Files
scryer-prolog/src/machine/system_calls.rs
Manos Pitsidianakis b905d2758d fix type_error with instantiated EOF -1 byte literal in get_byte/2
According to ISO Prolog, get_byte/2 predicate can receive an
instantiated input byte:

http://www.gprolog.org/manual/html_node/gprolog037.html#sec156

    get_byte(+stream_or_alias, ?in_byte)

Since in_byte can be -1 if EOF is reached, instantiating it with -1
should work but does not because the implementation is trying to convert
it to a u8 which is unsigned:

?- open("/dev/null", read, S, [type(binary)]), get_byte(S, -1).
   error(type_error(in_byte,-1),get_byte/2).

This commit adds an extra check for -1 before checking for a valid u8
instantiated value if in_byte is an input:

?- open("/dev/null", read, S, [type(binary)]), get_byte(S, -1).
   S = '$stream'(0x55601e65c998).

Closes #1625
2022-10-26 13:49:38 +03:00

6363 lines
217 KiB
Rust

use crate::parser::ast::*;
use crate::parser::parser::*;
use lazy_static::lazy_static;
use crate::arena::*;
use crate::atom_table::*;
use crate::forms::*;
use crate::heap_iter::*;
use crate::heap_print::*;
use crate::instructions::*;
use crate::machine;
use crate::machine::{Machine, VERIFY_ATTR_INTERRUPT_LOC};
use crate::machine::code_walker::*;
use crate::machine::copier::*;
use crate::machine::heap::*;
use crate::machine::machine_errors::*;
use crate::machine::machine_indices::*;
use crate::machine::machine_state::*;
use crate::machine::partial_string::*;
use crate::machine::preprocessor::to_op_decl;
use crate::machine::stack::*;
use crate::machine::streams::*;
use crate::parser::char_reader::*;
use crate::parser::rug::Integer;
use crate::parser::rug::rand::RandState;
use crate::read::*;
use crate::types::*;
use ordered_float::OrderedFloat;
use indexmap::IndexSet;
use ref_thread_local::{RefThreadLocal, ref_thread_local};
use std::collections::BTreeSet;
use std::convert::TryFrom;
use std::env;
use std::fs;
use std::io::{ErrorKind, Read, Write};
use std::iter::{once, FromIterator};
use std::mem;
use std::net::{TcpListener, TcpStream};
use std::num::NonZeroU32;
use std::ops::Sub;
use std::str::FromStr;
use std::process;
use chrono::{offset::Local, DateTime};
use cpu_time::ProcessTime;
use std::time::{Duration, SystemTime};
use crossterm::event::{read, Event, KeyCode, KeyEvent, KeyModifiers};
use crossterm::terminal::{disable_raw_mode, enable_raw_mode};
use blake2::{Blake2b, Blake2s};
use ring::rand::{SecureRandom, SystemRandom};
use ring::{
aead, digest, hkdf, pbkdf2,
signature::{self, KeyPair},
};
use ripemd160::{Digest, Ripemd160};
use sha3::{Sha3_224, Sha3_256, Sha3_384, Sha3_512};
use openssl::bn::{BigNum, BigNumContext};
use openssl::ec::{EcGroup, EcPoint};
use openssl::nid::Nid;
use sodiumoxide::crypto::scalarmult::curve25519::*;
use native_tls::{TlsConnector,TlsAcceptor,Identity};
use base64;
use roxmltree;
use select;
use hyper::{Body, Client, HeaderMap, Method, Request, Uri};
use hyper::header::{HeaderName, HeaderValue};
use hyper::body::Buf;
use hyper_tls::HttpsConnector;
ref_thread_local! {
pub(crate) static managed RANDOM_STATE: RandState<'static> = RandState::new();
}
pub(crate) fn get_key() -> KeyEvent {
let key;
enable_raw_mode().expect("failed to enable raw mode");
loop {
let key_ = read();
if let Ok(key_) = key_ {
if let Event::Key(key_) = key_ {
match key_.code {
KeyCode::Char(_) | KeyCode::Enter | KeyCode::Tab => {
key = key_;
break;
}
_ => (),
}
}
}
}
disable_raw_mode().expect("failed to disable raw mode");
key
}
#[derive(Debug, Clone, Copy)]
pub struct BrentAlgState {
pub hare: usize,
pub tortoise: usize,
pub power: usize,
pub lam: usize,
pub pstr_chars: usize,
}
impl BrentAlgState {
pub fn new(hare: usize) -> Self {
Self {
hare,
tortoise: hare,
power: 1,
lam: 0,
pstr_chars: 0,
}
}
#[inline(always)]
pub fn teleport_tortoise(&mut self) {
if self.lam == self.power {
self.tortoise = self.hare;
self.power <<= 1;
self.lam = 0;
}
}
#[inline(always)]
pub fn step(&mut self, hare: usize) -> Option<CycleSearchResult> {
self.hare = hare;
self.lam += 1;
if self.tortoise == self.hare {
return Some(CycleSearchResult::Cyclic(self.lam));
} else {
self.teleport_tortoise();
}
None
}
#[inline(always)]
pub fn num_steps(&self) -> usize {
return self.lam + self.pstr_chars + self.power - 1;
}
pub fn to_result(mut self, heap: &[HeapCellValue]) -> CycleSearchResult {
if let Some(var) = heap[self.hare].as_var() {
return CycleSearchResult::PartialList(self.num_steps(), var);
}
read_heap_cell!(heap[self.hare],
(HeapCellValueTag::PStrOffset) => {
let n = cell_as_fixnum!(heap[self.hare+1]).get_num() as usize;
let pstr = cell_as_string!(heap[self.hare]);
self.pstr_chars += pstr.as_str_from(n).chars().count();
return CycleSearchResult::PStrLocation(self.num_steps(), n);
}
(HeapCellValueTag::Atom, (name, arity)) => {
return if name == atom!("[]") && arity == 0 {
CycleSearchResult::ProperList(self.num_steps())
} else {
CycleSearchResult::NotList(self.num_steps(), heap[self.hare])
};
}
(HeapCellValueTag::Lis, l) => {
return CycleSearchResult::UntouchedList(self.num_steps(), l);
}
_ => {
return CycleSearchResult::NotList(self.num_steps(), heap[self.hare]);
}
);
}
fn add_pstr_chars_and_step(&mut self, heap: &[HeapCellValue], h: usize) -> Option<CycleSearchResult> {
read_heap_cell!(heap[h],
(HeapCellValueTag::CStr, cstr_atom) => {
let cstr = PartialString::from(cstr_atom);
self.pstr_chars += cstr.as_str_from(0).chars().count();
Some(CycleSearchResult::ProperList(self.num_steps()))
}
(HeapCellValueTag::PStr, pstr_atom) => {
let pstr = PartialString::from(pstr_atom);
self.pstr_chars += pstr.as_str_from(0).chars().count() - 1;
self.step(h+1)
}
(HeapCellValueTag::PStrOffset, offset) => {
let pstr = cell_as_string!(heap[offset]);
let n = cell_as_fixnum!(heap[h+1]).get_num() as usize;
self.pstr_chars += pstr.as_str_from(n).chars().count();
if let HeapCellValueTag::PStr = heap[offset].get_tag() {
self.pstr_chars -= 1;
self.step(offset+1)
} else {
debug_assert!(heap[offset].get_tag() == HeapCellValueTag::CStr);
Some(CycleSearchResult::ProperList(self.num_steps()))
}
}
_ => {
unreachable!()
}
)
}
#[inline(always)]
fn cycle_step(&mut self, heap: &[HeapCellValue]) -> Option<CycleSearchResult> {
loop {
let value = heap[self.hare];
read_heap_cell!(value,
(HeapCellValueTag::PStrLoc, h) => {
return self.add_pstr_chars_and_step(&heap, h);
}
(HeapCellValueTag::CStr | HeapCellValueTag::PStrOffset) => {
return self.add_pstr_chars_and_step(&heap, self.hare);
}
(HeapCellValueTag::Lis, h) => {
return self.step(h+1);
}
(HeapCellValueTag::Str, s) => {
let (name, arity) = cell_as_atom_cell!(heap[s]).get_name_and_arity();
return if name == atom!(".") && arity == 2 {
self.step(s+2)
} else {
Some(CycleSearchResult::NotList(self.num_steps(), value))
};
}
(HeapCellValueTag::Atom, (name, arity)) => {
debug_assert!(arity == 0);
return if name == atom!("[]") {
Some(CycleSearchResult::ProperList(self.num_steps()))
} else {
Some(CycleSearchResult::NotList(self.num_steps(), value))
};
}
(HeapCellValueTag::AttrVar | HeapCellValueTag::Var, h) => {
if self.hare == h {
let r = value.as_var().unwrap();
return Some(CycleSearchResult::PartialList(self.num_steps(), r));
}
self.hare = h;
}
_ => {
return Some(CycleSearchResult::NotList(self.num_steps(), value));
}
);
}
}
pub fn detect_cycles(heap: &[HeapCellValue], value: HeapCellValue) -> CycleSearchResult {
let mut pstr_chars = 0;
let hare = read_heap_cell!(value,
(HeapCellValueTag::Lis, offset) => {
offset+1
}
(HeapCellValueTag::PStrLoc, h) => {
let (h_offset, n) = pstr_loc_and_offset(&heap, h);
let n = n.get_num() as usize;
let pstr = cell_as_string!(heap[h_offset]);
pstr_chars = pstr.as_str_from(n).chars().count() - 1;
if heap[h].get_tag() == HeapCellValueTag::PStrOffset {
debug_assert!(heap[h].get_tag() == HeapCellValueTag::PStrOffset);
if heap[h_offset].get_tag() == HeapCellValueTag::CStr {
return CycleSearchResult::ProperList(pstr_chars + 1);
}
}
h_offset+1
}
(HeapCellValueTag::PStrOffset) => {
unreachable!()
}
(HeapCellValueTag::CStr, cstr_atom) => {
let cstr = PartialString::from(cstr_atom);
return CycleSearchResult::ProperList(cstr.as_str_from(0).chars().count());
}
(HeapCellValueTag::Str, s) => {
let (name, arity) = cell_as_atom_cell!(heap[s])
.get_name_and_arity();
if name == atom!("[]") && arity == 0 {
return CycleSearchResult::EmptyList;
} else if name == atom!(".") && arity == 2 {
s + 2
} else {
return CycleSearchResult::NotList(0, value);
}
}
(HeapCellValueTag::Atom, (name, arity)) => {
return if name == atom!("[]") && arity == 0 {
CycleSearchResult::EmptyList
} else {
CycleSearchResult::NotList(0, value)
};
}
(HeapCellValueTag::AttrVar | HeapCellValueTag::StackVar | HeapCellValueTag::Var) => {
return CycleSearchResult::PartialList(0, value.as_var().unwrap());
}
_ => {
return CycleSearchResult::NotList(0, value);
}
);
let mut brent_st = BrentAlgState::new(hare);
brent_st.power += 1; // advance a step.
brent_st.pstr_chars = pstr_chars;
loop {
if let Some(result) = brent_st.cycle_step(heap) {
return result;
}
}
}
pub fn detect_cycles_with_max(
heap: &[HeapCellValue],
max_steps: usize,
value: HeapCellValue,
) -> CycleSearchResult {
let mut pstr_chars = 0;
let hare = read_heap_cell!(value,
(HeapCellValueTag::Lis, offset) => {
if max_steps > 0 {
offset+1
} else {
return CycleSearchResult::UntouchedList(0, offset);
}
}
(HeapCellValueTag::PStrLoc, h) => {
let (h_offset, n) = pstr_loc_and_offset(&heap, h);
let n = n.get_num() as usize;
let pstr = cell_as_string!(heap[h_offset]);
pstr_chars = pstr.as_str_from(n).chars().count() - 1;
if heap[h].get_tag() == HeapCellValueTag::PStrOffset {
debug_assert!(heap[h].get_tag() == HeapCellValueTag::PStrOffset);
if heap[h_offset].get_tag() == HeapCellValueTag::CStr {
return if pstr_chars + 1 <= max_steps {
CycleSearchResult::ProperList(pstr_chars + 1)
} else {
CycleSearchResult::UntouchedCStr(pstr.into(), max_steps)
};
}
}
if pstr_chars + 1 > max_steps {
return CycleSearchResult::PStrLocation(max_steps, h_offset);
}
h_offset+1
}
(HeapCellValueTag::PStrOffset) => {
unreachable!()
}
(HeapCellValueTag::CStr, cstr_atom) => {
return if max_steps > 0 {
let cstr = PartialString::from(cstr_atom);
let pstr_chars = cstr.as_str_from(0).chars().count();
if pstr_chars <= max_steps {
CycleSearchResult::ProperList(pstr_chars)
} else {
CycleSearchResult::UntouchedCStr(cstr_atom, max_steps)
}
} else {
CycleSearchResult::UntouchedCStr(cstr_atom, 0)
};
}
(HeapCellValueTag::Str, s) => {
let (name, arity) = cell_as_atom_cell!(heap[s]).get_name_and_arity();
if name == atom!("[]") && arity == 0 {
return CycleSearchResult::EmptyList;
} else if name == atom!(".") && arity == 2 {
if max_steps > 0 {
s + 2
} else {
return CycleSearchResult::UntouchedList(0, s + 1);
}
} else {
return CycleSearchResult::NotList(0, value);
}
}
(HeapCellValueTag::Atom, (name, arity)) => {
return if name == atom!("[]") && arity == 0 {
CycleSearchResult::EmptyList
} else {
CycleSearchResult::NotList(0, value)
};
}
(HeapCellValueTag::AttrVar | HeapCellValueTag::StackVar | HeapCellValueTag::Var) => {
return CycleSearchResult::PartialList(0, value.as_var().unwrap());
}
_ => {
return CycleSearchResult::NotList(0, value);
}
);
let mut brent_st = BrentAlgState::new(hare);
brent_st.power += 1; // advance a step.
brent_st.pstr_chars = pstr_chars;
loop {
if brent_st.num_steps() >= max_steps {
return brent_st.to_result(&heap);
}
if let Some(result) = brent_st.cycle_step(heap) {
return result;
}
}
}
}
impl MachineState {
fn skip_max_list_cycle(&mut self, lam: usize) {
fn step(heap: &[HeapCellValue], mut value: HeapCellValue) -> usize {
loop {
read_heap_cell!(value,
(HeapCellValueTag::PStrLoc, h) => {
let (h_offset, _) = pstr_loc_and_offset(&heap, h);
return h_offset+1;
}
(HeapCellValueTag::Lis, h) => {
return h+1;
}
(HeapCellValueTag::Str, s) => {
return s+2;
}
(HeapCellValueTag::AttrVar | HeapCellValueTag::Var, h) => {
value = heap[h];
}
_ => {
unreachable!();
}
);
}
}
let h = self.heap.len();
self.heap.push(self.registers[3]);
let mut hare = h;
let mut tortoise = hare;
for _ in 0 .. lam {
hare = step(&self.heap, self.heap[hare]);
}
let mut prev_hare = hare;
while hare != tortoise {
prev_hare = hare;
hare = step(&self.heap, self.heap[hare]);
tortoise = step(&self.heap, self.heap[tortoise]);
}
// now compute the num_steps of the list prefix until hare is
// reached in the fashion of a C do-while loop since hare
// may point to the beginning of a cycle.
let mut brent_st = BrentAlgState::new(h);
brent_st.cycle_step(&self.heap);
while prev_hare != brent_st.hare {
brent_st.cycle_step(&self.heap);
}
self.heap.pop();
let target_n = self.store(self.deref(self.registers[1]));
self.unify_fixnum(Fixnum::build_with(brent_st.num_steps() as i64), target_n);
if !self.fail {
unify!(self, self.registers[4], self.heap[prev_hare]);
}
}
fn finalize_skip_max_list(&mut self, n: i64, value: HeapCellValue) {
let target_n = self.store(self.deref(self.registers[1]));
self.unify_fixnum(Fixnum::build_with(n), target_n);
if !self.fail {
let xs = self.registers[4];
unify!(self, value, xs);
}
}
fn skip_max_list_result(&mut self, max_steps: i64) {
let search_result = if max_steps == -1 {
BrentAlgState::detect_cycles(
&self.heap,
self.store(self.deref(self.registers[3])),
)
} else {
BrentAlgState::detect_cycles_with_max(
&self.heap,
max_steps as usize,
self.store(self.deref(self.registers[3])),
)
};
match search_result {
CycleSearchResult::PStrLocation(steps, pstr_loc) => {
self.finalize_skip_max_list(steps as i64, pstr_loc_as_cell!(pstr_loc));
}
CycleSearchResult::UntouchedList(n, l) => {
self.finalize_skip_max_list(n as i64, list_loc_as_cell!(l));
}
CycleSearchResult::UntouchedCStr(cstr_atom, n) => {
self.finalize_skip_max_list(n as i64, string_as_cstr_cell!(cstr_atom));
}
CycleSearchResult::EmptyList => {
self.finalize_skip_max_list(0, empty_list_as_cell!());
}
CycleSearchResult::PartialList(n, r) => {
self.finalize_skip_max_list(n as i64, r.as_heap_cell_value());
}
CycleSearchResult::ProperList(steps) => {
self.finalize_skip_max_list(steps as i64, empty_list_as_cell!())
}
CycleSearchResult::NotList(n, value) => {
self.finalize_skip_max_list(n as i64, value);
}
CycleSearchResult::Cyclic(lam) => {
self.skip_max_list_cycle(lam);
}
};
}
pub fn skip_max_list(&mut self) -> CallResult {
let max_steps = self.store(self.deref(self.registers[2]));
let mut max_old = -1i64;
if !max_steps.is_var() {
let max_steps = Number::try_from(max_steps);
let max_steps_n = match max_steps {
Ok(Number::Fixnum(n)) => Some(n.get_num()),
Ok(Number::Integer(n)) => n.to_i64(),
_ => None,
};
if let Some(max_steps) = max_steps_n {
if max_steps.abs() as usize <= 1 << 63 {
if max_steps >= 0 {
max_old = max_steps;
} else {
self.fail = true;
return Ok(());
}
} else if max_steps < 0 {
self.fail = true;
return Ok(());
}
} else if !max_steps.map(|n| n.is_integer()).unwrap_or(false) {
self.fail = true;
return Ok(());
}
}
self.skip_max_list_result(max_old);
Ok(())
}
fn term_variables_under_max_depth(
&mut self,
term: HeapCellValue,
max_depth: usize,
list_of_vars: HeapCellValue,
) {
let mut seen_set = IndexSet::new();
{
let mut iter = stackful_post_order_iter(&mut self.heap, term);
while let Some(value) = iter.next() {
if iter.parent_stack_len() >= max_depth {
iter.pop_stack();
continue;
}
let value = unmark_cell_bits!(value);
if value.is_var() {
seen_set.insert(value);
}
}
}
let outcome = heap_loc_as_cell!(
iter_to_heap_list(
&mut self.heap,
seen_set.into_iter(),
)
);
unify_fn!(*self, list_of_vars, outcome);
}
#[inline]
pub(crate) fn install_new_block(&mut self, value: HeapCellValue) -> usize {
let value = self.store(self.deref(value));
self.block = self.b;
self.unify_fixnum(Fixnum::build_with(self.block as i64), value);
self.block
}
pub(crate) fn copy_findall_solution(&mut self, lh_offset: usize, copy_target: HeapCellValue) -> usize {
let threshold = self.lifted_heap.len() - lh_offset;
let mut copy_ball_term =
CopyBallTerm::new(&mut self.stack, &mut self.heap, &mut self.lifted_heap);
copy_ball_term.push(list_loc_as_cell!(threshold + 1));
copy_ball_term.push(heap_loc_as_cell!(threshold + 3));
copy_ball_term.push(heap_loc_as_cell!(threshold + 2));
copy_term(copy_ball_term, copy_target, AttrVarPolicy::DeepCopy);
threshold + lh_offset + 2
}
#[inline(always)]
pub(crate) fn truncate_if_no_lifted_heap_diff(
&mut self,
addr_constr: impl Fn(usize) -> HeapCellValue,
) {
read_heap_cell!(self.store(self.deref(self.registers[1])),
(HeapCellValueTag::Fixnum, n) => {
let lh_offset = n.get_num() as usize;
if lh_offset >= self.lifted_heap.len() {
self.lifted_heap.truncate(lh_offset);
} else {
let threshold = self.lifted_heap.len() - lh_offset;
self.lifted_heap.push(addr_constr(threshold));
}
}
_ => {
self.fail = true;
}
);
}
pub(crate) fn get_next_db_ref(&self, indices: &IndexStore, db_ref: &DBRef) -> Option<DBRef> {
match db_ref {
DBRef::NamedPred(name, arity) => {
let key = (*name, *arity);
if let Some((last_idx, _, _)) = indices.code_dir.get_full(&key) {
for idx in last_idx + 1 .. indices.code_dir.len() {
let ((name, arity), idx) = indices.code_dir.get_index(idx).unwrap();
if idx.is_undefined() {
return None;
}
return Some(DBRef::NamedPred(*name, *arity));
}
}
}
DBRef::Op(name, fixity, op_dir) => {
let key = (*name, *fixity);
if let Some((last_idx, _, _)) = op_dir.get_full(&key) {
if let Some(((name, fixity), _)) = op_dir.get_index(last_idx+1) {
return Some(DBRef::Op(*name, *fixity, *op_dir));
}
}
}
}
None
}
pub(crate) fn parse_number_from_string(
&mut self,
string: &str,
indices: &IndexStore,
stub_gen: impl Fn() -> FunctorStub,
) -> CallResult {
let nx = self.store(self.deref(self.registers[2]));
if let Some(c) = string.chars().last() {
if layout_char!(c) {
let (line_num, col_num) = string.chars().fold((0, 0), |(line_num, col_num), c| {
if new_line_char!(c) {
(1 + line_num, 0)
} else {
(line_num, col_num + 1)
}
});
let err = ParserError::UnexpectedChar(c, line_num, col_num);
let err = self.syntax_error(err);
return Err(self.error_form(err, stub_gen()));
}
}
let mut dot_buf: [u8; '.'.len_utf8()] = [0u8];
'.'.encode_utf8(&mut dot_buf);
let cursor = std::io::Cursor::new(string);
let iter = std::io::Read::chain(cursor, std::io::Cursor::new(dot_buf));
let mut parser = Parser::new(CharReader::new(iter), self);
match parser.read_term(&CompositeOpDir::new(&indices.op_dir, None)) {
Err(err) => {
let err = self.syntax_error(err);
return Err(self.error_form(err, stub_gen()));
}
Ok(Term::Literal(_, Literal::Rational(n))) => {
self.unify_rational(n, nx);
}
Ok(Term::Literal(_, Literal::Float(n))) => {
self.unify_f64(n.as_ptr(), nx);
}
Ok(Term::Literal(_, Literal::Integer(n))) => {
self.unify_big_int(n, nx);
}
Ok(Term::Literal(_, Literal::Fixnum(n))) => {
self.unify_fixnum(n, nx);
}
_ => {
let err = ParserError::ParseBigInt(0, 0);
let err = self.syntax_error(err);
return Err(self.error_form(err, stub_gen()));
}
}
Ok(())
}
pub(crate) fn call_continuation_chunk(&mut self, chunk: HeapCellValue, return_p: usize) -> usize {
let chunk = self.store(self.deref(chunk));
let s = chunk.get_value();
let arity = cell_as_atom_cell!(self.heap[s]).get_arity();
let num_cells = arity - 1;
let p_functor = self.heap[s + 1];
let cp = to_local_code_ptr(&self.heap, p_functor).unwrap();
let prev_e = self.e;
let e = self.stack.allocate_and_frame(num_cells);
let and_frame = self.stack.index_and_frame_mut(e);
and_frame.prelude.e = prev_e;
and_frame.prelude.cp = return_p;
self.p = cp + 1;
// adjust cut point to occur after call_continuation.
