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I write regex in Expect script and want use ([0-9]+)\r as regex pattern. To prevent of [...] substitution I use curved braces:

expect -re {([0-9]+)\r} {...}

But \r in {...} have no special meaning in braces (treated as two chars). I try

expect -re {([0-9]+)}\r {...}

But this take parsing error. I try

expect -re [concat {([0-9]+)} "\r"] {...}

But concat add space between args.

PS. I know another solution with "..." quotes by quoting [:

expect -re "(\[0-9]+)\r" {...}

but would like hear solution with {...} quoting style...

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2  
Tcl's RE engine — which Expect uses under the hood — most certainly does interpret \r as a carriage return. However, it's rather uncommon to want to match against it (but it is commonly used in the string you send to the spawned program). I wonder what's going on. –  Donal Fellows Sep 15 '11 at 9:27

2 Answers 2

up vote 5 down vote accepted

You are correct: \r has no meaning inside { }, for that you need to use double quote, but need to escape the square brackets:

expect -re "(\[0-9\]+)\r" ...

If you want to concatenate:

set expression {([0-9]+)}
append expression "\r"
expect -r $expression
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Instead of "([0-9]+)\r" I use "([0-9]+)\r" (omit second backslash). This work but I don't know if is this correct. –  gavenkoa Sep 16 '11 at 18:59
    
"(\[0-9]+)\r" is correct –  Johannes Kuhn Feb 25 '13 at 13:36

There is no other way than doing one of these:
regexp [string map {([0-9]+):spaceholder:} ":spaceholder:" "\r"] ...
regexp [list (\[0-9\]+)\r] ...
My examples are with regexp, because i never saw "" (string) working in the regexp command as pattern, only with a list.
You could try something like this tho: set p {([0-9]+)}; append p \r and then using $p or just set p {([0-9]+)}; regexp $p\r ...
Your problem with the space: [join "a b" ""]

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What do you mean "no other way"? There are certainly other ways to accomplish the end goal of concatenating strings. –  Bryan Oakley Sep 14 '11 at 16:12

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