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array.c
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array.c
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/**********************************************************************
array.c -
$Author$
$Date$
created at: Fri Aug 6 09:46:12 JST 1993
Copyright (C) 1993-2003 Yukihiro Matsumoto
Copyright (C) 2000 Network Applied Communication Laboratory, Inc.
Copyright (C) 2000 Information-technology Promotion Agency, Japan
**********************************************************************/
#include "ruby.h"
#include "util.h"
#include "st.h"
VALUE rb_cArray;
static ID id_cmp;
#define ARY_DEFAULT_SIZE 16
void
rb_mem_clear(mem, size)
register VALUE *mem;
register long size;
{
while (size--) {
*mem++ = Qnil;
}
}
static void
memfill(mem, size, val)
register VALUE *mem;
register long size;
register VALUE val;
{
while (size--) {
*mem++ = val;
}
}
#define ARY_TMPLOCK FL_USER1
static inline void
rb_ary_modify_check(ary)
VALUE ary;
{
if (OBJ_FROZEN(ary)) rb_error_frozen("array");
if (FL_TEST(ary, ARY_TMPLOCK))
rb_raise(rb_eTypeError, "can't modify array during iteration");
if (!OBJ_TAINTED(ary) && rb_safe_level() >= 4)
rb_raise(rb_eSecurityError, "Insecure: can't modify array");
}
static void
rb_ary_modify(ary)
VALUE ary;
{
VALUE *ptr;
rb_ary_modify_check(ary);
if (FL_TEST(ary, ELTS_SHARED)) {
ptr = ALLOC_N(VALUE, RARRAY(ary)->len);
FL_UNSET(ary, ELTS_SHARED);
RARRAY(ary)->aux.capa = RARRAY(ary)->len;
MEMCPY(ptr, RARRAY(ary)->ptr, VALUE, RARRAY(ary)->len);
RARRAY(ary)->ptr = ptr;
}
}
VALUE
rb_ary_freeze(ary)
VALUE ary;
{
return rb_obj_freeze(ary);
}
static VALUE
rb_ary_frozen_p(ary)
VALUE ary;
{
if (OBJ_FROZEN(ary)) return Qtrue;
if (FL_TEST(ary, ARY_TMPLOCK)) return Qtrue;
return Qfalse;
}
static VALUE ary_alloc _((VALUE));
static VALUE
ary_alloc(klass)
VALUE klass;
{
NEWOBJ(ary, struct RArray);
OBJSETUP(ary, klass, T_ARRAY);
ary->len = 0;
ary->ptr = 0;
ary->aux.capa = 0;
return (VALUE)ary;
}
static VALUE
ary_new(klass, len)
VALUE klass;
long len;
{
VALUE ary = ary_alloc(klass);
if (len < 0) {
rb_raise(rb_eArgError, "negative array size (or size too big)");
}
if (len > 0 && len * sizeof(VALUE) <= len) {
rb_raise(rb_eArgError, "array size too big");
}
if (len == 0) len++;
RARRAY(ary)->ptr = ALLOC_N(VALUE, len);
RARRAY(ary)->aux.capa = len;
return ary;
}
VALUE
rb_ary_new2(len)
long len;
{
return ary_new(rb_cArray, len);
}
VALUE
rb_ary_new()
{
return rb_ary_new2(ARY_DEFAULT_SIZE);
}
#ifdef HAVE_STDARG_PROTOTYPES
#include <stdarg.h>
#define va_init_list(a,b) va_start(a,b)
#else
#include <varargs.h>
#define va_init_list(a,b) va_start(a)
#endif
VALUE
#ifdef HAVE_STDARG_PROTOTYPES
rb_ary_new3(long n, ...)
