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please find below a snippet of code that passes an array, manipulates the array, but i cannot return the new version of array.

here is the snippet :

    proc    get_mroute_active { &multicast }   {
        upvar   ${&multicast} MULTICAST ;

                set group   -1 ;
                set src -1 ;
                                set     mcast_group_source_id   -1 ;
                                set     MULTICAST($mcast_group_source_id,id) $mcast_group_source_id ;
                                set     MULTICAST($mcast_group_source_id,mcast_group) $group ;
                                set     MULTICAST($mcast_group_source_id,mcast_source) $src ;

        puts    [array size MULTICAST] ;
    parray  MULTICAST ;
}


array set     multicast { } ;

get_mroute_active [array get multicast] ;
puts    [array size multicast] ;
parray multicast ;

And the output of the code is :

3
MULTICAST(-1,id)           = -1
MULTICAST(-1,mcast_group)  = -1
MULTICAST(-1,mcast_source) = -1
0

Could you please help show me how the "MULTICAST" variable can be assigned to "multicast" ?

share|improve this question
    
See also this discussion – kostix Dec 2 '12 at 0:56
    
I should also note that the code style is generally weird and hints at that it was written by a C++ programmer who did not want to invest their time in mastering a new tool. Command invocations in Tcl need not be terminated by semicolons if they are already separated by new lines, and you won't see such an abundant usage of semicolons in a code written by a seasoned Tcl programmer. Putting a & in the argument's name is "kewl" as it makes it look like a reference in C++, but Tcl has no references, so this is just misleading. – kostix Dec 2 '12 at 12:12
    
@kostix - Honestly, I use the & a lot in my code to indicate that the variable being passed in is going to be upvar'd to. I don't know where I originally got the idea from (one of the core folks I met at a tcl conference in the 90s, I think), but I've always really liked it. – RHSeeger Dec 4 '12 at 7:29
up vote 4 down vote accepted

The short answer is: you can't return an array from a procedure as arrays are not values — they are peculiar named collections of named values.

There are several ways to deal with this:

The usual approach is to pass arrays by names and make the called procedure modify the array in place. For instance, the code

proc foo {arrayName} {
    upvar 1 $arrayName ary
    incr ary(one)
}
set x(one) 1
foo x
puts $x(one)

will print "2" as the procedure foo modified a specific value in the specified array in the caller's scope.

Notice how the caller passed the name of an array, "x", instead of "its value" (as you cannot extract a value from an array; but see below) and then the called procedure bound a local variable to that array by its name using the upvar command.

The other approach is to employ array get and array set commands to extract keys and values from arrays and populate arrays with keys and values, respectively. For instance:

set x(one) 1
set x(two) 2
array set another [array get x]
parray another

would print

another(one) = 1
another(two) = 2

The array get command, given an array, returns a flat list with its keys and their respective values interleaved. This way you can return the contents of an array from a procedure and then make the caller do whatever it wishes with these contents, for instance, use the array set command to populate another array in its scope (possibly the same which has been passed to that procedure in the first place).

Note that array set has merge semantics: it does not empty the target array before inserting/replacing its values using the source list.

The third (and may be the best) approach is to use dictionaries which are key/value maps as arrays do but are themselves values, so they can be passed around freely as other values. This requires Tcl 8.5 or later (in Tcl 8.4, you can use a backport of this code in the form of a package. With dicts you get it like this:

proc foo d {
    dict set d one 2
    return $d
}
set x [dict create]
dict set x one 1
set y [foo $x]
puts $y

which would print "one 2" as the procedure modified the original dictionary then returned it and then the caller assigned it to another variable.

share|improve this answer
    
thank you kostix, i tried that as well, but when i was passing the array as an argument i was putting "$" and that was my mistake :) thank you for your help :) – user690182 Dec 2 '12 at 0:45
    
@user690182, read this discussion for more background on the variable name vs its value and the dollar sign. – kostix Dec 2 '12 at 1:00

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