431 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
			
		
		
	
	
			431 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
#include "master.hpp"
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namespace factor {
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void factor_vm::primitive_bignum_to_fixnum() {
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  ctx->replace(tag_fixnum(bignum_to_fixnum(untag<bignum>(ctx->peek()))));
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}
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void factor_vm::primitive_float_to_fixnum() {
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  ctx->replace(tag_fixnum(float_to_fixnum(ctx->peek())));
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}
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/* does not allocate, even though from_signed_cell can allocate */
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/* Division can only overflow when we are dividing the most negative fixnum
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by -1. */
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void factor_vm::primitive_fixnum_divint() {
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  fixnum y = untag_fixnum(ctx->pop());
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  fixnum x = untag_fixnum(ctx->peek());
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  fixnum result = x / y;
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  if (result == -fixnum_min)
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    /* Does not allocate */
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    ctx->replace(from_signed_cell(-fixnum_min));
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  else
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    ctx->replace(tag_fixnum(result));
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}
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/* does not allocate, even though from_signed_cell can allocate */
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void factor_vm::primitive_fixnum_divmod() {
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  cell* s0 = (cell*)(ctx->datastack);
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  cell* s1 = (cell*)(ctx->datastack - sizeof(cell));
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  fixnum y = untag_fixnum(*s0);
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  fixnum x = untag_fixnum(*s1);
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  if (y == -1 && x == fixnum_min) {
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    /* Does not allocate */
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    *s1 = from_signed_cell(-fixnum_min);
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    *s0 = tag_fixnum(0);
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  } else {
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    *s1 = tag_fixnum(x / y);
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    *s0 = tag_fixnum(x % y);
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  }
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}
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/*
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 * If we're shifting right by n bits, we won't overflow as long as none of the
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 * high WORD_SIZE-TAG_BITS-n bits are set.
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 */
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inline fixnum factor_vm::sign_mask(fixnum x) { return x >> (WORD_SIZE - 1); }
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inline fixnum factor_vm::branchless_max(fixnum x, fixnum y) {
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  return (x - ((x - y) & sign_mask(x - y)));
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}
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inline fixnum factor_vm::branchless_abs(fixnum x) {
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  return (x ^ sign_mask(x)) - sign_mask(x);
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}
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void factor_vm::primitive_fixnum_shift() {
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  fixnum y = untag_fixnum(ctx->pop());
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  fixnum x = untag_fixnum(ctx->peek());
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  if (x == 0)
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    return;
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  else if (y < 0) {
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    y = branchless_max(y, -WORD_SIZE + 1);
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    ctx->replace(tag_fixnum(x >> -y));
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    return;
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  } else if (y < WORD_SIZE - TAG_BITS) {
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    fixnum mask = -((fixnum)1 << (WORD_SIZE - 1 - TAG_BITS - y));
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    if (!(branchless_abs(x) & mask)) {
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      ctx->replace(tag_fixnum(x << y));
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      return;
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    }
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  }
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  ctx->replace(tag<bignum>(bignum_arithmetic_shift(fixnum_to_bignum(x), y)));
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}
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void factor_vm::primitive_fixnum_to_bignum() {
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  ctx->replace(tag<bignum>(fixnum_to_bignum(untag_fixnum(ctx->peek()))));
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}
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void factor_vm::primitive_float_to_bignum() {
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  ctx->replace(tag<bignum>(float_to_bignum(ctx->peek())));
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}
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#define POP_BIGNUMS(x, y)                \
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  bignum* y = untag<bignum>(ctx->pop()); \
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  bignum* x = untag<bignum>(ctx->peek());
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void factor_vm::primitive_bignum_eq() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag_boolean(bignum_equal_p(x, y)));
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}
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void factor_vm::primitive_bignum_add() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_add(x, y)));
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}
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void factor_vm::primitive_bignum_subtract() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_subtract(x, y)));
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}
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void factor_vm::primitive_bignum_multiply() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_multiply(x, y)));
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}
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void factor_vm::primitive_bignum_divint() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_quotient(x, y)));
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}
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void factor_vm::primitive_bignum_divmod() {
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  cell* s0 = (cell*)(ctx->datastack);
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  cell* s1 = (cell*)(ctx->datastack - sizeof(cell));
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  bignum* y = untag<bignum>(*s0);
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  bignum* x = untag<bignum>(*s1);
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  bignum* q, *r;
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  bignum_divide(x, y, &q, &r);
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  *s1 = tag<bignum>(q);
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  *s0 = tag<bignum>(r);
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}
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void factor_vm::primitive_bignum_mod() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_remainder(x, y)));
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}
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void factor_vm::primitive_bignum_gcd() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_gcd(x, y)));
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}
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void factor_vm::primitive_bignum_and() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_bitwise_and(x, y)));
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}
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void factor_vm::primitive_bignum_or() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_bitwise_ior(x, y)));
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}
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void factor_vm::primitive_bignum_xor() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag<bignum>(bignum_bitwise_xor(x, y)));
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}