if num_cells > 0 {
if let HeapCellValueTag::Fixnum = self.heap[s + 2].get_tag() {
and_frame[1] = fixnum_as_cell!(Fixnum::build_with(self.b as i64));
} else {
and_frame[1] = self.heap[s + 2];
}
}
for index in s + 3..s + 2 + num_cells {
and_frame[index - (s + 1)] = self.heap[index];
}
self.e = e;
self.p
}
pub fn value_to_str_like(&mut self, value: HeapCellValue) -> Option<AtomOrString> {
read_heap_cell!(value,
(HeapCellValueTag::CStr, cstr_atom) => {
// avoid allocating a String if possible:
// We must be careful to preserve the string "[]" as is,
// instead of turning it into the atom [], i.e., "".
if cstr_atom == atom!("[]") {
Some(AtomOrString::String("[]".to_string()))
} else {
Some(AtomOrString::Atom(cstr_atom))
}
}
(HeapCellValueTag::Atom, (atom, arity)) => {
if arity == 0 {
// ... likewise.
Some(AtomOrString::Atom(atom))
} else {
None
}
}
(HeapCellValueTag::Char, c) => {
Some(AtomOrString::String(c.to_string()))
}
_ => {
if value.is_constant() {
return None;
}
let h = self.heap.len();
self.heap.push(value);
let mut iter = HeapPStrIter::new(&self.heap, h);
let string = iter.to_string();
let at_terminator = iter.at_string_terminator();
self.heap.pop();
// if the iteration doesn't terminate like a string
// (i.e. with the [] atom or a CStr), it is not
// "str_like" so return None.
if at_terminator {
Some(AtomOrString::String(string))
} else {
None
}
}
)
}
pub(crate) fn codes_to_string(
&mut self,
addrs: impl Iterator<Item = HeapCellValue>,
stub_gen: impl Fn() -> FunctorStub,
) -> Result<String, MachineStub> {
let mut string = String::new();
for addr in addrs {
match Number::try_from(addr) {
Ok(Number::Fixnum(n)) => {
match u32::try_from(n.get_num()) {
Ok(n) => {
if let Some(c) = std::char::from_u32(n) {
string.push(c);
continue;
}
}
_ => {}
}
}
Ok(Number::Integer(n)) => {
if let Some(c) = n.to_u32().and_then(std::char::from_u32) {
string.push(c);
continue;
}
}
_ => {
let err = self.type_error(ValidType::Integer, addr);
return Err(self.error_form(err, stub_gen()));
}
}
let err = self.representation_error(RepFlag::CharacterCode);
return Err(self.error_form(err, stub_gen()));
}
Ok(string)
}
pub(crate) fn strip_module(
&self,
mut qualified_goal: HeapCellValue,
mut module_loc: HeapCellValue,
) -> (HeapCellValue, HeapCellValue) {
loop {
read_heap_cell!(qualified_goal,
(HeapCellValueTag::Str, s) => {
let (name, arity) = cell_as_atom_cell!(self.heap[s])
.get_name_and_arity();
if name == atom!(":") && arity == 2 {
module_loc = self.heap[s+1];
qualified_goal = self.heap[s+2];
} else {
break;
}
}
(HeapCellValueTag::AttrVar | HeapCellValueTag::Var, h) => {
if qualified_goal != self.heap[h] {
qualified_goal = self.heap[h];
} else {
break;
}
}
_ => {
break;
}
);
}
(module_loc, qualified_goal)
}
}
impl Machine {
#[inline(always)]
pub(crate) fn prepare_call_clause(&mut self, arity: usize) -> CallResult {
let (module_loc, qualified_goal) = self.machine_st.strip_module(
self.machine_st.registers[3],
self.machine_st.registers[2],
);
// the first three arguments don't belong to the containing call/N.
let arity = arity - 3;
let (name, narity, s) = self.machine_st.setup_call_n_init_goal_info(
qualified_goal,
arity,
)?;
let module_loc = self.machine_st.store(self.machine_st.deref(module_loc));
if module_loc.is_var() {
self.load_context_module(module_loc);
if self.machine_st.fail {
self.machine_st.fail = false;
self.machine_st.unify_atom(atom!("user"), module_loc);
if self.machine_st.fail {
return Ok(());
}
}
}
let target_module_loc = self.machine_st.registers[2];
unify_fn!(
&mut self.machine_st,
module_loc,
target_module_loc
);
if self.machine_st.fail {
return Ok(());
}
// assemble goal from pre-loaded (narity) and supplementary
// (arity) arguments.
let h = self.machine_st.heap.len();
self.machine_st.heap.push(atom_as_cell!(name, narity + arity));
let target_goal = if narity + arity > 0 {
for idx in 1 .. narity + 1 {
self.machine_st.heap.push(self.machine_st.heap[s + idx]);
}
for idx in 1 .. arity + 1 {
self.machine_st.heap.push(self.machine_st.registers[3 + idx]);
}
str_loc_as_cell!(h)
} else {
heap_loc_as_cell!(h)
};
let target_qualified_goal = self.machine_st.registers[1];
unify_fn!(
&mut self.machine_st,
target_goal,
target_qualified_goal
);
Ok(())
}
#[inline(always)]
pub(crate) fn is_reset_cont_marker(&self, p: usize) -> bool {
match &self.code[p] {
&Instruction::CallResetContinuationMarker(_) |
&Instruction::ExecuteResetContinuationMarker(_) => true,
_ => false
}
}
#[inline(always)]
pub(crate) fn bind_from_register(&mut self) {
let reg = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let n = match Number::try_from(reg) {
Ok(Number::Fixnum(n)) => usize::try_from(n.get_num()).ok(),
Ok(Number::Integer(n)) => n.to_usize(),
_ => {
unreachable!()
}
};
if let Some(n) = n {
if n <= MAX_ARITY {
let target = self.machine_st.registers[n];
let addr = self.machine_st.registers[1];
unify_fn!(self.machine_st, addr, target);
return;
}
}
self.machine_st.fail = true;
}
#[inline(always)]
pub(crate) fn current_hostname(&mut self) {
match hostname::get().ok() {
Some(host) => match host.to_str() {
Some(host) => {
let hostname = self.machine_st.atom_tbl.build_with(host);
self.machine_st.unify_atom(
hostname,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]))
);
return;
}
None => {}
},
None => {}
}
self.machine_st.fail = true;
}
#[inline(always)]
pub(crate) fn current_input(&mut self) -> CallResult {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let stream = self.user_input;
if let Some(var) = addr.as_var() {
self.machine_st.bind(var, stream_as_cell!(stream));
return Ok(());
}
read_heap_cell!(addr,
(HeapCellValueTag::Cons, cons_ptr) => {
match_untyped_arena_ptr!(cons_ptr,
(ArenaHeaderTag::Stream, other_stream) => {
self.machine_st.fail = stream != other_stream;
}
_ => {
let stub = functor_stub(atom!("current_input"), 1);
let err = self.machine_st.domain_error(DomainErrorType::Stream, addr);
return Err(self.machine_st.error_form(err, stub));
}
);
}
_ => {
let stub = functor_stub(atom!("current_input"), 1);
let err = self.machine_st.domain_error(DomainErrorType::Stream, addr);
return Err(self.machine_st.error_form(err, stub));
}
);
Ok(())
}
#[inline(always)]
pub(crate) fn current_output(&mut self) -> CallResult {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let stream = self.user_output;
if let Some(var) = addr.as_var() {
self.machine_st.bind(var, stream_as_cell!(stream));
return Ok(());
}
read_heap_cell!(addr,
(HeapCellValueTag::Cons, cons_ptr) => {
match_untyped_arena_ptr!(cons_ptr,
(ArenaHeaderTag::Stream, other_stream) => {
self.machine_st.fail = stream != other_stream;
}
_ => {
let stub = functor_stub(atom!("current_output"), 1);
let err = self.machine_st.domain_error(DomainErrorType::Stream, addr);
return Err(self.machine_st.error_form(err, stub));
}
);
}
_ => {
let stub = functor_stub(atom!("current_output"), 1);
let err = self.machine_st.domain_error(DomainErrorType::Stream, addr);
return Err(self.machine_st.error_form(err, stub));
}
);
Ok(())
}
#[inline(always)]
pub(crate) fn directory_files(&mut self) -> CallResult {
if let Some(dir) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let path = std::path::Path::new(dir.as_str());
let mut files = Vec::new();
if let Ok(entries) = fs::read_dir(path) {
for entry in entries {
if let Ok(entry) = entry {
if let Some(name) = entry.file_name().to_str() {
let name = self.machine_st.atom_tbl.build_with(name);
files.push(atom_as_cstr_cell!(name));
continue;
}
}
let stub = functor_stub(atom!("directory_files"), 2);
let err = self.machine_st.representation_error(RepFlag::Character);
let err = self.machine_st.error_form(err, stub);
return Err(err);
}
let files_list = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, files.into_iter())
);
unify!(self.machine_st, self.machine_st.registers[2], files_list);
return Ok(());
}
}
self.machine_st.fail = true;
Ok(())
}
#[inline(always)]
pub(crate) fn file_size(&mut self) {
if let Some(file) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let len = Number::arena_from(
fs::metadata(file.as_str()).unwrap().len(),
&mut self.machine_st.arena,
);
match len {
Number::Fixnum(n) => self.machine_st.unify_fixnum(n, self.machine_st.registers[2]),
Number::Integer(n) => self.machine_st.unify_big_int(n, self.machine_st.registers[2]),
_ => unreachable!(),
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn file_exists(&mut self) {
if let Some(file) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let file_str = file.as_str();
if !std::path::Path::new(file_str).exists() || !fs::metadata(file_str).unwrap().is_file() {
self.machine_st.fail = true;
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn directory_exists(&mut self) {
if let Some(dir) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let dir_str = dir.as_str();
if !std::path::Path::new(dir_str).exists() || !fs::metadata(dir_str).unwrap().is_dir() {
self.machine_st.fail = true;
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn file_time(&mut self) {
if let Some(file) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let which = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2]
)));
if let Ok(md) = fs::metadata(file.as_str()) {
if let Ok(time) = match which {
atom!("modification") => md.modified(),
atom!("access") => md.accessed(),
atom!("creation") => md.created(),
_ => {
unreachable!()
}
} {
let chars_atom = self.systemtime_to_timestamp(time);
self.machine_st.unify_complete_string(
chars_atom,
self.machine_st.registers[3],
);
return;
}
}
}
self.machine_st.fail = true;
}
#[inline(always)]
pub(crate) fn directory_separator(&mut self) {
self.machine_st.unify_char(std::path::MAIN_SEPARATOR, self.machine_st.registers[1]);
}
#[inline(always)]
pub(crate) fn make_directory(&mut self) {
if let Some(dir) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match fs::create_dir(dir.as_str()) {
Ok(_) => {}
_ => {
self.machine_st.fail = true;
}
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn make_directory_path(&mut self) {
if let Some(dir) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match fs::create_dir_all(dir.as_str()) {
Ok(_) => {}
_ => {
self.machine_st.fail = true;
}
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn delete_file(&mut self) {
if let Some(file) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match fs::remove_file(file.as_str()) {
Ok(_) => {}
_ => {
self.machine_st.fail = true;
}
}
}
}
#[inline(always)]
pub(crate) fn rename_file(&mut self) {
if let Some(file) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
if let Some(renamed) = self.machine_st.value_to_str_like(self.machine_st.registers[2]) {
if fs::rename(file.as_str(), renamed.as_str()).is_ok() {
return;
}
}
}
self.machine_st.fail = true;
}
#[inline(always)]
pub(crate) fn delete_directory(&mut self) {
if let Some(dir) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match fs::remove_dir(dir.as_str()) {
Ok(_) => {}
_ => {
self.machine_st.fail = true;
}
}
}
}
#[inline(always)]
pub(crate) fn working_directory(&mut self) -> CallResult {
if let Ok(dir) = env::current_dir() {
let current = match dir.to_str() {
Some(d) => d,
_ => {
let stub = functor_stub(atom!("working_directory"), 2);
let err = self.machine_st.representation_error(RepFlag::Character);
let err = self.machine_st.error_form(err, stub);
return Err(err);
}
};
let current_atom = self.machine_st.atom_tbl.build_with(&current);
self.machine_st.unify_complete_string(
current_atom,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])),
);
if self.machine_st.fail {
return Ok(());
}
let target = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
if let Some(next) = self.machine_st.value_to_str_like(target) {
if env::set_current_dir(std::path::Path::new(next.as_str())).is_ok() {
return Ok(());
}
}
}
self.machine_st.fail = true;
Ok(())
}
#[inline(always)]
pub(crate) fn path_canonical(&mut self) -> CallResult {
if let Some(path) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match fs::canonicalize(path.as_str()) {
Ok(canonical) => {
let cs = match canonical.to_str() {
Some(s) => s,
_ => {
let stub = functor_stub(atom!("path_canonical"), 2);
let err = self.machine_st.representation_error(RepFlag::Character);
let err = self.machine_st.error_form(err, stub);
return Err(err);
}
};
let canonical_atom = self.machine_st.atom_tbl.build_with(cs);
self.machine_st.unify_complete_string(
canonical_atom,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
return Ok(());
}
_ => {
}
}
}
self.machine_st.fail = true;
Ok(())
}
#[inline(always)]
pub(crate) fn atom_chars(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(a1,
(HeapCellValueTag::Char) => {
let h = self.machine_st.heap.len();
self.machine_st.heap.push(a1);
self.machine_st.heap.push(empty_list_as_cell!());
unify!(self.machine_st, self.machine_st.registers[2], list_loc_as_cell!(h));
}
(HeapCellValueTag::Atom, (name, arity)) => {
if arity == 0 {
self.machine_st.unify_complete_string(
name,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
} else {
self.machine_st.fail = true;
}
}
(HeapCellValueTag::Var | HeapCellValueTag::AttrVar | HeapCellValueTag::StackVar) => {
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
if let Some(str_like) = self.machine_st.value_to_str_like(a2) {
let atom_cell = match str_like {
AtomOrString::Atom(atom) => {
atom_as_cell!(if atom == atom!("[]") {
self.machine_st.atom_tbl.build_with("")
} else {
atom
})
}
AtomOrString::String(string) => {
atom_as_cell!(self.machine_st.atom_tbl.build_with(&string))
}
};
self.machine_st.bind(a1.as_var().unwrap(), atom_cell);
return;
}
self.machine_st.fail = true;
}
_ => {
unreachable!();
}
);
}
#[inline(always)]
pub(crate) fn atom_codes(&mut self) -> CallResult {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(a1,
(HeapCellValueTag::Char, c) => {
let h = self.machine_st.heap.len();
self.machine_st.heap.push(fixnum_as_cell!(Fixnum::build_with(c as i64)));
self.machine_st.heap.push(empty_list_as_cell!());
unify!(self.machine_st, list_loc_as_cell!(h), self.machine_st.registers[2]);
}
(HeapCellValueTag::Atom, (name, arity)) => {
if arity == 0 {
let iter = name.chars()
.map(|c| fixnum_as_cell!(Fixnum::build_with(c as i64)));
let h = iter_to_heap_list(&mut self.machine_st.heap, iter);
unify!(self.machine_st, heap_loc_as_cell!(h), self.machine_st.registers[2]);
} else {
self.machine_st.fail = true;
}
}
(HeapCellValueTag::Var | HeapCellValueTag::AttrVar | HeapCellValueTag::StackVar) => {
let stub_gen = || functor_stub(atom!("atom_codes"), 2);
match self.machine_st.try_from_list(self.machine_st.registers[2], stub_gen) {
Ok(addrs) => {
let string = self.machine_st.codes_to_string(addrs.into_iter(), stub_gen)?;
let atom = self.machine_st.atom_tbl.build_with(&string);
self.machine_st.bind(a1.as_var().unwrap(), atom_as_cell!(atom));
}
Err(e) => {
return Err(e);
}
}
}
_ => {
unreachable!();
}
);
Ok(())
}
#[inline(always)]
pub(crate) fn atom_length(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let len: i64 = read_heap_cell!(a1,
(HeapCellValueTag::Atom, (name, arity)) => {
if arity == 0 {
name.chars().count() as i64
} else {
self.machine_st.fail = true;
return;
}
}
(HeapCellValueTag::Char) => {
1
}
_ => {
unreachable!()
}
);
self.machine_st.unify_fixnum(
Fixnum::build_with(len),
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
}
#[inline(always)]
pub(crate) fn call_continuation(&mut self, last_call: bool) -> CallResult {
let stub_gen = || functor_stub(atom!("call_continuation"), 1);
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
match self.machine_st.try_from_list(a1, stub_gen) {
Err(e) => Err(e),
Ok(cont_chunks) => {
let mut return_p = if last_call {
self.machine_st.cp
} else {
self.machine_st.p + 1
};
self.machine_st.p = return_p;
for chunk in cont_chunks.into_iter().rev() {
return_p = self.machine_st.call_continuation_chunk(chunk, return_p);
}
Ok(())
}
}
}
#[inline(always)]
pub(crate) fn chars_to_number(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("number_chars"), 2);
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let atom_or_string = self.machine_st.value_to_str_like(a1).unwrap();
self.machine_st.parse_number_from_string(
atom_or_string.as_str(),
&self.indices,
stub_gen,
)
}
#[inline(always)]
pub(crate) fn create_partial_string(&mut self) {
let atom = cell_as_atom!(
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]))
);
if atom == atom!("") {
self.machine_st.fail = true;
return;
}
let pstr_h = self.machine_st.heap.len();
self.machine_st.heap.push(pstr_as_cell!(atom));
self.machine_st.heap.push(heap_loc_as_cell!(pstr_h+1));
unify!(self.machine_st, self.machine_st.registers[2], pstr_loc_as_cell!(pstr_h));
if !self.machine_st.fail {
let tail = self.machine_st.registers[3];
unify!(self.machine_st, tail, heap_loc_as_cell!(pstr_h+1));
}
}
#[inline(always)]
pub(crate) fn is_partial_string(&mut self) {
let value = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let h = self.machine_st.heap.len();
self.machine_st.heap.push(value);
let mut iter = HeapPStrIter::new(&self.machine_st.heap, h);
while let Some(_) = iter.next() {}
let at_end_of_pstr = iter.focus.is_var() || iter.at_string_terminator();
self.machine_st.fail = !at_end_of_pstr;
self.machine_st.heap.pop();
}
#[inline(always)]
pub(crate) fn partial_string_tail(&mut self) {
let pstr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(pstr,
(HeapCellValueTag::PStrLoc, h) => {
let (h, _) = pstr_loc_and_offset(&self.machine_st.heap, h);
if HeapCellValueTag::CStr == self.machine_st.heap[h].get_tag() {
self.machine_st.unify_atom(
atom!("[]"),
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]))
);
} else {
unify_fn!(
self.machine_st,
heap_loc_as_cell!(h+1),
self.machine_st.registers[2]
);
}
}
(HeapCellValueTag::CStr) => {
self.machine_st.unify_atom(
atom!("[]"),
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]))
);
}
(HeapCellValueTag::Lis, h) => {
unify_fn!(
self.machine_st,
heap_loc_as_cell!(h+1),
self.machine_st.registers[2]
);
}
_ => {
self.machine_st.fail = true;
}
);
}
#[inline(always)]
pub(crate) fn peek_byte(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("peek_byte"), 2);
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("peek_byte"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Binary,
Some(self.machine_st.registers[2]),
atom!("peek_byte"),
2,
)?;
if stream.past_end_of_stream() {
if EOFAction::Reset != stream.options().eof_action() {
return Ok(());
} else if self.machine_st.fail {
return Ok(());
}
}
if stream.at_end_of_stream() {
stream.set_past_end_of_stream(true);
self.machine_st.unify_fixnum(
Fixnum::build_with(-1),
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
return Ok(());
}
let addr = match self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])) {
addr if addr.is_var() => addr,
addr => match Number::try_from(addr) {
Ok(Number::Integer(n)) => {
if let Some(nb) = n.to_u8() {
fixnum_as_cell!(Fixnum::build_with(nb as i64))
} else {
let err = self.machine_st.type_error(ValidType::InByte, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
Ok(Number::Fixnum(n)) => {
if let Ok(nb) = u8::try_from(n.get_num()) {
fixnum_as_cell!(Fixnum::build_with(nb as i64))
} else {
let err = self.machine_st.type_error(ValidType::InByte, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
