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Given colour = [ "red", "blue", "green", "yellow", "purple", "orange", "white", "black" ] generate and print a list of 50 random colours. You will need to use the random module to get random numbers. Use range and map to generated the required amount of numbers. Then use map to translate numbers to colours. Print the result.

This is a question i've been given and here's my code so far

colour = [ "red", "blue", "green", "yellow", "purple", "orange", "white", "black" ]

number=random.randint(1,9)

number.range(50)

i'm assuming this has made a variable that picks random numbers between 1-9, and then makes 50 of them ? i now need some way of linking the numbers to the colours.. i know this question is quite vague but if anyone could point me in the right direction, that would be awesome !

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3 Answers 3

up vote 0 down vote accepted

For some reason, your question requires use of map. It is difficult to help with this question without giving the answer directly, especially because these kinds of manipulations are one-liners. To start, using map and range to get a list of random numbers in the required range:

>>> nums = map(lambda x : random.randint(0,7), range(50))
>>> nums
[6, 6, 2, 4, 7, 6, 6, 7, 1, 4, 3, 2, 6, 1, 1, 2, 2, 0, 7, 
3, 6, 1, 5, 2, 1, 2, 6, 0, 3, 0, 2, 6, 0, 6, 3, 5, 0, 7, 
2, 5, 4, 1, 0, 0, 1, 4, 3, 3, 0, 3]

Observe that the argument to lambda, x is not used. That is at least one reason why I wouldn't use map here. Then, using the list of numbers, map the indexing function onto the numbers to obtain the list of colours:

>>> cols = map(lambda i: colour[i], nums)
>>> cols
['white', 'white', 'green', 'purple', 'black', 'white', 'white', 
'black', 'blue',     'purple', 'yellow', 'green', 'white', 
'blue', 'blue', 'green', 'green', 'red', 'black', 'yellow', 
'white', 'blue', 'orange', 'green', 'blue', 'green', 'white', 
'red', 'yellow', 'red', 'green', 'white', 'red', 'white', 
'yellow', 'orange', 'red', 'black', 'green', 'orange', 'purple', 
'blue', 'red', 'red', 'blue', 'purple', 'yellow', 'yellow', 'red', 
'yellow']

The answer given by soulcheck, using random.choice() in a list comprehension, is by far the best way of determining the answer.

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thats perfect, i agree the other way is much easier, but apparently this is the way i need! thank you for your help ! –  Carla Dessi Jan 29 '12 at 23:25

What you need is to use random.choice(seq) 50 times passing it colour list as argument.

Like this:

 rand_colours = [random.choice(colour) for i in range(50)]

random.choice(seq) returns randomly selected element from seq.

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Nice! Is there some equivalent to Haskell's replicate and replicateM which evaluates an expression a number of times and returns the result in a list? –  danr Jan 29 '12 at 23:03
    
@danr I don't think there is a direct equivalent. python tutorial gives an example of how to use itertools.starmap to repeat a function call n times. It even uses random.random in repeatfunc. Anyway it looks using for is the easiest way to do it. –  soulcheck Jan 29 '12 at 23:30

You can use a simple list comprehension for this:

[ colour[random.randint(0,len(colour)-1)] for x in range(0,50) ]

colour[i] means the ith element in the colour list. A random integer is created from 0 to the length of the list minus one, len(colour)-1, with random.randint as you suggested. This is repeated 50 times with range(1,50). The dummy iterator value x in the list comprehension is just ignored.

Hope this helps!

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There is random.choice for exactly that thing... And range(1, 50) is just 49 choices. –  Gandaro Jan 29 '12 at 23:11
    
@Gandaro good points! –  danr Jan 29 '12 at 23:16

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