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Second metric: program validity rate (compile + run + correct value).
Third metric (M3.2): identifier recovery (declared == expected params).
Supports:
--model v01 (linear K=8)
--model k16 (linear K=16)
--model m3 (transformer K=32 D=32 L=1, 28-token)
--model m31 (transformer K=64 D=48 L=2, 28-token)
--model m32 (transformer K=64 D=48 L=2, 64-token learned codec)
For transformer generation we now left-align the real prompt tokens and
right-pad with a mask (1=real, 0=pad). Padding positions are zeroed in the
embeddings and masked out of attention, so short prompts stay in-distribution
(no more ID-token contamination). Positional embeddings for real tokens start
at 0, matching training windows.
"""
import argparse, os, sys, subprocess, tempfile, re, pickle
import numpy as np
VOCAB_TOKENS = [
'fn', 'return', 'let', 'if', 'else', 'while', 'for', 'i64',
':', ',', ';', '{', '}', '(', ')', '->',
'+', '-', '*', '/', '=', '==', '<', '<=', '>', 'println',
'ID', 'NUM',
]
V = len(VOCAB_TOKENS)
K_LITE = 'bootstrap/bin/kenga-lite.exe'
def read_header(path):
out = {}
with open(path) as f:
first = f.readline()
for tok in first.split():
if '=' in tok:
k, v = tok.split('=', 1)
try: out[k] = int(v)
except ValueError: out[k] = v
return out
def load_codec_vocab(path='minds/kenga_bpe.pkl'):
"""Load a codec token list from a pkl (bpe or digits variant)."""
with open(path, 'rb') as f:
data = pickle.load(f)
tokens = data['tokens']
merges = data['merges']
token_to_id = {t: i for i, t in enumerate(tokens)}
merge_set = set(a + b for a, b in merges)
KEYWORDS = {'fn','return','let','if','else','while','for','i64','println'}
def encode_word(w):
if w in KEYWORDS:
return [token_to_id[w]]
spellable = all(ch in token_to_id for ch in w)
if not spellable:
return [token_to_id['ID']]
toks = list(w)
changed = True
while changed:
changed = False
i = 0
while i < len(toks) - 1:
merged = toks[i] + toks[i+1]
if merged in merge_set:
toks[i:i+2] = [merged]
changed = True
i += 1
return [token_to_id[t] for t in toks]
return {
'tokens': tokens, 'token_to_id': token_to_id,
'encode_word': encode_word, 'merges': merges,
}
def tokenize(src, codec=None):
KEYWORDS = {'fn','return','let','if','else','while','for','i64','println'}
TWO_CHAR = {'->','==','<=','>=','!=','&&','||','<<','>>','&','|','^','~'}
if codec:
VOCAB_MAP = codec['token_to_id']
else:
VOCAB_MAP = {t: i for i, t in enumerate(VOCAB_TOKENS)}
out = []
i = 0
n = len(src)
while i < n:
c = src[i]
if c in ' \t\n\r': i += 1; continue
if c == '/' and i+1 < n and src[i+1] == '/':
while i < n and src[i] != '\n': i += 1
continue
two = src[i:i+2]
if two in TWO_CHAR:
out.append(VOCAB_MAP.get(two, VOCAB_MAP['ID'])); i += 2; continue
if c in (':', ',', ';', '{', '}', '(', ')', '+', '-', '*', '/', '=', '<', '>'):
if c == '-' and i+1 < n and src[i+1] == '>':
out.append(VOCAB_MAP['->']); i += 2; continue
out.append(VOCAB_MAP[c]); i += 1; continue
if c.isdigit():
j = i
while j < n and src[j].isdigit(): j += 1
if 'NUM' in VOCAB_MAP:
out.append(VOCAB_MAP['NUM']); i = j; continue
for d in src[i:j]:
out.append(VOCAB_MAP.get(d, VOCAB_MAP['ID']))
i = j; continue
if c.isalpha() or c == '_':
j = i
while j < n and (src[j].isalnum() or src[j] == '_'):
j += 1
word = src[i:j]
if codec:
out.extend(codec['encode_word'](word))
else:
out.append(VOCAB_MAP[word] if word in KEYWORDS else VOCAB_MAP['ID'])
i = j; continue
i += 1
return out
def detokenize(toks, codec=None):
"""Rebuild source text from token ids.
