181

I have a MySQL table which contains the following type of information:

    Date            product 
2011-12-12           azd
2011-12-12           yxm
2011-12-10           sdx
2011-12-10           ssdd  

Here is an example of a script I use to get data from this table:

<?php

$con = mysql_connect("localhost","username","password");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }
mysql_select_db("db", $con);
$sql=mysql_query("SELECT * FROM buy ORDER BY Date");
while($row = mysql_fetch_array($sql))
{

 echo "<li><a href='http://www.website/". $row['Date'].".html'>buy ". date("j, M Y", strtotime($row["Date"]))."</a></li>";

    }
    mysql_close($con);
?> 

This script displays every date from the table, e.g.

12.dec 2011
12.dec.2011
10.dec.2011
10.dec.2011

I would like to only display unique dates, e.g.

12.dec.2011
10.dec.2011
344

Use the DISTINCT operator in MySQL:

SELECT DISTINCT(Date) AS Date FROM buy ORDER BY Date DESC;
  • 17
    The unfortunate problem of DISTINCT is that it only returns that one field... so if you want the whole record, the DISTINCT is worthless (unless it is an id field, and you can do a second query where id IN that list). Good news, though, if you have multiple duplicate results as a result of a JOIN you can do a GROUP BY and get the full results filtered. – Chadwick Meyer Dec 10 '15 at 19:55
  • That is not correct Chadwick Meyer ! You can chose multiple fields, but you have to group them. You can make it like this: SELECT DISTINCT(name) AS yourName, id AS yourId FROM table GROUP BY name ORDER BY name . You'll be surprised ! – Lucian Minea May 5 at 10:36
42

use

SELECT DISTINCT Date FROM buy ORDER BY Date

so MySQL removes duplicates

BTW: using explicit column names in SELECT uses less ressources in PHP when you're getting a large result from MySQL

  • 1
    can you explain "using explicit column names" ? which way is less resource taking and which one is high? with example a bit please? – Nabeel Khan Mar 30 '16 at 10:07
  • Common use case is to "stream" data from database into multidimensional array in PHP; so your PHP process simply wastes memory with data you might not need. For only some datasets this is negligible, but when handling thousands of rows, this could make a difference. – rabudde Mar 30 '16 at 15:38
  • 1
    @NabeelKhan instead of using SELECT * ... use SELECT column 1, column 2... Unless you really do need all columns. – LPChip Nov 18 '17 at 20:43
  • @LPChip using tablename.columnname is beneficial over only columnname? – Nabeel Khan Nov 22 '17 at 9:18
  • 1
    @NabeelKhan you only need tablename.columnname when you join tables. – LPChip Nov 22 '17 at 14:11
25

Use this query to get values

SELECT * FROM `buy` group by date order by date DESC
  • 3
    I found that this was not helpful. Say you have 5 items, all with the same date but different description. Using the above command will show distinct dates, but only the description of the first item found. – onebree Apr 21 '15 at 15:58
20

The rest are almost correct, except they should order by Date DESC

SELECT DISTINCT(Date) AS Date FROM buy ORDER BY Date DESC;
  • Ah yeah, thanks for pointing that out. – Léon Rodenburg Dec 20 '11 at 7:37
6

DISTINCT is always a right choice to get unique values. Also you can do it alternatively without using it. That's GROUP BY. Which has simply add at the end of the query and followed by the column name.

SELECT * FROM buy GROUP BY date,description
3

Another DISTINCT answer, but with multiple values:

SELECT DISTINCT `field1`, `field2`, `field3` FROM `some_table`  WHERE `some_field` > 5000 ORDER BY `some_field`
2

Use something like this in case you also want to output products details per date as JSON.

SELECT `date`,
CONCAT('{',GROUP_CONCAT('{\"id\": \"',`product_id`,'\",\"name\": \"',`product_name`,'\"}'),'}') as `productsJSON`
FROM `buy` group by `date` 
order by `date` DESC

 product_id product_name     date  
|    1     |     azd    | 2011-12-12 |
|    2     |     xyz    | 2011-12-12 |
|    3     |     ase    | 2011-12-11 |
|    4     |     azwed  | 2011-12-11 |
|    5     |     wed    | 2011-12-10 |
|    6     |     cvg    | 2011-12-10 |
|    7     |     cvig   | 2011-12-09 |

RESULT
       date                                productsJSON
2011-12-12T00:00:00Z    {{"id": "1","name": "azd"},{"id": "2","name": "xyz"}}
2011-12-11T00:00:00Z    {{"id": "3","name": "ase"},{"id": "4","name": "azwed"}}
2011-12-10T00:00:00Z    {{"id": "5","name": "wed"},{"id": "6","name": "cvg"}}
2011-12-09T00:00:00Z    {{"id": "7","name": "cvig"}}

Try it out in SQL Fiddle

0

There is a specific keyword for the achieving the same.

SELECT DISTINCT( Date ) AS Date 
FROM   buy 
ORDER  BY Date DESC; 
0

Depends on what you need.

In this case I suggest:

SELECT DISTINCT(Date) AS Date FROM buy ORDER BY Date DESC;

because there are few fields and the execution time of DISTINCT is lower than the execution of GROUP BY.

In other cases, for example where there are many fields, I prefer:

SELECT * FROM buy GROUP BY date ORDER BY date DESC;

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