0

I have something like a printf string, e.g. The %1 fox jumped over the %2 bridge. And I want to transform it into The {0} fox jumped over the {1} bridge. That is: get string, search for %(\d+) pattern, turn it into {$1 - 1}, repeat until the end of the string.

Is there an easy way to do that in linux (an awk one-liner for example)? I have read that sed shouldn't be an option here.

IMPORTANT: ah, unfortunately, I can't use perl solutions!

NOTES: although I think I won't find tricky stuff in my strings like %% or %%1, I was trying to implement a solution dealing with that. A test string I was using is %1 aaa %%2 bbb%%% ccc%3.,45--- ddd%6%7. For this test string, I would expect the output {0} aaa %{1} bbb%%% ccc{2}.,45--- ddd{5}{6}

  • do you need it to handle more than 10 replacements (that is %1-%9? or does it go to %10, %11, etc or %A, %B, etc?) – Code Jockey Oct 23 '15 at 12:54
  • Same as in my NOTES comment. I don't think I will have to deal with that, but I'd like my solution to work on %(\d+) patterns, that is, with numbers of any size. – rturrado Oct 23 '15 at 13:02
  • ah - then a pure regex replacement will be untenable - there will need to be increments or probably better a function to transform for each replacement – Code Jockey Oct 23 '15 at 13:05
  • You should have mentioned the fact of having multiple % from the beginning, since this is an important piece of information. – fedorqui Oct 23 '15 at 13:09
  • Yes, sorry about that @fedorqui! – rturrado Oct 23 '15 at 13:10
4

Another awk way

awk '{while(sub(/%[0-9]+/,"{"x++"}"));}!(x=0)' file

Just loops through the line incrementing x every match of %[number] and subbing. Sets x back to 0 at the end of line


For the new test string you can use

awk '{while(match($0,/%([0-9]+)/,a))sub(a[0],"{"a[1]-1"}")}1' file

Although this requires GNU awk for the third argument to match.

Example

%1 aaa %%2 bbb%%% ccc%3.,45--- ddd%6%7

becomes

{0} aaa %{1} bbb%%% ccc{2}.,45--- ddd{5}{6}
  • 1
    Very nicely done! – fedorqui Oct 23 '15 at 13:04
  • Pretty close! That is returning {0} aaa %{1} bbb%%% ccc{2}.,45--- ddd{3}{4} for my test string. Instead of {0} aaa %{1} bbb%%% ccc{2}.,45--- ddd{5}{6} – rturrado Oct 23 '15 at 13:05
  • 1
    Anyway, brilliant! That's the solution I wanted in a beginning, before making up that hell of a test string :D – rturrado Oct 23 '15 at 13:08
  • @rturrado Updated for new requirement. – 123 Oct 23 '15 at 13:42
2

tAssuming no other % appear and they are sequential:

awk -F"%" -v OFS="{" '{for (i=1;i<=NF;i++) sub(i-1,i-2"}",$i)}1' file

This plays with the field separator setting it to %. This way, the field are split like this:

The %1 fox jumped over the %2 bridge
^^^^ ^^^^^^^^^^^^^^^^^^^^^^ ^^^^^^^^
 $1             $2             $3

and then it is a matter of replacing the number i with i-1 whenever reading the field i+1. Finally, we glue it together by setting the output field separator to {.

Test

$ cat a
The %1 fox jumped over the %2 bridge
The %1 fox jumped over the %2 bridge and %3 other %4 things
$ awk -F"%" -v OFS="{" '{for (i=1;i<=NF;i++) sub(i-1,i-2"}",$i)}1' a
The {0} fox jumped over the {1} bridge
The {0} fox jumped over the {1} bridge and {2} other {3} things

Note I am using sub() because it replaces just once. This way, we make sure other occurrences of 1 won't be changed when modifying the field $1, etc.

From the link above:

sub(regexp, replacement, target)

The sub function alters the value of target. It searches this value, which should be a string, for the leftmost substring matched by the regular expression, regexp, extending this match as far as possible. Then the entire string is changed by replacing the matched text with replacement. The modified string becomes the new value of target.

  • I don't fully grok awk syntax, so I'm having trouble finding where it identifies/parses and assigns i? -- for instance, will it handle $10->{9} or $25->{24}? – Code Jockey Oct 23 '15 at 13:15
  • @CodeJockey $i is the field number i. So $1 is the first field, etc (and $0 the full record). These fields are assigned based on the field separator (-F), so if you for example say echo "a b c;d e f" | awk '{print NF}' will print 6 as per six fields based on the space, but if you say echo "a b c;d e f" | awk -F";" '{print NF}' it will say 2 because it just has 2 ;-separated fields. – fedorqui Oct 23 '15 at 13:18
  • OH - ok - I think I'm following now - but what is NF? – Code Jockey Oct 23 '15 at 13:30
  • and in a format string, the {0} placeholders can be in any order, and can be repeated - wouldn't it break your solution, if the text was something like The %2 fox jumped over the %1 bridge. That %2 fox is very agile! – Code Jockey Oct 23 '15 at 13:33
  • @CodeJockey NF stands for "number of fields". Regarding the repetition, I don't think this happens: it seems to be a Python string with format placeholders. – fedorqui Oct 23 '15 at 13:55
2

Another solution using sed

sed -r '
    # replace all leading 0s by _
    :d; s/%([0-9]+)0(\b|_)/%\1_\2/g; td; 
    # decrement last digit only
    s/%([0-9]*)1(\b|_)/%\10\2/g; 
    s/%([0-9]*)2(\b|_)/%\11\2/g; 
    s/%([0-9]*)3(\b|_)/%\12\2/g; 
    s/%([0-9]*)4(\b|_)/%\13\2/g; 
    s/%([0-9]*)5(\b|_)/%\14\2/g; 
    s/%([0-9]*)6(\b|_)/%\15\2/g; 
    s/%([0-9]*)7(\b|_)/%\16\2/g; 
    s/%([0-9]*)8(\b|_)/%\17\2/g; 
    s/%([0-9]*)9(\b|_)/%\18\2/g; 
    #remove zero to left
    s/%0(_+)/%\1/g; 
    #replace _ by 9s
    :a; s/%([0-9]+)_(\b|_)/%\19\2/g; ta;
    s/%([0-9]+)/{\1}/g;'

you get

he {0} fox jumped over the {1} bridge.

and

{0} aaa %{1} bbb%%% ccc{2}.,45--- ddd{5}{6}
  • Smart! Obviously this depends on OP's data not containing any _ next to the number though – 123 Oct 23 '15 at 13:46
  • yes, in this case OP must use another temporary symbol, different to _ – Jose Ricardo Bustos M. Oct 23 '15 at 13:52
  • Could you not just check for a trailing 0(s) and change it/them to 9's in a singe step, I can't see a reason for the temp value? – 123 Oct 23 '15 at 14:01
  • in case for example 101000, trasform to 101___, next to 100___, and finally to 100999 .... the reason is when the number there are several zeros to the right – Jose Ricardo Bustos M. Oct 23 '15 at 14:07
  • I understand what you are doing, just not why you have the intermediate step of converting to _. For example after your other s// you could have a test loop that convert trailing 0s into 9's. – 123 Oct 23 '15 at 14:09

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.