#else
rb_ary_new3(n, va_alist)
long n;
va_dcl
#endif
{
va_list ar;
VALUE ary;
long i;
ary = rb_ary_new2(n);
va_init_list(ar, n);
for (i=0; i<n; i++) {
RARRAY(ary)->ptr[i] = va_arg(ar, VALUE);
}
va_end(ar);
RARRAY(ary)->len = n;
return ary;
}
VALUE
rb_ary_new4(n, elts)
long n;
const VALUE *elts;
{
VALUE ary;
ary = rb_ary_new2(n);
if (n > 0 && elts) {
MEMCPY(RARRAY(ary)->ptr, elts, VALUE, n);
}
RARRAY(ary)->len = n;
return ary;
}
VALUE
rb_assoc_new(car, cdr)
VALUE car, cdr;
{
VALUE ary;
ary = rb_ary_new2(2);
RARRAY(ary)->ptr[0] = car;
RARRAY(ary)->ptr[1] = cdr;
RARRAY(ary)->len = 2;
return ary;
}
static VALUE
to_ary(ary)
VALUE ary;
{
return rb_convert_type(ary, T_ARRAY, "Array", "to_ary");
}
VALUE
rb_check_array_type(ary)
VALUE ary;
{
return rb_check_convert_type(ary, T_ARRAY, "Array", "to_ary");
}
static VALUE rb_ary_replace _((VALUE, VALUE));
/*
* call-seq:
* Array.new(size=0, obj=nil)
* Array.new(array)
* Array.new(size) {|i| ...}
* Returns a new array. In the first form, the new array is
* empty. In the second it is created with _size_ copies of _obj_
* (that is, _size_ references to the same
* _obj_). The third form creates a copy of the array
* passed as a parameter (the array is generated by calling
* to_ary on the parameter). In the last form, an array
* of the given size is created. Each element in this array is
* calculated by passing the element's index to the given block and
* storing the return value.
*
* Array.new
* Array.new(2)
* Array.new(5, "A")
*
* # only one copy of the object is created
* a = Array.new(2, Hash.new)
* a[0]['cat'] = 'feline'
* a
* a[1]['cat'] = 'Felix'
* a
*
* # here multiple copies are created
* a = Array.new(2) { Hash.new }
* a[0]['cat'] = 'feline'
* a
*
* squares = Array.new(5) {|i| i*i}
* squares
*
* copy = Array.new(squares)
*/
static VALUE
rb_ary_initialize(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
long len;
VALUE size, val;
rb_ary_modify(ary);
if (rb_scan_args(argc, argv, "02", &size, &val) == 0) {
RARRAY(ary)->len = 0;
if (rb_block_given_p()) {
rb_warning("given block not used");
}
return ary;
}
if (argc == 1 && !FIXNUM_P(size)) {
val = rb_check_array_type(size);
if (!NIL_P(val)) {
rb_ary_replace(ary, val);
return ary;
}
}
len = NUM2LONG(size);
if (len < 0) {
rb_raise(rb_eArgError, "negative array size");
}
if (len > 0 && len * (long)sizeof(VALUE) <= len) {
rb_raise(rb_eArgError, "array size too big");
}
if (len > RARRAY(ary)->aux.capa) {
REALLOC_N(RARRAY(ary)->ptr, VALUE, len);
RARRAY(ary)->aux.capa = len;
}
if (rb_block_given_p()) {
long i;
if (argc == 2) {
rb_warn("block supersedes default value argument");
}
for (i=0; i<len; i++) {
RARRAY(ary)->ptr[i] = rb_yield(LONG2NUM(i));
RARRAY(ary)->len = i + 1;
}
}
else {
memfill(RARRAY(ary)->ptr, len, val);
RARRAY(ary)->len = len;
}
return ary;
}
/*
* Returns a new array populated with the given objects.
*
* Array.[]( 1, 'a', /^A/ )
* Array[ 1, 'a', /^A/ ]
* [ 1, 'a', /^A/ ]
*/
static VALUE
rb_ary_s_create(argc, argv, klass)
int argc;
VALUE *argv;
VALUE klass;
{
VALUE ary = ary_alloc(klass);
if (argc < 0) {
rb_raise(rb_eArgError, "negative number of arguments");
}
if (argc > 0) {
RARRAY(ary)->ptr = ALLOC_N(VALUE, argc);
MEMCPY(RARRAY(ary)->ptr, argv, VALUE, argc);
}
RARRAY(ary)->len = RARRAY(ary)->aux.capa = argc;
return ary;
}
void
rb_ary_store(ary, idx, val)
VALUE ary;
long idx;
VALUE val;
{
rb_ary_modify(ary);
if (idx < 0) {
idx += RARRAY(ary)->len;
if (idx < 0) {
rb_raise(rb_eIndexError, "index %ld out of array",
idx - RARRAY(ary)->len);
}
}
if (idx >= RARRAY(ary)->aux.capa) {
long new_capa = RARRAY(ary)->aux.capa / 2;
if (new_capa < ARY_DEFAULT_SIZE) {
new_capa = ARY_DEFAULT_SIZE;
}
new_capa += idx;
if (new_capa * (long)sizeof(VALUE) <= new_capa) {
rb_raise(rb_eArgError, "index too big");
}
REALLOC_N(RARRAY(ary)->ptr, VALUE, new_capa);
RARRAY(ary)->aux.capa = new_capa;
}
if (idx > RARRAY(ary)->len) {
rb_mem_clear(RARRAY(ary)->ptr + RARRAY(ary)->len,
idx-RARRAY(ary)->len + 1);
}
if (idx >= RARRAY(ary)->len) {
RARRAY(ary)->len = idx + 1;
}
RARRAY(ary)->ptr[idx] = val;
}
/*
* call-seq:
* array << obj => array
*
* Append---Pushes the given object on to the end of this array. This
* expression returns the array itself, so several appends
* may be chained together.
