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I would like a command line function that I can run on any file to change the include("myinc.inc"); PHP statement to include 'myfile.inc'; I have made a start by adding the following to my ~/.bashrc file:

function makestandard() {
    perl -p -i -e 's/include\("([\w\.]+)"\)/include '$1'/g' $*
}

I source ~/.bashrc; and run the command at the command line as follows:

$ makestandard myfile.php

I get myfile.php modified but instead of capturing the included file name, the included file name is corrupted to be the name of the current file. As a uninformed guess, I think the bash $1 variable is interfering with the $1 perl regexp variable.

How can I fix this?


Background info (no need to read): We have started using PHP_CodeSniffer (phpcs) to sniff PHP code and report any bad "smells". Unfortunatly, phpcs doesn't fix the non-standard code, it only reports it. Hence I would like to make a script that fixes some of the easy and common non-standard elements of our PHP code. I plan to fill my makestandard bash function with a bunch of perl pie.

Shell environment: Whatever is out-of-the-box in Ubuntu 10.04.

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3 Answers 3

up vote 3 down vote accepted

It isn't the bash variable, it is the single quotes in your single quoted bash string.

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aha - thanks I should have spotted this from the syntax highlighting while writing the question! Escaping the single-quotes with a backslash makes the command fail to source though. –  Tom Sep 14 '10 at 12:23
1  
'$1' becomes '\''$1'\''. I use the String::ShellQuote module. –  daxim Sep 14 '10 at 13:38
    
@daxim No it doesn't. It is all inside of a shell single quotes. This means the $1 is protected from the shell. The problem was that the protection was rescinded by closing the single quoted shell string (and reopening it immediately afterward). I say perl -nle 'print $1 if /foo="(.*)"/' all the time. –  Chas. Owens Sep 14 '10 at 14:43
    
I don't know what you're arguing here. If one wants to shellquote foo 'bar' quux to be included into an outer perl -e'…', it really does become foo '\''bar'\'' quux. This isn't readily apparent from the bash manual, but trivially verifiable. –  daxim Sep 14 '10 at 15:02
    
@daxim Ah, I misread what you wrote. I thought you were saying there were two layers of quoting that had to be done. –  Chas. Owens Sep 14 '10 at 15:44

You should escape your simple quotes an remove the last parenthesis :

perl -p -i -e "s/include\(\"([\w\.])+\"\)/include '\$1'/g" $*
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I get the following error when I source my .bashrc file when I escape the single-quotes: bash: /home/tom/.bashrc: line 214: unexpected EOF while looking for matching ' - But all is fine if I use double-quotes so thanks for the info. –  Tom Sep 14 '10 at 12:01
    
Why was this upvoted? Bash quoting does not work that way. –  daxim Sep 14 '10 at 13:36
    
@daxim, my bad it's updated –  Colin Hebert Sep 14 '10 at 13:48
1  
It's still wrong. By exchanging ' for ", you changed the meaning of $1 from Perl's first match variable to bash's first function argument. You should've kept the outer single quotes and concentrated on properly escaping the inner single quotes according to bash rules. –  daxim Sep 14 '10 at 14:00
    
@daxim it was just a typo, the $ was supposed to be escaped. The outter single quotes would have been really ugly in this code '"'"' for a sigle quote is kind of too much. the answer as been re-edited. –  Colin Hebert Sep 14 '10 at 14:28

The original Perl statement, if it had worked, would have found

include("something.php") 

and written

include 'something.php')

that is, it would have removed the opening parenthesis and replace double quotes with single .. and not changed the extension as required.

The following appears to work the way the OP intended:

function makestandard() {
    perl -p -i -e 's/include\("(\w+)\.inc"\)/include("$1.php")/g' $*
}
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Thanks Martin. Yes sorry about having a incorrect ")" char in the regexp and using a incorrect extension in my question. I have edited it to focus on the main issue - i.e. how to escape single-quotes. –  Tom Sep 14 '10 at 16:23

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