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Section 7 of the paper interprets stored netlists; this module stores the
paper's own construction. A microprogram of records implements the SUBLEQ
transducer of Definitions 2.9 and 3.1 over a 128-byte memory, with the tape,
the output word, the head and the write pointer all held in signals of the
interpreter, and runs the constructor P on a recipe. One pass of the record
region is one SUBLEQ step: fetch, subtract, write back, apply the device,
branch. Nothing outside U takes part, not even U's own output device.
The program is P with its variable and device cells moved from the top of a
256-byte memory to the top of a 128-byte one, which is the same program: every
address it names is a datum, and the branch targets are unchanged.
python src/hosted_constructor.py [--target-bytes N]
"""
from __future__ import annotations
import argparse
import json
import os
import sys
import time
from typing import Dict, List, Tuple
sys.path.insert(0, os.path.dirname(os.path.abspath(__file__)))
import torch
from reflect import (Cfg, Leveled, build_net, encode_netlist, state_to_vec,
to_bits)
from selfrep import P, describe, decode
REPO = os.path.dirname(os.path.dirname(os.path.abspath(__file__)))
MEM_BYTES = 128
ADDR = 7 # address bits of the hosted machine
def remap(x: int) -> int:
"""Move a cell of the 256-byte memory to the same offset from the top of a
128-byte one."""
return x - 0x80 if x >= 0xF0 else x
P128 = [(remap(a), remap(b), remap(c)) for a, b, c in P]
Z, ONE, T1, T2, NEG1, EOK = 0x70, 0x71, 0x72, 0x73, 0x74, 0x75
C_WR, C_EOT, C_RW, C_RD, R_IN, R_OUT = 0x79, 0x7A, 0x7B, 0x7C, 0x7D, 0x7E
HALT_PC = 0x7F
def image128() -> List[int]:
mem = [0] * MEM_BYTES
for idx, (a, b, c) in enumerate(P128):
mem[idx * 3] = a
mem[idx * 3 + 1] = b
mem[idx * 3 + 2] = c
mem[ONE] = 1
mem[NEG1] = 0xFF
mem[EOK] = 1
return mem
def reference128(mem0: List[int], tape: bytes, max_steps: int = 1 << 22):
"""The transducer of Definitions 2.9 and 3.1 on a 128-byte memory."""
mem = list(mem0)
out = bytearray()
h = 0
pc = 0
n = 0
while pc != HALT_PC and n < max_steps:
A = mem[pc % MEM_BYTES]
B = mem[(pc + 1) % MEM_BYTES]
C = mem[(pc + 2) % MEM_BYTES]
r = (mem[B % MEM_BYTES] - mem[A % MEM_BYTES]) & 0xFF
mem[B % MEM_BYTES] = r
pc = C % MEM_BYTES if (r == 0 or r >= 0x80) else (pc + 3) % MEM_BYTES
if mem[C_WR] == 1:
out.append(mem[R_OUT])
mem[R_OUT] = 0
if mem[C_RD] == 1:
if h < len(tape):
mem[R_IN] = tape[h]
mem[C_EOT] = 0
h += 1
else:
mem[C_EOT] = 1
if mem[C_RW] == 1:
h = 0
mem[C_WR] = mem[C_RD] = mem[C_RW] = 0
n += 1
return bytes(out), n, mem, h
# =============================================================================
# the microprogram
# =============================================================================
class Micro:
"""Records, with work signals allocated as they are named."""
