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I am reading some code in TCL, the regular expression does not work,

set name "Ronaldo"

proc GET_PLAYER_INFO {player_id {player_name "$name"}} {
    global name

    regexp "$player_name" "Ronaldo is awesome" match

    puts $match
}

GET_PLAYER_INFO {1,"$name"}

in this double quotation marks, "$player_name" is replaced by "$name"? and the $name is "Ronaldo", but why it does not match?

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Does regexp "$player_name.*" "Ronaldo is awesome" match match? –  Tim Pietzcker Mar 19 '12 at 9:31
    
@TimPietzcker, no, it does not match as well. –  user707549 Mar 19 '12 at 9:36
    
OK, I don't know Tcl at all so that was a shot in the dark. I expect that regexp "Ronaldo" "Ronaldo is awesome" match does match correctly? –  Tim Pietzcker Mar 19 '12 at 9:37
    
yes, regexp "Ronaldo" "Ronaldo is awesome" matches correctly. but why the orginal one does not match? –  user707549 Mar 19 '12 at 9:41
    
No idea. Are you absolutely sure that the variable substitution actually happens before the regex engine starts interpreting "$player_name"? Because $ means "end of string" in regex. –  Tim Pietzcker Mar 19 '12 at 9:43

2 Answers 2

up vote 3 down vote accepted

This is not doing what you expect. Curly brances means no variable substitution within them so when you call GET_PLAYER_INFO you are setting the first parameter to the exact byte sequence contained within the braces ie: 1,"$name"

Within the procedure, player_name is set to exactly $name so your regexp line expands to:

regexp '$name' "Ronaldo is awesome" match

So it attempts to match the end of line followed by 'name'.

If you want to use a variable default parameter you should really set it to some guard value then retrieve it from an external source when not modified eg:

proc proc GET_PLAYER_INFO {player_id {player_name ""}} {
    global name
    if {$player_name eq ""} { set player_name $name }
    regexp "$player_name" "Ronaldo is awesome" match
    puts $match
}

Re-read carefully Tcl(1) paying special attention to the parts about grouping.

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but if I keep the proc GET_PLAYER_INFO as unmodified, and call it like GET_PLAYER_INFO 1 "$name", it works, and the player_name is equal to "Ronaldo", is it true? –  user707549 Mar 20 '12 at 9:23
    
if we pass it like GET_PLAYER_INFO 1 "$name", the player_name is equal to "Ronaldo", and if we pass it like GET_PLAYER_INFO {1,"$name"}, the player_name is equal to "$name", how comes the difference? –  user707549 Mar 20 '12 at 9:36
    
how does this parameters parsing works? –  user707549 Mar 20 '12 at 9:39
    
Read this: wiki.tcl.tk/10259 and note section 6. No variable substitution will occur within {} grouping. Its rather like the unix shell single-quote. You need to understand grouping in tcl or you will be forever surprised by how it works. Everything is a command with argument words. Grouping collects things into tcl words possibly performing substitution. Then the command that is the first word operates on its arguments. Depending on the command, it may run further substitutions (eg: eval or subst or proc bodies). –  patthoyts Mar 20 '12 at 11:53
    
if I call it like GET_PLAYER_INFO 1 "$name", are there any difference with GET_PLAYER_INFO 1 $name? –  user707549 Mar 20 '12 at 13:37

In addition to patthoyts solution I have another variant here:

set name "Ronaldo"

proc GET_PLAYER_INFO [list player_id [list player_name "$name"]] {
    regexp "$player_name" "Ronaldo is awesome" match
    puts $match
}

GET_PLAYER_INFO 1 $name

The player_name argument of GET_PLAYER_INFO will get it's default value from the $name variable (but take care: $name has to exist before procedure declaration).

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The downside of this is that you are specifying the default value of the parameter from a variable when you parse the script. You might as well hard code it in and make it more readable. With this code, if the global name variable changes in the future, the default value used by this function will still be the original value. This is unlikely to be what was desired unless you are trying to define a closure function, in which case I'd expect a variable procedure name really. –  patthoyts Mar 19 '12 at 11:52
    
Yes, that's true. In this variant the default value is fixed at procedure declaration time. –  bmk Mar 19 '12 at 13:01

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