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 have recently started learning Python in the MIT class on edX.

However, I have been having some trouble with certain exercises. Here is one of them:

"Write a procedure called oddTuples, which takes a tuple as input, and returns a new tuple as output, where every other element of the input tuple is copied, starting with the first one. So if test is the tuple ('I', 'am', 'a', 'test', 'tuple'), then evaluating oddTuples on this input would return the tuple ('I', 'a', 'tuple'). "

The correct code, according to the lecture, is the following:

def oddTuples(aTup):
   '''
   aTup: a tuple

   returns: tuple, every other element of aTup.
   '''
    # a placeholder to gather our response
    rTup = ()
    index = 0

    # Idea: Iterate over the elements in aTup, counting by 2
    #  (every other element) and adding that element to
    #  the result
    while index < len(aTup):
        rTup += (aTup[index],)
        index += 2

    return rTup

However, I have tried to solve it myself in a different way with the following code:

def oddTuples(aTup):
    '''
   aTup: a tuple

   returns: tuple, every other element of aTup.
   '''
    # Your Code Here
    bTup=()
    i=0
    for i in (0,len(aTup)-1):
        if i%2==0:
            bTup=bTup+(aTup[i],)
            print(bTup)
        print(i)
        i+=1
    return bTup

However, my solution does not work and I am unable to understand why (I think it should do essentially the same thing as the code the tutors provide).

share|improve this question
3  
don't link the code, paste it here. it will save everybody's time. –  root Oct 16 '12 at 18:22
    
show some input - output samples of your code. –  elyashiv Oct 16 '12 at 18:26

4 Answers 4

I just like to add that the pythonic solution for this problem uses slices with a stepwidth and is:

newTuple = oldTuple[::2]

oldTuple[::2] has the meaning: Get copy of oldtuple from start (value is omitted) to end (omitted) with a spepwidth of 2.

share|improve this answer
1  
This is the idiomatic way to solve it, but the goal of the edX course is to teach programming, not to teach Python. This exercise helps students become comfortable with loops. Using extended slicing syntax doesn't help them here. –  Ned Batchelder Oct 16 '12 at 19:00

I think I get the problem here.

In your for loop you specify two fixed values for i:

0
len(aTup)-1

Want you really want is the range of values from 0 to len(aTup)-1:

0
1
2
...
len(aTup)-1

In order to convert start and end values into all values in a range you need to use Python's range method:

for i in range(0,len(aTup)-1):

(Actually if you take a look into range's documentation, you will find out there is a third parameter called skip. If you use it your function becomes kind of irrelevant :))

share|improve this answer
    
Thank you, people, I got it. Guess learning the syntax of Python will be harder than I thought –  John Smith Oct 16 '12 at 18:32

Your code should read:

for i in range(0,len(aTup)):
# i=0, 1, 2 ..., len(aTup)-1.

rather than

for i in (0,len(aTup)-1):
# i=0 or i=len(aTup)-1.
share|improve this answer

The lines for i in (0,len(aTup)-1): and i+=1 aren't quite doing what you want. As in other answers, you probably want for i in range(0,len(aTup)-1): (insert range), but you also want to remove i+=1, since the for-in construct sets the value of i to each of the items in the iterable in turn.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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