_ => {
let err = self.machine_st.type_error(ValidType::InByte, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
},
};
loop {
match stream.peek_byte().map_err(|e| e.kind()) {
Ok(b) => {
self.machine_st.unify_fixnum(Fixnum::build_with(b as i64), addr);
}
Err(ErrorKind::PermissionDenied) => {
self.machine_st.fail = true;
break;
}
_ => {
self.machine_st.eof_action(
self.machine_st.registers[2],
stream,
atom!("peek_byte"),
2,
)?;
if EOFAction::Reset != stream.options().eof_action() {
break;
} else if self.machine_st.fail {
break;
}
}
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn peek_char(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("peek_char"), 2);
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("peek_char"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
Some(self.machine_st.registers[2]),
atom!("peek_char"),
2,
)?;
if stream.past_end_of_stream() {
if EOFAction::Reset != stream.options().eof_action() {
return Ok(());
} else if self.machine_st.fail {
return Ok(());
}
}
if stream.at_end_of_stream() {
let end_of_file = atom!("end_of_file");
stream.set_past_end_of_stream(true);
self.machine_st.unify_atom(
end_of_file,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
return Ok(());
}
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let a2 = read_heap_cell!(a2,
(HeapCellValueTag::Char) => {
a2
}
(HeapCellValueTag::Atom, (name, arity)) => {
if arity == 0 {
if let Some(c) = name.as_char() {
char_as_cell!(c)
} else {
let err = self.machine_st.type_error(ValidType::InCharacter, a2);
return Err(self.machine_st.error_form(err, stub_gen()));
}
} else {
let err = self.machine_st.type_error(ValidType::InCharacter, a2);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
(HeapCellValueTag::Var | HeapCellValueTag::StackVar | HeapCellValueTag::AttrVar) => {
a2
}
_ => {
let err = self.machine_st.type_error(ValidType::InCharacter, a2);
return Err(self.machine_st.error_form(err, stub_gen()));
}
);
loop {
match stream.peek_char().map(|result| result.map_err(|e| e.kind())) {
Some(Ok(d)) => {
self.machine_st.unify_char(d, a2);
break;
}
Some(Err(ErrorKind::PermissionDenied)) => {
self.machine_st.fail = true;
break;
}
_ => {
self.machine_st.eof_action(
self.machine_st.registers[2],
stream,
atom!("peek_char"),
2,
)?;
if EOFAction::Reset != stream.options().eof_action() {
break;
} else if self.machine_st.fail {
break;
}
}
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn peek_code(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("peek_code"), 2);
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("peek_code"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
Some(self.machine_st.registers[2]),
atom!("peek_code"),
2,
)?;
if stream.past_end_of_stream() {
if EOFAction::Reset != stream.options().eof_action() {
return Ok(());
} else if self.machine_st.fail {
return Ok(());
}
}
if stream.at_end_of_stream() {
let end_of_file = atom!("end_of_file");
stream.set_past_end_of_stream(true);
self.machine_st.unify_atom(
end_of_file,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
return Ok(());
}
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let addr = read_heap_cell!(a2,
(HeapCellValueTag::Var | HeapCellValueTag::StackVar | HeapCellValueTag::AttrVar) => {
a2
}
_ => {
match Number::try_from(a2) {
Ok(Number::Integer(n)) => {
let n = n
.to_u32()
.and_then(|n| std::char::from_u32(n).and_then(|_| Some(n)));
if let Some(n) = n {
fixnum_as_cell!(Fixnum::build_with(n as i64))
} else {
let err = self.machine_st.representation_error(RepFlag::InCharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
Ok(Number::Fixnum(n)) => {
let n = u32::try_from(n.get_num())
.ok()
.and_then(|n| std::char::from_u32(n).and_then(|_| Some(n)));
if let Some(n) = n {
fixnum_as_cell!(Fixnum::build_with(n as i64))
} else {
let err = self.machine_st.representation_error(RepFlag::InCharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
_ => {
let err = self.machine_st.type_error(ValidType::Integer, self.machine_st.registers[2]);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
}
);
loop {
let result = stream.peek_char();
match result.map(|result| result.map_err(|e| e.kind())) {
Some(Ok(c)) => {
self.machine_st.unify_fixnum(Fixnum::build_with(c as i64), addr);
break;
}
Some(Err(ErrorKind::PermissionDenied)) => {
self.machine_st.fail = true;
break;
}
_ => {
self.machine_st.eof_action(
self.machine_st.registers[2],
stream,
atom!("peek_code"),
2,
)?;
if EOFAction::Reset != stream.options().eof_action() {
break;
} else if self.machine_st.fail {
break;
}
}
}
}
return Ok(());
}
#[inline(always)]
pub(crate) fn number_to_chars(&mut self) {
let n = self.machine_st.registers[1];
let chs = self.machine_st.registers[2];
let n = self.machine_st.store(self.machine_st.deref(n));
let string = match Number::try_from(n) {
Ok(Number::Float(OrderedFloat(n))) => {
fmt_float(n)
}
Ok(Number::Fixnum(n)) => n.get_num().to_string(),
Ok(Number::Integer(n)) => n.to_string(),
Ok(Number::Rational(r)) => {
// n has already been confirmed as an integer, and
// internally, Rational is assumed reduced, so its denominator
// must be 1.
r.numer().to_string()
}
_ => {
unreachable!()
}
};
let chars_atom = self.machine_st.atom_tbl.build_with(&string.trim());
self.machine_st.unify_complete_string(
chars_atom,
self.machine_st.store(self.machine_st.deref(chs)),
);
}
#[inline(always)]
pub(crate) fn number_to_codes(&mut self) {
let n = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let chs = self.machine_st.registers[2];
let string = match Number::try_from(n) {
Ok(Number::Float(OrderedFloat(n))) => {
format!("{0:<20?}", n)
}
Ok(Number::Fixnum(n)) => n.get_num().to_string(),
Ok(Number::Integer(n)) => n.to_string(),
Ok(Number::Rational(r)) => {
// n has already been confirmed as an integer, and
// internally, Rational is assumed reduced, so its
// denominator must be 1.
r.numer().to_string()
}
_ => {
unreachable!()
}
};
let codes = string.trim().chars().map(|c| {
fixnum_as_cell!(Fixnum::build_with(c as i64))
});
let h = iter_to_heap_list(&mut self.machine_st.heap, codes);
unify!(self.machine_st, heap_loc_as_cell!(h), chs);
}
#[inline(always)]
pub(crate) fn codes_to_number(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("number_codes"), 2);
match self.machine_st.try_from_list(self.machine_st.registers[1], stub_gen) {
Err(e) => {
return Err(e);
}
Ok(addrs) => {
let string = self.machine_st.codes_to_string(addrs.into_iter(), stub_gen)?;
self.machine_st.parse_number_from_string(string.as_str(), &self.indices, stub_gen)?;
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn lifted_heap_length(&mut self) {
let a1 = self.machine_st.registers[1];
let lh_len = Fixnum::build_with(self.machine_st.lifted_heap.len() as i64);
self.machine_st.unify_fixnum(lh_len, a1);
}
#[inline(always)]
pub(crate) fn char_code(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("char_code"), 2);
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let c = read_heap_cell!(a1,
(HeapCellValueTag::Atom, (name, _arity)) => {
name.as_char().unwrap()
}
(HeapCellValueTag::Char, c) => {
c
}
_ => {
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
match Number::try_from(a2) {
Ok(Number::Integer(n)) => {
let c = match n.to_u32().and_then(std::char::from_u32) {
Some(c) => c,
_ => {
let err = self.machine_st.representation_error(RepFlag::CharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
};
self.machine_st.unify_char(c, a1);
return Ok(());
}
Ok(Number::Fixnum(n)) => {
match u32::try_from(n.get_num()) {
Ok(n) => {
if let Some(c) = std::char::from_u32(n) {
self.machine_st.unify_char(c, a1);
return Ok(());
}
}
_ => {}
}
let err = self.machine_st.representation_error(RepFlag::CharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
_ => {
self.machine_st.fail = true;
return Ok(());
}
}
}
);
self.machine_st.unify_fixnum(
Fixnum::build_with(c as i64),
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
Ok(())
}
#[inline(always)]
pub(crate) fn char_type(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let c = read_heap_cell!(a1,
(HeapCellValueTag::Char, c) => {
c
}
(HeapCellValueTag::Atom, (name, _arity)) => {
name.as_char().unwrap()
}
_ => {
unreachable!()
}
);
let chars = cell_as_atom!(a2);
self.machine_st.fail = true; // This predicate fails by default.
macro_rules! macro_check {
($id:ident, $name:expr) => {
if $id!(c) && chars == $name {
self.machine_st.fail = false;
return;
}
};
}
macro_rules! method_check {
($id:ident, $name:expr) => {
if c.$id() && chars == $name {
self.machine_st.fail = false;
return;
}
};
}
macro_check!(alpha_char, atom!("alpha"));
method_check!(is_alphabetic, atom!("alphabetic"));
method_check!(is_alphanumeric, atom!("alphanumeric"));
macro_check!(alpha_numeric_char, atom!("alnum"));
method_check!(is_ascii, atom!("ascii"));
method_check!(is_ascii_punctuation, atom!("ascii_ponctuaction"));
method_check!(is_ascii_graphic, atom!("ascii_graphic"));
// macro_check!(backslash_char, atom!("backslash"));
// macro_check!(back_quote_char, atom!("back_quote"));
macro_check!(binary_digit_char, atom!("binary_digit"));
// macro_check!(capital_letter_char, atom!("upper"));
// macro_check!(comment_1_char, "comment_1");
// macro_check!(comment_2_char, "comment_2");
method_check!(is_control, atom!("control"));
// macro_check!(cut_char, atom!("cut"));
macro_check!(decimal_digit_char, atom!("decimal_digit"));
// macro_check!(decimal_point_char, atom!("decimal_point"));
// macro_check!(double_quote_char, atom!("double_quote"));
macro_check!(exponent_char, atom!("exponent"));
macro_check!(graphic_char, atom!("graphic"));
macro_check!(graphic_token_char, atom!("graphic_token"));
macro_check!(hexadecimal_digit_char, atom!("hexadecimal_digit"));
macro_check!(layout_char, atom!("layout"));
method_check!(is_lowercase, atom!("lower"));
macro_check!(meta_char, atom!("meta"));
// macro_check!(new_line_char, atom!("new_line"));
method_check!(is_numeric, atom!("numeric"));
macro_check!(octal_digit_char, atom!("octal_digit"));
macro_check!(octet_char, atom!("octet"));
macro_check!(prolog_char, atom!("prolog"));
// macro_check!(semicolon_char, atom!("semicolon"));
macro_check!(sign_char, atom!("sign"));
// macro_check!(single_quote_char, atom!("single_quote"));
// macro_check!(small_letter_char, atom!("lower"));
macro_check!(solo_char, atom!("solo"));
// macro_check!(space_char, atom!("space"));
macro_check!(symbolic_hexadecimal_char, atom!("symbolic_hexadecimal"));
macro_check!(symbolic_control_char, atom!("symbolic_control"));
method_check!(is_uppercase, atom!("upper"));
// macro_check!(variable_indicator_char, atom!("variable_indicator"));
method_check!(is_whitespace, atom!("whitespace"));
}
#[inline(always)]
pub(crate) fn check_cut_point(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let old_b = cell_as_fixnum!(addr).get_num() as usize;
let prev_b = self.machine_st.stack.index_or_frame(self.machine_st.b).prelude.b;
let prev_b = self.machine_st.stack.index_or_frame(prev_b).prelude.b;
if prev_b > old_b {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn copy_term_without_attr_vars(&mut self) {
self.machine_st.copy_term(AttrVarPolicy::StripAttributes);
}
#[inline(always)]
pub(crate) fn fetch_global_var(&mut self) {
let key = cell_as_atom!(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])));
let addr = self.machine_st.registers[2];
match self.indices.global_variables.get_mut(&key) {
Some((ref ball, ref mut loc)) => match loc {
Some(value_loc) => {
unify_fn!(self.machine_st, addr, *value_loc);
}
None if !ball.stub.is_empty() => {
let h = self.machine_st.heap.len();
let stub = ball.copy_and_align(h);
self.machine_st.heap.extend(stub.into_iter());
unify_fn!(self.machine_st, addr, heap_loc_as_cell!(h));
if !self.machine_st.fail {
*loc = Some(heap_loc_as_cell!(h));
self.machine_st.trail(TrailRef::BlackboardEntry(key));
}
}
_ => self.machine_st.fail = true,
},
None => self.machine_st.fail = true,
};
}
#[inline(always)]
pub(crate) fn put_code(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("put_code"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
None,
atom!("put_code"),
2,
)?;
let stub_gen = || functor_stub(atom!("put_code"), 2);
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
if addr.is_var() {
let err = self.machine_st.instantiation_error();
return Err(self.machine_st.error_form(err, stub_gen()));
} else {
match Number::try_from(addr) {
Ok(Number::Integer(n)) => {
if let Some(c) = n.to_u32().and_then(|c| char::try_from(c).ok()) {
write!(&mut stream, "{}", c).unwrap();
return Ok(());
}
}
Ok(Number::Fixnum(n)) => {
let n = n.get_num();
if let Some(c) = u32::try_from(n).ok().and_then(|c| char::from_u32(c)) {
write!(&mut stream, "{}", c).unwrap();
return Ok(());
}
}
_ => {
let err = self.machine_st.type_error(ValidType::Integer, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
let err = self.machine_st.representation_error(RepFlag::CharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
#[inline(always)]
pub(crate) fn put_char(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("put_char"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
None,
atom!("put_char"),
2,
)?;
let stub_gen = || functor_stub(atom!("put_char"), 2);
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
if addr.is_var() {
let err = self.machine_st.instantiation_error();
return Err(self.machine_st.error_form(err, stub_gen()));
} else {
read_heap_cell!(addr,
(HeapCellValueTag::Atom, (name, _arity)) => {
let c = name.as_char().unwrap();
write!(&mut stream, "{}", c).unwrap();
return Ok(());
}
(HeapCellValueTag::Char, c) => {
write!(&mut stream, "{}", c).unwrap();
return Ok(());
}
_ => {
}
);
let err = self.machine_st.type_error(ValidType::Character, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
#[inline(always)]
pub(crate) fn put_chars(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("$put_chars"),
2,
)?;
let mut bytes = Vec::new();
let stub_gen = || functor_stub(atom!("$put_chars"), 2);
if let Some(string) = self.machine_st.value_to_str_like(self.machine_st.registers[2]) {
if stream.options().stream_type() == StreamType::Binary {
for c in string.as_str().chars() {
if c as u32 > 255 {
let err = self.machine_st.type_error(ValidType::Byte, char_as_cell!(c));
return Err(self.machine_st.error_form(err, stub_gen()));
}
bytes.push(c as u8);
}
} else {
bytes = string.as_str().bytes().collect();
}
match stream.write_all(&bytes) {
Ok(_) => {
}
_ => {
let addr = stream_as_cell!(stream);
let err = self.machine_st.existence_error(ExistenceError::Stream(addr));
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
} else {
self.machine_st.fail = true;
}
Ok(())
}
#[inline(always)]
pub(crate) fn put_byte(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("put_byte"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Binary,
None,
atom!("put_byte"),
2,
)?;
let stub_gen = || functor_stub(atom!("put_byte"), 2);
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
if addr.is_var() {
let err = self.machine_st.instantiation_error();
return Err(self.machine_st.error_form(err, stub_gen()));
} else {
match Number::try_from(addr) {
Ok(Number::Integer(n)) => {
if let Some(nb) = n.to_u8() {
match stream.write(&mut [nb]) {
Ok(1) => {
return Ok(());
}
_ => {
let err = self.machine_st.existence_error(
ExistenceError::Stream(stream_as_cell!(stream))
);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
}
}
Ok(Number::Fixnum(n)) => {
if let Ok(nb) = u8::try_from(n.get_num()) {
match stream.write(&mut [nb]) {
Ok(1) => {
return Ok(());
}
_ => {
let err = self.machine_st.existence_error(
ExistenceError::Stream(stream_as_cell!(stream))
);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
}
}
_ => {
}
}
}
let err = self.machine_st.type_error(ValidType::Byte, self.machine_st.registers[2]);
Err(self.machine_st.error_form(err, stub_gen()))
}
#[inline(always)]
pub(crate) fn get_byte(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("get_byte"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Binary,
Some(self.machine_st.registers[2]),
atom!("get_byte"),
2,
)?;
if stream.past_end_of_stream() {
self.machine_st.eof_action(self.machine_st.registers[2], stream, atom!("get_byte"), 2)?;
if EOFAction::Reset != stream.options().eof_action() {
return Ok(());
} else if self.machine_st.fail {
return Ok(());
}
}
let stub_gen = || functor_stub(atom!("get_byte"), 2);
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let addr = if addr.is_var() {
addr
} else {
match Number::try_from(addr) {
Ok(Number::Integer(ref n)) if **n == -1_i64 => {
fixnum_as_cell!(Fixnum::build_with(-1))
}
Ok(Number::Fixnum(n)) if n.get_num() == -1_i64 => {
fixnum_as_cell!(Fixnum::build_with(-1))
}
Ok(Number::Integer(n)) => {
if let Some(nb) = n.to_u8() {
fixnum_as_cell!(Fixnum::build_with(nb as i64))
} else {
let err = self.machine_st.type_error(ValidType::InByte, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
Ok(Number::Fixnum(n)) => {
if let Ok(nb) = u8::try_from(n.get_num()) {
fixnum_as_cell!(Fixnum::build_with(nb as i64))
} else {
let err = self.machine_st.type_error(ValidType::InByte, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
_ => {
let err = self.machine_st.type_error(ValidType::InByte, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
};
loop {
let mut b = [0u8; 1];
match stream.read(&mut b) {
Ok(1) => {
self.machine_st.unify_fixnum(Fixnum::build_with(b[0] as i64), addr);
break;
}
_ => {
stream.set_past_end_of_stream(true);
self.machine_st.unify_fixnum(Fixnum::build_with(-1), self.machine_st.registers[2]);
break;
}
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn get_char(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("get_char"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
Some(self.machine_st.registers[2]),
atom!("get_char"),
2,
)?;
if stream.past_end_of_stream() {
if EOFAction::Reset != stream.options().eof_action() {
return Ok(());
} else if self.machine_st.fail {
return Ok(());
}
}
if stream.at_end_of_stream() {
let end_of_file = atom!("end_of_file");
stream.set_past_end_of_stream(true);
self.machine_st.unify_atom(
end_of_file,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]))
);
return Ok(());
}
let stub_gen = || functor_stub(atom!("get_char"), 2);
let mut iter = self.machine_st.open_parsing_stream(stream, atom!("get_char"), 2)?;
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let addr = if addr.is_var() {
addr
} else {
read_heap_cell!(addr,
(HeapCellValueTag::Atom, (atom, _arity)) => {
char_as_cell!(atom.as_char().unwrap())
}
(HeapCellValueTag::Char) => {
addr
}
_ => {
let err = self.machine_st.type_error(ValidType::InCharacter, addr);
return Err(self.machine_st.error_form(err, stub_gen()));
}
)
};
loop {
let result = iter.read_char();
match result {
Some(Ok(c)) => {
self.machine_st.unify_char(c, addr);
break;
}
_ => {
self.machine_st.eof_action(
self.machine_st.registers[2],
stream,
atom!("get_char"),
2,
)?;
if EOFAction::Reset != stream.options().eof_action() {
break;
} else if self.machine_st.fail {
break;
}
}
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn get_n_chars(&mut self) -> CallResult {
let stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("get_n_chars"),
