How to concatenate a list with a nested list?

Question

I have two lists:

The first one is a regular list which contains links of Sitemaps:

ur = ['https://www.hi.de/hu/sitemap.xml', 
      'https://www.hi.de/ma/sitemap.xml', 
      'https://www.hi.de/au/sitemap.xml', 
      ]

The second list is nested and contains links which were indexed on the sitemaps and a date for every link:

wh = [['No-Date', 'https://www.hi.de/hu/artikel/xxx', ''],        
      ['2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], 
      ['2019-11-12', 'https://www.hi.de/ma/artikel/xxx'], 
      ['2019-11-11', 'https://www.hi.de/au/artikel/xxx']]

Now I want to merge the list with the nedted list based on the sitmap they came from like this:

ui = [['https://www.hi.de/hu/sitemap.xml', 'No-Date', 'https://www.hi.de/hu/artikel/xxx', ''],        
      ['https://www.hi.de/ma/sitemap.xml' '2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], 
      ['https://www.hi.de/ma/sitemap.xml', '2019-11-12', 'https://www.hi.de/ma/artikel/xxx'], 
      ['https://www.hi.de/au/sitemap.xml', '2019-11-11', 'https://www.hi.de/au/artikel/xxx']]

But with my code:

ui = [[(url2, x) for url2 in ur for x in y if url2.rsplit('/', 1)[0] in x] for y in wh]

The date in every sublist gets deleted and additionally the entries are stored in a tuple like this:

...
[[('https://www.hi.de/hu/sitemap.xml', 'https://www.hi.de/hu/artikel/xxx', '')],
...

How can I change the code to get the desired result in the variable ui?

Austin · Accepted Answer · 2019-11-18 13:33:25Z

5

You can use a list comprehension that checks for the matching sitemap between two lists to get your desired result:

ur = ['https://www.hi.de/hu/sitemap.xml', 
      'https://www.hi.de/ma/sitemap.xml', 
      'https://www.hi.de/au/sitemap.xml', 
      ]

wh = [['No-Date', 'https://www.hi.de/hu/artikel/xxx', ''],        
      ['2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], 
      ['2019-11-12', 'https://www.hi.de/ma/artikel/xxx'], 
      ['2019-11-11', 'https://www.hi.de/au/artikel/xxx']]

print([[[u] + x] for x in wh for u in ur if x[1].split('/')[3] == u.split('/')[3]])

which outputs:

[['https://www.hi.de/hu/sitemap.xml', 'No-Date', 'https://www.hi.de/hu/artikel/xxx', ''],
 ['https://www.hi.de/ma/sitemap.xml' '2019-11-13', 'https://www.hi.de/ma/artikel/xxx'],
 ['https://www.hi.de/ma/sitemap.xml', '2019-11-12', 'https://www.hi.de/ma/artikel/xxx'],
 ['https://www.hi.de/au/sitemap.xml', '2019-11-11', 'https://www.hi.de/au/artikel/xxx']]

answered Nov 18 '19 at 13:33

Austin

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Hi @Austin great solution! However it does not work if my list of sitemaps and urls is longer. – gython Nov 18 '19 at 13:40
1

@gython, I assume sitemap always is at 3rd split of /. Please give an example of wrong case. – Austin Nov 18 '19 at 13:43
Hi @Austin, for example I am using a list with 11 sitemaps and a nested list with several thousand links. When I use your code for this case I am gettting the error: IndexError: list index out of range. You are right, sitemap is always at 3rd split of /, but my problem is that my lists have more entries. Can you help me out? – gython Nov 18 '19 at 13:49
Can you make sure wh is a list with each list in it has 2 elements and the second element of each list has a 3rd split, and same for ur list (has a 3rd split)? It seems either of the above cases is not true. – Austin Nov 18 '19 at 13:54
For easy debugging, convert this list comprehension to normal for loops and print element from wh and ur inside. Somewhere inside you will get IndexError; the element after just printed is the culprit. – Austin Nov 18 '19 at 13:58

| Show 7 more comments

Ajax1234 · Accepted Answer · 2019-11-18 13:33:48Z

You can transform ur to a dictionary for easier lookup:

import re
ur = ['https://www.hi.de/hu/sitemap.xml', 'https://www.hi.de/ma/sitemap.xml', 'https://www.hi.de/au/sitemap.xml']
data = [['No-Date', 'https://www.hi.de/hu/artikel/xxx'], ['2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], ['2019-11-12', 'https://www.hi.de/ma/artikel/xxx'], ['2019-11-11', 'https://www.hi.de/au/artikel/xxx']]
d = dict((re.split('/(?=sitemap\.)', i)[0], i) for i in ur)
result = [[d[re.split('/(?=\w{3,}/)', b)[0]], a, b] for a, b in data]