*
* [ 1, 2 ] << "c" << "d" << [ 3, 4 ]
* #=> [ 1, 2, "c", "d", [ 3, 4 ] ]
*
*/
VALUE
rb_ary_push(ary, item)
VALUE ary;
VALUE item;
{
rb_ary_store(ary, RARRAY(ary)->len, item);
return ary;
}
/*
* call-seq:
* array.push(obj, ... ) => array
*
* Append---Pushes the given object(s) on to the end of this array. This
* expression returns the array itself, so several appends
* may be chained together.
*
* a = [ "a", "b", "c" ]
* a.push("d", "e", "f")
* #=> ["a", "b", "c", "d", "e", "f"]
*/
static VALUE
rb_ary_push_m(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
while (argc--) {
rb_ary_push(ary, *argv++);
}
return ary;
}
/*
* call-seq:
* array.pop => obj or nil
*
* Removes the last element from <i>self</i> and returns it, or
* <code>nil</code> if the array is empty.
*
* a = [ "a", "m", "z" ]
* a.pop #=> "z"
* a #=> ["a", "m"]
*/
VALUE
rb_ary_pop(ary)
VALUE ary;
{
rb_ary_modify_check(ary);
if (RARRAY(ary)->len == 0) return Qnil;
if (!FL_TEST(ary, ELTS_SHARED) &&
RARRAY(ary)->len * 2 < RARRAY(ary)->aux.capa &&
RARRAY(ary)->aux.capa > ARY_DEFAULT_SIZE) {
RARRAY(ary)->aux.capa = RARRAY(ary)->len * 2;
REALLOC_N(RARRAY(ary)->ptr, VALUE, RARRAY(ary)->aux.capa);
}
return RARRAY(ary)->ptr[--RARRAY(ary)->len];
}
static void
ary_make_shared(ary)
VALUE ary;
{
if (!FL_TEST(ary, ELTS_SHARED)) {
NEWOBJ(shared, struct RArray);
OBJSETUP(shared, rb_cArray, T_ARRAY);
shared->len = RARRAY(ary)->len;
shared->ptr = RARRAY(ary)->ptr;
shared->aux.capa = RARRAY(ary)->aux.capa;
RARRAY(ary)->aux.shared = (VALUE)shared;
FL_SET(ary, ELTS_SHARED);
}
}
/*
* call-seq:
* array.shift => obj or nil
*
* Returns the first element of <i>self</i> and removes it (shifting all
* other elements down by one). Returns <code>nil</code> if the array
* is empty.
*
* args = [ "-m", "-q", "filename" ]
* args.shift #=> "-m"
* args #=> ["-q", "filename"]
*/
VALUE
rb_ary_shift(ary)
VALUE ary;
{
VALUE top;
rb_ary_modify_check(ary);
if (RARRAY(ary)->len == 0) return Qnil;
top = RARRAY(ary)->ptr[0];
ary_make_shared(ary);
RARRAY(ary)->ptr++; /* shift ptr */
RARRAY(ary)->len--;
return top;
}
VALUE
rb_ary_unshift(ary, item)
VALUE ary, item;
{
rb_ary_modify(ary);
if (RARRAY(ary)->len == RARRAY(ary)->aux.capa) {
long capa_inc = RARRAY(ary)->aux.capa / 2;
if (capa_inc < ARY_DEFAULT_SIZE) {
capa_inc = ARY_DEFAULT_SIZE;
}
RARRAY(ary)->aux.capa += capa_inc;
REALLOC_N(RARRAY(ary)->ptr, VALUE, RARRAY(ary)->aux.capa);
}
/* sliding items */
MEMMOVE(RARRAY(ary)->ptr + 1, RARRAY(ary)->ptr, VALUE, RARRAY(ary)->len);
RARRAY(ary)->len++;
RARRAY(ary)->ptr[0] = item;
return ary;
}
/*
* call-seq:
* array.unshift(obj, ...) => array
*
* Prepends objects to the front of <i>array</i>.