3,
)?;
let num = match Number::try_from(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]))) {
Ok(Number::Fixnum(n)) => usize::try_from(n.get_num()).unwrap(),
Ok(Number::Integer(n)) => match n.to_usize() {
Some(u) => u,
_ => {
self.machine_st.fail = true;
return Ok(());
}
},
_ => {
unreachable!()
}
};
let mut string = String::new();
if stream.options().stream_type() == StreamType::Binary {
let mut buf = vec![];
let mut chunk = stream.take(num as u64);
chunk.read_to_end(&mut buf).ok();
for c in buf {
string.push(c as char);
}
} else {
let mut iter = self.machine_st.open_parsing_stream(stream, atom!("get_n_chars"), 2)?;
for _ in 0..num {
let result = iter.read_char();
match result {
Some(Ok(c)) => {
string.push(c);
}
_ => {
break;
}
}
}
};
let output = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
let atom = self.machine_st.atom_tbl.build_with(&string);
self.machine_st.unify_complete_string(atom, output);
Ok(())
}
#[inline(always)]
pub(crate) fn get_code(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("get_code"),
2,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
Some(self.machine_st.registers[2]),
atom!("get_code"),
2,
)?;
if stream.past_end_of_stream() {
if EOFAction::Reset != stream.options().eof_action() {
return Ok(());
} else if self.machine_st.fail {
return Ok(());
}
}
if stream.at_end_of_stream() {
let end_of_file = atom!("end_of_file");
stream.set_past_end_of_stream(true);
self.machine_st.unify_atom(
end_of_file,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
return Ok(());
}
let stub_gen = || functor_stub(atom!("get_code"), 2);
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let addr = if addr.is_var() {
addr
} else {
match Number::try_from(addr) {
Ok(Number::Integer(n)) => {
let n = n
.to_u32()
.and_then(|n| std::char::from_u32(n));
if let Some(n) = n {
fixnum_as_cell!(Fixnum::build_with(n as i64))
} else {
let err = self.machine_st.representation_error(RepFlag::InCharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
Ok(Number::Fixnum(n)) => {
let nf = u32::try_from(n.get_num())
.ok()
.and_then(|n| std::char::from_u32(n));
if nf.is_some() {
fixnum_as_cell!(n)
} else {
let err = self.machine_st.representation_error(RepFlag::InCharacterCode);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
_ => {
let err = self.machine_st.type_error(ValidType::Integer, self.machine_st.registers[2]);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
};
let mut iter = self.machine_st.open_parsing_stream(stream.clone(), atom!("get_code"), 2)?;
loop {
let result = iter.read_char();
match result {
Some(Ok(c)) => {
self.machine_st.unify_fixnum(Fixnum::build_with(c as i64), addr);
break;
}
_ => {
self.machine_st.eof_action(
self.machine_st.registers[2],
stream,
atom!("get_code"),
2,
)?;
if EOFAction::Reset != stream.options().eof_action() {
break;
} else if self.machine_st.fail {
break;
}
}
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn first_stream(&mut self) {
let mut first_stream = None;
let mut null_streams = BTreeSet::new();
for stream in self.indices.streams.iter().cloned() {
if !stream.is_null_stream() {
first_stream = Some(stream);
break;
} else {
null_streams.insert(stream);
}
}
self.indices.streams = self.indices.streams.sub(&null_streams);
if let Some(first_stream) = first_stream {
let stream = stream_as_cell!(first_stream);
let var = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
)).as_var().unwrap();
self.machine_st.bind(var, stream);
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn next_stream(&mut self) {
let prev_stream = cell_as_stream!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
)));
let mut next_stream = None;
let mut null_streams = BTreeSet::new();
for stream in self.indices
.streams
.range(prev_stream..)
.skip(1)
.cloned()
{
if !stream.is_null_stream() {
next_stream = Some(stream);
break;
} else {
null_streams.insert(stream);
}
}
self.indices.streams = self.indices.streams.sub(&null_streams);
if let Some(next_stream) = next_stream {
let var = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2]
)).as_var().unwrap();
let next_stream = stream_as_cell!(next_stream);
self.machine_st.bind(var, next_stream);
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn flush_output(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("flush_output"),
1,
)?;
if !stream.is_output_stream() {
let stub = functor_stub(atom!("flush_output"), 1);
let addr = stream_as_cell!(stream);
let err = self.machine_st.permission_error(
Permission::OutputStream,
atom!("stream"),
addr,
);
return Err(self.machine_st.error_form(err, stub));
}
stream.flush().unwrap();
Ok(())
}
#[inline(always)]
pub(crate) fn get_single_char(&mut self) -> CallResult {
let ctrl_c = KeyEvent {
code: KeyCode::Char('c'),
modifiers: KeyModifiers::CONTROL,
};
let key = get_key();
if key == ctrl_c {
let stub = functor_stub(atom!("get_single_char"), 1);
let err = self.machine_st.interrupt_error();
let err = self.machine_st.error_form(err, stub);
return Err(err);
}
let c = match key.code {
KeyCode::Enter => '\n',
KeyCode::Tab => '\t',
KeyCode::Char(c) => c,
_ => unreachable!(),
};
self.machine_st.unify_char(
c,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])),
);
Ok(())
}
#[inline(always)]
pub(crate) fn head_is_dynamic(&mut self) {
let module_name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1])
));
let (name, arity) = read_heap_cell!(
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
(HeapCellValueTag::Str, s) => {
cell_as_atom_cell!(self.machine_st.heap[s]).get_name_and_arity()
}
(HeapCellValueTag::Atom, (name, _arity)) => {
(name, 0)
}
_ => {
unreachable!()
}
);
self.machine_st.fail = !self.indices.is_dynamic_predicate(module_name, (name, arity));
}
#[inline(always)]
pub(crate) fn close(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("close"),
2,
)?;
if !stream.is_input_stream() {
stream.flush().unwrap(); // 8.11.6.1b)
}
self.indices.streams.remove(&stream);
if stream == self.user_input {
self.user_input = self.indices
.stream_aliases
.get(&atom!("user_input"))
.cloned()
.unwrap();
self.indices.streams.insert(self.user_input);
} else if stream == self.user_output {
self.user_output = self.indices
.stream_aliases
.get(&atom!("user_output"))
.cloned()
.unwrap();
self.indices.streams.insert(self.user_output);
}
if !stream.is_stdin() && !stream.is_stdout() && !stream.is_stderr() {
if let Some(alias) = stream.options().get_alias() {
self.indices.stream_aliases.remove(&alias);
}
let close_result = stream.close();
if let Err(_) = close_result {
let stub = functor_stub(atom!("close"), 1);
let addr = stream_as_cell!(stream);
let err = self.machine_st.existence_error(ExistenceError::Stream(addr));
return Err(self.machine_st.error_form(err, stub));
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn copy_to_lifted_heap(&mut self) {
let lh_offset = cell_as_fixnum!(
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]))
).get_num() as usize;
let copy_target = self.machine_st.registers[2];
let old_threshold = self.machine_st.copy_findall_solution(lh_offset, copy_target);
let new_threshold = self.machine_st.lifted_heap.len() - lh_offset;
self.machine_st.lifted_heap[old_threshold] = heap_loc_as_cell!(new_threshold);
for addr in self.machine_st.lifted_heap[old_threshold + 1 ..].iter_mut() {
*addr -= self.machine_st.heap.len() + lh_offset;
}
}
#[inline(always)]
pub(crate) fn delete_attribute(&mut self) {
let ls0 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
if let HeapCellValueTag::Lis = ls0.get_tag() {
let l1 = ls0.get_value();
let ls1 = self.machine_st.store(self.machine_st.deref(heap_loc_as_cell!(l1 + 1)));
if let HeapCellValueTag::Lis = ls1.get_tag() {
let l2 = ls1.get_value();
let old_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.heap[l1+1]));
let tail = self.machine_st.store(self.machine_st.deref(heap_loc_as_cell!(l2 + 1)));
let tail = if tail.is_var() {
heap_loc_as_cell!(l1 + 1)
} else {
tail
};
let trail_ref = read_heap_cell!(old_addr,
(HeapCellValueTag::Var, h) => {
TrailRef::AttrVarHeapLink(h)
}
(HeapCellValueTag::Lis, l) => {
TrailRef::AttrVarListLink(l1 + 1, l)
}
_ => {
unreachable!()
}
);
self.machine_st.heap[l1 + 1] = tail;
self.machine_st.trail(trail_ref);
}
}
}
#[inline(always)]
pub(crate) fn delete_head_attribute(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
debug_assert_eq!(addr.get_tag(), HeapCellValueTag::AttrVar);
let h = addr.get_value();
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.heap[h + 1]));
debug_assert_eq!(addr.get_tag(), HeapCellValueTag::Lis);
let l = addr.get_value();
let tail = self.machine_st.store(self.machine_st.deref(self.machine_st.heap[l + 1]));
let tail = if tail.is_var() {
self.machine_st.heap[h] = heap_loc_as_cell!(h);
self.machine_st.trail(TrailRef::Ref(Ref::attr_var(h)));
heap_loc_as_cell!(h + 1)
} else {
tail
};
self.machine_st.heap[h + 1] = tail;
self.machine_st.trail(TrailRef::AttrVarListLink(h + 1, l));
}
#[inline(always)]
pub(crate) fn dynamic_module_resolution(
&mut self,
narity: usize,
) -> Result<(Atom, PredicateKey), MachineStub> {
let module_name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1 + narity]
)));
let goal = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2 + narity]
));
let (name, arity, s) = self.machine_st.setup_call_n_init_goal_info(goal, narity)?;
for i in (arity + 1..arity + narity + 1).rev() {
self.machine_st.registers[i] = self.machine_st.registers[i - arity];
}
for i in 1..arity + 1 {
self.machine_st.registers[i] = self.machine_st.heap[s + i];
}
Ok((module_name, (name, arity + narity)))
}
#[inline(always)]
pub(crate) fn enqueue_attributed_var(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(addr,
(HeapCellValueTag::AttrVar, h) => {
self.machine_st.attr_var_init.attr_var_queue.push(h);
}
_ => {
}
);
}
#[inline(always)]
pub(crate) fn get_next_db_ref(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
if let Some(name_var) = a1.as_var() {
let mut iter = self.indices.code_dir.iter();
while let Some(((name, arity), _)) = iter.next() {
let arity_var = self.machine_st.deref(self.machine_st.registers[2])
.as_var().unwrap();
self.machine_st.bind(name_var, atom_as_cell!(name));
self.machine_st.bind(arity_var, fixnum_as_cell!(Fixnum::build_with(*arity as i64)));
return;
}
self.machine_st.fail = true;
} else if a1.get_tag() == HeapCellValueTag::Atom {
let name = cell_as_atom!(a1);
let arity = cell_as_fixnum!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2])
)).get_num() as usize;
match self.machine_st.get_next_db_ref(&self.indices, &DBRef::NamedPred(name, arity)) {
Some(DBRef::NamedPred(name, arity)) => {
let atom_var = self.machine_st.deref(self.machine_st.registers[3])
.as_var().unwrap();
let arity_var = self.machine_st.deref(self.machine_st.registers[4])
.as_var().unwrap();
self.machine_st.bind(atom_var, atom_as_cell!(name));
self.machine_st.bind(arity_var, fixnum_as_cell!(Fixnum::build_with(arity as i64)));
}
Some(DBRef::Op(..)) | None => {
self.machine_st.fail = true;
}
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn get_next_op_db_ref(&mut self) {
let prec = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
if let Some(prec_var) = prec.as_var() {
let spec = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let op = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
let orig_op = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[7]));
let spec_num = if spec.get_tag() == HeapCellValueTag::Atom {
(match cell_as_atom!(spec) {
atom!("xfx") => XFX,
atom!("xfy") => XFY,
atom!("yfx") => YFX,
atom!("fx") => FX,
atom!("fy") => FY,
atom!("xf") => XF,
_ => unreachable!(),
}) as u8
} else {
0
};
let unossified_op_dir = if !orig_op.is_var() {
let orig_op = read_heap_cell!(orig_op,
(HeapCellValueTag::Atom, (name, _arity)) => {
name
}
(HeapCellValueTag::Char, c) => {
self.machine_st.atom_tbl.build_with(&c.to_string())
}
_ => {
unreachable!()
}
);
let op_descs = [
self.indices.op_dir.get_key_value(&(orig_op, Fixity::In)),
self.indices.op_dir.get_key_value(&(orig_op, Fixity::Pre)),
self.indices.op_dir.get_key_value(&(orig_op, Fixity::Post)),
];
let number_of_keys = op_descs[0].is_some() as usize +
op_descs[1].is_some() as usize +
op_descs[2].is_some() as usize;
match number_of_keys {
0 => {
self.machine_st.fail = true;
return;
}
1 => {
for op_desc in op_descs {
if let Some((_, op_desc)) = op_desc {
let (op_prec, op_spec) =
(op_desc.get_prec(), op_desc.get_spec());
let op_spec = match op_spec as u32 {
XFX => atom!("xfx"),
XFY => atom!("xfy"),
YFX => atom!("yfx"),
FX => atom!("fx"),
FY => atom!("fy"),
XF => atom!("xf"),
YF => atom!("yf"),
_ => unreachable!(),
};
let op_prec = Fixnum::build_with(op_prec as i64);
self.machine_st.unify_fixnum(op_prec, prec);
self.machine_st.unify_atom(op_spec, spec);
}
}
return;
}
_ => {
let mut unossified_op_dir = OssifiedOpDir::new();
for op_desc in op_descs {
if let Some((key, op_desc)) = op_desc {
let (prec, spec) = (op_desc.get_prec(), op_desc.get_spec());
unossified_op_dir.insert(*key, (prec as usize, spec as Specifier));
}
}
unossified_op_dir
}
}
} else {
let mut unossified_op_dir = OssifiedOpDir::new();
unossified_op_dir.extend(self.indices.op_dir.iter().filter_map(
|(key, op_desc)| {
let (other_prec, other_spec) = (op_desc.get_prec(), op_desc.get_spec());
let name = key.0;
if other_prec == 0 {
return None;
}
if (!orig_op.is_var() && atom_as_cell!(name) != orig_op) ||
(!spec.is_var() && other_spec != spec_num) {
return None;
}
Some((*key, (other_prec as usize, other_spec as Specifier)))
}
));
unossified_op_dir
};
let ossified_op_dir = arena_alloc!(unossified_op_dir, &mut self.machine_st.arena);
match ossified_op_dir.iter().next() {
Some(((op_atom, _), (op_prec, op_spec))) => {
let ossified_op_dir_var = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[4]
)).as_var().unwrap();
let spec_atom = match *op_spec {
FX => atom!("fx"),
FY => atom!("fy"),
XF => atom!("xf"),
YF => atom!("yf"),
XFX => atom!("xfx"),
XFY => atom!("xfy"),
YFX => atom!("yfx"),
_ => {
self.machine_st.fail = true;
return;
}
};
let spec_var = spec.as_var().unwrap();
let op_var = op.as_var().unwrap();
self.machine_st.bind(prec_var, fixnum_as_cell!(Fixnum::build_with(*op_prec as i64)));
self.machine_st.bind(spec_var, atom_as_cell!(spec_atom));
self.machine_st.bind(op_var, atom_as_cell!(op_atom));
self.machine_st.bind(ossified_op_dir_var, typed_arena_ptr_as_cell!(ossified_op_dir));
}
None => {
self.machine_st.fail = true;
return;
}
}
} else {
let spec = cell_as_atom!(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])));
let op_atom = cell_as_atom!(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3])));
let ossified_op_dir_cell = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[4]));
if ossified_op_dir_cell.is_var() {
self.machine_st.fail = true;
return;
}
let ossified_op_dir = cell_as_ossified_op_dir!(
ossified_op_dir_cell
);
let fixity = match spec {
atom!("xfy") | atom!("yfx") | atom!("xfx") => Fixity::In,
atom!("xf") | atom!("yf") => Fixity::Post,
atom!("fx") | atom!("fy") => Fixity::Pre,
_ => {
self.machine_st.fail = true;
return;
}
};
match self.machine_st.get_next_db_ref(
&self.indices,
&DBRef::Op(op_atom, fixity, ossified_op_dir),
) {
Some(DBRef::Op(op_atom, fixity, ossified_op_dir)) => {
let (prec, spec) = ossified_op_dir.get(&(op_atom, fixity)).unwrap();
let prec_var = self.machine_st.deref(self.machine_st.registers[5])
.as_var().unwrap();
let spec_var = self.machine_st.deref(self.machine_st.registers[6])
.as_var().unwrap();
let op_var = self.machine_st.deref(self.machine_st.registers[7])
.as_var().unwrap();
let spec_atom = match *spec {
FX => atom!("fx"),
FY => atom!("fy"),
XF => atom!("xf"),
YF => atom!("yf"),
XFX => atom!("xfx"),
XFY => atom!("xfy"),
YFX => atom!("yfx"),
_ => {
self.machine_st.fail = true;
return;
}
};
self.machine_st.bind(prec_var, fixnum_as_cell!(Fixnum::build_with(*prec as i64)));
self.machine_st.bind(spec_var, atom_as_cell!(spec_atom));
self.machine_st.bind(op_var, atom_as_cell!(op_atom));
}
Some(DBRef::NamedPred(..)) | None => {
self.machine_st.fail = true;
}
}
}
}
#[inline(always)]
pub(crate) fn maybe(&mut self) {
let result = {
let mut rand = RANDOM_STATE.borrow_mut();
rand.bits(1) == 0
};
self.machine_st.fail = result;
}
#[inline(always)]
pub(crate) fn cpu_now(&mut self) {
let secs = ProcessTime::now().as_duration().as_secs_f64();
let secs = float_alloc!(secs, self.machine_st.arena);
self.machine_st.unify_f64(secs, self.machine_st.registers[1]);
}
#[inline(always)]
pub(crate) fn det_length_rundown(&mut self) -> CallResult {
let stub_gen = || functor_stub(atom!("length"), 2);
let len = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let n = match Number::try_from(len) {
Ok(Number::Fixnum(n)) => n.get_num() as usize,
Ok(Number::Integer(n)) => match n.to_usize() {
Some(n) => n,
None => {
let err = self.machine_st.resource_error(len);
return Err(self.machine_st.error_form(err, stub_gen()));
}
}
_ => {
unreachable!()
}
};
let h = self.machine_st.heap.len();
iter_to_heap_list(
&mut self.machine_st.heap,
(0 .. n).map(|i| heap_loc_as_cell!(h + 2 * i + 1)),
);
let tail = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
self.machine_st.bind(tail.as_var().unwrap(), heap_loc_as_cell!(h));
Ok(())
}
#[inline(always)]
pub(crate) fn http_open(&mut self) -> CallResult {
let address_sink = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let method = read_heap_cell!(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3])),
(HeapCellValueTag::Atom, (name, arity)) => {
debug_assert_eq!(arity, 0);
match name {
atom!("get") => Method::GET,
atom!("post") => Method::POST,
atom!("put") => Method::PUT,
atom!("delete") => Method::DELETE,
atom!("patch") => Method::PATCH,
atom!("head") => Method::HEAD,
_ => unreachable!(),
}
}
_ => {
unreachable!()
}
);
let address_status = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[4]));
let address_data = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[5]));
let mut bytes: Vec<u8> = Vec::new();
if let Some(string) = self.machine_st.value_to_str_like(address_data) {
bytes = string.as_str().bytes().collect();
}
let stub_gen = || functor_stub(atom!("http_open"), 3);
let headers = match self.machine_st.try_from_list(self.machine_st.registers[7], stub_gen) {
Ok(addrs) => {
let mut header_map = HeaderMap::new();
for heap_cell in addrs{
read_heap_cell!(heap_cell,
(HeapCellValueTag::Str, s) => {
let name = cell_as_atom_cell!(self.machine_st.heap[s]).get_name();
let value = self.machine_st.value_to_str_like(self.machine_st.heap[s + 1]).unwrap();
header_map.insert(HeaderName::from_str(name.as_str()).unwrap(), HeaderValue::from_str(value.as_str()).unwrap());
}
_ => {
unreachable!()
}
)
}
header_map
},
Err(e) => return Err(e)
};
if let Some(address_sink) = self.machine_st.value_to_str_like(address_sink) {
let address_string = address_sink.as_str(); //to_string();
let address: Uri = address_string.parse().unwrap();
let stream = self.runtime.block_on(async {
let https = HttpsConnector::new();
let client = Client::builder()
.build::<_, hyper::Body>(https);
// request
let mut req = Request::builder()
.method(method)
.uri(address)
.body(Body::from(bytes))
.unwrap();
// request headers
*req.headers_mut() = headers;
// do it!
