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On bash funcion I need pass varible por a external command (php)

panel=$(php -r '$ini_array = parse_ini_file("/root/.name/name.ini");echo $ini_array['panel'];')

Work properly.

But I need pass path on variable and key of array also. Try several form but all fails. '', "", ...

php -r '$ini_array = parse_ini_file(`$sPath`);echo $ini_array["$sKey"];'

It's possible?

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1 Answer 1

Pass the variable through the environment, and retrieve it from the environment on the PHP side.

sPath=$sPath sKey=$sKey \
  php -r '$ini_array = parse_ini_file($_ENV["sPath"]);echo $ini_array[$_ENV["sKey"]];'

The initial sPath=$sPath and sKey=$sKey are not necessary if you have used export to put your shell variables in the environment already.

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It dosen't work on shell and not work on bash script sPath=/root/.tamainut/tamainut.ini root@espejo [~/tamainut/sistemas]# sKey=panel root@espejo [~/tamainut/sistemas]# php -r '$ini_array = parse_ini_file($_ENV["sPath"]);echo $ini_array[$_ENV["sKey"]];' <font color=ff0000> Warning: parse_ini_file(): Filename cannot be empty! in Command line code on line 1 On bash script also. –  abkrim Jul 4 '13 at 16:59
    
@AbdelKarimMateosSanchez You didn't copy my example exactly. You can't simply set the value as a shell variable; you have to export it into the environment. You do this by either putting key=value pairs ON THE SAME COMMAND (as I do in the example -- it's why there's a backslash on the end of the first line, making the second line a continuation), or using the export keyword. –  Charles Duffy Jul 4 '13 at 20:54
    
@AbdelKarimMateosSanchez ...so, to be more explicit: Instead of running sKey=panel and sPath=/root/.tamainut/tamainut.ini as separate commands, you need to put sKey=panel sPath=/root/.tamainut/tamainut.ini immediately before the php, on the same line of script. –  Charles Duffy Jul 5 '13 at 0:53

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