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Quoted from here:

static PerlInterpreter *my_perl;

main (int argc, char **argv, char **env)
{
   STRLEN n_a;
   char *dummy_argv[] = { "", "-e", "0" };

   my_perl = perl_alloc();
   perl_construct( my_perl );

   perl_parse(my_perl, NULL, 3, dummy_argv, NULL);
   perl_run(my_perl);

   /** Treat $a as an integer **/
   eval_pv("$a = 3; $a **= 2", TRUE);
   printf("a = %d\n", SvIV(get_sv("a", FALSE)));

   /** Treat $a as a float **/
   eval_pv("$a = 3.14; $a **= 2", TRUE);
   printf("a = %f\n", SvNV(get_sv("a", FALSE)));

   /** Treat $a as a string **/
   eval_pv("$a = 'relreP kcaH rehtonA tsuJ'; $a = reverse($a);", TRUE);
   printf("a = %s\n", SvPV(get_sv("a", FALSE), n_a));

   perl_destruct(my_perl);
   perl_free(my_perl);

What does the first element of dummy_argv(here "") mean for perl_parse?

I tried to modify it to whatever I want and nothing changes..

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1  
You shouldn't link to pirated copies of O'Reilly books. .ua one is pirated. –  DVK Sep 14 '11 at 14:11

1 Answer 1

up vote 0 down vote accepted

In C, argv[0] is the name of the program being executed. In most cases, an embedded Perl interpreter doesn't really care what you put there, which is why you don't notice anything when you change it.

Remember that Perl is primarily a stand-alone interpreter; embedding it into other programs is a secondary use. Perl's main() function just passes the same argc and argv that it received to perl_parse, because that's what simplest. When you call perl_parse in your program, you have to supply something for argv[0], but I think the only thing it's used for is setting $^X, which isn't used by most Perl code.

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This is my real question: why does perl_parse require that first element if it's never used? –  new_perl Sep 14 '11 at 10:13
    
Seems wrong, I just tried to fetch it gv = gv_fetchpv("^X", 0, SVt_PV);, but only fetched a null pointer. –  new_perl Sep 15 '11 at 2:21
    
@new_perl, try fetching "\030" (an actual Ctrl-X) instead of "^X". You're operating below the level that transforms the special variable names. –  cjm Sep 15 '11 at 4:24
    
I just tried, the assumption is wrong, $^X returns the binary file name no matter what the first element of dummy_argv is. –  new_perl Sep 15 '11 at 4:46
    
@new_perl, argv[0] is only one of the possible sources of $^X. The actual mechanism by which Perl determines the value is platform-dependent; see S_set_caret_X in perl.c. I guess your platform uses one of the other methods. However, the perl_parse API is the same on all platforms, so you still need to supply some value, even if your platform isn't using it. –  cjm Sep 15 '11 at 5:08

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