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I'm trying to do an inline replacement using sed in an EC2 Amazon instance running their standard Ubuntu flavor but I can't seem to figure out the right syntax.

Basically I need to edit the java.security file in a couple locations so I'm using find + sed to do it and it works perfectly as expected but then, when the tests are completed and I do the cleanup, I want to return it to the expected default values I want and that's where I'm running intro trouble.

This is how my stock file looks like:

:/etc/java-8-oracle/security# cat java.security | grep jdk.tls.disabledAlgorithms
#   jdk.tls.disabledAlgorithms=MD5, SSLv3, DSA, RSA keySize < 2048
jdk.tls.disabledAlgorithms=SSLv3, RC4, MD5withRSA, DH keySize < 768

And I want to replace that second line with another value (not append).

If I do this:

find / -name java.security -type f -exec sed -i  's/jdk.tls.disabledAlgorithms=*/jdk.tls.disabledAlgorithms=SSLv3, RC4, MD5withRSA, DH keySize < 768/g' {} +

It will just append it so I'll end up with an increasingly longer and useless string every time it runs.

but if I do this:

find / -name java.security -type f -exec sed -i  '/jdk.tls.disabledAlgorithms=*/c\jdk.tls.disabledAlgorithms=SSLv3, RC4, MD5withRSA, DH keySize < 768' {} +

It replaces both the string I want and the commented example which leaves me with 2 identical and uncommented lines.

I'm using find because I need to edit 3 files in different locations at the same time. I'm narrowing it down to / now just for testing and trial/error purposes.

Anyone knows where I'm screwing up or what I'm missing?.

Thanks!.

  • Try to use a starting anchor like ^jdk.tls.disabledAlgorithms in your sed (second find attempt0 – George Vasiliou Mar 5 '18 at 23:23
  • I think that actually did the trick! Thanks :D. Think you could post it as an answer so I can select it? Also, if you wanna explain why the ^ the did trick I definitely wouldn't mind. – Laucien Mar 5 '18 at 23:28
  • I was expecting to do the trick. ^ in regex captures the beginning of the line. Similarily $ captures the end of the line. Those two symbols are called anchors in regex. So by using ^pattern you force to capture lines that begin with pattern and not with #pattern. See here rexegg.com/regex-quickstart.html#anchors – George Vasiliou Mar 5 '18 at 23:33
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You've already gotten a working solution in the comment: refine your regex to only match entries starting with jdk.tls.disabledAlgorithms. I've still opted to post an answer since the question you've asked (or at least its title) was slightly different and I felt compelled to elaborate on that in case you were still curious and also someone else landed her searching for an answer how to skip a specific line. So here we go:

In sed commands like s can be preceded by an address or address range which they apply to, so while this:

$ sed -i 's@\(jdk.tls.disabledAlgorithms=\).*@\1NEWVALUES < 768@g' FILE

Would replace each occurrence of jdk.tls.disabledAlgorithms with NEWVALUES.

$ sed  -i '/^#/!s@\(jdk.tls.disabledAlgorithms=\).*@\1NEWLIST < 768@g' FILE

Would not do that for any lines whose first character is #. /^#/ matches such lines and ! is a logical not. Only execute the command for lines not matching.

I've also used back reference (to make the line shorter and reduce risk of typos, also during maintenance). And I used @ instead of / since I try to go for more visually distinctive separator especially if I have other (back)slashes around. If you wanted to be consistent with that across the board, you could replace the initial /^#/ with \@^#@.

Generally though it is indeed advisable to write your regular expressions to match accurately exactly what you want to match.

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