let resp = client.request(req).await.unwrap();
// status code
let status = resp.status().as_u16();
self.machine_st.unify_fixnum(Fixnum::build_with(status as i64), address_status);
// headers
let headers: Vec<HeapCellValue> = resp.headers().iter().map(|(header_name, header_value)| {
let h = self.machine_st.heap.len();
let header_term = functor!(
self.machine_st.atom_tbl.build_with(header_name.as_str()),
[cell(string_as_cstr_cell!(self.machine_st.atom_tbl.build_with(header_value.to_str().unwrap())))]
);
self.machine_st.heap.extend(header_term.into_iter());
str_loc_as_cell!(h)
}).collect();
let headers_list = iter_to_heap_list(&mut self.machine_st.heap, headers.into_iter());
unify!(self.machine_st, heap_loc_as_cell!(headers_list), self.machine_st.registers[6]);
// body
let buf = hyper::body::aggregate(resp).await.unwrap();
let reader = buf.reader();
let mut stream = Stream::from_http_stream(
self.machine_st.atom_tbl.build_with(&address_string),
Box::new(reader),
&mut self.machine_st.arena
);
*stream.options_mut() = StreamOptions::default();
if let Some(alias) = stream.options().get_alias() {
self.indices.stream_aliases.insert(alias, stream);
}
self.indices.streams.insert(stream);
stream_as_cell!(stream)
});
let stream_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
self.machine_st.bind(stream_addr.as_var().unwrap(), stream);
} else {
let err = self.machine_st.domain_error(DomainErrorType::SourceSink, address_sink);
let stub = functor_stub(atom!("http_open"), 3);
return Err(self.machine_st.error_form(err, stub));
}
Ok(())
}
#[inline(always)]
pub(crate) fn current_time(&mut self) {
let timestamp = self.systemtime_to_timestamp(SystemTime::now());
self.machine_st.unify_complete_string(timestamp, self.machine_st.registers[1]);
}
#[inline(always)]
pub(crate) fn open(&mut self) -> CallResult {
let alias = self.machine_st.registers[4];
let eof_action = self.machine_st.registers[5];
let reposition = self.machine_st.registers[6];
let stream_type = self.machine_st.registers[7];
let options = self.machine_st.to_stream_options(alias, eof_action, reposition, stream_type);
let src_sink = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
if let Some(file_spec) = self.machine_st.value_to_str_like(src_sink) {
let file_spec = file_spec.as_atom(&mut self.machine_st.atom_tbl);
let mut stream = self.machine_st.stream_from_file_spec(
file_spec,
&mut self.indices,
&options,
)?;
*stream.options_mut() = options;
self.indices.streams.insert(stream);
if let Some(alias) = stream.options().get_alias() {
self.indices.stream_aliases.insert(alias, stream);
}
let stream_var = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
self.machine_st.bind(stream_var.as_var().unwrap(), stream_as_cell!(stream));
} else {
let err = self.machine_st.domain_error(DomainErrorType::SourceSink, src_sink);
let stub = functor_stub(atom!("open"), 4);
return Err(self.machine_st.error_form(err, stub));
}
Ok(())
}
#[inline(always)]
pub(crate) fn op_declaration(&mut self) -> CallResult {
let priority = self.machine_st.registers[1];
let specifier = self.machine_st.registers[2];
let op = self.machine_st.registers[3];
let priority = self.machine_st.store(self.machine_st.deref(priority));
let priority = match Number::try_from(priority) {
Ok(Number::Integer(n)) => n.to_u16().unwrap(),
Ok(Number::Fixnum(n)) => u16::try_from(n.get_num()).unwrap(),
_ => {
unreachable!();
}
};
let specifier = cell_as_atom_cell!(self.machine_st.store(self.machine_st.deref(specifier)))
.get_name();
let op = read_heap_cell!(self.machine_st.store(self.machine_st.deref(op)),
(HeapCellValueTag::Char, c) => {
self.machine_st.atom_tbl.build_with(&c.to_string())
}
(HeapCellValueTag::Atom, (name, _arity)) => {
name
}
_ => {
unreachable!()
}
);
let result = to_op_decl(priority, specifier, op)
.map_err(SessionError::from)
.and_then(|mut op_decl| {
if op_decl.op_desc.get_prec() == 0 {
Ok(op_decl.remove(&mut self.indices.op_dir))
} else {
let spec = get_op_desc(
op_decl.name,
&CompositeOpDir::new(&self.indices.op_dir, None),
);
op_decl.submit(spec, &mut self.indices.op_dir)
}
});
match result {
Ok(()) => Ok(()),
Err(e) => {
// 8.14.3.3 l)
let err = self.machine_st.session_error(e);
let stub = functor_stub(atom!("op"), 3);
Err(self.machine_st.error_form(err, stub))
}
}
}
#[inline(always)]
pub(crate) fn set_stream_options(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("open"),
4,
)?;
let alias = self.machine_st.registers[2];
let eof_action = self.machine_st.registers[3];
let reposition = self.machine_st.registers[4];
let stream_type = self.machine_st.registers[5];
let options = self.machine_st.to_stream_options(alias, eof_action, reposition, stream_type);
*stream.options_mut() = options;
Ok(())
}
#[inline(always)]
pub(crate) fn truncate_if_no_lifted_heap_growth_diff(&mut self) {
self.machine_st.truncate_if_no_lifted_heap_diff(|h| heap_loc_as_cell!(h))
}
#[inline(always)]
pub(crate) fn truncate_if_no_lifted_heap_growth(&mut self) {
self.machine_st.truncate_if_no_lifted_heap_diff(|_| empty_list_as_cell!())
}
#[inline(always)]
pub(crate) fn get_attributed_variable_list(&mut self) {
let attr_var = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let attr_var_list = read_heap_cell!(attr_var,
(HeapCellValueTag::AttrVar, h) => {
h + 1
}
(HeapCellValueTag::Var | HeapCellValueTag::StackVar) => {
// create an AttrVar in the heap.
let h = self.machine_st.heap.len();
self.machine_st.heap.push(attr_var_as_cell!(h));
self.machine_st.heap.push(heap_loc_as_cell!(h+1));
self.machine_st.bind(Ref::attr_var(h), attr_var);
h + 1
}
_ => {
self.machine_st.fail = true;
return;
}
);
let list_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
self.machine_st.bind(Ref::heap_cell(attr_var_list), list_addr);
}
#[inline(always)]
pub(crate) fn get_attr_var_queue_delimiter(&mut self) {
let addr = self.machine_st.registers[1];
let value = Fixnum::build_with(self.machine_st.attr_var_init.attr_var_queue.len() as i64);
self.machine_st.unify_fixnum(value, self.machine_st.store(self.machine_st.deref(addr)));
}
#[inline(always)]
pub(crate) fn get_attr_var_queue_beyond(&mut self) {
let addr = self.machine_st.registers[1];
let addr = self.machine_st.store(self.machine_st.deref(addr));
let b = match Number::try_from(addr) {
Ok(Number::Integer(n)) => n.to_usize(),
Ok(Number::Fixnum(n)) => usize::try_from(n.get_num()).ok(),
_ => {
self.machine_st.fail = true;
return;
}
};
if let Some(b) = b {
let iter = self.machine_st.gather_attr_vars_created_since(b);
let var_list_addr = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, iter)
);
let list_addr = self.machine_st.registers[2];
unify!(self.machine_st, var_list_addr, list_addr);
}
}
#[inline(always)]
pub(crate) fn get_continuation_chunk(&mut self) {
let e = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let e = cell_as_fixnum!(e).get_num() as usize;
let p_functor = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2]
));
let p = to_local_code_ptr(&self.machine_st.heap, p_functor).unwrap();
let num_cells = *self.code[p].perm_vars_mut().unwrap();
let mut addrs = vec![];
for idx in 1..num_cells + 1 {
addrs.push(self.machine_st.stack[stack_loc!(AndFrame, e, idx)]);
}
let chunk = str_loc_as_cell!(self.machine_st.heap.len());
self.machine_st.heap.push(atom_as_cell!(atom!("cont_chunk"), 1 + num_cells));
self.machine_st.heap.push(p_functor);
self.machine_st.heap.extend(addrs);
unify!(self.machine_st, self.machine_st.registers[3], chunk);
}
#[inline(always)]
pub(crate) fn get_lifted_heap_from_offset_diff(&mut self) {
let lh_offset = self.machine_st.registers[1];
let lh_offset = cell_as_fixnum!(
self.machine_st.store(self.machine_st.deref(lh_offset))
).get_num() as usize;
if lh_offset >= self.machine_st.lifted_heap.len() {
let solutions = self.machine_st.registers[2];
let diff = self.machine_st.registers[3];
unify_fn!(self.machine_st, solutions, diff);
} else {
let h = self.machine_st.heap.len();
let mut last_index = h;
for value in self.machine_st.lifted_heap[lh_offset ..].iter().cloned() {
last_index = self.machine_st.heap.len();
self.machine_st.heap.push(value + h);
}
if last_index < self.machine_st.heap.len() {
let diff = self.machine_st.registers[3];
unify_fn!(self.machine_st, diff, self.machine_st.heap[last_index]);
}
self.machine_st.lifted_heap.truncate(lh_offset);
let solutions = self.machine_st.registers[2];
unify_fn!(self.machine_st, heap_loc_as_cell!(h), solutions);
}
}
#[inline(always)]
pub(crate) fn get_lifted_heap_from_offset(&mut self) {
let lh_offset = self.machine_st.registers[1];
let lh_offset = cell_as_fixnum!(self.machine_st.store(self.machine_st.deref(
lh_offset
))).get_num() as usize;
if lh_offset >= self.machine_st.lifted_heap.len() {
let solutions = self.machine_st.registers[2];
unify_fn!(self.machine_st, solutions, empty_list_as_cell!());
} else {
let h = self.machine_st.heap.len();
for addr in self.machine_st.lifted_heap[lh_offset..].iter().cloned() {
self.machine_st.heap.push(addr + h);
}
self.machine_st.lifted_heap.truncate(lh_offset);
let solutions = self.machine_st.registers[2];
unify_fn!(self.machine_st, heap_loc_as_cell!(h), solutions);
}
}
#[inline(always)]
pub(crate) fn get_double_quotes(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
self.machine_st.unify_atom(
match self.machine_st.flags.double_quotes {
DoubleQuotes::Chars => atom!("chars"),
DoubleQuotes::Atom => atom!("atom"),
DoubleQuotes::Codes => atom!("codes"),
},
a1,
);
}
#[inline(always)]
pub(crate) fn get_scc_cleaner(&mut self) {
let dest = self.machine_st.registers[1];
if let Some((addr, b_cutoff, prev_b)) = self.machine_st.cont_pts.pop() {
let b = self.machine_st.stack.index_or_frame(self.machine_st.b).prelude.b;
if b <= b_cutoff {
self.machine_st.block = prev_b;
if let Some(r) = dest.as_var() {
self.machine_st.bind(r, addr);
return;
}
} else {
self.machine_st.cont_pts.push((addr, b_cutoff, prev_b));
}
}
self.machine_st.fail = true;
}
#[inline(always)]
pub(crate) fn halt(&mut self) {
let code = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let code = match Number::try_from(code) {
Ok(Number::Fixnum(n)) => i32::try_from(n.get_num()).unwrap(),
Ok(Number::Integer(n)) => n.to_i32().unwrap(),
Ok(Number::Rational(r)) => {
// n has already been confirmed as an integer, and
// internally, Rational is assumed reduced, so its
// denominator must be 1.
