20

It's pretty hard topic for me because SQL is not my best skill ;)

I must insert random hex colors into database row. How can I do it? Is it possible to create function that will draw numbers?

3
  • Which database? (MySQL, oracle, postgresql, ...) May 17 '18 at 12:15
  • Yeah, which database? May 21 '18 at 20:24
  • I assumed it was MySQL since he responded to the first answer with something about MySQL a couple days after it was posted.
    – jbrahy
    May 23 '18 at 17:38

10 Answers 10

29
SET [Color] =  '#' +  CONVERT(VARCHAR(max), CRYPT_GEN_RANDOM(3), 2)
20

Here is the logic explained below wrapped in a function for MySQL. It's very easy to use.

mysql> select random_color();
+----------------+
| random_color() |
+----------------+
| #8F50B4        |
+----------------+
1 row in set (0.00 sec)

It can be called over and over again and each time it will have a different color.

CREATE FUNCTION `random_color`() RETURNS char(7) CHARSET latin1 DETERMINISTIC
BEGIN
 DECLARE str CHAR(7);
 SET str = concat('#',SUBSTRING((lpad(hex(round(rand() * 10000000)),6,0)),-6));
 RETURN str;
END;

This will give you six digit hex number codes in MySQL

SELECT concat('#',SUBSTRING((lpad(hex(round(rand() * 10000000)),6,0)),-6))

Here's a great one that will give you incremental colors

SELECT *, 
       concat('#',SUBSTRING((lpad(hex(@curRow := @curRow + 10),6,0)),-6)) AS color 
FROM table 
       INNER JOIN (SELECT @curRow := 5426175) color_start_point
4

This works for me in MySQL:

mysql> SELECT CONCAT('#',LPAD(CONV(ROUND(RAND()*16777215),10,16),6,0)) AS color;
+---------+
| color   |
+---------+
| #0E74A9 |
+---------+
1 row in set (0.00 sec)

Short explanation:

  • 16777215 is the maximum 24 bit unsigned integer, that is: 224-1
  • Multiplied by RAND() and ROUND()'ed gives a random unsigned integer in the RGB color range: (0, 224-1)
  • Then, convert from base 10 to base 16 to get hexadecimal
  • LPAD() to zero-fill by left
  • And finally, CONCAT() to get the '#' character
2
with cte1 as (
select round(round(rand(),1)*15,0) as hex1,
 round(round(rand(),1)*15,0) as hex2,
 round(round(rand(),1)*15,0) as hex3,
 round(round(rand(),1)*15,0) as hex4,
 round(round(rand(),1)*15,0) as hex5,
 round(round(rand(),1)*15,0) as hex6
),
cte2 as (
select case when hex1 = 10 then 'A' 
when hex1 = 11 then 'B'
when hex1 = 12 then 'C'
when hex1 = 13 then 'D'
when hex1 = 14 then 'E'
when hex1 = 15 then 'F'
else str(hex1) end as hex1h,
case when hex2 = 10 then 'A' 
when hex2 = 11 then 'B'
when hex2 = 12 then 'C'
when hex2 = 13 then 'D'
when hex2 = 14 then 'E'
when hex2 = 15 then 'F'
else str(hex2) end as hex2h,
case when hex3 = 10 then 'A' 
when hex3 = 11 then 'B'
when hex3 = 12 then 'C'
when hex3 = 13 then 'D'
when hex3 = 14 then 'E'
when hex3 = 15 then 'F'
else str(hex3) end as hex3h,
case when hex4 = 10 then 'A' 
when hex4 = 11 then 'B'
when hex4 = 12 then 'C'
when hex4 = 13 then 'D'
when hex4 = 14 then 'E'
when hex4 = 15 then 'F'
else str(hex4) end as hex4h,
case when hex5 = 10 then 'A' 
when hex5 = 11 then 'B'
when hex5 = 12 then 'C'
when hex5 = 13 then 'D'
when hex5 = 14 then 'E'
when hex5 = 15 then 'F'
else str(hex5) end as hex5h,
case when hex6 = 10 then 'A' 
when hex6 = 11 then 'B'
when hex6 = 12 then 'C'
when hex6 = 13 then 'D'
when hex6 = 14 then 'E'
when hex6 = 15 then 'F'
else str(hex6) end as hex6h from cte1)

select '#'+ltrim(hex1h)+ltrim(hex2h)+ltrim(hex3h)+ltrim(hex4h)+ltrim(hex5h)+ltrim(hex6h) from cte2
1

Here is a SQL Server Function which works in all versions from 2012 onwards that generates random HTML colour codes in hex format, i.e. #AABB00. It requires a View as well, which is also provided below.

The Function gives you the option to avoid light or dark colours, which can be useful if you are trying to generate background and foreground colours that won't clash too badly (i.e. dark text on a dark background).

