Paul
4 Mike
5 Mike
6 John
7 Mark
expected result
name count
----- -----
Mike 3
Mark 2
Paul 1
John 1
SELECT name,COUNT(*) as count
FROM tablename
GROUP BY name
ORDER BY count DESC;
count(*) > 1 into a where clause because it's an aggregate functions. You also get a very unhelpful message: "Invalid use of group function." The right way is to alias the count name,COUNT(*) as cnt and add a having clause like so: HAVING count > 1.
May 14, 2013 at 0:25
HAVING is for conditions that should be applied after aggregation, whereas WHERE is for conditions that should be applied before it. (Another way of thinking of this is that WHERE applies to the original row data; HAVING applies to the output row data.)
What about something like this:
SELECT
name,
count(*) AS num
FROM
your_table
GROUP BY
name
ORDER BY
count(*)
DESC
You are selecting the name and the number of times it appears, but grouping by name so each name is selected only once.
Finally, you order by the number of times in DESCending order, to have the most frequently appearing users come first.
SELECT COUNT(DISTINCT name) as count FROM your_table For a count of the total rows of the table, do Pascal's query without the group by statement.
Dec 8, 2016 at 21:15
Just changed Amber's COUNT(*) to COUNT(1) for the better performance.
SELECT name, COUNT(1) as count
FROM tablename
GROUP BY name
ORDER BY count DESC;
$sql ="SELECT DISTINCT column_name FROM table_NAME";
$res = mysqli_query($connection_variable,$sql);
while($row = mysqli_fetch_assoc($res))
{
$sqlgetnum = "select count(*) as count from table_NAME where column_name= '$row[column_name]'";
}
WORKED PROPERLY FOR ME
GROUP BY DOES GIVE ALL DISTINCT VALUES