r.numer().to_i32().unwrap()
}
_ => {
unreachable!()
}
};
std::process::exit(code);
}
#[inline(always)]
pub(crate) fn install_scc_cleaner(&mut self) {
let addr = self.machine_st.registers[1];
let b = self.machine_st.b;
let prev_block = self.machine_st.block;
self.machine_st.run_cleaners_fn = Machine::run_cleaners;
self.machine_st.install_new_block(self.machine_st.registers[2]);
self.machine_st.cont_pts.push((addr, b, prev_block));
}
#[inline(always)]
pub(crate) fn install_inference_counter(&mut self) -> CallResult {
// A1 = B, A2 = L
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let n = match Number::try_from(a2) {
Ok(Number::Fixnum(bp)) => bp.get_num() as usize,
Ok(Number::Integer(n)) => n.to_usize().unwrap(),
_ => {
let stub = functor_stub(
atom!("call_with_inference_limit"),
3,
);
let err = self.machine_st.type_error(ValidType::Integer, a2);
return Err(self.machine_st.error_form(err, stub));
}
};
let bp = cell_as_fixnum!(a1).get_num() as usize;
let count = self.machine_st.cwil.add_limit(n, bp);
let count = arena_alloc!(count.clone(), &mut self.machine_st.arena);
self.machine_st.increment_call_count_fn = MachineState::increment_call_count;
let a3 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
self.machine_st.unify_big_int(count, a3);
Ok(())
}
#[inline(always)]
pub(crate) fn module_exists(&mut self) {
let module = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let module_name = cell_as_atom!(module);
self.machine_st.fail = !self.indices.modules.contains_key(&module_name);
}
pub(crate) fn predicate_defined(&self) -> bool {
let module_name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
)));
let name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2]
)));
let arity = match Number::try_from(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[3]
))) {
Ok(Number::Fixnum(n)) => n.get_num() as usize,
Ok(Number::Integer(n)) => {
if let Some(n) = n.to_usize() {
n
} else {
return false;
}
}
_ => {
unreachable!()
}
};
self.indices.get_predicate_code_index(
name,
arity,
module_name,
).map(|index| index.local().is_some())
.unwrap_or(false)
}
#[inline(always)]
pub(crate) fn no_such_predicate(&mut self) -> CallResult {
let module_name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
)));
let head = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
self.machine_st.fail = read_heap_cell!(head,
(HeapCellValueTag::Str, s) => {
let (name, arity) = cell_as_atom_cell!(self.machine_st.heap[s])
.get_name_and_arity();
let ct = ClauseType::from(name, arity);
if ct.is_inlined() || ct.is_builtin() {
true
} else {
let index = self.indices.get_predicate_code_index(
name,
arity,
module_name,
)
.map(|index| index.get())
.unwrap_or(IndexPtr::DynamicUndefined);
match index {
IndexPtr::DynamicUndefined | IndexPtr::Undefined => false,
_ => true,
}
}
}
(HeapCellValueTag::Atom, (name, arity)) => {
debug_assert_eq!(arity, 0);
let ct = ClauseType::from(name, 0);
if ct.is_inlined() || ct.is_builtin() {
true
} else {
let index = self.indices.get_predicate_code_index(
name,
0,
module_name,
)
.map(|index| index.get())
.unwrap_or(IndexPtr::DynamicUndefined);
match index {
IndexPtr::DynamicUndefined => false,
_ => true,
}
}
}
_ => {
let err = self.machine_st.type_error(ValidType::Callable, head);
let stub = functor_stub(atom!("clause"), 2);
return Err(self.machine_st.error_form(err, stub));
}
);
Ok(())
}
#[inline(always)]
pub(crate) fn redo_attr_var_binding(&mut self) {
let var = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let value = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
debug_assert_eq!(HeapCellValueTag::AttrVar, var.get_tag());
self.machine_st.heap[var.get_value()] = value;
}
#[inline(always)]
pub(super) fn restore_instr_at_verify_attr_interrupt(&mut self) {
match &self.code[VERIFY_ATTR_INTERRUPT_LOC] {
&Instruction::VerifyAttrInterrupt => {}
_ => {
let instr = mem::replace(
&mut self.code[VERIFY_ATTR_INTERRUPT_LOC],
Instruction::VerifyAttrInterrupt,
);
self.code[self.machine_st.attr_var_init.cp] = instr;
}
}
}
#[inline(always)]
pub(crate) fn reset_attr_var_state(&mut self) {
self.restore_instr_at_verify_attr_interrupt();
self.machine_st.attr_var_init.reset();
}
#[inline(always)]
pub(crate) fn remove_call_policy_check(&mut self) {
let bp = cell_as_fixnum!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
))).get_num() as usize;
if bp == self.machine_st.b && self.machine_st.cwil.is_empty() {
self.machine_st.cwil.reset();
self.machine_st.increment_call_count_fn = |_| { Ok(()) };
}
}
#[inline(always)]
pub(crate) fn remove_inference_counter(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let bp = cell_as_fixnum!(a1).get_num() as usize;
let count = self.machine_st.cwil.remove_limit(bp).clone();
let count = arena_alloc!(count.clone(), &mut self.machine_st.arena);
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
self.machine_st.unify_big_int(count, a2);
}
#[inline(always)]
pub(crate) fn return_from_verify_attr(&mut self) {
let e = self.machine_st.e;
let frame_len = self.machine_st.stack.index_and_frame(e).prelude.univ_prelude.num_cells;
for i in 1..frame_len - 2 {
self.machine_st.registers[i] = self.machine_st.stack[stack_loc!(AndFrame, e, i)];
}
self.machine_st.b0 = cell_as_fixnum!(self.machine_st.stack[stack_loc!(AndFrame, e, frame_len - 2)])
.get_num() as usize;
self.machine_st.num_of_args = cell_as_fixnum!(self.machine_st.stack[stack_loc!(AndFrame, e, frame_len - 1)])
.get_num() as usize;
let p = cell_as_fixnum!(self.machine_st.stack[stack_loc!(AndFrame, e, frame_len)]).get_num() as usize;
self.machine_st.deallocate();
self.machine_st.p = p;
}
#[inline(always)]
pub(crate) fn restore_cut_policy(&mut self) {
if self.machine_st.cont_pts.is_empty() {
self.machine_st.run_cleaners_fn = |_| { false };
}
}
#[inline(always)]
pub(crate) fn set_cut_point(&mut self, r: RegType) -> bool {
let cp = self.machine_st.store(self.machine_st.deref(self.machine_st[r]));
self.machine_st.cut_body(cp);
(self.machine_st.run_cleaners_fn)(self)
}
#[inline(always)]
pub(crate) fn set_cut_point_by_default(&mut self, r: RegType) {
let cp = self.machine_st.store(self.machine_st.deref(self.machine_st[r]));
self.machine_st.cut_body(cp);
}
#[inline(always)]
pub(crate) fn set_input(&mut self) -> CallResult {
let addr = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
));
let stream = self.machine_st.get_stream_or_alias(
addr,
&self.indices.stream_aliases,
atom!("set_input"),
1,
)?;
if !stream.is_input_stream() {
let stub = functor_stub(atom!("set_input"), 1);
let user_alias = atom_as_cell!(atom!("user"));
let err = self.machine_st.permission_error(
Permission::InputStream,
atom!("stream"),
user_alias,
);
return Err(self.machine_st.error_form(err, stub));
}
self.user_input = stream;
Ok(())
}
#[inline(always)]
pub(crate) fn set_output(&mut self) -> CallResult {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let stream = self.machine_st.get_stream_or_alias(
addr,
&self.indices.stream_aliases,
atom!("set_output"),
1,
)?;
if !stream.is_output_stream() {
let stub = functor_stub(atom!("set_output"), 1);
let user_alias = atom_as_cell!(atom!("user"));
let err = self.machine_st.permission_error(
Permission::OutputStream,
atom!("stream"),
user_alias,
);
return Err(self.machine_st.error_form(err, stub));
}
self.user_output = stream;
Ok(())
}
#[inline(always)]
pub(crate) fn set_double_quotes(&mut self) {
let atom = cell_as_atom!(self.machine_st.registers[1]);
self.machine_st.flags.double_quotes = match atom {
atom!("atom") => DoubleQuotes::Atom,
atom!("chars") => DoubleQuotes::Chars,
atom!("codes") => DoubleQuotes::Codes,
_ => {
self.machine_st.fail = true;
return;
}
};
}
#[inline(always)]
pub(crate) fn inference_level(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let a2 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let bp = cell_as_fixnum!(a2).get_num() as usize;
let prev_b = self.machine_st.stack.index_or_frame(self.machine_st.b).prelude.b;
if prev_b <= bp {
self.machine_st.unify_atom(atom!("!"), a1)
} else {
self.machine_st.unify_atom(atom!("true"), a1);
}
}
#[inline(always)]
pub(crate) fn clean_up_block(&mut self) {
let nb = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let nb = cell_as_fixnum!(nb).get_num() as usize;
let b = self.machine_st.b;
if nb > 0 && self.machine_st.stack.index_or_frame(b).prelude.b == nb {
self.machine_st.b = self.machine_st.stack.index_or_frame(nb).prelude.b;
}
}
#[inline(always)]
pub(crate) fn erase_ball(&mut self) {
self.machine_st.ball.reset();
}
#[inline(always)]
pub(crate) fn get_ball(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let h = self.machine_st.heap.len();
if self.machine_st.ball.stub.len() > 0 {
let stub = self.machine_st.ball.copy_and_align(h);
self.machine_st.heap.extend(stub.into_iter());
} else {
self.machine_st.fail = true;
return;
}
match addr.as_var() {
Some(r) => self.machine_st.bind(r, self.machine_st.heap[h]),
_ => self.machine_st.fail = true,
};
}
#[inline(always)]
pub(crate) fn get_current_block(&mut self) {
let n = Fixnum::build_with(i64::try_from(self.machine_st.block).unwrap());
self.machine_st.unify_fixnum(n, self.machine_st.registers[1]);
}
#[inline(always)]
pub(crate) fn get_b_value(&mut self) {
let n = Fixnum::build_with(i64::try_from(self.machine_st.b).unwrap());
self.machine_st.unify_fixnum(n, self.machine_st.registers[1]);
}
#[inline(always)]
pub(crate) fn get_cut_point(&mut self) {
let n = Fixnum::build_with(i64::try_from(self.machine_st.b0).unwrap());
self.machine_st.unify_fixnum(n, self.machine_st.registers[1]);
}
#[inline(always)]
pub(crate) fn get_staggered_cut_point(&mut self) {
use std::sync::Once;
let b = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
static mut SEMICOLON_SECOND_BRANCH_LOC: usize = 0;
static LOC_INIT: Once = Once::new();
let semicolon_second_clause_p = unsafe {
LOC_INIT.call_once(|| {
if let Some(builtins) = self.indices.modules.get(&atom!("builtins")) {
match builtins.code_dir.get(&(atom!("staggered_sc"), 2)).map(|cell| cell.get()) {
Some(IndexPtr::Index(p)) => {
match &self.code[p] {
&Instruction::TryMeElse(o) => {
SEMICOLON_SECOND_BRANCH_LOC = p + o;
}
_ => {
unreachable!();
}
}
}
_ => {
unreachable!();
}
}
} else {
unreachable!();
}
});
SEMICOLON_SECOND_BRANCH_LOC
};
let staggered_b0 = if self.machine_st.b > 0 {
let or_frame = self.machine_st.stack.index_or_frame(self.machine_st.b);
if or_frame.prelude.bp == semicolon_second_clause_p {
or_frame.prelude.b0
} else {
self.machine_st.b0
}
} else {
self.machine_st.b0
};
let staggered_b0 = integer_as_cell!(
Number::arena_from(staggered_b0, &mut self.machine_st.arena)
);
self.machine_st.bind(b.as_var().unwrap(), staggered_b0);
}
#[inline(always)]
pub(crate) fn next_ep(&mut self) {
let first_arg = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(first_arg,
(HeapCellValueTag::Atom, (name, arity)) => {
debug_assert_eq!(name, atom!("first"));
debug_assert_eq!(arity, 0);
if self.machine_st.e == 0 {
self.machine_st.fail = true;
return;
}
let and_frame = self.machine_st.stack.index_and_frame(self.machine_st.e);
let cp = and_frame.prelude.cp - 1;
let e = and_frame.prelude.e;
let e = Fixnum::build_with(i64::try_from(e).unwrap());
let p = str_loc_as_cell!(self.machine_st.heap.len());
self.machine_st.heap.extend(functor!(atom!("dir_entry"), [fixnum(cp)]));
self.machine_st.unify_fixnum(e, self.machine_st.registers[2]);
if !self.machine_st.fail {
unify!(self.machine_st, p, self.machine_st.registers[3]);
}
}
(HeapCellValueTag::Fixnum, n) => {
let e = n.get_num() as usize;
if e == 0 {
self.machine_st.fail = true;
return;
}
// get the call site so that the number of
// active permanent variables can be read from
// it later.
let and_frame = self.machine_st.stack.index_and_frame(e);
let cp = and_frame.prelude.cp - 1;
let p = str_loc_as_cell!(self.machine_st.heap.len());
self.machine_st.heap.extend(functor!(atom!("dir_entry"), [fixnum(cp)]));
let e = Fixnum::build_with(i64::try_from(and_frame.prelude.e).unwrap());
self.machine_st.unify_fixnum(e, self.machine_st.registers[2]);
if !self.machine_st.fail {
unify!(self.machine_st, p, self.machine_st.registers[3]);
}
}
_ => {
unreachable!();
}
);
}
#[inline(always)]
pub(crate) fn points_to_continuation_reset_marker(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let p = match to_local_code_ptr(&self.machine_st.heap, addr) {
Some(p) => p + 1,
None => {
self.machine_st.fail = true;
return;
}
};
if !self.is_reset_cont_marker(p) {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn quoted_token(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(addr,
(HeapCellValueTag::Fixnum, n) => {
let n = u32::try_from(n.get_num()).ok();
let n = n.and_then(std::char::from_u32);
self.machine_st.fail = match n {
Some(c) => non_quoted_token(once(c)),
None => true,
};
}
(HeapCellValueTag::Char, c) => {
self.machine_st.fail = non_quoted_token(once(c));
}
(HeapCellValueTag::Atom, (name, arity)) => {
debug_assert_eq!(arity, 0);
self.machine_st.fail = non_quoted_token(name.as_str().chars());
}
_ => {
self.machine_st.fail = true;
}
);
}
#[inline(always)]
pub(crate) fn read_query_term(&mut self) -> CallResult {
self.user_input.reset();
set_prompt(true);
// let result = self.machine_st.read_term(self.user_input, &mut self.indices);
let result = self.machine_st.read_term_from_user_input(self.user_input, &mut self.indices);
set_prompt(false);
match result {
Ok(()) => Ok(()),
Err(e) => {
self.user_input.reset();
return Err(e);
}
}
}
#[inline(always)]
pub(crate) fn read_term(&mut self) -> CallResult {
set_prompt(false);
let stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("read_term"),
3,
)?;
self.machine_st.read_term(stream, &mut self.indices)
}
#[inline(always)]
pub(crate) fn read_term_from_chars(&mut self) -> CallResult {
if let Some(atom_or_string) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let chars = atom_or_string.to_string();
let stream = Stream::from_owned_string(chars, &mut self.machine_st.arena);
let term_write_result = match self.machine_st.read(stream, &self.indices.op_dir) {
Ok(term_write_result) => term_write_result,
Err(e) => {
let stub = functor_stub(atom!("read_term_from_chars"), 2);
let e = self.machine_st.session_error(SessionError::from(e));
return Err(self.machine_st.error_form(e, stub));
}
};
let result = heap_loc_as_cell!(term_write_result.heap_loc);
let var = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2]
)).as_var().unwrap();
self.machine_st.bind(var, result);
} else {
unreachable!()
}
Ok(())
}
#[inline(always)]
pub(crate) fn reset_block(&mut self) {
let addr = self.machine_st.deref(self.machine_st.registers[1]);
self.machine_st.reset_block(addr);
}
#[inline(always)]
pub(crate) fn reset_continuation_marker(&mut self) {
let h = self.machine_st.heap.len();
self.machine_st.registers[3] = atom_as_cell!(atom!("none"));
self.machine_st.registers[4] = heap_loc_as_cell!(h);
self.machine_st.heap.push(heap_loc_as_cell!(h));
}
#[inline(always)]
pub(crate) fn set_ball(&mut self) {
self.machine_st.set_ball();
}
#[inline(always)]
pub(crate) fn set_seed(&mut self) {
let seed = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let mut rand = RANDOM_STATE.borrow_mut();
match Number::try_from(seed) {
Ok(Number::Fixnum(n)) => rand.seed(&Integer::from(n)),
Ok(Number::Integer(n)) => rand.seed(&*n),
Ok(Number::Rational(n)) if n.denom() == &1 => rand.seed(n.numer()),
_ => {
self.machine_st.fail = true;
}
}
}
#[inline(always)]
pub(crate) fn sleep(&mut self) {
let time = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let time = match Number::try_from(time) {
Ok(Number::Float(n)) => n.into_inner(),
Ok(Number::Fixnum(n)) => n.get_num() as f64,
Ok(Number::Integer(n)) => n.to_f64(),
_ => {
unreachable!()
}
};
let duration = Duration::new(1, 0);
let duration = duration.mul_f64(time);
std::thread::sleep(duration);
}
#[inline(always)]
pub(crate) fn socket_client_open(&mut self) -> CallResult {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let port = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let socket_atom = cell_as_atom!(addr);
let port = read_heap_cell!(port,
(HeapCellValueTag::Atom, (name, arity)) => {
debug_assert_eq!(arity, 0);
name
}
_ => {
self.machine_st.atom_tbl.build_with(&match Number::try_from(port) {
Ok(Number::Fixnum(n)) => n.get_num().to_string(),
Ok(Number::Integer(n)) => n.to_string(),
_ => {
unreachable!()
}
})
}
);
let socket_addr = if socket_atom == atom!("") {
atom!("127.0.0.1:80")
} else {
let buffer = format!("{}:{}", socket_atom.as_str(), port.as_str());
self.machine_st.atom_tbl.build_with(&buffer)
};
let alias = self.machine_st.registers[4];
let eof_action = self.machine_st.registers[5];
let reposition = self.machine_st.registers[6];
let stream_type = self.machine_st.registers[7];
let options = self.machine_st.to_stream_options(alias, eof_action, reposition, stream_type);
if options.reposition() {
return Err(self.machine_st.reposition_error(atom!("socket_client_open"), 3));
}
if let Some(alias) = options.get_alias() {
if self.indices.stream_aliases.contains_key(&alias) {
return Err(self.machine_st.occupied_alias_permission_error(
alias,
atom!("socket_client_open"),
3,
));
}
}
let stream = match TcpStream::connect(socket_addr.as_str()).map_err(|e| e.kind()) {
Ok(tcp_stream) => {
let mut stream = Stream::from_tcp_stream(socket_addr, tcp_stream, &mut self.machine_st.arena);
*stream.options_mut() = options;
if let Some(alias) = stream.options().get_alias() {
self.indices.stream_aliases.insert(alias, stream);
}
self.indices.streams.insert(stream);
stream_as_cell!(stream)
}
Err(ErrorKind::PermissionDenied) => {
return Err(self.machine_st.open_permission_error(addr, atom!("socket_client_open"), 3));
}
Err(ErrorKind::NotFound) => {
let stub = functor_stub(atom!("socket_client_open"), 3);
let err = self.machine_st.existence_error(
ExistenceError::SourceSink(addr),
);
return Err(self.machine_st.error_form(err, stub));
}
Err(_) => {
// for now, just fail. expand to meaningful error messages later.
self.machine_st.fail = true;
return Ok(());
}
};
let stream_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
self.machine_st.bind(stream_addr.as_var().unwrap(), stream);
Ok(())
}
#[inline(always)]
pub(crate) fn socket_server_open(&mut self) -> CallResult {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let socket_atom = cell_as_atom_cell!(addr).get_name();
let socket_atom = if socket_atom == atom!("[]") {
atom!("127.0.0.1")
} else {
socket_atom
};
let port = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let port = if port.is_var() {
String::from("0")
} else {
match Number::try_from(port) {
Ok(Number::Fixnum(n)) => n.get_num().to_string(),
Ok(Number::Integer(n)) => n.to_string(),
_ => {
unreachable!()
}
}
};
let had_zero_port = &port == "0";
let server_addr = if socket_atom == atom!("") {
port
} else {
format!("{}:{}", socket_atom.as_str(), port)
};
let (tcp_listener, port) =
match TcpListener::bind(server_addr).map_err(|e| e.kind()) {
Ok(tcp_listener) => {
let port = tcp_listener.local_addr().map(|addr| addr.port()).ok();
if let Some(port) = port {
(arena_alloc!(tcp_listener, &mut self.machine_st.arena), port as usize)
} else {
self.machine_st.fail = true;
return Ok(());
}
}
Err(ErrorKind::PermissionDenied) => {
return Err(self.machine_st.open_permission_error(addr, atom!("socket_server_open"), 2));
}
_ => {
self.machine_st.fail = true;
return Ok(());
}
};
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
self.machine_st.bind(addr.as_var().unwrap(), typed_arena_ptr_as_cell!(tcp_listener));
if had_zero_port {
self.machine_st.unify_fixnum(Fixnum::build_with(port as i64), self.machine_st.registers[2]);
}
Ok(())
}
#[inline(always)]
pub(crate) fn socket_server_accept(&mut self) -> CallResult {
let alias = self.machine_st.registers[4];
let eof_action = self.machine_st.registers[5];
let reposition = self.machine_st.registers[6];
let stream_type = self.machine_st.registers[7];
let options = self.machine_st.to_stream_options(alias, eof_action, reposition, stream_type);
if options.reposition() {
return Err(self.machine_st.reposition_error(atom!("socket_server_accept"), 4));
}
if let Some(alias) = options.get_alias() {
if self.indices.stream_aliases.contains_key(&alias) {
return Err(self.machine_st.occupied_alias_permission_error(
alias,
atom!("socket_server_accept"),
4,
));
}
}
let culprit = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(culprit,
(HeapCellValueTag::Cons, cons_ptr) => {
match_untyped_arena_ptr!(cons_ptr,
(ArenaHeaderTag::TcpListener, tcp_listener) => {
match tcp_listener.accept().ok() {
Some((tcp_stream, socket_addr)) => {
let client = self.machine_st.atom_tbl.build_with(&socket_addr.to_string());
let mut tcp_stream = Stream::from_tcp_stream(
client,
tcp_stream,
&mut self.machine_st.arena,
);
*tcp_stream.options_mut() = options;
if let Some(alias) = &tcp_stream.options().get_alias() {
self.indices.stream_aliases.insert(*alias, tcp_stream);
}
self.indices.streams.insert(tcp_stream);
let tcp_stream = stream_as_cell!(tcp_stream);
let client = atom_as_cell!(client);
let client_addr = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2],
));
let stream_addr = self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[3],
));
self.machine_st.bind(client_addr.as_var().unwrap(), client);
self.machine_st.bind(stream_addr.as_var().unwrap(), tcp_stream);
}
None => {
self.machine_st.fail = true;
}
}
}
_ => {
}
);
}
_ => {
}
);
Ok(())
}
#[inline(always)]
pub(crate) fn tls_client_connect(&mut self) -> CallResult {
if let Some(hostname) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let stream0 = self.machine_st.get_stream_or_alias(
self.machine_st.registers[2],
&self.indices.stream_aliases,
atom!("tls_client_negotiate"),
3,
)?;
let connector = TlsConnector::new().unwrap();
let stream =
match connector.connect(hostname.as_str(), stream0) {
Ok(tls_stream) => tls_stream,
Err(_) => {
return Err(self.machine_st.open_permission_error(
self.machine_st.registers[1],
atom!("tls_client_negotiate"),
3,
));
}
};
let addr = atom!("TLS");
let stream = Stream::from_tls_stream(addr, stream, &mut self.machine_st.arena);
self.indices.streams.insert(stream);
self.machine_st.heap.push(stream_as_cell!(stream));
let stream_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
self.machine_st.bind(stream_addr.as_var().unwrap(), stream_as_cell!(stream));
Ok(())
} else {
unreachable!();
}
}
#[inline(always)]
pub(crate) fn tls_accept_client(&mut self) -> CallResult {
let pkcs12 = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
if let Some(password) = self.machine_st.value_to_str_like(self.machine_st.registers[2]) {
let identity =
match Identity::from_pkcs12(&pkcs12, password.as_str()) {
Ok(identity) => identity,
Err(_) => {
return Err(self.machine_st.open_permission_error(
self.machine_st.registers[1],
atom!("tls_server_negotiate"),
3,
));
}
};
let stream0 = self.machine_st.get_stream_or_alias(
self.machine_st.registers[3],
&self.indices.stream_aliases,
atom!("tls_server_negotiate"),
3,
)?;
let acceptor = TlsAcceptor::new(identity).unwrap();
let stream =
match acceptor.accept(stream0) {
Ok(tls_stream) => tls_stream,
Err(_) => {
return Err(self.machine_st.open_permission_error(
self.machine_st.registers[3],
atom!("tls_server_negotiate"),
3,
));
}
};
let stream = Stream::from_tls_stream(atom!("TLS"), stream, &mut self.machine_st.arena);
self.indices.streams.insert(stream);
let stream_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[4]));
self.machine_st.bind(stream_addr.as_var().unwrap(), stream_as_cell!(stream));
} else {
unreachable!();
}
Ok(())
}
#[inline(always)]
pub(crate) fn socket_server_close(&mut self) -> CallResult {
let culprit = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
read_heap_cell!(culprit,
(HeapCellValueTag::Cons, cons_ptr) => {
match_untyped_arena_ptr!(cons_ptr,
(ArenaHeaderTag::TcpListener, tcp_listener) => {
unsafe {
// dropping closes the instance.