def __init__(self, cfg, work_base: int, work_max: int):
self.cfg = cfg
self.recs: List[Tuple[List[Tuple[int, int, int]], int, Tuple[int, int]]] = []
self.next = work_base
self.limit = work_base + work_max
self.named: Dict[str, int] = {}
def sig(self, name: str = None) -> int:
s = self.next
self.next += 1
if self.next > self.limit:
raise ValueError("work signals exhausted")
if name:
self.named[name] = s
return s
def reg(self, name: str, width: int) -> List[int]:
r = [self.sig() for _ in range(width)]
self.named[name] = r[0]
return r
def emit(self, slots, bias, out):
self.recs.append((slots, bias, out))
# --- one-record primitives ------------------------------------------
def const(self, dst, v):
self.emit([], 0 if v else -1, (dst, 0))
def copy(self, dst, src):
self.emit([(src, 1, 0)], -1, (dst, 0))
def not_(self, dst, src):
self.emit([(src, -1, 0)], 0, (dst, 0))
def and2(self, dst, a, b, na=False, nb=False):
wa, wb = (-1 if na else 1), (-1 if nb else 1)
bias = -((0 if na else 1) + (0 if nb else 1))
self.emit([(a, wa, 0), (b, wb, 0)], bias, (dst, 0))
def or2(self, dst, a, b):
self.emit([(a, 1, 0), (b, 1, 0)], -1, (dst, 0))
def read_idx(self, dst, base):
"""dst <- sig[base + PTR]."""
self.emit([(base, 1, 1)], -1, (dst, 0))
def write_idx(self, base, src):
"""sig[base + PTR] <- src."""
self.emit([(src, 1, 0)], -1, (base, 1))
def write_idx_and(self, base, src, gate, ngate=False):
"""sig[base + PTR] <- src AND gate (or src AND NOT gate)."""
wg = -1 if ngate else 1
bias = -1 if ngate else -2
self.emit([(src, 1, 0), (gate, wg, 0)], bias, (base, 1))
# --- small cells ------------------------------------------------------
def xor(self, dst, a, b):
t1, t2 = self.sig(), self.sig()
self.or2(t1, a, b)
self.emit([(a, -1, 0), (b, -1, 0)], 1, (t2, 0)) # NAND
self.and2(dst, t1, t2)
def mux(self, dst, sel, x1, x0):
ns, a1, a0 = self.sig(), self.sig(), self.sig()
self.not_(ns, sel)
self.and2(a1, x1, sel)
self.and2(a0, x0, ns)
self.or2(dst, a1, a0)
def and_lits(self, dst, lits):
"""dst <- conjunction of literals (signal, want) via a binary tree."""
level = []
i = 0
while i < len(lits):
if i + 1 < len(lits):
(sa, wa), (sb, wb) = lits[i], lits[i + 1]
t = self.sig()
self.and2(t, sa, sb, na=not wa, nb=not wb)
level.append(t)
i += 2
else:
sa, wa = lits[i]
t = self.sig()
if wa:
self.copy(t, sa)
else:
self.not_(t, sa)
level.append(t)
i += 1
while len(level) > 1:
nxt = []
for j in range(0, len(level) - 1, 2):
last = len(level) == 2
t = dst if last else self.sig()
self.and2(t, level[j], level[j + 1])
nxt.append(t)
if len(level) % 2:
nxt.append(level[-1])
level = nxt
if level[0] != dst:
self.copy(dst, level[0])
def incr_gated(self, reg, gate):
"""reg <- reg + gate, on len(reg) bits, least significant first."""
carries = [gate]
for k in range(len(reg) - 1):
c = self.sig()
self.and2(c, reg[k], carries[k])
carries.append(c)
for k in range(len(reg)):
self.xor(reg[k], reg[k], carries[k])
def add_const(self, dst, src, c):
"""dst <- src + c on len(src) bits, least significant first."""
carry = None
for k in range(len(src)):
bit = (c >> k) & 1
if bit and carry is None:
self.not_(dst[k], src[k])
carry = src[k]
elif bit:
t = self.sig()
self.xor(t, src[k], carry)
self.not_(dst[k], t)
nc = self.sig()
self.or2(nc, src[k], carry)
carry = nc
elif carry is None:
self.copy(dst[k], src[k])
else:
nc = self.sig()
self.and2(nc, src[k], carry)
self.xor(dst[k], src[k], carry)
carry = nc
def build_microprogram(cfg, mem_base, tape_base, out_base, tape_len,
work_base, work_max):
"""The records implementing one SUBLEQ step with its device."""
