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I have a table which inputs new registered users like this

mytable
+----+---------------------+------+
| id | timestamp           | name |
+----+---------------------+------+
| 1  | 2014-06-03 00:02:40 | john |
+----+---------------------+------+
| 2  | 2014-06-03 00:02:41 | sue  |
+----+---------------------+------+
| 3  | 2014-06-03 00:02:42 | fran |
+----+---------------------+------+
| 4  | 2014-06-02 00:02:40 | mark |
+----+---------------------+------+
| 5  | 2014-06-02 00:02:41 | tim  |
+----+---------------------+------+

I would like to organize by date, the total number of users. This works when i hard code the date

SELECT * FROM mytable WHERE timestamp LIKE '%2014-06-03%'

Q: How would i get the entire table by date the number of registered users? here is my attempt but this gives me the 2 columns that i need but the count(id) returns 1

SELECT timestamp, COUNT(id)
FROM mytable
WHERE timestamp >= "2014-01-01" 
AND timestamp < DATE_ADD("2015-01-01", INTERVAL 1 DAY)
GROUP BY timestamp
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marked as duplicate by Ollie Jones Jun 3 '14 at 19:31

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1 Answer 1

up vote 1 down vote accepted
SELECT DATE(timestamp) AS date, COUNT(id)
FROM mytable
GROUP BY DATE(timestamp)

since your timestamps are really timestamps and contain hour/minute/second data, you can't directly group on it - you'd be grouping by hh:mm:ss as well. So you group by DATE(timestamp), which will extract the date portion (yyyy-mm-dd) and group by that only.

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awesome! thank you –  t q Jun 3 '14 at 19:24

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