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1e214ed | 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 | """eval_eim.py - does the system REALLY get better? Fixed problems, same settings, results kept per version.
python eval_eim.py --check validate the problem set itself (no model needed)
python eval_eim.py --label v3 run every problem with the real model, append the result to eval_history.jsonl
python eval_eim.py --compare compare the last two runs (or: --compare v2 v3)
python eval_eim.py --selftest tests of this script (no model, no network)
Options: --iterations 4 --candidates 3 --problems my_problems.json --with-memory
Fair-comparison rules built in
* the learned memory and the repair log are OFF by default (--with-memory turns them on). Otherwise the engine would
learn from the very problems it is graded on and the number would only measure memorisation.
* the result cache is disabled, so repeated runs really run.
* the hidden-test split is the engine's own: a problem counts as solved only if the visible AND hidden tests pass.
* with few problems, one flipped problem is a big swing; the comparison prints a 95% interval and says so.
Own problems: a JSON list of {"id", "task", "tests": [at least 5 asserts], "reference": "<correct code>",
"initial_code": "<optional buggy code>"}. `--check` proves the reference passes and the buggy code does not.
On a free ZeroGPU Space the GPU is only available inside a Gradio request, so run this on a local/Colab GPU
(or a paid Space); each problem is its own GPU call (`gpu` from app.py) so no single call hits the duration limit.
"""
from __future__ import annotations
import json
import math
import os
import sys
import tempfile
import time
from typing import Callable, Sequence
HISTORY = os.environ.get("EIM_EVAL_HISTORY", "eval_history.jsonl")
PROBLEMS: list[dict] = [
{"id": "palindrome",
"task": "Write is_palindrome(s) -> bool. Ignore case and every non-alphanumeric character.",
"tests": ["assert is_palindrome('A man, a plan, a canal: Panama') is True", "assert is_palindrome('race a car') is False",
"assert is_palindrome('') is True", "assert is_palindrome('No lemon, no melon') is True",
"assert is_palindrome('ab') is False", "assert is_palindrome('12321') is True"],
"reference": "def is_palindrome(s):\n t = [c.lower() for c in s if c.isalnum()]\n return t == t[::-1]"},
{"id": "fizzbuzz",
"task": "Write fizzbuzz(n) -> list of strings for 1..n: 'Fizz' for multiples of 3, 'Buzz' for 5, 'FizzBuzz' for both, else the number as text.",
"tests": ["assert fizzbuzz(0) == []", "assert fizzbuzz(1) == ['1']", "assert fizzbuzz(3) == ['1', '2', 'Fizz']",
"assert fizzbuzz(5)[-1] == 'Buzz'", "assert fizzbuzz(15)[-1] == 'FizzBuzz'", "assert len(fizzbuzz(30)) == 30"],
"reference": "def fizzbuzz(n):\n out = []\n for i in range(1, n + 1):\n out.append('FizzBuzz' if i % 15 == 0 else 'Fizz' if i % 3 == 0 else 'Buzz' if i % 5 == 0 else str(i))\n return out"},
{"id": "two_sum",
"task": "Write two_sum(nums, target) -> [i, j] with i < j and nums[i] + nums[j] == target. Exactly one pair exists.",
"tests": ["assert two_sum([2, 7, 11, 15], 9) == [0, 1]", "assert two_sum([3, 2, 4], 6) == [1, 2]",
"assert two_sum([3, 3], 6) == [0, 1]", "assert two_sum([-1, -2, -3, -4, -5], -8) == [2, 4]",
"assert two_sum([0, 4, 3, 0], 0) == [0, 3]", "assert two_sum([1, 5, 9, 14], 23) == [2, 3]"],
"reference": "def two_sum(nums, target):\n seen = {}\n for j, x in enumerate(nums):\n if target - x in seen:\n return [seen[target - x], j]\n seen[x] = j"},
{"id": "flatten",
"task": "Write flatten(items) that flattens arbitrarily nested lists into one flat list, keeping order. Strings are not lists.",
