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im teaching my self python and i came across this interesting question which says:

Implement a generator cycle such that if we assign i = cycle() then repeated calls to next(i) return the values me myself i me myself i ...

I can't use a for loop but only a generator or stream. I cant use libraries. I need to output it 20 times

what I've tried so far but i cant manage to get the cycle to work:

def cycle(i):   
    saved = []
    for el in m:
        yield el

        saved.append(el)
    while saved:
        for el in saved:
              yield element
  • for el in m: where did m come from? change it into i and it should work fine :P – Chris Nov 19 '19 at 6:54
  • As Chris suggested, m should be i as that is the list you are iterating through. Another question, why append the list to another list before iterating through it? – Locke Donohoe Nov 19 '19 at 7:00
  • Is it allowed to use for loop to get iterator values? – Pavel Antspovich Nov 19 '19 at 7:00
  • @PavelAntspovich no – user12395830 Nov 19 '19 at 7:04
  • 4
    Please do not vandalize posts (including your own). You can utilize the self-delete option while available. Keep in mind that, upon posting your question, the contents were licensed under CC by-SA 4.0. – TylerH Nov 19 '19 at 17:31
2

This is probably what you want:

def cycle(n=0):
    saved=['me','myself','i']
    while True:
        yield saved[n]
        n = (n+1) % 3

i = cycle()
for _ in range(20):
   print(next(i))
  • Yes of course. The for loop is only for demonstration - the generator is the cycle() function. – mkam Nov 19 '19 at 7:07
  • Ok, I have edited the answer so that the generator generates EXACTLY 20 items before the iteration stops. You can call next(i) to get the next item. In the example I have collected the generator output into a list - just for demonstration. – mkam Nov 19 '19 at 7:15
  • but i can only use but only a generator or stream. – user12395830 Nov 19 '19 at 7:17
  • cycle() is a generator which returns a stream - i.e. an infinite list of items - yielding the next item every time you call next(). – mkam Nov 19 '19 at 7:27
0

If you don't want loops at all, try this:

class cycle:
    def __init__(self,lst,maxstep = 20):
        self.lst = lst
        self.n = 0
        self.len = len(lst)
        self.maxstep = maxstep
    def __next__(self):
        if self.n>=self.maxstep:      # remove this line
            raise StopIteration       # and this line, if you want infinite stream
        ret = self.lst[self.n % self.len]
        self.n += 1
        return ret
obj = cycle(['me','myself','i'])

If you want to be able to call list on it, that is make it iterable:

class cycle():
    def __init__(self,lst,maxstep = 20):
        self.lst = lst
        self.n = 0
        self.i = 0
        self.len = len(lst)
        self.maxstep = maxstep
    def __iter__(self):
        while self.i < self.maxstep:
            yield self.lst[self.i % self.len]
            self.i += 1
    def __next__(self):
        if self.n>=self.maxstep:
            raise StopIteration
        ret = self.lst[self.n % self.len]
        self.n += 1
        return ret
obj = cycle([1, 2, 3])
print(list(obj))
# [1, 2, 3, 1, 2, 3, 1, 2, 3, 1, 2, 3, 1, 2, 3, 1, 2, 3, 1, 2]
# or
# print(next(obj))
# 1
  • This is a generator implementation that will generate stream of cycles if you call next on it, until it reaches maxstep. If you want it to be iterable you can use my second method, then you can call list on it, and you will get the list cycled 20 times. – Sayandip Dutta Nov 19 '19 at 7:46
  • No, if you do that you will need some kind of loop, either while or for. In that case the first answer will suit you best. – Sayandip Dutta Nov 19 '19 at 8:30

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