std::ptr::drop_in_place(&mut tcp_listener as *mut _);
}
tcp_listener.set_tag(ArenaHeaderTag::Dropped);
return Ok(());
}
_ => {
}
);
}
_ => {
}
);
let err = self.machine_st.type_error(ValidType::TcpListener, culprit);
let stub = functor_stub(atom!("socket_server_close"), 1);
return Err(self.machine_st.error_form(err, stub));
}
#[inline(always)]
pub(crate) fn set_stream_position(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("set_stream_position"),
2,
)?;
if !stream.options().reposition() {
let stub = functor_stub(atom!("set_stream_position"), 2);
let err = self.machine_st.permission_error(
Permission::Reposition,
atom!("stream"),
stream_as_cell!(stream),
);
return Err(self.machine_st.error_form(err, stub));
}
let position = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let position = match Number::try_from(position) {
Ok(Number::Fixnum(n)) => n.get_num() as u64,
Ok(Number::Integer(n)) => {
if let Some(n) = n.to_u64() {
n
} else {
self.machine_st.fail = true;
return Ok(());
}
}
_ => {
unreachable!()
}
};
stream.set_position(position);
Ok(())
}
#[inline(always)]
pub(crate) fn stream_property(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("stream_property"),
2,
)?;
let atom = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[2]
)));
let property = match atom {
atom!("file_name") => {
atom_as_cell!(if let Some(file_name) = stream.file_name() {
file_name
} else {
self.machine_st.fail = true;
return Ok(());
})
}
atom!("mode") => atom_as_cell!(stream.mode()),
atom!("direction") =>
atom_as_cell!(if stream.is_input_stream() && stream.is_output_stream() {
atom!("input_output")
} else if stream.is_input_stream() {
atom!("input")
} else {
atom!("output")
}),
atom!("alias") => {
atom_as_cell!(if let Some(alias) = stream.options().get_alias() {
alias
} else {
self.machine_st.fail = true;
return Ok(());
})
}
atom!("position") => {
if let Some((position, lines_read)) = stream.position() {
let h = self.machine_st.heap.len();
let position_term = functor!(
atom!("position_and_lines_read"),
[integer(position, &mut self.machine_st.arena),
integer(lines_read, &mut self.machine_st.arena)]
);
self.machine_st.heap.extend(position_term.into_iter());
str_loc_as_cell!(h)
} else {
self.machine_st.fail = true;
return Ok(());
}
}
atom!("end_of_stream") => {
let end_of_stream_pos = stream.position_relative_to_end();
atom_as_cell!(end_of_stream_pos.as_atom())
}
atom!("eof_action") => {
atom_as_cell!(stream.options().eof_action().as_atom())
}
atom!("reposition") =>
atom_as_cell!(if stream.options().reposition() {
atom!("true")
} else {
atom!("false")
}),
atom!("type") => {
atom_as_cell!(stream.options().stream_type().as_property_atom())
}
_ => {
unreachable!()
}
};
unify!(self.machine_st, property, self.machine_st.registers[3]);
Ok(())
}
#[inline(always)]
pub(crate) fn store_global_var(&mut self) {
let key = cell_as_atom!(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])));
let value = self.machine_st.registers[2];
let mut ball = Ball::new();
ball.boundary = self.machine_st.heap.len();
copy_term(
CopyBallTerm::new(&mut self.machine_st.stack, &mut self.machine_st.heap, &mut ball.stub),
value,
AttrVarPolicy::DeepCopy,
);
self.indices.global_variables.insert(key, (ball, None));
}
#[inline(always)]
pub(crate) fn store_backtrackable_global_var(&mut self) {
let key = cell_as_atom!(self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])));
let new_value = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
match self.indices.global_variables.get_mut(&key) {
Some((_, ref mut loc)) => match loc {
Some(ref mut value) => {
self.machine_st.trail(TrailRef::BlackboardOffset(key, *value));
*value = new_value;
}
loc @ None => {
self.machine_st.trail(TrailRef::BlackboardEntry(key));
*loc = Some(new_value);
}
},
None => {
self.machine_st.trail(TrailRef::BlackboardEntry(key));
self.indices
.global_variables
.insert(key, (Ball::new(), Some(new_value)));
}
}
}
#[inline(always)]
pub(crate) fn term_attributed_variables(&mut self) {
if self.machine_st.registers[1].is_constant() {
self.machine_st.unify_atom(
atom!("[]"),
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2])),
);
return;
}
let seen_vars = self.machine_st.attr_vars_of_term(self.machine_st.registers[1]);
let outcome = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, seen_vars.into_iter())
);
unify_fn!(self.machine_st, self.machine_st.registers[2], outcome);
}
#[inline(always)]
pub(crate) fn term_variables(&mut self) {
let a1 = self.machine_st.registers[1];
let a2 = self.machine_st.registers[2];
let stored_v = self.machine_st.store(self.machine_st.deref(a1));
if stored_v.is_constant() {
self.machine_st.unify_atom(atom!("[]"), self.machine_st.store(self.machine_st.deref(a2)));
return;
}
let mut seen_set = IndexSet::new();
{
let mut iter = stackful_preorder_iter(&mut self.machine_st.heap, stored_v);
while let Some(value) = iter.next() {
let value = unmark_cell_bits!(value);
if value.is_var() {
let value = unmark_cell_bits!(heap_bound_store(
iter.heap,
heap_bound_deref(iter.heap, value)
));
if value.is_var() {
seen_set.insert(value);
}
}
}
}
let outcome = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, seen_set.into_iter())
);
unify_fn!(self.machine_st, a2, outcome);
}
#[inline(always)]
pub(crate) fn term_variables_under_max_depth(&mut self) {
// Term, MaxDepth, VarList
let max_depth = cell_as_fixnum!(
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]))
).get_num() as usize;
self.machine_st.term_variables_under_max_depth(
self.machine_st.registers[1],
max_depth,
self.machine_st.registers[3],
);
}
#[inline(always)]
pub(crate) fn truncate_lifted_heap_to(&mut self) {
let a1 = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let lh_offset = cell_as_fixnum!(a1).get_num() as usize;
self.machine_st.lifted_heap.truncate(lh_offset);
}
#[inline(always)]
pub(crate) fn unify_with_occurs_check(&mut self) {
let a1 = self.machine_st.registers[1];
let a2 = self.machine_st.registers[2];
unify_with_occurs_check!(&mut self.machine_st, a1, a2);
}
#[inline(always)]
pub(crate) fn unwind_environments(&mut self) -> bool {
let mut e = self.machine_st.e;
let mut cp = self.machine_st.cp;
while e > 0 {
if self.is_reset_cont_marker(cp) {
self.machine_st.e = e;
self.machine_st.p = cp + 1; // skip the reset marker.
return true;
}
let and_frame = self.machine_st.stack.index_and_frame(e);
cp = and_frame.prelude.cp;
e = and_frame.prelude.e;
}
false
}
#[inline(always)]
pub(crate) fn wam_instructions(&mut self) -> CallResult {
let module_name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1])
));
let name = self.machine_st.registers[2];
let arity = self.machine_st.registers[3];
let name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(name)));
let arity = self.machine_st.store(self.machine_st.deref(arity));
let arity = match Number::try_from(arity) {
Ok(Number::Fixnum(n)) => n.get_num() as usize,
Ok(Number::Integer(n)) => n.to_usize().unwrap(),
_ => {
unreachable!()
}
};
let key = (name, arity);
let first_idx = match module_name {
atom!("user") => self.indices.code_dir.get(&key),
_ => match self.indices.modules.get(&module_name) {
Some(module) => module.code_dir.get(&key),
None => {
let stub = functor_stub(key.0, key.1);
let err = self.machine_st.session_error(
SessionError::from(CompilationError::InvalidModuleResolution(
module_name,
)),
);
return Err(self.machine_st.error_form(err, stub));
}
},
};
let first_idx = match first_idx {
Some(ref idx) if idx.local().is_some() => {
if let Some(idx) = idx.local() {
idx
} else {
unreachable!()
}
}
_ => {
let stub = functor_stub(name, arity);
let err = self.machine_st.existence_error(
ExistenceError::Procedure(name, arity),
);
return Err(self.machine_st.error_form(err, stub));
}
};
let mut h = self.machine_st.heap.len();
let mut functors = vec![];
let mut functor_list = vec![];
walk_code(&self.code, first_idx, |instr| {
let old_len = functors.len();
instr.enqueue_functors(h, &mut self.machine_st.arena, &mut functors);
let new_len = functors.len();
for index in old_len..new_len {
let functor_len = functors[index].len();
match functor_len {
0 => {}
1 => {
functor_list.push(heap_loc_as_cell!(h));
h += functor_len;
}
_ => {
functor_list.push(str_loc_as_cell!(h));
h += functor_len;
}
}
}
});
for functor in functors {
self.machine_st.heap.extend(functor.into_iter());
}
let listing = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, functor_list.into_iter())
);
let listing_var = self.machine_st.registers[4];
unify!(self.machine_st, listing, listing_var);
Ok(())
}
#[inline(always)]
pub(crate) fn write_term(&mut self) -> CallResult {
let mut stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("write_term"),
3,
)?;
self.machine_st.check_stream_properties(
stream,
StreamType::Text,
None, // input
atom!("write_term"),
3,
)?;
let opt_err = if !stream.is_output_stream() {
Some(atom!("stream")) // 8.14.2.3 g)
} else if stream.options().stream_type() == StreamType::Binary {
Some(atom!("binary_stream")) // 8.14.2.3 h)
} else {
None
};
if let Some(err_atom) = opt_err {
return Err(self.machine_st.stream_permission_error(
Permission::OutputStream,
err_atom,
stream,
atom!("write_term"),
3,
));
}
let printer = match self.machine_st.write_term(&self.indices.op_dir)? {
Some(printer) => printer,
None => {
// this next line is executed by
// MachineState::write_term in this case. it's
// commented here because rustc can't prove
// that it's no longer borrowed.
// self.machine_st.fail = true;
return Ok(());
}
};
let output = printer.print();
match write!(&mut stream, "{}", output.result()) {
Ok(_) => {}
Err(_) => {
let stub = functor_stub(atom!("open"), 4);
let err = self.machine_st.existence_error(
ExistenceError::Stream(self.machine_st.registers[1]),
);
return Err(self.machine_st.error_form(err, stub));
}
}
stream.flush().unwrap();
Ok(())
}
#[inline(always)]
pub(crate) fn write_term_to_chars(&mut self) -> CallResult {
let printer = match self.machine_st.write_term(&self.indices.op_dir)? {
None => {
// this next line is executed by
// MachineState::write_term in this case. it's
// commented here because rustc can't prove
// that it's no longer borrowed.
// self.machine_st.fail = true;
return Ok(());
}
Some(printer) => printer,
};
let result = printer.print().result();
let chars = put_complete_string(&mut self.machine_st.heap, &result, &mut self.machine_st.atom_tbl);
let result_addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
if let Some(var) = result_addr.as_var() {
self.machine_st.bind(var, chars);
} else {
unreachable!()
}
Ok(())
}
#[inline(always)]
pub(crate) fn scryer_prolog_version(&mut self) {
use git_version::git_version;
let buffer = git_version!(cargo_prefix = "cargo:", fallback = "unknown");
let buffer_atom = self.machine_st.atom_tbl.build_with(buffer);
self.machine_st.unify_complete_string(
buffer_atom,
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])),
);
}
#[inline(always)]
pub(crate) fn crypto_random_byte(&mut self) {
let arg = self.machine_st.registers[1];
let mut bytes: [u8; 1] = [0];
match rng().fill(&mut bytes) {
Ok(()) => {}
Err(_) => {
// the error payload here is of type 'Unspecified',
// which contains no information whatsoever. So, for now,
// just fail.
self.machine_st.fail = true;
return;
}
}
let byte = Fixnum::build_with(bytes[0] as i64);
self.machine_st.unify_fixnum(byte, arg);
}
#[inline(always)]
pub(crate) fn crypto_data_hash(&mut self) {
let encoding = cell_as_atom!(self.machine_st.registers[2]);
let bytes = self.string_encoding_bytes(self.machine_st.registers[1], encoding);
let algorithm = cell_as_atom!(self.machine_st.registers[4]);
let ints_list = match algorithm {
atom!("sha3_224") => {
let mut context = Sha3_224::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
atom!("sha3_256") => {
let mut context = Sha3_256::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
atom!("sha3_384") => {
let mut context = Sha3_384::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
atom!("sha3_512") => {
let mut context = Sha3_512::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
atom!("blake2s256") => {
let mut context = Blake2s::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
atom!("blake2b512") => {
let mut context = Blake2b::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
atom!("ripemd160") => {
let mut context = Ripemd160::new();
context.input(&bytes);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
context
.result()
.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
_ => {
let ints = digest::digest(
match algorithm {
atom!("sha256") => &digest::SHA256,
atom!("sha384") => &digest::SHA384,
atom!("sha512") => &digest::SHA512,
atom!("sha512_256") => &digest::SHA512_256,
_ => {
unreachable!()
}
},
&bytes,
);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
ints.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
}
};
unify!(self.machine_st, self.machine_st.registers[3], ints_list);
}
#[inline(always)]
pub(crate) fn crypto_data_hkdf(&mut self) {
let encoding = cell_as_atom!(self.machine_st.registers[2]);
let data = self.string_encoding_bytes(self.machine_st.registers[1], encoding);
let stub1_gen = || functor_stub(atom!("crypto_data_hkdf"), 4);
let salt = self.machine_st.integers_to_bytevec(self.machine_st.registers[3], stub1_gen);
let stub2_gen = || functor_stub(atom!("crypto_data_hkdf"), 4);
let info = self.machine_st.integers_to_bytevec(self.machine_st.registers[4], stub2_gen);
let algorithm = cell_as_atom!(self.machine_st.registers[5]);
let length = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[6]));
let length = match Number::try_from(length) {
Ok(Number::Fixnum(n)) => usize::try_from(n.get_num()).unwrap(),
Ok(Number::Integer(n)) => match n.to_usize() {
Some(u) => u,
_ => {
self.machine_st.fail = true;
return;
}
},
_ => {
unreachable!()
}
};
let ints_list = {
let digest_alg = match algorithm {
atom!("sha256") => hkdf::HKDF_SHA256,
atom!("sha384") => hkdf::HKDF_SHA384,
atom!("sha512") => hkdf::HKDF_SHA512,
_ => {
self.machine_st.fail = true;
return;
}
};
let salt = hkdf::Salt::new(digest_alg, &salt);
let mut bytes: Vec<u8> = Vec::new();
bytes.resize(length, 0);
match salt.extract(&data).expand(&[&info[..]], MyKey(length)) {
Ok(r) => {
r.fill(&mut bytes).unwrap();
}
_ => {
self.machine_st.fail = true;
return;
}
}
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
bytes
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
};
unify!(self.machine_st, self.machine_st.registers[7], ints_list);
}
#[inline(always)]
pub(crate) fn crypto_password_hash(&mut self) {
let stub1_gen = || functor_stub(atom!("crypto_password_hash"), 3);
let data = self.machine_st.integers_to_bytevec(self.machine_st.registers[1], stub1_gen);
let stub2_gen = || functor_stub(atom!("crypto_password_hash"), 3);
let salt = self.machine_st.integers_to_bytevec(self.machine_st.registers[2], stub2_gen);
let iterations = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[3]));
let iterations = match Number::try_from(iterations) {
Ok(Number::Fixnum(n)) => u64::try_from(n.get_num()).unwrap(),
Ok(Number::Integer(n)) => match n.to_u64() {
Some(i) => i,
None => {
self.machine_st.fail = true;
return;
}
},
_ => {
unreachable!()
}
};
let ints_list = {
let mut bytes = [0u8; digest::SHA512_OUTPUT_LEN];
pbkdf2::derive(
pbkdf2::PBKDF2_HMAC_SHA512,
NonZeroU32::new(iterations as u32).unwrap(),
&salt,
&data,
&mut bytes,
);
heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
bytes
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
)
};
unify!(self.machine_st, self.machine_st.registers[4], ints_list);
}
#[inline(always)]
pub(crate) fn crypto_data_encrypt(&mut self) {
let encoding = cell_as_atom!(self.machine_st.registers[3]);
let data = self.string_encoding_bytes(self.machine_st.registers[1], encoding);
let aad = self.string_encoding_bytes(self.machine_st.registers[2], encoding);
let stub2_gen = || functor_stub(atom!("crypto_data_encrypt"), 7);
let key = self.machine_st.integers_to_bytevec(self.machine_st.registers[4], stub2_gen);
let stub3_gen = || functor_stub(atom!("crypto_data_encrypt"), 7);
let iv = self.machine_st.integers_to_bytevec(self.machine_st.registers[5], stub3_gen);
let unbound_key = aead::UnboundKey::new(&aead::CHACHA20_POLY1305, &key).unwrap();
let nonce = aead::Nonce::try_assume_unique_for_key(&iv).unwrap();
let key = aead::LessSafeKey::new(unbound_key);
let mut in_out = data;
let tag = match key.seal_in_place_separate_tag(
nonce,
aead::Aad::from(aad),
&mut in_out,
) {
Ok(d) => d,
_ => {
self.machine_st.fail = true;
return;
}
};
let tag_list = heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
tag.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
);
let complete_string = {
let buffer = String::from_iter(in_out.iter().map(|b| *b as char));
if buffer.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&buffer))
}
};
unify!(self.machine_st, self.machine_st.registers[6], tag_list);
unify!(self.machine_st, self.machine_st.registers[7], complete_string);
}
#[inline(always)]
pub(crate) fn crypto_data_decrypt(&mut self) {
let data = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
let encoding = cell_as_atom!(self.machine_st.registers[5]);
let aad = self.string_encoding_bytes(self.machine_st.registers[2], encoding);
let stub1_gen = || functor_stub(atom!("crypto_data_decrypt"), 7);
let key = self.machine_st.integers_to_bytevec(self.machine_st.registers[3], stub1_gen);
let stub2_gen = || functor_stub(atom!("crypto_data_decrypt"), 7);
let iv = self.machine_st.integers_to_bytevec(self.machine_st.registers[4], stub2_gen);
