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I'm writing a PHP script that downloads a series of generated files (using wget) into a directory, and then zips then up, using the zip command.

The downloads work perfectly, and the zipping mostly works. I run the command:

zip -r /var/www/oraviewer/rgn_download/download/fcst_20100318_0319.zip /var/www/oraviewer/rgn_download/download/fcst_20100318_0319

which yields a zip file with all the downloaded files, but it contains the full /var/www/oraviewer/rgn_download/download/ directories, before reaching the fcst_20100318_0319/ directory.

I'm probably just missing a flag, or something small, from the zip command, but how do I get it to use fcst_20100318_0319/ as the root directory?

46

I don't think zip has a flag to do that. I think the only way is something like:

cd /var/www/oraviewer/rgn_download/download/ && \
   zip -r fcst_20100318_0319.zip fcst_20100318_0319

(The backslash is just for clarity, you can remove it and put everything on one line.)

Since PHP is executing the command in a subshell, it won't change your current directory.

1
  • Thanks JayM. Very helpful.
    – Basil Musa
    Dec 24 '14 at 18:55
4

I have also get it worked by using this command

exec('cd '.$_SERVER['DOCUMENT_ROOT'].' && zip -r com.zip "./"');

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  • Exactly what I needed. Oct 27 '16 at 15:47
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cd /home/public_html/site/upload/ && zip -r sub_upload.zip sub_upload/
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  • 4
    Is that exactly the same as the accepted answer ? Without explanations, it's not very useful… Oct 20 '12 at 0:18
  • This correct way cd /home/public_html/site/upload/sub_upload && zip -r sub_upload.zip . Aug 19 '18 at 5:52

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