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void factor_vm::primitive_bignum_shift() {
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  fixnum y = untag_fixnum(ctx->pop());
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  bignum* x = untag<bignum>(ctx->peek());
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  ctx->replace(tag<bignum>(bignum_arithmetic_shift(x, y)));
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}
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void factor_vm::primitive_bignum_less() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag_boolean(bignum_compare(x, y) == bignum_comparison_less));
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}
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void factor_vm::primitive_bignum_lesseq() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag_boolean(bignum_compare(x, y) != bignum_comparison_greater));
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}
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void factor_vm::primitive_bignum_greater() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag_boolean(bignum_compare(x, y) == bignum_comparison_greater));
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}
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void factor_vm::primitive_bignum_greatereq() {
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  POP_BIGNUMS(x, y);
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  ctx->replace(tag_boolean(bignum_compare(x, y) != bignum_comparison_less));
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}
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void factor_vm::primitive_bignum_not() {
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  ctx->replace(tag<bignum>(bignum_bitwise_not(untag<bignum>(ctx->peek()))));
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}
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void factor_vm::primitive_bignum_bitp() {
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  int bit = (int)to_fixnum(ctx->pop());
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  bignum* x = untag<bignum>(ctx->peek());
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  ctx->replace(tag_boolean(bignum_logbitp(bit, x)));
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}
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void factor_vm::primitive_bignum_log2() {
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  ctx->replace(tag<bignum>(bignum_integer_length(untag<bignum>(ctx->peek()))));
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}
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/* Allocates memory */
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cell factor_vm::unbox_array_size_slow() {
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  if (tagged<object>(ctx->peek()).type() == BIGNUM_TYPE) {
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    bignum* zero = untag<bignum>(bignum_zero);
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    GC_BIGNUM(zero);
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    bignum* max = cell_to_bignum(array_size_max);
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    bignum* n = untag<bignum>(ctx->peek());
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    if (bignum_compare(n, zero) != bignum_comparison_less &&
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        bignum_compare(n, max) == bignum_comparison_less) {
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      ctx->pop();
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      return bignum_to_cell(n);
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    }
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  }
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  general_error(ERROR_ARRAY_SIZE, ctx->pop(), tag_fixnum(array_size_max));
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  return 0; /* can't happen */
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}
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/* Allocates memory */
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void factor_vm::primitive_fixnum_to_float() {
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  ctx->replace(allot_float(fixnum_to_float(ctx->peek())));
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}
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/* Allocates memory */
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void factor_vm::primitive_format_float() {
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  byte_array* array = allot_byte_array(100);
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  char* format = alien_offset(ctx->pop());
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  double value = untag_float_check(ctx->peek());
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  SNPRINTF(array->data<char>(), 99, format, value);
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  ctx->replace(tag<byte_array>(array));
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}
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#define POP_FLOATS(x, y)              \
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  double y = untag_float(ctx->pop()); \
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  double x = untag_float(ctx->peek());
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void factor_vm::primitive_float_eq() {
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  POP_FLOATS(x, y);
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  ctx->replace(tag_boolean(x == y));
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}
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/* Allocates memory */
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void factor_vm::primitive_float_add() {
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  POP_FLOATS(x, y);
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  ctx->replace(allot_float(x + y));
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}
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/* Allocates memory */
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void factor_vm::primitive_float_subtract() {
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  POP_FLOATS(x, y);
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  ctx->replace(allot_float(x - y));
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}
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/* Allocates memory */
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void factor_vm::primitive_float_multiply() {
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  POP_FLOATS(x, y);
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  ctx->replace(allot_float(x * y));
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}
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/* Allocates memory */
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void factor_vm::primitive_float_divfloat() {
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  POP_FLOATS(x, y);
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  ctx->replace(allot_float(x / y));
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}
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void factor_vm::primitive_float_less() {
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  POP_FLOATS(x, y);
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  ctx->replace(tag_boolean(x < y));
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}
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void factor_vm::primitive_float_lesseq() {
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  POP_FLOATS(x, y);
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  ctx->replace(tag_boolean(x <= y));
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}
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void factor_vm::primitive_float_greater() {
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  POP_FLOATS(x, y);
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  ctx->replace(tag_boolean(x > y));
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}
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void factor_vm::primitive_float_greatereq() {
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  POP_FLOATS(x, y);
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  ctx->replace(tag_boolean(x >= y));
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}
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/* Allocates memory */
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void factor_vm::primitive_float_bits() {
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  ctx->push(
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      from_unsigned_cell(float_bits((float)untag_float_check(ctx->pop()))));
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}
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/* Allocates memory */
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void factor_vm::primitive_bits_float() {
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  ctx->push(allot_float(bits_float((uint32_t)to_cell(ctx->pop()))));
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}
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void factor_vm::primitive_double_bits() {
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  ctx->push(from_unsigned_8(double_bits(untag_float_check(ctx->pop()))));
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}