Codec mode: letter/merge tokens that are consecutive form a single
identifier word (syntax tokens break words). This reconstructs the exact
identifier the model emitted, e.g. [a,d,d] -> 'add'.
"""
out = []
if codec:
tokens = codec['tokens']
token_to_id = codec['token_to_id']
SYNTAX_SET = set(token_to_id[t] for t in token_to_id if t in VOCAB_TOKENS)
buf = []
for t in toks:
if t >= len(tokens):
out.append('mkid'); continue
tok = tokens[t]
if tok == 'ID':
if buf: out.append(''.join(buf)); buf = []
out.append('mkid')
elif tok == 'NUM':
if buf: out.append(''.join(buf)); buf = []
out.append('0')
elif t in SYNTAX_SET:
if buf: out.append(''.join(buf)); buf = []
out.append(tok)
else:
buf.append(tok)
if buf:
out.append(''.join(buf))
return ' '.join(out)
for t in toks:
if t < len(VOCAB_TOKENS):
tok = VOCAB_TOKENS[t]
if tok == 'ID':
out.append('mkid')
elif tok == 'NUM':
out.append('0')
else:
out.append(tok)
else:
out.append('mkid')
return ' '.join(out)
def load_weights(path):
weights = {}
with open(path) as f:
for line in f:
line = line.strip()
if not line.startswith('[v='):
continue
rb = line.find(']')
if rb < 0:
continue
name = line[1:rb].strip()
body = line[rb+1:].strip()
nums = []
for x in body.split(','):
x = x.strip()
if not x: continue
try: nums.append(int(round(float(x) / 1000.0)))
except ValueError: pass
weights[name] = np.array(nums, dtype=np.int32)
return weights
def load_tensors(path):
info = read_header(path)
scale = info.get('scale', 1000)
tensors = {}
with open(path) as f:
for line in f:
line = line.strip()
if not line.startswith('['):
continue
rb = line.find(']')
if rb < 0:
continue
name = line[1:rb].strip()
body = line[rb+1:].strip()
shape = []
si = body.find('shape=[')
if si >= 0:
si += len('shape=[')
ei = body.find(']', si)
shape = [int(x) for x in body[si:ei].split(',') if x.strip()]
body = body[ei+1:]
nums = [float(x) for x in body.split(',') if x.strip()]
arr = np.array(nums, dtype=np.float32) / scale
if shape:
arr = arr.reshape(shape)
tensors[name] = arr
return info, tensors
def m3_forward(tensors, info, x, pad_mask=None, read_pos=None):
"""Forward a batch (B, K) token ids -> logits (B, V).
pad_mask: (B, K) float, 1=real token, 0=padding. Padding positions are
zeroed in the embedding and masked out of attention.
read_pos: int or None. If None, reads logits at position K-1.
Otherwise reads logits at the given absolute position.