* other elements up one.
*
* a = [ "b", "c", "d" ]
* a.unshift("a") #=> ["a", "b", "c", "d"]
* a.unshift(1, 2) #=> [ 1, 2, "a", "b", "c", "d"]
*/
static VALUE
rb_ary_unshift_m(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
long len = RARRAY(ary)->len;
if (argc < 0) {
rb_raise(rb_eArgError, "negative number of arguments");
}
if (argc == 0) return ary;
/* make rooms by setting the last item */
rb_ary_store(ary, len + argc - 1, Qnil);
/* sliding items */
MEMMOVE(RARRAY(ary)->ptr + argc, RARRAY(ary)->ptr, VALUE, len);
MEMCPY(RARRAY(ary)->ptr, argv, VALUE, argc);
return ary;
}
VALUE
rb_ary_entry(ary, offset)
VALUE ary;
long offset;
{
if (RARRAY(ary)->len == 0) return Qnil;
if (offset < 0) {
offset += RARRAY(ary)->len;
}
if (offset < 0 || RARRAY(ary)->len <= offset) {
return Qnil;
}
return RARRAY(ary)->ptr[offset];
}
static VALUE
rb_ary_subseq(ary, beg, len)
VALUE ary;
long beg, len;
{
VALUE klass, ary2;
if (beg > RARRAY(ary)->len) return Qnil;
if (beg < 0 || len < 0) return Qnil;
if (beg + len > RARRAY(ary)->len) {
len = RARRAY(ary)->len - beg;
if (len < 0)
len = 0;
}
klass = rb_obj_class(ary);
if (len == 0) return ary_new(klass, 0);
ary_make_shared(ary);
ary2 = ary_alloc(klass);
RARRAY(ary2)->ptr = RARRAY(ary)->ptr + beg;
RARRAY(ary2)->len = len;
RARRAY(ary2)->aux.shared = RARRAY(ary)->aux.shared;
FL_SET(ary2, ELTS_SHARED);
return ary2;
}
/*
* call-seq:
* array[int] => obj or nil
* array[start, length] => an_array or nil
* array[range] => an_array or nil
* array.slice(int) => obj or nil
* array.slice(start, length) => an_array or nil
* array.slice(range) => an_array or nil
*
* Element Reference---Returns the element at index _int_,
* or returns a subarray starting at index _start_ and
* continuing for _length_ elements, or returns a subarray
* specified by _range_.
* Negative indices count backward from the end of the
* array (-1 is the last element). Returns nil if any indices
* are out of range unless the index equals the array size and a
* _length_ or _range_ parameter is given, in which case an
* empty array is returned.
*
* a = [ "a", "b", "c", "d", "e" ]
* a[2] + a[0] + a[1] #=> "cab"
* a[6] #=> nil
* a[1, 2] #=> [ "b", "c" ]
* a[1..3] #=> [ "b", "c", "d" ]
* a[4..7] #=> [ "e" ]
* a[6..10] #=> nil
* a[-3, 3] #=> [ "c", "d", "e" ]
* # special cases
* a[5] #=> nil
* a[5, 1] #=> []
* a[5..10] #=> []
*
*/
VALUE
rb_ary_aref(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
VALUE arg;
long beg, len;
if (argc == 2) {
if (SYMBOL_P(argv[0])) {
rb_raise(rb_eTypeError, "Symbol as array index");
}
beg = NUM2LONG(argv[0]);
len = NUM2LONG(argv[1]);
if (beg < 0) {
beg += RARRAY(ary)->len;
}
return rb_ary_subseq(ary, beg, len);
}
if (argc != 1) {
rb_scan_args(argc, argv, "11", 0, 0);
}
arg = argv[0];
/* special case - speeding up */
if (FIXNUM_P(arg)) {
return rb_ary_entry(ary, FIX2LONG(arg));
}
if (SYMBOL_P(arg)) {
rb_raise(rb_eTypeError, "Symbol as array index");
}
/* check if idx is Range */
switch (rb_range_beg_len(arg, &beg, &len, RARRAY(ary)->len, 0)) {
case Qfalse:
break;
case Qnil:
return Qnil;
default:
return rb_ary_subseq(ary, beg, len);
}
return rb_ary_entry(ary, NUM2LONG(arg));
}
/*
* call-seq:
* array.at(int) #=> obj or nil
*
* Returns the element at index int. A
* negative index counts from the end of _self_. Returns +nil+
* if the index is out of range. See also Array.[].
