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This question already has an answer here:

I have a large file with over 800k entries (access log file). I need to output a file with only clean URLs (without parameters / "?") in the URL.

Output should only display entries that DON'T have a "?" in the URL.

Parameter url:

http://www.example.com/sample?parameter=1

marked as duplicate by Inian, l'L'l, Tensibai, Lars Fischer, fedorqui awk Jan 19 '17 at 11:06

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3

In POSIX grep with the flag -v for inverse match,

grep -v "?" file

Or using awk with !

awk '!/?/' file

Using GNU sed

sed -n '/?/!p' file
  • 1
    There's nothing GNU specific about grep -v. – Ed Morton Jan 9 '17 at 19:43
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@Seasonal_showers: You haven't shown us a handful samples, so considering that your Input_file will have only URLs and nothing else, could you please try following then.

grep -v '?' Input_file

Let me know if this is not helping, you could show more sample Input_file details for better understanding then.

  • @Seasonal_showers: Did you try solutions provided by me and Inian? – RavinderSingh13 Jan 9 '17 at 11:08

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