"""
K, D = info['k'], info['d']
H = info['h']
HEAD = info.get('head', D // H)
V = info['vocab']
L = info.get('layers', 1)
B = x.shape[0]
E_tok = tensors['E_tok']
E_pos = tensors['E_pos']
X = E_tok[x] + E_pos[np.arange(K)]
if pad_mask is not None:
X = X * pad_mask[:, :, None]
cur = X
mask = np.triu(np.ones((K, K), dtype=bool), k=1)
key_pad_mask = None
if pad_mask is not None:
key_pad_mask = (pad_mask == 0)[:, None, None, :] # (B,1,1,K)
for li in range(L):
if L == 1:
Wq, Wk, Wv, Wo = tensors['Wq'], tensors['Wk'], tensors['Wv'], tensors['Wo']
W1, b1, W2, b2 = tensors['W1'], tensors['b1'], tensors['W2'], tensors['b2']
else:
Wq = tensors[f'{li}:Wq']; Wk = tensors[f'{li}:Wk']
Wv = tensors[f'{li}:Wv']; Wo = tensors[f'{li}:Wo']
W1 = tensors[f'{li}:W1']; b1 = tensors[f'{li}:b1']
W2 = tensors[f'{li}:W2']; b2 = tensors[f'{li}:b2']
Q = cur @ Wq
K_ = cur @ Wk
V_ = cur @ Wv
q = Q.reshape(B, K, H, HEAD).transpose(0, 2, 1, 3)
k = K_.reshape(B, K, H, HEAD).transpose(0, 2, 1, 3)
v = V_.reshape(B, K, H, HEAD).transpose(0, 2, 1, 3)
scores = q @ k.transpose(0, 1, 3, 2) / np.sqrt(HEAD)
scores = scores + np.where(mask, -1e9, 0.0)
if key_pad_mask is not None:
scores = scores + np.where(key_pad_mask, -1e9, 0.0)
attn = np.exp(scores - scores.max(axis=-1, keepdims=True))
attn = attn / attn.sum(axis=-1, keepdims=True)
ctx = attn @ v
ctx = ctx.transpose(0, 2, 1, 3).reshape(B, K, D)
attn_out = cur + ctx @ Wo
h1 = np.tanh(attn_out @ W1 + b1)
h2 = h1 @ W2 + b2
cur = attn_out + h2
pos = K - 1 if read_pos is None else read_pos
last_y = cur[:, pos, :]
logits = last_y @ tensors['Wout'] + tensors['bout']
return logits
def predict_m3(tensors, info, window, temperature=None, rng=None, pad_mask=None, read_pos=None):
K = info['k']
x = np.array(window[-K:], dtype=np.int64).reshape(1, K)
logits = m3_forward(tensors, info, x, pad_mask, read_pos)[0]
if temperature:
logits = logits / temperature
logits = logits - logits.max()
exp = np.exp(logits)
probs = exp / exp.sum()
if rng is None:
rng = np.random.default_rng()
return int(rng.choice(len(probs), p=probs))
return int(np.argmax(logits))
def gen_tokens(prompt, weights_path, max_tokens=80, temperature=None, codec=None,
seed=None):
"""Generate token ids + source for a prompt.
Transformer path uses a left-aligned real-token window with right-padding
and a mask, so short prompts stay in-distribution (padding is zeroed and
masked out of attention). The mask/read_pos are tracked across steps.
seed: RNG seed for temperature sampling (None -> deterministic greedy).
"""
info = read_header(weights_path)
K = info.get('k', 8)
is_transformer = info.get('arch') == 'transformer'
if is_transformer:
_, tensors = load_tensors(weights_path)
rng = np.random.default_rng(seed if seed is not None else 1)
else:
W_dict = load_weights(weights_path)
arr_dict = {int(k_.split('=', 1)[1]): v_ for k_, v_ in W_dict.items() if k_.startswith('v=')}
if not arr_dict:
return [], ''
V_ = max(arr_dict.keys()) + 1
row0 = arr_dict[0]
W_arr = np.zeros((V_, row0.shape[0]), dtype=np.int32)
for v, arr in arr_dict.items():
W_arr[v, :arr.shape[0]] = arr[:row0.shape[0]]
toks = tokenize(prompt, codec)
ID_IDX = codec['token_to_id']['ID'] if codec else VOCAB_TOKENS.index('ID')
T_OPEN, T_CLOSE, T_LPAR, T_RPAR = (
VOCAB_TOKENS.index('{'), VOCAB_TOKENS.index('}'),
VOCAB_TOKENS.index('('), VOCAB_TOKENS.index(')'),
)
n_tokens = info['vocab'] if is_transformer else V_
def scores_fn(buf, temp):
"""Return logits over vocab for the next token after buf."""