* (Array.at is slightly faster than Array.[], as it
* does not accept ranges and so on.)
*
* a = [ "a", "b", "c", "d", "e" ]
* a.at(0) #=> "a"
* a.at(-1) #=> "e"
*/
static VALUE
rb_ary_at(ary, pos)
VALUE ary, pos;
{
return rb_ary_entry(ary, NUM2LONG(pos));
}
/*
* call-seq:
* array.first => obj or nil
*
* Returns the first element of the array. If the array is empty,
* returns <code>nil</code>.
*
* a = [ "q", "r", "s", "t" ]
* a.first #=> "q"
*/
static VALUE
rb_ary_first(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
if (argc == 0) {
if (RARRAY(ary)->len == 0) return Qnil;
return RARRAY(ary)->ptr[0];
}
else {
VALUE nv, result;
long n, i;
rb_scan_args(argc, argv, "01", &nv);
n = NUM2LONG(nv);
if (n > RARRAY(ary)->len) n = RARRAY(ary)->len;
result = rb_ary_new2(n);
for (i=0; i<n; i++) {
rb_ary_push(result, RARRAY(ary)->ptr[i]);
}
return result;
}
}
/*
* call-seq:
* array.last => obj or nil
* array.last(n) => an_array
*
* Returns the last element(s) of <i>self</i>. If the array is empty,
* the first form returns <code>nil</code>.
*
* [ "w", "x", "y", "z" ].last #=> "z"
*/
static VALUE
rb_ary_last(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
if (argc == 0) {
if (RARRAY(ary)->len == 0) return Qnil;
return RARRAY(ary)->ptr[RARRAY(ary)->len-1];
}
else {
VALUE nv, result;
long n, i;
rb_scan_args(argc, argv, "01", &nv);
n = NUM2LONG(nv);
if (n > RARRAY(ary)->len) n = RARRAY(ary)->len;
result = rb_ary_new2(n);
for (i=RARRAY(ary)->len-n; n--; i++) {
rb_ary_push(result, RARRAY(ary)->ptr[i]);
}
return result;
}
}
/*
* call-seq:
* array.fetch(index) => obj
* array.fetch(index, default ) => obj
* array.fetch(index) {|i| block } => obj
*
* Tries to return the element at position <i>index</i>. If the index
* lies outside the array, the first form throws an
* <code>IndexError</code> exception, the second form returns
* <i>default</i>, and the third form returns the value of invoking
* the block, passing in the index. Negative values of <i>idex</i>
* count from the end of the array.
*
* a = [ 11, 22, 33, 44 ]
* a.fetch(1) #=> 22
* a.fetch(-1) #=> 44
* a.fetch(4, 'cat') #=> "cat"
* a.fetch(4) { |i| i*i } #=> 16
*/
static VALUE
rb_ary_fetch(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
VALUE pos, ifnone;
long block_given;
long idx;
rb_scan_args(argc, argv, "11", &pos, &ifnone);
block_given = rb_block_given_p();
if (block_given && argc == 2) {
rb_warn("block supersedes default value argument");
}
idx = NUM2LONG(pos);
if (idx < 0) {
idx += RARRAY(ary)->len;
}
if (idx < 0 || RARRAY(ary)->len <= idx) {
if (block_given) return rb_yield(pos);
if (argc == 1) {
rb_raise(rb_eIndexError, "index %ld out of array", idx);
}
return ifnone;
}
return RARRAY(ary)->ptr[idx];
}
/*
* call-seq:
* array.index(obj) => int or nil
*
* Returns the index of the first object in <i>self</i> such that is
* <code>==</code> to <i>obj</i>. Returns <code>nil</code> if
* no match is found.
*
* a = [ "a", "b", "c" ]
* a.index("b") #=> 1
* a.index("z") #=> nil
*/
static VALUE
rb_ary_index(ary, val)
VALUE ary;
VALUE val;
{
long i;
for (i=0; i<RARRAY(ary)->len; i++) {
if (rb_equal(RARRAY(ary)->ptr[i], val))
return LONG2NUM(i);
}
return Qnil;
}
/*
* call-seq:
* array.rindex(obj) => int or nil
*
* Returns the index of the last object in <i>arr</i>
* <code>==</code> to <i>obj</i>. Returns <code>nil</code> if
* no match is found.