CREATE FUNCTION dbo.Get_Random_Colour (@intStyle tinyint = 0)  
RETURNS varchar(7)

/*
* Purpose:      Returns the HTML colour code for a random colour
* Inputs:       @intStyle - 0: does not filter the colour range
*                           1: avoid dark colours
*                           2: avoid light colours
*/

AS  
BEGIN 

DECLARE @c1 char(2), @c2 char(2), @c3 char(2)
DECLARE @i1 tinyint, @i2 tinyint, @i3 tinyint
DECLARE @strResult As varchar(255)
DECLARE @intLow tinyint = 0
DECLARE @intHigh tinyint = 255

IF @intStyle = 1
    SET @intLow = 80

IF @intStyle = 2
    SET @intHigh = 140


--Generate random numbers
SELECT @i1 = CAST(ROUND((@intHigh-@intLow) * RandNumber + @intLow,0) as int) from dbo.vRandNumber
SELECT @i2 = CAST(ROUND((@intHigh-@intLow) * RandNumber + @intLow,0) as int) from dbo.vRandNumber
SELECT @i3 = CAST(ROUND((@intHigh-@intLow) * RandNumber + @intLow,0) as int) from dbo.vRandNumber

--Convert them to hex format
SELECT @c1 = FORMAT(@i1, 'X')
SELECT @c2 = FORMAT(@i2, 'X')
SELECT @c3 = FORMAT(@i3, 'X')

--Pad them to two characters
SELECT @strResult = '#' 
    + REPLICATE('0', 2-LEN(@c1)) + @c1
    + REPLICATE('0', 2-LEN(@c2)) + @c2
    + REPLICATE('0', 2-LEN(@c3)) + @c3



RETURN @strResult

END
GO

And here is the View that the Function is dependent on:

CREATE VIEW [dbo].[vRandNumber]
AS
SELECT RAND() as RandNumber
1

I'm not sure which DBMS are you using, but this solution is applied on SQL Server, and could be applied on a different DBMS if you know the corresponding syntax and functions.

(I will try to be as brief as I can in this)

Hex colors are basically a hexadecimal VARBINARY values which is supported by almost all DBMS. You only need the right conversion to bind it to your needs.

For example, if we cast a string foo as VARBINARY it'll return the value of 0x666F6F and if we cast back to VARCHAR it'll return foo

SELECT CAST('foo' AS VARBINARY) 
-- Returns : 0x666F6F

SELECT CAST(0x666F6F AS VARCHAR)
-- Returns : foo

So, it's the same value with corresponded datatype even if the output is different. This is also applied in colors (hex to rgb, rgb to hex, hex to binary and so on).

Now, you know that Hex colors are using VARBINARY datatype, which will be our target in this solution.

The first thing is to generate that VARBINARY by using RGB values (which is another datatype of INT values). RGB values are three different values representing Red, Green, and Blue. The minimum number of each of them is 0 and the max is 255. So, if we do RGB(0,0,0) this will return #000000 (black) and RGB(255,255,255) returns #FFFFFF (white).

Oh, I forgot, you don't need any special equation in this conversion since DBMS is already handling this.

So, your first target is to do a function which takes RGB values (with min 0 and max 255) and then convert it to Hexadecimal VARBINARY, which will gives you the Hex color.

To Convert from RGB to Hex, you will need to know each 2 hexadecimal represent an RGB Value. For instance #BA55D3 is corresponded to rgb(186,85,211) The actual hexadecimal for it is

  • R = 0xBA
  • G = 0x55
  • B = 0xD3

WHERE

  • 0xBA = 186
  • 0x55 = 18
  • 0xD3 = 211

. So, from each Hex color, you'll need to divide it into 3 groups of two values to represent RGB values.

If you cast 0xBA as INT it'll give you 186 which is the value of the red part.

 SELECT 
    CAST(0xBA AS INT) 
    -- Returns : 186 

the same thing applies to the rest.

Now, we need our function to do the work for us, for this, I have created a function that simply takes three int values and convert them into VARBINARY which helps me to convert it back to varchar to just format the output into a hex color value.

CREATE FUNCTION RGBToHex
(
        @R          INT,
        @G          INT,
        @B          INT
)
RETURNS VARCHAR(7)
AS
BEGIN
DECLARE 
        @VarR       VARBINARY,
        @VarG       VARBINARY,
        @VarB       VARBINARY,

        @Result     VARCHAR(7)

SELECT 
     @VarR  = CONVERT(VARBINARY, @R) * 1 , 
     @VarG  = CONVERT(VARBINARY, @G) * 1 , 
     @VarB  = CONVERT(VARBINARY, @B) * 1

SET @Result = '#' + SUBSTRING(Convert(VARCHAR(MAX),@VarR, 1), 3, 2) + SUBSTRING(Convert(VARCHAR(MAX),@VarG, 1), 3, 2) + SUBSTRING(Convert(VARCHAR(MAX),@VarB, 1), 3, 2)


    RETURN @Result

END

Example :

SELECT 
    RGBToHex(186,85,211)
-- Returns : #BA55D3

Now, the function is ready to be used, all we need is a way to randomize three INTs inside this function, to get a random color each time, taking the minimum and maximum (0-255) values for RGB in mind.