if is_transformer:
if len(buf) >= K:
window = buf[-K:]
pad_mask = np.ones((1, K), dtype=np.float32)
read_pos = K - 1
else:
window = buf + [ID_IDX] * (K - len(buf))
pad_mask = np.zeros((1, K), dtype=np.float32)
pad_mask[0, :len(buf)] = 1.0
read_pos = len(buf) - 1
x = np.array(window, dtype=np.int64).reshape(1, K)
return m3_forward(tensors, info, x, pad_mask, read_pos)[0]
# linear path: right-align last K real tokens (legacy behaviour)
window = buf[-K:]
KV = V_ * K
feat = np.zeros(KV, dtype=np.float32)
for j, t in enumerate(window):
if 0 <= t < V_:
feat[j * V_ + t] = 1.0
logits = (feat @ W_arr[:, :KV].T + W_arr[:, KV]).astype(np.float64)
return logits
def pick(logits, temp, allowed):
if temp:
lp = logits / temp
lp = lp - lp.max()
exp = np.exp(lp)
probs = exp / exp.sum()
mask = np.full(probs.shape, -np.inf)
mask[allowed] = np.log(probs[allowed] + 1e-9)
mask = mask - mask.max()
e = np.exp(mask)
p = e / e.sum()
return int(rng.choice(len(p), p=p))
best = -1
for a in allowed:
if best < 0 or logits[a] > logits[best]:
best = a
return best
generated = []
brace = 0
paren = 0
saw_open = False
for t in toks:
if t == T_OPEN: brace += 1; saw_open = True
elif t == T_CLOSE: brace -= 1
elif t == T_LPAR: paren += 1
elif t == T_RPAR: paren -= 1
n_stmts = 0
buf = list(toks)
for step in range(max_tokens):
logits = scores_fn(buf, temperature)
allowed = list(range(n_tokens))
if brace <= 0:
allowed.remove(T_CLOSE)
if paren <= 0:
allowed.remove(T_RPAR)
nxt = pick(logits, temperature, allowed)
generated.append(nxt)
buf.append(nxt)
if nxt == T_OPEN:
brace += 1; saw_open = True
elif nxt == T_CLOSE:
brace -= 1
elif nxt == T_LPAR:
paren += 1
elif nxt == T_RPAR:
paren -= 1
if len(generated) > 4 and brace == 0 and paren == 0:
db = detokenize(buf, codec)
if 'fn main' in db:
idx = db.index('fn main')
if db.find('}', idx) != -1:
break
return generated, detokenize(generated, codec)
def run_via_kenga_lite(source, workdir='minds/_kenchat', timeout=60):
os.makedirs(workdir, exist_ok=True)
f = tempfile.NamedTemporaryFile(mode='w', suffix='.kenga', delete=False,
dir=workdir, encoding='utf-8', newline='')
f.write(source)
f.close()
try:
result = subprocess.run(
[K_LITE, 'run', f.name],
capture_output=True, text=True, timeout=timeout,
)
return result.returncode, result.stdout, result.stderr
except subprocess.TimeoutExpired:
return -1, '', 'timeout'
except Exception as e:
return -2, '', str(e)
finally:
os.unlink(f.name)
def gen_verified(prompt, weights_path, codec=None, n_samples=16, max_tokens=200,
temperature=1.0, want=None):
"""Self-consistency generation: sample n candidates, return the first that
compiles, runs (rc==0) and, if want is given, prints the expected value.
Falls back to the first runnable candidate (or last candidate) otherwise.
Returns (tokens, src, full_program, rc, out, err).
