Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
arr=Array.new(3)
arr[0]=5
arr[1]=3
arr[2]=2

These lines should call this function, https://github.com/ruby/ruby/blob/trunk/array.c#L568 according to this, http://www.ruby-doc.org/core-1.9.3/Array.html

So I have added couple of lines there to display the values of array. But i didn't get the expected result.

else {
    memfill(RARRAY_PTR(ary), len, val);
    ARY_SET_LEN(ary, len);
    int i;
    int result;
    result = 0;
    VALUE *s_arr = RARRAY_PTR(ary);
    for(i = 0; i < len; i++) {
        result = LONG2NUM(s_arr[i]);
        printf("r: %d\n",result);
    }
}

I got the result like this:

arr=Array.new(3)
arr[0]=5
arr[1]=3
arr[2]=2
r: 9
r: 9
r: 9

Why is this result? Why 9?

I have followed these to solve it:

Can anyone please help to display/printf the value of Ruby array in C?

share|improve this question

1 Answer 1

This doesn't make any sense:

result = LONG2NUM(s_arr[i]);

LONG2NUM is used to convert a C long int to a Ruby VALUE that holds a number; s_arr[i] is already a VALUE so you're effectively doing things like VALUE v = LONG2NUM((VALUE)5). LONG2NUM is defined in ruby.h as a wrapper for this:

#define LONG2NUM_internal(v) (FIXABLE(v) ? LONG2FIX(v) : rb_int2big(v))

and if v fits in a VALUE without converting it to a bignum, then you end up using this:

#define INT2FIX(i) ((VALUE)(((SIGNED_VALUE)(i))<<1 | FIXNUM_FLAG))

So you're basically doing a bunch of bit wrangling on a pointer and wondering why it always says 9; consider yourself lucky (or unlucky) that it doesn't say segmentation fault.

You want to convert a VALUE which holds a number to a C integer. You probably want to use FIX2LONG:

#define FIX2LONG(x) (long)RSHIFT((SIGNED_VALUE)(x),1)

or NUM2LONG:

#define NUM2LONG_internal(x) ((long)(FIXNUM_P(x) ? FIX2LONG(x) : rb_num2long(x)))
#ifdef __GNUC__
#define NUM2LONG(x) \
    __extension__ ({VALUE num2long_x = (x); NUM2LONG_internal(num2long_x);})
#else
static inline long
NUM2LONG(VALUE x)
{
    return NUM2LONG_internal(x);
}
#endif

So something like this:

long result;
for(i = 0; i < len; i++) {
    result = NUM2LONG(s_arr[i]);
    printf("r: %ld\n", result);
}

Note the switch to %ld since we're using longs now and we always turn on all the picky compiler flags that complain about mismatched printf formats and arguments. Of course, this assumes that you are certain that the array contains numbers that will fit in a C long.

share|improve this answer
    
Using NUM2LONG, i got this, t.rb:3:in initialize': no implicit conversion from nil to integer (TypeError) from t.rb:3:in new from t.rb:3:in <main>' –  shibly Jun 23 '12 at 1:19
    
@prime: I don't know what line three of t.rb is. –  mu is too short Jun 23 '12 at 1:34
    
@prime: That error is probably coming from rb_num2long in numeric.c and means that you're trying to use NUM2LONG on a Ruby nil value. Are you sure you're not running off the end of the array or something similar? –  mu is too short Jun 23 '12 at 1:43
    
t.rb contains these lines, arr=Array.new(3) arr[0]=5 arr[1]=3 arr[2]=2 –  shibly Jun 23 '12 at 6:03

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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