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I'm new to python and I was trying to get a final list by eliminating the spaces and merging the lists. Let's consider i have two lists.

list1 = ['string1,1, 2','string2,2,3','string3,3,4']
list2 = ['string1 ,  5, 6','string2 ,  6, 7', 'string3,  8, 9']

My final list should be like below by eliminating the spaces before the elements in list2 and concatenating with list1.

list = ['string1,1,2,5,6','string2,2,3,6,7','string3,3,4,8,9']

Is there any way to achieve this? I tired something like below, but didn't worked

list2 = [x for x in list2 if x.strip()]
list = list1+list2
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  • 2
    'string1,1, 2'+'string1 , 5, 6' will be 'string1,1,2string1,5,6' after merging and removing spaces, but in your case it's 'string1,1,2,5,6', how? Jun 25, 2019 at 6:18
  • list2 = [x.replace(" ","") for x in list2 ] , just replace space with empty string
    – Nusrath
    Jun 25, 2019 at 6:20
  • 2
    res = [','.join(x.split(',') + y.split(',')[1:]) for x,y in zip(list1, list2)] And remove spaces like the comment above.
    – knh190
    Jun 25, 2019 at 6:20
  • 1
    @knh190 your comment works assuming the first string needs to be removed, but we still need clarification from the OP. You can go ahead and add an answer if you want Jun 25, 2019 at 6:23
  • 1
    Any reason for downvotes? While lacking some clear explanation of logic, it still provided mcve along with that OP has tried. Looks valid to me :P
    – Chris
    Jun 25, 2019 at 6:35

4 Answers 4

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#replacing whitespaces
l1 = [x.replace(' ', '') for x in list1]
l2 = [x.replace(' ', '') for x in list2]

#returns a dictionary of items in list, for 'string1,2,3' key=string1, values=[2, 3]
def func(l):
     d = {}
     for i in l:
             d[i.split(',')[0]] = i.split(',')[1:]
     return d

l2_dict = func(l2)
#list with elements key corresponding to l1's key
l2_1 = [','.join(l2_dict[i.split(',')[0]]) if i.split(',')[0] in l2_dict else '' for i in l1]

result = [i + ',' + j for i,j in zip(l1, l2_1)]

Above will work even if we reorder the list2 elements.

Output:

['string1,1,2,5,6', 'string2,2,3,6,7', 'string3,3,4,8,9']
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  • No. There is list comprehension favored over a map.
    – knh190
    Jun 25, 2019 at 10:15
  • Thanks, updated! I am a Scala fan, recently learned python :)
    – lprakashv
    Jun 25, 2019 at 10:26
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list1 = ['string1,1, 2','string2,2,3','string3,3,4']
list2 = ['string1 ,  5, 6','string2 ,  6, 7', 'string3,  8, 9']

res =[]
for i, j in zip(list1,list2):
    tmp =  []
    tmp1 = [l.strip() for l in i.split(',')]
    tmp2=[l.strip() for l in j.split(',')]

    for k in tmp1:
        if k not in tmp:
            tmp.append(k.strip())
    for k in tmp2:
        if k not in tmp:
            tmp.append(k.strip())
    res.append(','.join(tmp))

print(res)

output

['string1,1,2,5,6', 'string2,2,3,6,7', 'string3,3,4,8,9']
1

I think you need:

new_list = []
for i in list1:
  for j in list2:
    # remove the spaces
    x = i.replace(" ","").split(",")
    y = j.replace(" ","").split(",")

    # check if 1st element is same or not
    if x[0] == y[0]:
      result = ",".join(x+y[1:])
      new_list.append(result)

print(new_list)

Output:

['string1,1,2,5,6', 'string2,2,3,6,7', 'string3,3,4,8,9']
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strip() can only remove leading and trailing spaces from string. If you want to remove all Spaces from string you can use string.replace(" ", "") and your list comprehensions is not correct. Overall for removing spaces you need to do like this:

list2 = [x.replace(" ", "") for x in list2 ]

list1 = [x.replace(" ", "") for x in list1 ]

for details read here: list-comprehensions The rest of the part of your question regarding adding/ merging two lists is not fully clear. Assuming that you will merge and remove the recurring term then use the code from knh190 's comment :

res = [','.join(x.split(',') + y.split(',')[1:]) for x,y in zip(list1, list2)]

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