"""
first_runnable = None
last = None
for i in range(n_samples):
toks, src = gen_tokens(prompt, weights_path, max_tokens=max_tokens,
temperature=temperature, codec=codec, seed=i)
full = make_valid_program(prompt, src)
rc, out, err = run_via_kenga_lite(full)
last = (toks, src, full, rc, out, err)
if rc == 0:
if first_runnable is None:
first_runnable = last
if want is None:
return last
first = out.strip().split('\n')[0] if out else ''
if first == want:
return last
return first_runnable if first_runnable is not None else last
PROBES = [
("fn add", "5", {'a', 'b'}),
("fn sub", "7", {'a', 'b'}),
("fn mul", "42", {'a', 'b'}),
("fn fact", "120", {'n'}),
("fn fib", "21", {'n'}),
("fn max", "7", {'a', 'b'}),
("fn sqr", "81", {'x'}),
("fn pow", "1024", {'a', 'b'}),
("fn sumto", "55", {'n'}),
]
def make_valid_program(prompt, generated_source):
if (prompt and prompt[-1] not in ' \t\n'
and generated_source and generated_source[0] not in ' \t\n('):
src = prompt + ' ' + generated_source
else:
src = prompt + generated_source
if 'fn main' not in src:
src = src + '\nfn main() -> i64 { println(0); return 0; }\n'
else:
src = src + '\n'
return src
def declared_params(src):
"""Extract declared param identifiers of the FIRST fn in src (set)."""
m = re.search(r'fn\s+\w+\s*\(([^)]*)\)', src)
if not m:
return None
params = set()
for chunk in m.group(1).split(','):
chunk = chunk.strip()
mm = re.match(r'([a-zA-Z_]\w*)\s*:', chunk)
if mm:
params.add(mm.group(1))
return params
def main():
ap = argparse.ArgumentParser()
ap.add_argument('prompt', nargs='?', help='generate from prompt')
ap.add_argument('--probe', action='store_true', help='run all 9 probes')
ap.add_argument('--model', default='v01',
help='v01 (K=8), k16 (K=16), m3 (K=32), m31 (K=64 L=2), '
'm32 (K=64 L=2, 64-token codec), '
'm33 (K=64 L=2, 64-token codec, seeds-in-train), '
'm34 (K=64 L=2, 64-token codec, seeds-in-train x20), '
'm35 (K=64 L=2, 64-token codec, seeds-dominate x300)')
ap.add_argument('--max-tokens', type=int, default=80)
ap.add_argument('--temperature', type=float, default=None,
help='sample with temperature (default: greedy argmax)')
ap.add_argument('--verify', type=int, default=0,
help='self-consistency: sample N candidates, pick first that runs (rc==0)')
args = ap.parse_args()
codec = None
if args.model == 'v01':
weights_path = 'minds/mid_prophet_m2_big_w.txt'
label = 'kenga-prophet m2 v0.1 K=8'
elif args.model == 'k16':
weights_path = 'minds/mid_prophet_m2_k16_w.txt'
label = 'kenga-prophet m2.1 K=16'
elif args.model == 'm3':
weights_path = 'minds/mid_prophet_m3_w.txt'
label = 'kenga-prophet m3 transformer K=32'
elif args.model == 'm31':
weights_path = 'minds/mid_prophet_m31_w.txt'
label = 'kenga-prophet m3.1 transformer K=64 D=48 L=2'
elif args.model == 'm32':
weights_path = 'minds/mid_prophet_m32_w.txt'
label = 'kenga-prophet m3.2 transformer K=64 D=48 L=2 (64-token codec)'
codec = load_codec_vocab()
elif args.model == 'm33':
weights_path = 'minds/mid_prophet_m33_w.txt'
label = 'kenga-prophet m3.3 transformer K=64 D=48 L=2 (64-token codec, seeds-in-train)'
codec = load_codec_vocab()
elif args.model == 'm34':
weights_path = 'minds/mid_prophet_m34_w.txt'
label = 'kenga-prophet m3.4 transformer K=64 D=48 L=2 (64-token codec, seeds-in-train x20)'
codec = load_codec_vocab()
elif args.model == 'm35':
weights_path = 'minds/mid_prophet_m35_w.txt'