IN SQL Server I used a recursive query for the sake of simplicity, you could do your own query with your own method or function.

;WITH CTE AS (
    SELECT 
        ABS(CHECKSUM(NewId())) % 256 AS R , 
        ABS(CHECKSUM(NewId())) % 256 AS G ,
        ABS(CHECKSUM(NewId())) % 256 AS B
)   
SELECT 
    dbo.RGBToHex(R,G,B)
FROM CTE 

In the query above I have set the random number between 0-255 for each column, then I just put these values inside the function to generate a new color.

If you need a reversed function that takes color's hexadecimal and return RGB value, you could use this function :

CREATE FUNCTION HexToRGB
(
        @Hex        VARCHAR(7)   
)
RETURNS VARCHAR(100)
AS
BEGIN
DECLARE 

        @VarH       VARCHAR(6), 
        @R          INT, 
        @G          INT, 
        @B          INT,
        @Result     VARCHAR(100)

SET @VarH = (CASE WHEN LEFT(@Hex, 1) = '#' THEN SUBSTRING(@Hex, 2,6) ELSE @Hex END)

SELECT
    @R  =   CONVERT(INT, CONVERT(VARBINARY, '0x' +  SUBSTRING(@VarH, 1,2), 1) ),
    @G  =   CONVERT(INT, CONVERT(VARBINARY, '0x' +  SUBSTRING(@VarH, 3,2), 1) ),
    @B  =   CONVERT(INT, CONVERT(VARBINARY, '0x' +  SUBSTRING(@VarH, 5,2), 1) )

SET @Result = 'rgb('    + CAST(@R AS VARCHAR(3) ) + ',' + CAST(@G AS VARCHAR(3) )   +  ','  +   CAST(@B AS VARCHAR(3) )     + ')' 

    RETURN @Result

END
1

If you are using MySQL

select concat("#", conv(round(rand() * 255), 10, 16), conv(round(rand() * 255), 10, 16), conv(round(rand() * 255), 10, 16));
1
  • Does not always produce output with 6 characters behind the #.
    – Wotuu
    May 24 '20 at 10:25
0

Guess you need to use rand - https://dev.mysql.com/doc/refman/5.0/en/mathematical-functions.html#function_rand - i.e.

INSERT INTO ... VALUES ( ... , ROUND(RAND(255 * 255 * 255)), ...)
2
  • Two issues: i need hex format - how to rand letters? How to change it to function returns 6 length number instead rand every digit?
    – Mr Jedi
    Mar 9 '14 at 15:06
  • Can you just look up the string function HEX to do the conversion?
    – Ed Heal
    Mar 9 '14 at 16:12
0

Here's a solution for PostgreSQL.

SELECT concat('#',lpad(to_hex(round(random() * 10000000)::int4),6,'0'))

I used it to set the random color to Color field of the table using that code:

UPDATE "MyTable" SET "Color" = concat('#',lpad(to_hex(round(random() * 10000000)::int8),6,'0'));
0

For all SQL queries(MySql, SQL Server, etc) this method will work

In sql we can generate random colors using the substring function. Keep in mind that in sql charecter index starts from 1 (not 0 like javascript)

select concat('#',substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1));

Where round(rand() * 15) gives a random number between 0 and 15 including 0 and 15. Thats why we are adding 1 to it to get 1 as minimum value for the substring index

To get only Light Colors :-

select concat('#',substring('0123456789ABCDEF',round(rand() * 8)+8,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 8)+8,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 8)+8,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1));

To get only Dark Colors :-

select concat('#',substring('0123456789ABCDEF',round(rand() * 7)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 7)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1),substring('0123456789ABCDEF',round(rand() * 7)+1,1),substring('0123456789ABCDEF',round(rand() * 15)+1,1));

Update:-

In all the above cases we can use a temporary variable to have the repeating range value to minimize the query like

set @r='0123456789ABCDEF';
select concat('#',substring(@r,round(rand() * 15)+1,1),substring(@r,round(rand() * 15)+1,1),substring(@r,round(rand() * 15)+1,1),substring(@r,round(rand() * 15)+1,1),substring(@r,round(rand() * 15)+1,1),substring(@r,round(rand() * 15)+1,1));

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.