"tests": ["assert flatten([]) == []", "assert flatten([1, [2, [3, [4]]]]) == [1, 2, 3, 4]", "assert flatten([[1, 2], [3], []]) == [1, 2, 3]",
"assert flatten(['ab', ['cd']]) == ['ab', 'cd']", "assert flatten([[[[]]]]) == []", "assert flatten([1, 2, 3]) == [1, 2, 3]"],
"reference": "def flatten(items):\n out = []\n for x in items:\n if isinstance(x, list):\n out.extend(flatten(x))\n else:\n out.append(x)\n return out"},
{"id": "roman",
"task": "Write roman_to_int(s) converting a Roman numeral (I V X L C D M, with subtractive pairs like IV, IX, XL, XC, CD, CM) to an integer.",
"tests": ["assert roman_to_int('III') == 3", "assert roman_to_int('IV') == 4", "assert roman_to_int('IX') == 9",
"assert roman_to_int('LVIII') == 58", "assert roman_to_int('MCMXCIV') == 1994", "assert roman_to_int('CDXLIV') == 444"],
"reference": "def roman_to_int(s):\n v = {'I': 1, 'V': 5, 'X': 10, 'L': 50, 'C': 100, 'D': 500, 'M': 1000}\n total = 0\n for i, c in enumerate(s):\n if i + 1 < len(s) and v[c] < v[s[i + 1]]:\n total -= v[c]\n else:\n total += v[c]\n return total"},
{"id": "merge_intervals",
"task": "Write merge_intervals(intervals) -> sorted list of [start, end] lists where overlapping or touching intervals are merged.",
"tests": ["assert merge_intervals([]) == []", "assert merge_intervals([[1, 3], [2, 6], [8, 10]]) == [[1, 6], [8, 10]]",
"assert merge_intervals([[1, 4], [4, 5]]) == [[1, 5]]", "assert merge_intervals([[5, 6], [1, 2]]) == [[1, 2], [5, 6]]",
"assert merge_intervals([[1, 10], [2, 3]]) == [[1, 10]]", "assert merge_intervals([[2, 2]]) == [[2, 2]]"],
"reference": "def merge_intervals(intervals):\n out = []\n for a, b in sorted(intervals):\n if out and a <= out[-1][1]:\n out[-1][1] = max(out[-1][1], b)\n else:\n out.append([a, b])\n return out"},
{"id": "word_count",
"task": "Write word_count(text) -> dict mapping each lowercase word to its count. Words are runs of letters; punctuation and digits separate words.",
"tests": ["assert word_count('') == {}", "assert word_count('a a b') == {'a': 2, 'b': 1}", "assert word_count('Hello, hello!') == {'hello': 2}",
"assert word_count('it is, is it?') == {'it': 2, 'is': 2}", "assert word_count('x1y') == {'x': 1, 'y': 1}",
"assert word_count('...') == {}"],
"reference": "import re\n\ndef word_count(text):\n out = {}\n for w in re.findall(r'[a-zA-Z]+', text):\n w = w.lower()\n out[w] = out.get(w, 0) + 1\n return out"},
{"id": "brackets",
"task": "Write is_balanced(s) -> bool: True when every (), [] and {} in s is closed in the right order. Other characters are ignored.",
"tests": ["assert is_balanced('') is True", "assert is_balanced('([]{})') is True", "assert is_balanced('(]') is False",
"assert is_balanced('((') is False", "assert is_balanced('a(b)c') is True", "assert is_balanced('}{') is False"],
"reference": "def is_balanced(s):\n pairs = {')': '(', ']': '[', '}': '{'}\n stack = []\n for c in s:\n if c in '([{':\n stack.append(c)\n elif c in pairs:\n if not stack or stack.pop() != pairs[c]:\n return False\n return not stack"},
{"id": "binary_search_repair",
"task": "Fix binary_search(arr, x): arr is sorted ascending; return the index of x or -1 if absent.",
"initial_code": "def binary_search(arr, x):\n lo, hi = 0, len(arr) - 1\n while lo < hi:\n mid = (lo + hi) // 2\n if arr[mid] == x:\n return mid\n if arr[mid] < x:\n lo = mid + 1\n else:\n hi = mid - 1\n return -1",
"tests": ["assert binary_search([], 1) == -1", "assert binary_search([5], 5) == 0", "assert binary_search([1, 3, 5, 7], 7) == 3",
"assert binary_search([1, 3, 5, 7], 1) == 0", "assert binary_search([1, 3, 5, 7], 4) == -1", "assert binary_search([2, 4], 4) == 1"],
