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I am currently doing a data analysis course based on excel, but I want to complete the exercises on Python to increase my proficiency. I have an excel sheet of data on whether or not there was snow cover on each day (1=snow, 0= no snow). So I decided to read this excel file and append each of these numbers to a list to make it easier to work with. Though I can't seem to figure out how to do the next step. I need to iterate through the list starting from the first element; if the element = 1 and the succeeding element also = 1, I want this to append 'T' to a new list (and 'F' in any other case).

Example: list = [1, 1, 0, 1, 0, 1, 1]

This would append 'T' as the first element in the new list as the first two elements are = 1. The 2nd and 3rd elements are 1 and 0, therefore should append 'F' to the list. This should continue until the end. Last two elements = 1 so should append 'T.'

Would anyone have any clue on how to do so? This is my attempt but it only seems to return 'F' for every case:

def trans1(snow):
cover1 = []
snow1 = snow
snow2 = snow[1:]
for num1 in snow1:
    for num2 in snow2:
        if num1 == 1 and num2 ==1:
            trans01.append("T")
        else:
            trans01.append("F")
return cover1

Cheers!

  • Try merging on index and the relevant column, should work if I understand correctly – Manakin Nov 24 '19 at 0:58
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    You can zip the original and the shifted list together and check each tuple in one for-loop (or list comprehension) for desired state to fill a new list. – Michael Butscher Nov 24 '19 at 0:59
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You can zip() the list with itself at an offset and the compare in a list comprehension with something like:

l = [1, 1, 0, 1, 0, 1, 1]

res = ['T' if a == b else 'F' for a, b in zip(l, l[1:])]
# res -> ['T', 'F', 'F', 'F', 'F', 'T']

If you are just interested in the boolean values instead of strings, it's simpler still:

[a == b for a, b in zip(l, l[1:])]
# [True, False, False, False, False, True]

[edit based on comment]

If you only want to test for both 1s, you can change the test to use and rather than ==. For example:

l = [0, 1, 1, 0, 0, 0] 
res = ['T' if a and b else 'F' for a, b in zip(l, l[1:])]
# res -> ['F', 'T', 'F', 'F', 'F']

will give all Fs for input of all zeros.

| improve this answer | |
  • I actually like this solution more than mine, but zip does add a higher level of (imo) unnecessary complexity. Good stuff though +1. – Felipe Nov 24 '19 at 1:06
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    Thanks a lot, the list comprehension makes it much easier! Solved my problem :) – Adam Idris Nov 24 '19 at 1:20
  • This doesn’t match the desired behavior specified in the OP in the case of successive zeros: “if the element = 1 and the succeeding element also = 1, I want this to append 'T' to a new list (and 'F' in any other case).” Then again, it was just accepted as the answer, so maybe I am misunderstanding. – NicholasM Nov 24 '19 at 2:16
  • Thanks @NicholasM, I think you're correct. I added an edit. – Mark Meyer Nov 24 '19 at 2:23
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You could do this with list comprehension as follow:

["T" if l[i] == l[i+1] else "F" for i in range(len(l)-1)]
l = [1, 1, 0, 1, 0, 1, 1]
o = ["T" if l[i] == l[i+1] else "F" for i in range(len(l)-1)]

print(o) #> ['T', 'F', 'F', 'F', 'F', 'T']
| improve this answer | |
0

In one line:

["T" if l[i] == l[i+1] else "F" for i in range(len(l)-1)]

a longer but more understandable approach:

ans = []
for i in range(len(l)-1):
    if l[i]==l[i+1]:
        ans.append("T")
    else:
        ans.append("F")
| improve this answer | |
0

Below is a solution that uses one pass through your list. It may be less elegant than one line solution with zip method, but more understandable:

def trans1(snow):
    cover1 = []
    num_prev=snow[0]
    for num_next in snow[1:]:
        if num_next+num_prev==2:
            cover1.append('T')
        else:
            cover1.append('F')
        num_prev=num_next

    return cover1

So, it has an additional variable num_prev that stores a "previous" number. After iterating through the succeeding number, we append a corresponding letter to the cover1 list. At the end of the loop we update the previous number.

| improve this answer | |

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