label = 'kenga-prophet m3.5 transformer K=64 D=48 L=2 (64-token codec, seeds-dominate x300)'
codec = load_codec_vocab()
elif args.model == 'm36':
weights_path = 'minds/mid_prophet_m36_w.txt'
label = 'kenga-prophet m3.6 transformer K=64 D=48 L=2 (64-token codec, per-position causal LM, seeds x300)'
codec = load_codec_vocab()
elif args.model == 'm37':
weights_path = 'minds/mid_prophet_m37_w.txt'
label = 'kenga-prophet m3.7 transformer K=64 D=48 L=2 (73-token digit codec, per-position causal LM, seeds x300)'
codec = load_codec_vocab('minds/kenga_digits.pkl')
elif args.model == 'm40':
weights_path = 'minds/mid_prophet_m40_w.txt'
label = 'kenga-prophet m4.0 transformer K=64 D=128 H=8 L=6 (128-token full codec, 830K params, full corpus incl big)'
codec = load_codec_vocab('minds/kenga_full.pkl')
elif args.model == 'm41':
weights_path = 'minds/mid_prophet_m41_w.txt'
label = 'kenga-prophet m4.1 transformer K=64 D=128 H=8 L=6 (128-token full codec, seeds x30, real code dominant)'
codec = load_codec_vocab('minds/kenga_full.pkl')
elif args.model == 'm42':
weights_path = 'minds/mid_prophet_m42_w.txt'
label = 'kenga-prophet m4.2 transformer K=128 D=128 H=8 L=6 (128-token full codec, 838K params, seeds x30)'
codec = load_codec_vocab('minds/kenga_full.pkl')
else:
print('unknown model', file=sys.stderr); sys.exit(1)
print(f'using model: {label}')
if args.prompt:
toks, src = gen_tokens(args.prompt, weights_path, args.max_tokens,
args.temperature, codec)
full = make_valid_program(args.prompt, src)
print('=== generated program ===')
print(full)
rc, out, err = run_via_kenga_lite(full)
print(f'=== run rc={rc} ===')
if out: print('stdout:', out.strip()[:200])
if err: print('stderr:', err.strip()[:200])
return 0
if not args.probe and not args.prompt:
ap.print_help(); return 1
print('=== program-validity probe (kenga-lite driven) ===')
n_compile = 0; n_run = 0; n_correct = 0; n_recover = 0
for prompt, want, exp_ids in PROBES:
if args.verify:
_, src, full, rc, out, err = gen_verified(
prompt, weights_path, codec, n_samples=args.verify,
max_tokens=args.max_tokens, temperature=1.0, want=want)
else:
_, src = gen_tokens(prompt, weights_path, args.max_tokens,
args.temperature, codec)
full = make_valid_program(prompt, src)
rc, out, err = run_via_kenga_lite(full)
first = out.strip().split('\n')[0] if out else ''
ok_compile = rc in (0, 2)
ok_run = rc == 0
ok_value = first == want
declared = declared_params(src)
ok_recover = declared is not None and declared == exp_ids
print(f'prompt={prompt!r:12s} want={want:>5} rc={rc:<3} out={first[:20]:<20} compile={ok_compile} run={ok_run} match={ok_value} ids={sorted(declared) if declared else None} recover={ok_recover}')
if ok_compile: n_compile += 1
if ok_run: n_run += 1
if ok_value: n_correct += 1
if ok_recover: n_recover += 1
total = len(PROBES)
print()
sys.stdout.write('compile-ok: ' + str(n_compile) + '/' + str(total) + ' = %.1f%%\n' % (n_compile*100/total))
sys.stdout.write('run-ok: ' + str(n_run) + '/' + str(total) + ' = %.1f%%\n' % (n_run*100/total))
sys.stdout.write('match value: ' + str(n_correct) + '/' + str(total) + ' = %.1f%%\n' % (n_correct*100/total))
sys.stdout.write('id-recovery: ' + str(n_recover) + '/' + str(total) + ' = %.1f%%\n' % (n_recover*100/total))
sys.stdout.flush()
return 0
if __name__ == '__main__':
sys.exit(main()) |