-1

I am working with strings like:

"AAAA xsdfe123 BBBB 1jhfhfs CCCC 13 AAAA hjhj 300 DDDD hfh3 BBBB 14 x"

I need to get all the values after AAAA, BBBB, CCCC and DDDD, please note that AAAA, BBBB, CCCC and DDDD can be in any order and can be repeated multiple times. or sometimes we may have some of them (not all), e.g., "BBBB 14 x"

The output I am looking for should be in the following format:

{"AAAA":["xsdfe123", "hjhj 300"], "BBBB":["1jhfhfs", "14 x"], "CCCC":["13"], "DDDD":["hfh3"]}

how can I do this efficiently in python?

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  • I edited the question, lets assume they are space-separated – Alex Jun 6 '18 at 18:15
  • 3
    What have you tried so far ? Show examples of your code. – Andrew_Lvov Jun 6 '18 at 18:17
2

Here's one way using collections.defaultdict for an O(n) solution. Since we use str.split, it's necessary to keep track of counts so that we join multiple values which appear after a key.

There is an edge case, where your string does not begin with a key, unaccounted for. I leave that as an exercise.

from collections import defaultdict

s = 'AAAA xsdfe123 BBBB 1jhfhfs CCCC 13 AAAA hjhj 300 DDDD hfh3 BBBB 14 x'

d = defaultdict(list)

valid_keys = {'AAAA', 'BBBB', 'CCCC', 'DDDD'}

for item in s.split():
    if item in valid_keys:
        count = 0
        key = item
    else:
        count += 1
        if count == 1:
            d[key].append(item)
        else:
            d[key][-1] = '{0} {1}'.format(d[key][-1], item)

defaultdict(list,
            {'AAAA': ['xsdfe123', 'hjhj 300'],
             'BBBB': ['1jhfhfs', '14 x'],
             'CCCC': ['13'],
             'DDDD': ['hfh3']})
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  • thanks, if I want to get set of values instead of list, what should I do? – Alex Jun 6 '18 at 18:36
  • should we initialize count before for loop? what about variable key? – Alex Jun 6 '18 at 18:42
2

I think you can do this with a regular expression match (using a lookahead to tell us where to stop) and a defaultdict to store the data in:

import collections
import re

text = "AAAA xsdfe123 BBBB 1jhfhfs CCCC 13 AAAA hjhj 300 DDDD hfh3 BBBB 14 x"

pattern = "(AAAA|BBBB|CCCC|DDDD) (.*?)(?:$|(?= AAAA| BBBB| CCCC| DDDD))"

results = collections.defaultdict(list)
for abcd, following_text in re.findall(pattern, text):
    results[abcd].append(following_text)

Output:

>>> results
defaultdict(list,
            {'AAAA': ['xsdfe123', 'hjhj 300'],
             'BBBB': ['1jhfhfs', '14 x'],
             'CCCC': ['13'],
             'DDDD': ['hfh3']})
| |
0

Here is my pretty basic way to do this:

import re

my_string = "AAAA xsdfe123 BBBB 1jhfhfs CCCC 13 AAAA hjhj 300 DDDD hfh3 BBBB 14 x"

my_dict = {}
my_list = re.findall("[A-Z]+[^A-Z]+", my_string)
for item in my_list:
    item = item.strip()
    key = re.sub(" .*", "", item)
    value = re.sub("^[A-Z]+\s+", "", item)
    if key in my_dict:
        my_dict[key] = my_dict[key] + [value]
    else:
        my_dict[key] = [value]

print(my_dict)

result:

{'AAAA': ['xsdfe123', 'hjhj 300'], 'BBBB': ['1jhfhfs', '14 x'], 'CCCC': ['13'], 'DDDD': ['hfh3']}

I'm simply chopping up the string sort of using any A-Z as the delimiters as given in the sample data. Then assign those as keys and values for a dictionary. There are lots of clever ways to do this, I'm just trying to keep it simple and easy to read.

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  • 1
    I don't think it's a good idea to rely on the keys being all-uppercase and everything else being all-lowercase... – Aran-Fey Jun 6 '18 at 18:30
  • Normally I would agree, but in his example that's how he's chopping them up. I would hope he would put in 2342 ffff if that were possible for a key value pair – sniperd Jun 6 '18 at 18:32
-1

You can use itertools.groupby:

import itertools
import re
s = "AAAA xsdfe123 BBBBjhfhfs CCCC 13 AAAA hjhj 300 DDDD hfh3 BBBB 14 x"
headers = ['AAAA', 'BBBB', 'CCCC', 'DDDD']
new_s = re.findall('{}|\w+'.format('|'.join(headers)), s)
new_s = [list(b) for a, b in itertools.groupby(new_s, key=lambda x:x in headers)]
grouped_s = [new_s[i]+new_s[i+1] for i in range(0, len(new_s), 2)]
final_result = {a:[' '.join(i[1:]) for i in b] for a, b in itertools.groupby(sorted(grouped_s, key=lambda x:x[0]), key=lambda x:x[0])}

Output:

{'AAAA': ['xsdfe123', 'hjhj 300'], 'BBBB': ['jhfhfs', '14 x'], 'CCCC': ['13'], 'DDDD': ['hfh3']}
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  • 6
    "Readability counts." – G_M Jun 6 '18 at 18:18
  • thanks but i'm getting SyntaxError on _, *c SyntaxError: invalid syntax – Alex Jun 6 '18 at 18:22
  • @Alex Please see my recent edit. That is because you are using Python2, while list unpacking during iteration is only valid in Python3. – Ajax1234 Jun 6 '18 at 18:23
  • In the general case, you'd have to re.escape the headers. – Aran-Fey Jun 6 '18 at 18:25
  • thanks for your edit now I'm getting SyntaxError in this line new_s = re.findall(f'{"|".join(headers)}|\w+', s) – Alex Jun 6 '18 at 18:26

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