let unbound_key = aead::UnboundKey::new(&aead::CHACHA20_POLY1305, &key).unwrap();
let nonce = aead::Nonce::try_assume_unique_for_key(&iv).unwrap();
let key = aead::LessSafeKey::new(unbound_key);
let mut in_out = data;
let complete_string = {
let decrypted_data =
match key.open_in_place(nonce, aead::Aad::from(aad), &mut in_out) {
Ok(d) => d,
_ => {
self.machine_st.fail = true;
return;
}
};
let buffer = match encoding {
atom!("octet") => String::from_iter(decrypted_data.iter().map(|b| *b as char)),
atom!("utf8") => match String::from_utf8(decrypted_data.to_vec()) {
Ok(str) => str,
_ => {
self.machine_st.fail = true;
return;
}
},
_ => {
unreachable!()
}
};
if buffer.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&buffer))
}
};
unify!(self.machine_st, self.machine_st.registers[6], complete_string);
}
#[inline(always)]
pub(crate) fn crypto_curve_scalar_mult(&mut self) {
let curve = cell_as_atom!(self.machine_st.registers[1]);
let curve_id = match curve {
atom!("secp112r1") => Nid::SECP112R1,
atom!("secp256k1") => Nid::SECP256K1,
_ => {
unreachable!()
}
};
let scalar = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[2]));
let scalar = match Number::try_from(scalar) {
Ok(Number::Fixnum(n)) => Integer::from(n.get_num()),
Ok(Number::Integer(n)) => Integer::from(&*n),
_ => {
unreachable!()
}
};
let stub_gen = || functor_stub(atom!("crypto_curve_scalar_mult"), 5);
let qbytes = self.machine_st.integers_to_bytevec(self.machine_st.registers[3], stub_gen);
let mut bnctx = BigNumContext::new().unwrap();
let group = EcGroup::from_curve_name(curve_id).unwrap();
let mut point = EcPoint::from_bytes(&group, &qbytes, &mut bnctx).unwrap();
let scalar_bn = BigNum::from_dec_str(&scalar.to_string()).unwrap();
let mut result = EcPoint::new(&group).unwrap();
result.mul(&group, &mut point, &scalar_bn, &mut bnctx).ok();
let mut rx = BigNum::new().unwrap();
let mut ry = BigNum::new().unwrap();
result
.affine_coordinates_gfp(&group, &mut rx, &mut ry, &mut bnctx)
.ok();
let sx = rx.to_dec_str().unwrap();
let sx = if sx.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&sx))
};
let sy = ry.to_dec_str().unwrap();
let sy = if sy.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&sy))
};
unify!(self.machine_st, self.machine_st.registers[4], sx);
unify!(self.machine_st, self.machine_st.registers[5], sy);
}
#[inline(always)]
pub(crate) fn ed25519_new_key_pair(&mut self) {
let pkcs8_bytes = signature::Ed25519KeyPair::generate_pkcs8(rng()).unwrap();
let complete_string = {
let buffer = String::from_iter(pkcs8_bytes.as_ref().iter().map(|b| *b as char));
if buffer.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&buffer))
}
};
unify!(self.machine_st, self.machine_st.registers[1], complete_string)
}
#[inline(always)]
pub(crate) fn ed25519_key_pair_public_key(&mut self) {
let bytes = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
let key_pair = match signature::Ed25519KeyPair::from_pkcs8(&bytes) {
Ok(kp) => kp,
_ => {
self.machine_st.fail = true;
return;
}
};
let complete_string = {
let buffer = String::from_iter(
key_pair.public_key().as_ref().iter().map(|b| *b as char),
);
if buffer.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&buffer))
}
};
unify!(self.machine_st, self.machine_st.registers[2], complete_string);
}
#[inline(always)]
pub(crate) fn ed25519_sign(&mut self) {
let key = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
let encoding = cell_as_atom!(self.machine_st.registers[3]);
let data = self.string_encoding_bytes(self.machine_st.registers[2], encoding);
let key_pair = match signature::Ed25519KeyPair::from_pkcs8(&key) {
Ok(kp) => kp,
_ => {
self.machine_st.fail = true;
return;
}
};
let sig = key_pair.sign(&data);
let sig_list = heap_loc_as_cell!(
iter_to_heap_list(
&mut self.machine_st.heap,
sig.as_ref()
.iter()
.map(|b| fixnum_as_cell!(Fixnum::build_with(*b as i64))),
)
);
unify!(self.machine_st, self.machine_st.registers[4], sig_list);
}
#[inline(always)]
pub(crate) fn ed25519_verify(&mut self) {
let key = self.string_encoding_bytes(self.machine_st.registers[1], atom!("octet"));
let encoding = cell_as_atom!(self.machine_st.registers[3]);
let data = self.string_encoding_bytes(self.machine_st.registers[2], encoding);
let stub_gen = || functor_stub(atom!("ed25519_verify"), 5);
let signature = self.machine_st.integers_to_bytevec(self.machine_st.registers[4], stub_gen);
let peer_public_key = signature::UnparsedPublicKey::new(&signature::ED25519, &key);
match peer_public_key.verify(&data, &signature) {
Ok(_) => {}
_ => {
self.machine_st.fail = true;
}
}
}
#[inline(always)]
pub(crate) fn curve25519_scalar_mult(&mut self) {
let stub1_gen = || functor_stub(atom!("curve25519_scalar_mult"), 3);
let scalar_bytes = self.machine_st.integers_to_bytevec(self.machine_st.registers[1], stub1_gen);
let scalar = Scalar(<[u8; 32]>::try_from(&scalar_bytes[..]).unwrap());
let stub2_gen = || functor_stub(atom!("curve25519_scalar_mult"), 3);
let point_bytes = self.machine_st.integers_to_bytevec(self.machine_st.registers[2], stub2_gen);
let point = GroupElement(<[u8; 32]>::try_from(&point_bytes[..]).unwrap());
let result = scalarmult(&scalar, &point).unwrap();
let string = String::from_iter(result[..].iter().map(|b| *b as char));
let cstr = if string.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&string))
};
unify!(self.machine_st, self.machine_st.registers[3], cstr);
}
#[inline(always)]
pub(crate) fn first_non_octet(&mut self) {
let addr = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
if let Some(string) = self.machine_st.value_to_str_like(addr) {
for c in string.as_str().chars() {
if c as u32 > 255 {
let non_octet = self.machine_st.atom_tbl.build_with(&c.to_string());
self.machine_st.unify_atom(non_octet, self.machine_st.registers[2]);
return;
}
}
}
self.machine_st.fail = true;
}
#[inline(always)]
pub(crate) fn load_html(&mut self) {
if let Some(string) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
let doc = select::document::Document::from_read(string.as_str().as_bytes()).unwrap();
let result = self.html_node_to_term(doc.nth(0).unwrap());
unify!(self.machine_st, self.machine_st.registers[2], result);
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn load_xml(&mut self) {
if let Some(string) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match roxmltree::Document::parse(string.as_str()) {
Ok(doc) => {
let result = self.xml_node_to_term(doc.root_element());
unify!(self.machine_st, self.machine_st.registers[2], result);
}
_ => {
self.machine_st.fail = true;
}
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn get_env(&mut self) {
if let Some(key) = self.machine_st.value_to_str_like(self.machine_st.registers[1]) {
match env::var(key.as_str()) {
Ok(value) => {
let cstr = put_complete_string(
&mut self.machine_st.heap,
&value,
&mut self.machine_st.atom_tbl,
);
unify!(self.machine_st, self.machine_st.registers[2], cstr);
}
_ => {
self.machine_st.fail = true;
}
}
} else {
self.machine_st.fail = true;
}
}
#[inline(always)]
pub(crate) fn set_env(&mut self) {
let key = self.machine_st.value_to_str_like(self.machine_st.registers[1]).unwrap();
let value = self.machine_st.value_to_str_like(self.machine_st.registers[2]).unwrap();
env::set_var(key.as_str(), value.as_str());
}
#[inline(always)]
pub(crate) fn unset_env(&mut self) {
let key = self.machine_st.value_to_str_like(self.machine_st.registers[1]).unwrap();
env::remove_var(key.as_str());
}
#[inline(always)]
pub(crate) fn pid(&mut self) {
let pid = process::id();
match fixnum!(Number, pid as i64, &mut self.machine_st.arena) {
Number::Fixnum(pid) => {
self.machine_st.unify_fixnum(pid, self.machine_st.registers[1]);
}
Number::Integer(pid) => {
self.machine_st.unify_big_int(pid, self.machine_st.registers[1]);
}
_ => {
unreachable!();
}
}
}
#[inline(always)]
pub(crate) fn shell(&mut self) {
// shell executes a command in a system shell
// the code looks for a SHELL env var to do it in a UNIX-style
// if not found, the code looks for COMSPEC env var to do it in a DOS-style
// the output is printed directly to stdout
// the output status code is returned after finishing
fn command_result(machine: &mut MachineState, command: std::io::Result<process::ExitStatus>) {
match command {
Ok(status) => {
match status.code() {
Some(code) => {
let code = integer_as_cell!(Number::arena_from(code, &mut machine.arena));
unify!(machine, code, machine.registers[2]);
}
_ => {
machine.fail = true;
}
}
}
_ => {
machine.fail = true;
}
}
}
let command = self.machine_st.value_to_str_like(
self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]))
).unwrap();
match env::var("SHELL") {
Ok(value) => {
let command = process::Command::new(&value)
.arg("-c")
.arg(command.as_str())
.status();
command_result(&mut self.machine_st, command);
}
_ => {
match env::var("COMSPEC") {
Ok(value) => {
let command = process::Command::new(&value)
.arg("/C")
.arg(command.as_str())
.status();
command_result(&mut self.machine_st, command);
}
_ => {
self.machine_st.fail = true;
}
}
}
};
}
#[inline(always)]
pub(crate) fn chars_base64(&mut self) -> CallResult {
let padding = cell_as_atom!(self.machine_st.registers[3]);
let charset = cell_as_atom!(self.machine_st.registers[4]);
let config = if padding == atom!("true") {
if charset == atom!("standard") {
base64::STANDARD
} else {
base64::URL_SAFE
}
} else {
if charset == atom!("standard") {
base64::STANDARD_NO_PAD
} else {
base64::URL_SAFE_NO_PAD
}
};
if self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1])).is_var() {
let b64 = self.machine_st.value_to_str_like(self.machine_st.registers[2]).unwrap();
let bytes = base64::decode_config(b64.as_str(), config);
match bytes {
Ok(bs) => {
let string = String::from_iter(bs.iter().map(|b| *b as char));
let cstr = if string.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&string))
};
unify!(self.machine_st, self.machine_st.registers[1], cstr);
}
_ => {
self.machine_st.fail = true;
return Ok(());
}
}
} else {
let mut bytes = vec![];
for c in self.machine_st.value_to_str_like(self.machine_st.registers[1]).unwrap().as_str().chars() {
if c as u32 > 255 {
let stub = functor_stub(atom!("chars_base64"), 3);
let err = self.machine_st.type_error(
ValidType::Byte,
char_as_cell!(c),
);
return Err(self.machine_st.error_form(err, stub));
}
bytes.push(c as u8);
}
let b64 = base64::encode_config(bytes, config);
let cstr = if b64.len() == 0 {
empty_list_as_cell!()
} else {
atom_as_cstr_cell!(self.machine_st.atom_tbl.build_with(&b64))
};
unify!(self.machine_st, self.machine_st.registers[2], cstr);
}
Ok(())
}
#[inline(always)]
pub(crate) fn load_library_as_stream(&mut self) -> CallResult {
let library_name = cell_as_atom!(self.machine_st.store(self.machine_st.deref(
self.machine_st.registers[1]
)));
use crate::machine::LIBRARIES;
match LIBRARIES.borrow().get(library_name.as_str()) {
Some(library) => {
let lib_stream = Stream::from_static_string(library, &mut self.machine_st.arena);
unify!(self.machine_st, stream_as_cell!(lib_stream), self.machine_st.registers[2]);
let mut path_buf = machine::current_dir();
path_buf.push("/lib");
path_buf.push(library_name.as_str());
let library_path_str = path_buf.to_str().unwrap();
let library_path = self.machine_st.atom_tbl.build_with(library_path_str);
self.machine_st.unify_atom(library_path, self.machine_st.registers[3]);
}
None => {
let stub = functor_stub(atom!("load"), 1);
let err = self.machine_st.existence_error(
ExistenceError::ModuleSource(ModuleSource::Library(library_name))
);
return Err(self.machine_st.error_form(err, stub));
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn devour_whitespace(&mut self) -> CallResult {
let stream = self.machine_st.get_stream_or_alias(
self.machine_st.registers[1],
&self.indices.stream_aliases,
atom!("$devour_whitespace"),
1,
)?;
match self.machine_st.devour_whitespace(stream) {
Ok(false) => { // not at EOF.
}
_ => {
self.machine_st.fail = true;
}
}
Ok(())
}
#[inline(always)]
pub(crate) fn is_sto_enabled(&mut self) {
if self.machine_st.unify_fn as usize == MachineState::unify_with_occurs_check as usize {
self.machine_st.unify_atom(atom!("true"), self.machine_st.registers[1]);
} else if self.machine_st.unify_fn as usize
== MachineState::unify_with_occurs_check_with_error as usize
{
self.machine_st.unify_atom(atom!("error"), self.machine_st.registers[1]);
} else {
self.machine_st.unify_atom(atom!("false"), self.machine_st.registers[1]);
}
}
#[inline(always)]
pub(crate) fn set_sto_as_unify(&mut self) {
self.machine_st.unify_fn = MachineState::unify_with_occurs_check;
self.machine_st.bind_fn = MachineState::bind_with_occurs_check_wrapper;
}
#[inline(always)]
pub(crate) fn set_nsto_as_unify(&mut self) {
self.machine_st.unify_fn = MachineState::unify;
self.machine_st.bind_fn = MachineState::bind;
}
#[inline(always)]
pub(crate) fn set_sto_with_error_as_unify(&mut self) {
self.machine_st.unify_fn = MachineState::unify_with_occurs_check_with_error;
self.machine_st.bind_fn = MachineState::bind_with_occurs_check_with_error_wrapper;
}
#[inline(always)]
pub(crate) fn home_directory(&mut self) {
let path = match dirs_next::home_dir() {
Some(path) => path,
None => {
self.machine_st.fail = true;
return;
}
};
if path.is_dir() {
if let Some(path) = path.to_str() {
let path_string = put_complete_string(
&mut self.machine_st.heap,
path,
&mut self.machine_st.atom_tbl,
);
unify!(self.machine_st, self.machine_st.registers[1], path_string);
return;
}
}
self.machine_st.fail = true;
}
pub(crate) fn debug_hook(&mut self) {
}
#[inline(always)]
pub(crate) fn pop_count(&mut self) {
let number = self.machine_st.store(self.machine_st.deref(self.machine_st.registers[1]));
let pop_count = integer_as_cell!(match Number::try_from(number) {
Ok(Number::Fixnum(n)) => {
Number::Fixnum(Fixnum::build_with(n.get_num().count_ones() as i64))
}
Ok(Number::Integer(n)) => {
Number::arena_from(n.count_ones().unwrap(), &mut self.machine_st.arena)
}
_ => {
unreachable!()
}
});
unify!(self.machine_st, self.machine_st.registers[2], pop_count);
}
pub(super) fn systemtime_to_timestamp(&mut self, system_time: SystemTime) -> Atom {
let datetime: DateTime<Local> = system_time.into();
let mut fstr = "[".to_string();
const SPECIFIERS: [char; 19] = [
'Y', 'm', 'd', 'H', 'M', 'S', 'y', 'b', 'B', 'a', 'A', 'w', 'u', 'U', 'W', 'j', 'D',
'x', 'v',
];
for spec in SPECIFIERS {
fstr.push_str(&format!("'{}'=\"%{}\", ", spec, spec).to_string());
}
fstr.push_str("finis].");
let s = datetime.format(&fstr).to_string();
self.machine_st.atom_tbl.build_with(&s)
}
pub(super) fn string_encoding_bytes(&mut self, data_arg: HeapCellValue, encoding: Atom) -> Vec<u8> {
let data = self.machine_st.value_to_str_like(data_arg).unwrap();
match encoding {
atom!("utf8") => data.as_str().bytes().collect(),
atom!("octet") => data.as_str().chars().map(|c| c as u8).collect(),
_ => {
unreachable!()
}
}
}
pub(super) fn xml_node_to_term(&mut self, node: roxmltree::Node) -> HeapCellValue {
if node.is_text() {
put_complete_string(
&mut self.machine_st.heap,
node.text().unwrap(),
&mut self.machine_st.atom_tbl,
)
} else {
let mut avec = Vec::new();
for attr in node.attributes() {
let name = self.machine_st.atom_tbl.build_with(attr.name());
let value = put_complete_string(
&mut self.machine_st.heap,
&attr.value(),
&mut self.machine_st.atom_tbl,
);
avec.push(str_loc_as_cell!(self.machine_st.heap.len()));
self.machine_st.heap.push(atom_as_cell!(atom!("="), 2));
self.machine_st.heap.push(atom_as_cell!(name));
self.machine_st.heap.push(value);
}
let attrs = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, avec.into_iter())
);
let mut cvec = Vec::new();
for child in node.children() {
cvec.push(self.xml_node_to_term(child));
}
let children = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, cvec.into_iter())
);
let tag = self.machine_st.atom_tbl.build_with(node.tag_name().name());
let result = str_loc_as_cell!(self.machine_st.heap.len());
self.machine_st.heap.push(atom_as_cell!(atom!("element"), 3));
self.machine_st.heap.push(atom_as_cell!(tag));
self.machine_st.heap.push(attrs);
self.machine_st.heap.push(children);
result
}
}
pub(super) fn html_node_to_term(&mut self, node: select::node::Node) -> HeapCellValue {
match node.name() {
None => {
put_complete_string(
&mut self.machine_st.heap,
&node.text(),
&mut self.machine_st.atom_tbl,
)
}
Some(name) => {
let mut avec = Vec::new();
for attr in node.attrs() {
let name = self.machine_st.atom_tbl.build_with(attr.0);
let value = put_complete_string(
&mut self.machine_st.heap,
&attr.1,
&mut self.machine_st.atom_tbl,
);
avec.push(str_loc_as_cell!(self.machine_st.heap.len()));
self.machine_st.heap.push(atom_as_cell!(atom!("="), 2));
self.machine_st.heap.push(atom_as_cell!(name));
self.machine_st.heap.push(value);
}
let attrs = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, avec.into_iter())
);
let mut cvec = Vec::new();
for child in node.children() {
cvec.push(self.html_node_to_term(child));
}
let children = heap_loc_as_cell!(
iter_to_heap_list(&mut self.machine_st.heap, cvec.into_iter())
);
let tag = self.machine_st.atom_tbl.build_with(name);
let result = str_loc_as_cell!(self.machine_st.heap.len());
self.machine_st.heap.push(atom_as_cell!(atom!("element"), 3));
self.machine_st.heap.push(atom_as_cell!(tag));
self.machine_st.heap.push(attrs);
self.machine_st.heap.push(children);
result
}
}
}
}
fn rng() -> &'static dyn SecureRandom {
use std::ops::Deref;
lazy_static! {
static ref RANDOM: SystemRandom = SystemRandom::new();
}
RANDOM.deref()
}
struct MyKey<T: core::fmt::Debug + PartialEq>(T);
impl hkdf::KeyType for MyKey<usize> {
fn len(&self) -> usize {
self.0
}
}