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When I do unzip -l zipfilename, I see

1295627  08-22-11 07:10   A.pdf
473980  08-22-11 07:10   B.pdf
...

I only want to see the filenames. I try this

unzip -l zipFilename | cut -f4 -d" "

but I don't think the delimiter is just " ".

share|improve this question
    
If the number of spaces is fixed, you have to advance the field accordingly, like -f7 or so. If the position of the file name is fixed, use -b instead. – Kerrek SB Aug 22 '11 at 14:01
    
Related on Super User: View files in ZIP archive on Linux – Palec Mar 28 '15 at 0:23
up vote 15 down vote accepted

Assuming none of the files have spaces in names:

unzip -l filename.zip | awk '{print $NF}'

My unzip output has both a header and footer, so the awk script becomes:

unzip -l filename.zip | awk '/-----/ {p = ++p % 2; next} p {print $NF}'
share|improve this answer
1  
Would it be possible if you can explain your awk script a bit. totally understand if you dont have time for it. – Thang Pham Aug 22 '11 at 14:27
2  
Awk has a per-line NF variable which is the number of fields. $NF is the value of the last field, so that's how you get the filename. The second script works by setting the variable p to true when the first line with "-----" appears, and the {printf $NF} block only executes if p is true. – glenn jackman Aug 22 '11 at 15:25
3  
You can get rid of the header and footer by using the -qq option: unzip -l -qq filename.zip. Then the simpler awk statement will work. – amicitas Nov 29 '12 at 6:16

The easiest way to do this is to use the following command:

unzip -Z -1 archive.zip

or

zipinfo -1 archive.zip

This will list only the file names, one on each line.

The two commands are exactly equivalent. The -Z option tells unzip to treat the rest of the options as zipinfo options. See the man pages for unzip and zipinfo.

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16  
This should be the accepted answer. – Joey Adams Dec 17 '13 at 23:21
    
I know everyone wants to show off their pro awk skillz, but this the right answer AND the best answer. – mastaBlasta Oct 16 '15 at 18:14

If you need to cater for filenames with spaces, try:

unzip -l zipfilename.zip | awk -v f=4  ' /-----/ {p = ++p % 2; next} p { for (i=f; i<=NF;i++) printf("%s%s", $i,(i==NF) ? "\n" : OFS) }'
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Use awk:

unzip -l zipfilename | awk '{print $4}'
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Though, beware of evil filenames that contains spaces. – nos Aug 22 '11 at 14:06
    
This syxntax does not work on me. Can you double check? – Thang Pham Aug 22 '11 at 14:07
    
@nos Hm, you're right, let me revise. – Manny D Aug 22 '11 at 14:07
    
@Harry It works on my end but also picks up some other output that can probably be suppressed. What are you seeing? – Manny D Aug 22 '11 at 14:09

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