m = Micro(cfg, work_base, work_max)
PC = m.reg("PC", ADDR) # least significant first
P1 = m.reg("P1", ADDR)
P2 = m.reg("P2", ADDR)
P3 = m.reg("P3", ADDR)
Ab = m.reg("A", 8)
Bb = m.reg("B", 8)
Cb = m.reg("C", 8)
X = m.reg("X", 8)
Y = m.reg("Y", 8)
Rb = m.reg("R", 8)
NPC = m.reg("NPC", ADDR)
head = m.reg("head", ADDR)
wp = m.reg("wp", ADDR)
def cell(addr, bit):
"""The signal holding bit `bit` of memory cell `addr`."""
return mem_base + bit * MEM_BYTES + addr
def ptr_set(src):
"""PTR <- src, on ADDR bits; the pointer is stored most significant
first, so bit k of the value is coordinate PTR_BASE + A - 1 - k."""
for k in range(ADDR):
m.copy(cfg.PTR_BASE + cfg.A - 1 - k, src[k])
# the pointer's high bits stay zero
for k in range(ADDR, cfg.A):
m.const(cfg.PTR_BASE + cfg.A - 1 - k, 0)
m.add_const(P1, PC, 1)
m.add_const(P2, PC, 2)
m.add_const(P3, PC, 3)
for reg, src in ((Ab, PC), (Bb, P1), (Cb, P2)):
ptr_set(src)
for b in range(8):
m.read_idx(reg[b], mem_base + b * MEM_BYTES)
for reg, src in ((X, Ab), (Y, Bb)):
ptr_set(src[:ADDR])
for b in range(8):
m.read_idx(reg[b], mem_base + b * MEM_BYTES)
# R = Y - X, and the branch decision
nx = [m.sig() for _ in range(8)]
for b in range(8):
m.not_(nx[b], X[b])
carry = None
for b in range(8):
t = m.sig()
if carry is None: # carry in is 1
m.xor(t, Y[b], nx[b])
m.not_(Rb[b], t)
c = m.sig()
m.or2(c, Y[b], nx[b])
else:
m.xor(t, Y[b], nx[b])
m.xor(Rb[b], t, carry)
c1, c2, c = m.sig(), m.sig(), m.sig()
m.and2(c1, Y[b], nx[b])
m.and2(c2, t, carry)
m.or2(c, c1, c2)
carry = c
nz = m.sig()
tree = Rb[0]
for b in range(1, 8):
t = m.sig()
m.or2(t, tree, Rb[b])
tree = t
m.not_(nz, tree)
leq = m.sig()
m.or2(leq, Rb[7], nz)
# write back to M[B]
ptr_set(Bb[:ADDR])
for b in range(8):
m.write_idx(mem_base + b * MEM_BYTES, Rb[b])
# --- the device ------------------------------------------------------
wr, rd, rw = m.sig(), m.sig(), m.sig()
m.and_lits(wr, [(cell(C_WR, 0), 1)] + [(cell(C_WR, b), 0) for b in range(1, 8)])
m.and_lits(rd, [(cell(C_RD, 0), 1)] + [(cell(C_RD, b), 0) for b in range(1, 8)])
m.and_lits(rw, [(cell(C_RW, 0), 1)] + [(cell(C_RW, b), 0) for b in range(1, 8)])
# read: R_IN <- tape[head] when the head is inside the tape
ateot = m.sig()
m.and_lits(ateot, [(head[k], (tape_len >> k) & 1) for k in range(ADDR)])
inrange = m.sig()
m.not_(inrange, ateot)
g = m.sig()
m.and2(g, rd, inrange)
ptr_set(head)
tb = [m.sig() for _ in range(8)]
for b in range(8):
m.read_idx(tb[b], tape_base + b * tape_len)
for b in range(8):
m.mux(cell(R_IN, b), g, tb[b], cell(R_IN, b))
# end-of-tape status: set by a read at the end, cleared by a read inside
m.mux(cell(C_EOT, 0), rd, ateot, cell(C_EOT, 0))
for b in range(1, 8):
m.and2(cell(C_EOT, b), cell(C_EOT, b), rd, nb=True)
m.incr_gated(head, g)
for k in range(ADDR): # rewind sets the head to zero
m.and2(head[k], head[k], rw, nb=True)
# write: append R_OUT to the output word, then clear R_OUT
ptr_set(wp)
for b in range(8):
m.write_idx_and(out_base + b * tape_len, cell(R_OUT, b), wr)
for b in range(8):
m.and2(cell(R_OUT, b), cell(R_OUT, b), wr, nb=True)
m.incr_gated(wp, wr)
# the request cells are cleared at the end of every step
for b in range(8):
m.const(cell(C_WR, b), 0)
m.const(cell(C_RD, b), 0)
m.const(cell(C_RW, b), 0)
# --- branch and halt --------------------------------------------------
for k in range(ADDR):
m.mux(NPC[k], leq, Cb[k], P3[k])
m.and_lits(cfg.HALT_SIG, [(NPC[k], (HALT_PC >> k) & 1) for k in range(ADDR)])
for k in range(ADDR):
m.copy(PC[k], NPC[k])
return m
def run_records(recs, sig, cfg, max_passes):
"""Definition 7.1 applied record by record, in place.
