4

This loop never stops:

while (1)
{
    while (1)
    {
        last;
    }
}  

This loop stops

while (1)
{
    do
    {
        last;
    }
    while (1);
}

Without last, they are similar in their infinity. The 2nd loop structure does not appear to consider the inner loop as a loop. I presume in 2nd structure last actually exits the outer loop, before the inner loop begins. But why? Does the inner loop actually starts "later", after do{} has completed its first execution?

  • 1
    perldoc -f do: "do BLOCK does not count as a loop, so the loop control statements next, last, or redo cannot be used to leave or restart the block. " – Paul L May 18 '16 at 15:13
  • 1
    @ikegami - perl -E 'say($_), last for 5 .. 10 – Jim Davis May 18 '16 at 15:45
  • 2
    @JimDavis Interesting. for as a statement modifier has different semantics than while/until (perl -e'last while 1' gives Can't "last" outside a loop block). You can label a for statement modifier, but not a while: perl -E'FOO:say, last FOO for 1..10. Also compare the B::Concise output for 1 while 1, while (1) { 1 }, 1 for 1, and { 1 }. All but 1 while 1 generate leaveloop opcodes. – ThisSuitIsBlackNot May 18 '16 at 16:21
4

From perldoc -f last:

last cannot be used to exit a block that returns a value such as eval {} , sub {} , or do {} , and should not be used to exit a grep() or map() operation.

do {
   # ... 
} while (1); 

is not actually a looping in Perl, so last, next, redo don't function properly inside of it.

A single block is in fact a loop though, so you can wrap your do expression in a block to allows last to function as you expect:

{
   do {
      last; 
   } while (1); 
}

A more intuitive solution would by to have a sentinel value that controls exectution:

my $should_stop = 0;
do {  
   if ( <some-condition> ) { $should_stop = 1; }
} while ( !$should_stop ) 
  • hmm, didn't realize this was a duplicate – Hunter McMillen May 18 '16 at 14:42

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