1

I have a huge nested list which its elements are word strings with the following form:

[[0,'+','the','+','quick','+','brown','+','fox','+','jumps','over','+','the','+','lazy','+','dog','+',908]
...,
['Now','+','is','+', 'the','+', 'time','+', 'for','+', 'all','+', 67,'+', 'men']]

However, I identified that there are some elements with no + separator. For example, in sublist one:

[0,'+','the','+','quick','+','brown','+','fox','+','jumps','over','+','the','+','lazy','+','dog','+',908]

Between 'jumps','over' is missing +. For large nested lists with long sublists, which would the most efficient way of adding the + separator between elements with no separator?

The expected output should look like this:

[[0,'+','the','+','quick','+','brown','+','fox','+','jumps','+','over','+','the','+','lazy','+','dog','+',908]
    ...,
    ['Now','+','is','+', 'the','+', 'time','+', 'for','+', 'all','+', 67,'+', 'men']]
  • 1
    This looks like a trivial problem, have you tried anything yet? Isn't it easier to eliminate all '+'s and process the list accordingly instead? – Selcuk Sep 5 '19 at 0:41
  • 2
    What if there is +,+,+ in the original list. – ComplicatedPhenomenon Sep 5 '19 at 0:45
  • 1
    Since you're using a list, there isn't a really efficient way to do it. Iterate over the list and compare every item to its neighbor. Be sure to iterate from the end of the list and go backwards, so when you insert a plus sign, you don't upset the index values of the remaining list items. – John Gordon Sep 5 '19 at 0:48
  • It should be normalized to one + @ComplicatedPhenomenon – anon Sep 5 '19 at 0:48
  • Of course, thats the trivial solution. However, Is there any other way of doing it? @Selcuk – anon Sep 5 '19 at 0:50
3

A little bit greedy:

cleansed_lists = [[word for word in sentence if word != '+'] for sentence in nested_list]
result = []
for sentence in cleansed_lists:
    new_list = ['+'] * (2 * len(sentence) - 1)
    new_list[::2] = sentence
    result.append(new_list)

Time Complexity:

Suppose N is the length of your outer list and n is the average length of each of your inner lists (your sentences).

Line 1: We iterate through the outer list once and each inner list once, using O(1) operations (i.e. if word != '+'). Thus, Line 1 has a time complexity of O(n*N).

Lines 3-6: We iterate through our outer list once (Line 3), the equivalent of a list twice the size of our inner list (Line 4), and every other element of a list twice the size of our inner list (Line 5). This produces a time complexity of O(N*(2n + n)), which simplifies down to O(n*N).

= O(n*N) + O(N*(2n+n))
= O(n*N) + O(N*3n)
= O(n*N) + O(N*n)
= O(n*N)

Thus, the final complexity is O(n*N).

  • how efficient is this? – anon Sep 5 '19 at 0:54
  • 1
    @anon Added time complexity breakdown – wcarhart Sep 5 '19 at 1:10
1
x = [[0,'+','the','+','quick','+','brown','+','fox','+','jumps','over','+','the','+','lazy','+','dog','+',908],
['Now','+','is','+', 'the','+', 'time','+', 'for','+', 'all','+', 67,'+', 'men']]

x = [[i for i in item if i != '+'] for item in x]
print([sum([[a,b] for a, b in zip(item, ['+' for _ in range(len(item))])], []) for item in x ])

Output

[[0, '+', 'the', '+', 'quick', '+', 'brown', '+', 'fox', '+', 'jumps', '+', 'over', '+', 'the', '+', 'lazy', '+', 'dog', '+', 908, '+'], ['Now', '+', 'is', '+', 'the', '+', 'time', '+', 'for', '+', 'all', '+', 67, '+', 'men', '+']]
1

I tried two methods but with no large nested lists:

data = [0, '+', 'the', '+', 'quick', '+', 'brown', '+', 'fox', '+',
        'jumps', 'over', '+', 'the', '+', 'lazy', '+', 'dog', '+', 908]


def func_1():
    for i in range(1, len(data), 2):
        if data[i] != '+':
            data.insert(i, '+')


def func_2():
    real_data = [val for val in data if val != '+']
    spliter = '+'*len(real_data)
    [i for ab in zip(real_data, spliter) for i in ab][:-1]


%timeit func_1()
%timeit func_2()

And the final result is:

981 ns ± 17.6 ns per loop (mean ± std. dev. of 7 runs, 1000000 loops each)
3.24 µs ± 101 ns per loop (mean ± std. dev. of 7 runs, 100000 loops each)

Maybe you can have a try~Good luck!

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