1

My aim is to print the next 20 leap years.

Nothing fancy so far.

My question is :

how to replace the while with a for

def loop_year(year):
    x = 0
    while x < 20:
        if year % 4 != 0 and year % 400 != 0:
            year +=1
            ##print("%s is a common year") %(year)
        elif year % 100 != 0:
            year +=1
            print("%s is a leap year") % (year)
            x += 1


loop_year(2020)     
  • 4
    why on earth aren't you just printing i in your for loop? – Marcus Müller Apr 13 '16 at 9:08
  • 1
    What is range(1,x = 21) supposed to do? – user5547025 Apr 13 '16 at 9:09
  • 1
    Tell us more about your original problem. This is wrong regardless of what you're asking. – Reut Sharabani Apr 13 '16 at 9:09
  • Hi @ReutSharabani thanks for your comment. Please find my update above – Andy K Apr 13 '16 at 9:21
  • 1
    @AndyK Not easily. You probably could replace it, but it wouldn't be good, concise, efficient, maintainable, or semantically correct. – ArtOfCode Apr 13 '16 at 9:35
6
for i in range(20):
    print(i)

It's that easy - i is the counter, and the range function call defines the set of values it can have.


On your update:

You don't need to replace that loop. A while loop is the correct tool - you don't want to enumerate all values of x from 0-20 (as a for loop would do), you want to execute a block of code while x < 20.

5

If what you're asking about is having an index while iterating over a collection, that's what enumerate is for.

Rather than do:

index = -1
for element in collection:
    index += 1
    print("{element} is the {n}th element of collection", element=element, n=index)

You can just write:

for index, element in enumerate(collection):
    print("{element} is the {n}th element of collection", element=element, n=index)

edit

Responding to the original question, are you asking for something like this?

from itertools import count

def loop_year(year):
    leap_year_count = 0
    for year in count(year):
        if (year % 4 == 0) and (year % 100 != 0 or year % 400 == 0):
            leap_year_count += 1
            print("%s is a leap year") % (year)
        if leap_year_count == 20:
            break

loop_year(2020) 

That said, I agree with ArtOfCode that a while-loop seems like the better tool for this particular job.

  • Hi @magni, sorry the for my mess. Can you have a look at my updated question, please? Thanks – Andy K Apr 13 '16 at 9:29
  • you are magician. Spot on. I wish to have given you the points earlier but well, what has been given is given. Next time. Thanks again. – Andy K Apr 13 '16 at 13:34

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