17

I'm writing a script for bash and I need to get the name of the downloaded file using wget and put the name into $string

for example if I downloading this file below, I want to put it's name mxKL17DdgUhcr.jpg to $string

wget http://pics.sitename.com/images/191211/mxKL17DdgUhcr.jpg
45439 (44K) [image/jpeg]
Saving to: «mxKL17DdgUhcr.jpg»

100%[===================================================================================================>] 45 439      --.-K/s   в 0s

2011-12-20 12:25:33 (388 MB/s) - «mxKL17DdgUhcr.jpg» saved [45439/45439]
30

Use the basename command to extract the filename from the url. For example:

url=http://pics.sitename.com/images/191211/mxKL17DdgUhcr.jpg
filename=$(basename "$url")
wget "$url"
  • Worked like a charm. Thanks a lot! – Crazy_Bash Dec 20 '11 at 10:49
  • 5
    Warning: This will not work for urls that contains redirects or dynamic content. Refer to est's answer for correct solution. – Gowtham Gopalakrishnan May 11 '16 at 13:45
36
wget --server-response -q -O - "https://very.long/url/here" 2>&1 | 
  grep "Content-Disposition:" | tail -1 | 
  awk 'match($0, /filename=(.+)/, f){ print f[1] }' )

This is the correct version as there are may be several 301/302 redirects and finally a Content-Disposition: header to set the file name

Guessing file name based on URL is not always correct.

  • 2
    I like this approach, but unfortunately the awk in Debian derivatives (Ubuntu, e.g.) does not support the 3rd argument in match. – jtravaglini Aug 14 '13 at 13:42
  • while not always perfectly accurate this is the correct approach. – diedthreetimes Feb 17 '16 at 5:20
  • 1
    In Ubuntu, you can use: wget --server-response -q -O - "https://very.long/url/here" 2>&1 | grep "Content-Disposition:" | tail -1 | awk -F"filename=" '{print $2}' – Gowtham Gopalakrishnan May 11 '16 at 13:52
  • 6
    Modern easy way to achive it: wget {link} --content-disposition – balbelias Apr 6 '17 at 18:02
16

You can just specify the filename before downloading, with the -O option to wget:

wget -O myfile.html http://www.example.com/
3

You can be explicit about the name like this:

url='http://pics.sitename.com/images/191211/mxKL17DdgUhcr.jpg'
file=`basename "$url"`
wget "$url" -O "$file"
2

To handle URL-encoded filenames:

URL="http://www.example.com/ESTAD%C3%8DSTICA(2012).pdf"
BASE=$(basename ${URL})             # ESTAD%C3%8DSTICA(2012).pdf
FILE=$(printf '%b' ${BASE//%/\\x})  # ESTADÍSTICA(2012).pdf
wget ${URL}
1
~ $ URL='http://pics.sitename.com/images/191211/mxKL17DdgUhcr.jpg'
~ $ echo ${URL##*/}
mxKL17DdgUhcr.jpg
~ $ wget $URL -O ${URL##*/}
--18:34:26--  http://pics.sitename.com/images/191211/mxKL17DdgUhcr.jpg
           => `mxKL17DdgUhcr.jpg'
0

I guess you already have the full URL of the file somewhere in a variable? Use bash parameter expansion to strip the prefix:

echo ${url##*/}
-2

So you want to give the file / image name as parameter

try this

echo -n "Give me the name of file in http://pics.sitename.com/images/191211/ :"

read $string

sudo wget http://pics.sitename.com/images/191211/$string ;;

I think this could help you

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