-3

I want to create a function that takes in a input sequence/list of given length

(ex: [48083, 50118, 50118, 39631, 5868, 452, 32, 460, 15, 49, 1028, 4, 252, 32, 460, 15, 49, 1028, 55, 87, 195, 722, 10, 183, 117, 912, 479, 3684, 51, 109, 16, 2788, 124, 8, 556, 8, 95, 33, 333, 732, 2923, 15, 592, 433, 4.])

and the function will output a random seqeunce of given length say 5 from the input

(ex: [48083, 50118, 50118, 39631, 5868] or [479, 3684, 51, 109, 16])

It would basically look something like this -

def foo(x, len):
  return ...

x = [48083, 50118, 50118, 39631, 5868, 452, 32, 460, 15, 49]
output_seq = foo(x, 5) # [39631, 5868, 452, 32, 460]
output_seq = foo(x, 5) # [452, 32, 460, 15, 49]
output_seq = foo(x, 5) # [50118, 50118, 39631, 5868, 452]

Can this be done in python3x ? Any help would be appreciated ?

4
  • 2
    Please see on topic and how to ask from the intro tour. "Show me how to solve this coding problem" is off-topic for Stack Overflow. You have to make an honest attempt at the solution, and then ask a specific question about your implementation.
    – MattDMo
    Jan 16 at 5:25
  • With due respect I am unable to get you comment. Was my question in any part wrong ? Was this the wrong place to ask this question ? Jan 16 at 5:29
  • 1
    Your question is off-topic for Stack Overflow as it currently stands, because you haven't made an honest attempt at finding a solution. All you've done is invent a dummy function foo(). Please read the links in my comment.
    – MattDMo
    Jan 16 at 5:32
  • Sorry, Got it ! Jan 16 at 5:34

2 Answers 2

1

Your question boils down to randomly picking a start index. You need to make sure that index gives enough room at the end to include the length you want, which will be something between 0 and the length of the list minus the size:

import random

l = [48083, 50118, 50118, 39631, 5868, 452, 32, 460, 15, 49, 1028, 4, 252, 32, 460, 15, 49, 1028, 55, 87, 195, 722, 10, 183, 117, 912, 479, 3684, 51, 109, 16, 2788, 124, 8, 556, 8, 95, 33, 333, 732, 2923, 15, 592, 433, 4.]

def foo(x, size):
    start = random.randint(0, len(x) - size)
    return x[start: start+size]

foo(l, 5)
# [109, 16, 2788, 124, 8]

foo(l, 5)
# [10, 183, 117, 912, 479]
-1

You can just use random.sample(x, len):

x = [48083, 50118, 50118, 39631, 5868, 452, 32, 460, 15, 49]
print(random.sample(x, 5))
print(random.sample(x, 5))
print(random.sample(x, 5))

Output:

[50118, 39631, 48083, 460, 452]
[452, 50118, 15, 49, 48083]
[15, 452, 48083, 50118, 39631]
5
  • That's not what the OP is asking for.
    – MattDMo
    Jan 16 at 5:32
  • Are you sure? It seems to be exactly what OP is asking for. Jan 16 at 5:34
  • Nope, it's not. Read the example result sequences and Mark's answer. They're looking to start at a random spot in the list and return the next x items (in this case 5).
    – MattDMo
    Jan 16 at 5:35
  • Ah, "output a random seqeunce of given length say 5 from the input" is what OP wrote, but not what they meant... Jan 16 at 5:39
  • Agreed...the question certainly could have been clearer.
    – Mark
    Jan 16 at 5:49

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.