3

What I want

sentence = ["This","is","a","short","sentence"]

# Desired Output

T h i s
i s
a
s h o r t
s e n t e n c e
>>>

What I tried

sentence = [row.replace(""," ") for row in sentence]

for item in sentence:
    print(item)

The problem with this is that it prints a space at the beginning and end of every line but I only want a space between each letter

7

You could use str.join()

sentence = ["This","is","a","short","sentence"]

for w in sentence:
    print(' '.join(w))
  • Thanks, str.join() seems convenient in this case – Newbie101 Nov 3 '18 at 23:24
5

You could use the facts that a string is a sequence, a sequence can be split into its items with the splat * operator, and and the print function prints items by default separated by spaces. Those three facts can be combined into one short line, print(*word), if word is a string. So you can use

sentence = ["This","is","a","short","sentence"]

for word in sentence:
    print(*word)

This gives the printout

T h i s
i s
a
s h o r t
s e n t e n c e
  • I love this alternative, but how does it compare to the typical, also correct, str.join answer in terms of performance? Are they the same under the hood? – Charles Landau Nov 3 '18 at 23:39
  • 2
    Using %timeit in iPython, SpghttCd's code used 1.33 ms, while mine used 5.18 ms. So my code is slightly shorter in code but significantly longer in execution. I suspect that Python uses time to figure how to print each item in my code, while in SpghttCd's code only one item is printed. That item takes longer to prepare but is faster to print--apparently, much faster. "Under the hood," the setup to print each item must be large, similar to how Python's handling of lists-of-lists is slower than numpy's arrays. – Rory Daulton Nov 3 '18 at 23:45
  • Very interesting @rory thanks – Charles Landau Nov 3 '18 at 23:47

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