*
* a = [ "a", "b", "b", "b", "c" ]
* a.rindex("b") #=> 3
* a.rindex("z") #=> nil
*/
static VALUE
rb_ary_rindex(ary, val)
VALUE ary;
VALUE val;
{
long i = RARRAY(ary)->len;
while (i--) {
if (rb_equal(RARRAY(ary)->ptr[i], val))
return LONG2NUM(i);
}
return Qnil;
}
/*
* call-seq:
* array.indexes( i1, i2, ... iN ) => an_array
* array.indices( i1, i2, ... iN ) => an_array
*
* Deprecated; use <code>Array#select</code>.
*/
static VALUE
rb_ary_indexes(argc, argv, ary)
int argc;
VALUE *argv;
VALUE ary;
{
VALUE new_ary;
long i;
rb_warn("Array#%s is deprecated; use Array#values_at", rb_id2name(rb_frame_last_func()));
new_ary = rb_ary_new2(argc);
for (i=0; i<argc; i++) {
rb_ary_push(new_ary, rb_ary_aref(1, argv+i, ary));
}
return new_ary;
}
VALUE
rb_ary_to_ary(obj)
VALUE obj;
{
if (TYPE(obj) == T_ARRAY) {
return obj;
}
if (rb_respond_to(obj, rb_intern("to_ary"))) {
return rb_convert_type(obj, T_ARRAY, "Array", "to_ary");
}
return rb_ary_new3(1, obj);
}
static void
rb_ary_update(ary, beg, len, rpl)
VALUE ary;
long beg, len;
VALUE rpl;
{
long rlen;
if (len < 0) rb_raise(rb_eIndexError, "negative length (%ld)", len);
if (beg < 0) {
beg += RARRAY(ary)->len;
if (beg < 0) {
beg -= RARRAY(ary)->len;
rb_raise(rb_eIndexError, "index %ld out of array", beg);
}
}
if (beg + len > RARRAY(ary)->len) {
len = RARRAY(ary)->len - beg;
}
rb_ary_modify(ary);
if (NIL_P(rpl)) {
rlen = 0;
}
else {
rpl = rb_ary_to_ary(rpl);
rlen = RARRAY(rpl)->len;
}
if (beg >= RARRAY(ary)->len) {
len = beg + rlen;
if (len >= RARRAY(ary)->aux.capa) {
REALLOC_N(RARRAY(ary)->ptr, VALUE, len);
RARRAY(ary)->aux.capa = len;
}
rb_mem_clear(RARRAY(ary)->ptr + RARRAY(ary)->len, beg - RARRAY(ary)->len);
if (rlen > 0) {
MEMCPY(RARRAY(ary)->ptr + beg, RARRAY(rpl)->ptr, VALUE, rlen);
}
RARRAY(ary)->len = len;
}
else {
long alen;
if (beg + len > RARRAY(ary)->len) {
len = RARRAY(ary)->len - beg;
}
alen = RARRAY(ary)->len + rlen - len;
if (alen >= RARRAY(ary)->aux.capa) {
REALLOC_N(RARRAY(ary)->ptr, VALUE, alen);
RARRAY(ary)->aux.capa = alen;
}
if (len != rlen) {
MEMMOVE(RARRAY(ary)->ptr + beg + rlen, RARRAY(ary)->ptr + beg + len,
VALUE, RARRAY(ary)->len - (beg + len));
RARRAY(ary)->len = alen;
}
if (rlen > 0) {
MEMMOVE(RARRAY(ary)->ptr + beg, RARRAY(rpl)->ptr, VALUE, rlen);
}
}
}
/*
* call-seq:
* array[int] = obj => obj
* array[start, length] = an_array => an_array
* array[range] = an_array => an_array
*
* Element Assignment---Sets the element at index _int_,
* or replaces a subarray starting at index _start_ and
* continuing for _length_ elements, or replaces a subarray
* specified by _range_. If _int_ is greater than
* the current capacity of the array, the array grows
* automatically. A negative _int_ will count backward
* from the end of the array. Inserts elements if _length_ is
* zero. If _an_array is +nil+, deletes elements from _self_.
* An +IndexError+ is raised if a
* negative index points past the beginning of the array. See also
* Array.push, and Array.unshift.
*
* a = Array.new
* a[4] = "4";
* a[0, 3] = [ 'a', 'b', 'c' ]