Identical in semantics to reflect.ref_gate, and used here so that the
microprogram can be checked against the reference machine without
evaluating the interpreter's netlist.
"""
S, PB, A = cfg.S, cfg.PTR_BASE, cfg.A
for p in range(max_passes):
for slots, bias, (oa, oidx) in recs:
ptr = 0
for k in range(A):
ptr = (ptr << 1) | sig[PB + k]
acc = bias
for (a, w, idx) in slots:
acc += w * sig[(a + (ptr if idx else 0)) & (S - 1)]
sig[(oa + (ptr if oidx else 0)) & (S - 1)] = 1 if acc >= 0 else 0
if sig[cfg.HALT_SIG]:
return p + 1, True
return max_passes, False
def layout(tape_len: int, out_len: int, work_max: int = 700,
min_records: int = 1):
"""The smallest configuration with room for the microprogram and the
regions it addresses."""
for A in range(12, 22):
S = 1 << A
R = 3 * A + 11
work_base = A + 6
mem_base = work_base + work_max
tape_base = mem_base + 8 * MEM_BYTES
out_base = tape_base + 8 * tape_len
top = out_base + 8 * out_len
for G in range((S - top) // R, min_records - 1, -1):
span = S - G * R
if span >= top + 8:
return A, G, span, mem_base, tape_base, out_base, work_base
raise ValueError("no configuration is large enough")
def main() -> int:
ap = argparse.ArgumentParser()
ap.add_argument("--target", default="ABCCCCCCCCDE")
ap.add_argument("--device", default="cpu")
args = ap.parse_args()
target = args.target.encode()
tape = describe(target)
assert decode(tape) == target
tape_len = out_len = 64
assert len(tape) < tape_len and len(target) < out_len
A, G, span, mem_base, tape_base, out_base, work_base = layout(
tape_len, out_len, min_records=520)
cfg = Cfg(A=A, G=G, banks=1, self_mod=False)
assert cfg.span == span, (cfg.span, span)
m = build_microprogram(cfg, mem_base, tape_base, out_base, tape_len,
work_base, 700)
n = len(m.recs)
assert n <= G, (n, G)
print(f" hosted machine: SUBLEQ over {MEM_BYTES} bytes with the tape, the "
f"output word, the head and the write pointer in signals", flush=True)
print(f" microprogram: {n} records; interpreter U_S': S = {cfg.S}, "
f"G = {cfg.G}, b = {cfg.R}, addressed span {cfg.span}", flush=True)
print(f" regions: work {work_base}..{m.next - 1}, memory {mem_base}, "
f"tape {tape_base}, output {out_base}", flush=True)
exp_out, exp_steps, exp_mem, exp_head = reference128(image128(), tape)
assert exp_out == target, (exp_out, target)
print(f" the reference runs P on a {len(tape)}-byte recipe in "
f"{exp_steps} instructions, emitting {len(exp_out)} bytes", flush=True)
nl = encode_netlist(cfg, m.recs)
def initial_signals():
sig = [0] * cfg.S
sig[cfg.NET0:cfg.NET0 + len(nl)] = nl
mem0 = image128()
for j in range(MEM_BYTES):
for b in range(8):
sig[mem_base + b * MEM_BYTES + j] = (mem0[j] >> b) & 1
for j, byte in enumerate(tape):
for b in range(8):
sig[tape_base + b * tape_len + j] = (byte >> b) & 1
return sig
def readout(sig):
def byte_at(base, stride, j):
return sum(int(sig[base + b * stride + j]) << b for b in range(8))