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/* Allocates memory */
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void factor_vm::primitive_bits_double() {
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  ctx->push(allot_float(bits_double(to_unsigned_8(ctx->pop()))));
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}
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/* Cannot allocate */
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fixnum factor_vm::to_fixnum(cell tagged) {
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  switch (TAG(tagged)) {
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    case FIXNUM_TYPE:
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      return untag_fixnum(tagged);
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    case BIGNUM_TYPE:
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      return bignum_to_fixnum(untag<bignum>(tagged));
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    default:
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      type_error(FIXNUM_TYPE, tagged);
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      return 0; /* can't happen */
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  }
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}
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VM_C_API fixnum to_fixnum(cell tagged, factor_vm* parent) {
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  return parent->to_fixnum(tagged);
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}
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cell factor_vm::to_cell(cell tagged) { return (cell)to_fixnum(tagged); }
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VM_C_API cell to_cell(cell tagged, factor_vm* parent) {
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  return parent->to_cell(tagged);
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}
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/* Allocates memory */
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VM_C_API cell from_signed_cell(fixnum integer, factor_vm* parent) {
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  return parent->from_signed_cell(integer);
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}
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/* Allocates memory */
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VM_C_API cell from_unsigned_cell(cell integer, factor_vm* parent) {
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  return parent->from_unsigned_cell(integer);
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}
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/* Allocates memory */
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cell factor_vm::from_signed_8(int64_t n) {
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  if (n < fixnum_min || n > fixnum_max)
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    return tag<bignum>(long_long_to_bignum(n));
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  else
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    return tag_fixnum((fixnum)n);
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}
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VM_C_API cell from_signed_8(int64_t n, factor_vm* parent) {
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  return parent->from_signed_8(n);
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}
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/* Cannot allocate */
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int64_t factor_vm::to_signed_8(cell obj) {
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  switch (tagged<object>(obj).type()) {
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    case FIXNUM_TYPE:
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      return untag_fixnum(obj);
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    case BIGNUM_TYPE:
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      return bignum_to_long_long(untag<bignum>(obj));
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    default:
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      type_error(BIGNUM_TYPE, obj);
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      return 0;
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  }
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}
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VM_C_API int64_t to_signed_8(cell obj, factor_vm* parent) {
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  return parent->to_signed_8(obj);
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}
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/* Allocates memory */
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cell factor_vm::from_unsigned_8(uint64_t n) {
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  if (n > (uint64_t)fixnum_max)
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    return tag<bignum>(ulong_long_to_bignum(n));
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  else
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    return tag_fixnum((fixnum)n);
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}
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VM_C_API cell from_unsigned_8(uint64_t n, factor_vm* parent) {
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  return parent->from_unsigned_8(n);
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}
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/* Cannot allocate */
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uint64_t factor_vm::to_unsigned_8(cell obj) {
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  switch (tagged<object>(obj).type()) {
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    case FIXNUM_TYPE:
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      return untag_fixnum(obj);
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    case BIGNUM_TYPE:
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      return bignum_to_ulong_long(untag<bignum>(obj));
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    default:
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      type_error(BIGNUM_TYPE, obj);
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      return 0;
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  }
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}
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VM_C_API uint64_t to_unsigned_8(cell obj, factor_vm* parent) {
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  return parent->to_unsigned_8(obj);
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}
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/* Cannot allocate */
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float factor_vm::to_float(cell value) {
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  return (float)untag_float_check(value);
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}
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/* Cannot allocate */
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double factor_vm::to_double(cell value) { return untag_float_check(value); }
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/* The fixnum+, fixnum- and fixnum* primitives are defined in cpu_*.S. On
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   overflow, they call these functions. */
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/* Allocates memory */
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inline void factor_vm::overflow_fixnum_add(fixnum x, fixnum y) {
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  ctx->replace(
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      tag<bignum>(fixnum_to_bignum(untag_fixnum(x) + untag_fixnum(y))));
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}
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VM_C_API void overflow_fixnum_add(fixnum x, fixnum y, factor_vm* parent) {
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  parent->overflow_fixnum_add(x, y);
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}
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/* Allocates memory */
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inline void factor_vm::overflow_fixnum_subtract(fixnum x, fixnum y) {
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  ctx->replace(
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      tag<bignum>(fixnum_to_bignum(untag_fixnum(x) - untag_fixnum(y))));
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}
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VM_C_API void overflow_fixnum_subtract(fixnum x, fixnum y, factor_vm* parent) {
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  parent->overflow_fixnum_subtract(x, y);
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}
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/* Allocates memory */
 | 
						|
inline void factor_vm::overflow_fixnum_multiply(fixnum x, fixnum y) {
 | 
						|
  bignum* bx = fixnum_to_bignum(x);
 | 
						|
  GC_BIGNUM(bx);
 | 
						|
  bignum* by = fixnum_to_bignum(y);
 | 
						|
  GC_BIGNUM(by);
 | 
						|
  ctx->replace(tag<bignum>(bignum_multiply(bx, by)));
 | 
						|
}
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						|
 | 
						|
VM_C_API void overflow_fixnum_multiply(fixnum x, fixnum y, factor_vm* parent) {
 | 
						|
  parent->overflow_fixnum_multiply(x, y);
 | 
						|
}
 | 
						|
 | 
						|
}
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