Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to create a code and Being a beginner in Python, I am having some trouble. So the code should to this:

It generates a random number with randint and put in into the list l = [] and do this as long as range.

Function repetition(l) that should check all numbers and returns the number of try(the postion(index)) of the first duplicate element.

Function repeater(count) that repeats 1-365 the repetition function long enough (1-365) and enumerating with the help of an array, until a repeat occurs.

import random

l = []

for _ in range(365):
    n = random.randint(1, 365)
    if n not in l:
    l.append(n)

print(l)

I think thats the same only int the in a funktion form:

numb = 365
def repetition(numb):
    for i in range(1,numb+1):
        i = random.randint(1, numb+1)
        if i not in l:
        l.append(n)

#def repeater(count):

Is is it also possible to do it with a dictionary instead of a list?

Stuck on step checking the Element and creating the repeater function

share|improve this question

closed as unclear what you're asking by jonrsharpe, tom, mhlester, Simon MᶜKenzie, lpapp May 6 '14 at 1:49

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question. If this question can be reworded to fit the rules in the help center, please edit the question.

    
repetition won't allow any duplicates. –  jonrsharpe May 5 '14 at 21:27
    
Obviously English is not your native language, but you're going to have to do a better job at explaining your problem. –  ooga May 5 '14 at 21:27
1  
Would it be possible to edit the question to show an example of what you want out of the function? Say everything was set to 10 instead of 365 and random.randint came up with [8, 3, 5, 4, 4, 1, 8, 1, 9, 4]; what should your working code output? –  jonrsharpe May 5 '14 at 21:33
    
@jonrsharpe ok your ex. repetition function should print out that it takes seven random number to get the 8 twice, because its the first random number and and seventh –  ThePom May 5 '14 at 21:41
    
@Kate so only for the first number? Please edit the question; include as much detail as possible. You can even mock up exactly what you expect to see printed to the terminal. –  jonrsharpe May 5 '14 at 21:45

3 Answers 3

up vote 0 down vote accepted

I don't fully understand what the question is, but I wrote this from what I understood:

import random

TRIES = 365

def generate_random_numbers(n):
    """Generates a list of n random numbers"""

    random_numbers = []
    for _ in range(n):
        random_number = random.randint(1, n)
        random_numbers.append(random_number)

    return random_numbers

def repetition(random_numbers):
    """Given a list of random numbers, it will return the index of the first repeated element"""

    for index, random_number in enumerate(random_numbers):
        if random_number in random_numbers[:index]:
            # You can print the list up to but not including the first repeated element
            # using list slicing: print '{}'.format(random_numbers[:index])
            return index

def repeater(n):
    indices_of_first_duplicates = []
    for i in range(n):
        random_numbers = generate_random_numbers(n)
        indices_of_first_duplicates.append(repetition(random_numbers))

    return indices_of_first_duplicates


repeater_result = repeater(TRIES)

print '{}'.format(repetition(repeater_result))

In the code above, what genearte_random_numbers and repetition do is documented. repeater generates n list of random numbers. For each list, it finds the index of the first repetition and stores all those indices in a list and returns that list. Finally, from what I understood/guessed, you then want to see in the list return repeater, what is the index of the first duplicate (i.e. After how many tries is the same random number generate twice at the same index.)

I might be entirely on the wrong track so I do apologise if I've misunderstood your problem.

share|improve this answer
    
wow you're already a few steps further... but I try to print out the random number list and I get a huge list the code don't stop and it also pritn out Took ... random numbers to repeat number ... –  ThePom May 5 '14 at 22:25
    
for every function it should print out separately, just a moment I try it know maybe I could do it –  ThePom May 5 '14 at 22:32
    
Still unsure what you mean but I've added a comment that might be of help :-) –  s16h May 5 '14 at 22:48
    
really thanks i forgot to vote up but now yeap –  ThePom May 8 '14 at 20:54

I'm still not totally sure, but I think this does what you want:

def repetition(numb):
    l = [random.randint(1, numb)]
    while True:
        n = random.randint(1, numb)
        l.append(n)
        if n == l[0]:
            return l

That will create a list where the first and last values are the same with other random numbers in between:

l = repetition(numb)
print(l)
print("Took {0} random numbers to repeat {1}".format(len(l), l[0]))

Example for numb == 10:

[8, 10, 5, 3, 2, 5, 8]
Took 7 random numbers to repeat 8
share|improve this answer
    
thats it but I add a print statement to see the list, if I edit l = repetition(10) I get [7,3,2,2,3,1,2,9] Took 9 random numbers to repeat 9 why? –  ThePom May 5 '14 at 22:20
    
I can only assume you made a mistake in copying or editing the code; it works perfectly for me. Did you move the check against l[0] before the append. –  jonrsharpe May 6 '14 at 7:14

I have added print statement to see what is happening.

import random
numb = 20
def repetition(numb):
    l=[] # create a list
    for i in range(1,numb+1):
        i = random.randint(1, numb+1)
        l.append(i) # add i to list
        print l,i
        if len(l) > 1 and i == l[0]: # if list is longer than one element and i == first element
            return len(l) # return length of the list
repetition(numb)
[19] 19
[19, 21] 21
[19, 21, 19] 19
Out[21]: 3
share|improve this answer

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