return (bytes(byte_at(out_base, tape_len, j) for j in range(len(target))),
[byte_at(mem_base, MEM_BYTES, j) for j in range(MEM_BYTES)],
sum(int(sig[m.named["wp"] + k]) << k for k in range(ADDR)),
sum(int(sig[m.named["head"] + k]) << k for k in range(ADDR)))
# first at the level of Definition 7.1, record by record
t0 = time.perf_counter()
rsig = initial_signals()
rpasses, rhalted = run_records(m.recs, rsig, cfg, exp_steps + 3)
r_out, r_mem, r_wp, r_head = readout(rsig)
rec_ok = (rhalted and rpasses == exp_steps and r_out == target
and r_mem == exp_mem and r_head == exp_head)
print(f" record semantics: halted after {rpasses} passes, emitted "
f"{r_wp} bytes {r_out!r}, memory and head match the reference: "
f"{'yes' if rec_ok else 'NO'} ({time.perf_counter() - t0:.1f}s)",
flush=True)
t0 = time.perf_counter()
unet, uin, uout = build_net(cfg)
lev = Leveled(unet, uin, uout, device=args.device)
print(f" U_S' netlist: {len(unet.gates):,} units, {len(lev.plan)} layers "
f"({time.perf_counter() - t0:.0f}s)", flush=True)
V = state_to_vec(cfg, {"sig": initial_signals(), "gp": 0, "halt": 0}
).unsqueeze(0).to(args.device)
t0 = time.perf_counter()
halted_at = None
for inst in range(exp_steps + 2):
for _ in range(cfg.G):
V = lev.step(V)
if int(V[0, cfg.S + cfg.GPW]) == 1:
halted_at = inst + 1
break
if inst and inst % 20 == 0:
print(f" {inst}/{exp_steps} instructions "
f"({inst * cfg.G / (time.perf_counter() - t0):.0f} steps/s)",
flush=True)
dt = time.perf_counter() - t0
got, got_mem, wp_val, head_val = readout(V[0].cpu())
exact = got == target
mem_same = got_mem == exp_mem
print(f" ran to a halt after {halted_at} instructions "
f"({halted_at * cfg.G:,} interpreter steps, {dt / 60:.1f} min, "
f"{halted_at * cfg.G / dt:.0f} steps/s)", flush=True)
print(f" emitted {wp_val} bytes: {got!r}")
print(f" equals the target: {'yes' if exact else 'NO'}; final memory "
f"equals the reference: {'yes' if mem_same else 'NO'}; head "
f"{head_val} of {len(tape)}: "
f"{'yes' if head_val == exp_head else 'NO'}")
ok = (rec_ok and exact and mem_same and halted_at == exp_steps
and head_val == exp_head)
d = os.path.join(REPO, "paper", "runs")
os.makedirs(d, exist_ok=True)
json.dump({"records": n, "record_semantics_ok": rec_ok,
"S": cfg.S, "G": cfg.G, "b": cfg.R,
"span": cfg.span, "units": len(unet.gates),
"layers": len(lev.plan), "memory_bytes": MEM_BYTES,
"tape_bytes": len(tape), "target_bytes": len(target),
"target": target.decode(), "instructions": halted_at,
"reference_instructions": exp_steps,
"interpreter_steps": halted_at * cfg.G,
"emitted": got.decode(errors="replace"), "exact": exact,
"memory_matches_reference": mem_same, "head": head_val,
"seconds": dt, "ok": ok},
open(os.path.join(d, "paper_hosted.json"), "w"), indent=1)
print("HOSTED CONSTRUCTOR:", "PASS" if ok else "FAIL")
return 0 if ok else 1
if __name__ == "__main__":
sys.exit(main())
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