Output:

[['https://www.hi.de/hu/sitemap.xml', 'No-Date', 'https://www.hi.de/hu/artikel/xxx'], 
['https://www.hi.de/ma/sitemap.xml', '2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], 
['https://www.hi.de/ma/sitemap.xml', '2019-11-12', 'https://www.hi.de/ma/artikel/xxx'], 
['https://www.hi.de/au/sitemap.xml', '2019-11-11', 'https://www.hi.de/au/artikel/xxx']]

Filip Młynarski · Accepted Answer · 2019-11-18 13:43:09Z

2

You could combine elements of your list with double for loop, unpack values of second list using *-operator, and save them all using list comprehension.

ui = [
    [i, *j] 
    for i in ur for j in wh 
    if i.split('/')[3] == j[1].split('/')[3]
]

print(ui)

Output:

[
    ['https://www.hi.de/hu/sitemap.xml', 'No-Date', 'https://www.hi.de/hu/artikel/xxx', ''],
    ['https://www.hi.de/ma/sitemap.xml', '2019-11-13', 'https://www.hi.de/ma/artikel/xxx'],
    ['https://www.hi.de/ma/sitemap.xml', '2019-11-12', 'https://www.hi.de/ma/artikel/xxx'],
    ['https://www.hi.de/au/sitemap.xml', '2019-11-11', 'https://www.hi.de/au/artikel/xxx']
]

edited Nov 18 '19 at 13:43

answered Nov 18 '19 at 13:30

Filip Młynarski

3,3401 gold badge7 silver badges21 bronze badges

1

What happened to this row ['2019-11-11', 'https://www.hi.de/au/artikel/xxx']? I think OP wants a lookup to sitemap, not just merge the lists. – Karl Anka Nov 18 '19 at 13:39

Add a comment |

han solo · Accepted Answer · 2019-11-18 13:32:10Z

You could do a aimple list comprehension like,

>>> ur
['https://www.hi.de/hu/sitemap.xml', 'https://www.hi.de/ma/sitemap.xml', 'https://www.hi.de/au/sitemap.xml']
>>> wh
[['No-Date', 'https://www.hi.de/hu/artikel/xxx', ''], ['2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], ['2019-11-12', 'https://www.hi.de/ma/artikel/xxx'], ['2019-11-11', 'https://www.hi.de/au/artikel/xxx']]
>>> [[u] + w for u,w in zip(ur, wh)]
[['https://www.hi.de/hu/sitemap.xml', 'No-Date', 'https://www.hi.de/hu/artikel/xxx', ''], ['https://www.hi.de/ma/sitemap.xml', '2019-11-13', 'https://www.hi.de/ma/artikel/xxx'], ['https://www.hi.de/au/sitemap.xml', '2019-11-12', 'https://www.hi.de/ma/artikel/xxx']]

brandonbanks · Accepted Answer · 2019-11-18 15:27:18Z

1

You can also use enumerate.

ui = [[x] + wh[i] for i,x in enumerate(ur)]
print(ui)

Output:

[
    ['https://www.hi.de/hu/sitemap.xml','No-Date','https://www.hi.de/hu/artikel/xxx',''],
    ['https://www.hi.de/ma/sitemap.xml', '2019-11-13','https://www.hi.de/ma/artikel/xxx'],
    ['https://www.hi.de/au/sitemap.xml','2019-11-12','https://www.hi.de/ma/artikel/xxx']
]

edited Nov 18 '19 at 15:27

answered Nov 18 '19 at 13:36

brandonbanks

75510 silver badges20 bronze badges

1

enumerate is useless there, you're not using x, you should use range if you just want the index, but simply iterating over our list is best option in this example. – Filip Młynarski Nov 18 '19 at 13:53

Add a comment |

Daniel Marchand · Accepted Answer · 2019-11-18 13:30:15Z

0

Try using a zip:

[(x[0],x[1][0],x[1][1]) for x in zip(ur, wh)]

answered Nov 18 '19 at 13:30

Daniel Marchand

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