"reference": "def binary_search(arr, x):\n lo, hi = 0, len(arr) - 1\n while lo <= hi:\n mid = (lo + hi) // 2\n if arr[mid] == x:\n return mid\n if arr[mid] < x:\n lo = mid + 1\n else:\n hi = mid - 1\n return -1"},
{"id": "is_anagram",
"task": "Write is_anagram(a, b) -> bool. Ignore spaces, punctuation, and case; compare letter/digit counts.",
"tests": ["assert is_anagram('listen', 'silent') is True", "assert is_anagram('Dormitory', 'dirty room') is True", "assert is_anagram('aabb', 'abab') is True", "assert is_anagram('rat', 'car') is False", "assert is_anagram('', '') is True", "assert is_anagram('a', '') is False"],
"reference": "from collections import Counter\ndef is_anagram(a, b):\n clean = lambda s: ''.join(c.lower() for c in s if c.isalnum())\n return Counter(clean(a)) == Counter(clean(b))"},
{"id": "gcd",
"task": "Write gcd(a, b) -> non-negative greatest common divisor, including zero and negative inputs.",
"tests": ["assert gcd(54, 24) == 6", "assert gcd(0, 5) == 5", "assert gcd(5, 0) == 5", "assert gcd(0, 0) == 0", "assert gcd(-12, 18) == 6", "assert gcd(17, 13) == 1"],
"reference": "def gcd(a, b):\n a, b = abs(a), abs(b)\n while b:\n a, b = b, a % b\n return a"},
{"id": "unique_preserve",
"task": "Write unique_preserve(items) returning first occurrences only, preserving order, for hashable items.",
"tests": ["assert unique_preserve([]) == []", "assert unique_preserve([1, 2, 1, 3, 2]) == [1, 2, 3]", "assert unique_preserve(['a', 'a', 'b']) == ['a', 'b']", "assert unique_preserve([0, 1, 0]) == [0, 1]", "assert unique_preserve([3]) == [3]", "assert unique_preserve([2, 1, 2, 1]) == [2, 1]"],
"reference": "def unique_preserve(items):\n seen, out = set(), []\n for item in items:\n if item not in seen:\n seen.add(item)\n out.append(item)\n return out"},
{"id": "chunked",
"task": "Write chunked(items, size) returning consecutive lists of at most size; raise ValueError if size <= 0.",
"tests": ["assert chunked([], 2) == []", "assert chunked([1, 2, 3, 4, 5], 2) == [[1, 2], [3, 4], [5]]", "assert chunked([1, 2], 2) == [[1, 2]]", "assert chunked([1], 8) == [[1]]", "assert chunked([1, 2, 3], 1) == [[1], [2], [3]]", "try:\n chunked([1], 0)\nexcept ValueError:\n pass\nelse:\n assert False"],
"reference": "def chunked(items, size):\n if size <= 0:\n raise ValueError('size must be positive')\n return [items[i:i + size] for i in range(0, len(items), size)]"},
{"id": "max_subarray_sum",
"task": "Write max_subarray_sum(nums) returning the largest sum of a non-empty contiguous subarray; input is non-empty.",
"tests": ["assert max_subarray_sum([1, -2, 3, 4, -1]) == 7", "assert max_subarray_sum([-5, -2, -9]) == -2", "assert max_subarray_sum([4]) == 4", "assert max_subarray_sum([0, 0]) == 0", "assert max_subarray_sum([2, -1, 2, 3, -8, 4]) == 6", "assert max_subarray_sum([-1, 2, 3, -2]) == 5"],
"reference": "def max_subarray_sum(nums):\n current = best = nums[0]\n for x in nums[1:]:\n current = max(x, current + x)\n best = max(best, current)\n return best"},
{"id": "transpose",
"task": "Write transpose(matrix) for a rectangular list of lists; an empty matrix returns [].",
"tests": ["assert transpose([]) == []", "assert transpose([[1, 2, 3], [4, 5, 6]]) == [[1, 4], [2, 5], [3, 6]]", "assert transpose([[1], [2]]) == [[1, 2]]", "assert transpose([[1, 2]]) == [[1], [2]]", "assert transpose([[7]]) == [[7]]", "assert transpose([[], []]) == []"],
"reference": "def transpose(matrix):\n return [list(row) for row in zip(*matrix)] if matrix else []"},
{"id": "is_prime",
"task": "Write is_prime(n) -> bool for integer n, returning False for n < 2.",
"tests": ["assert is_prime(-7) is False", "assert is_prime(0) is False", "assert is_prime(1) is False", "assert is_prime(2) is True", "assert is_prime(97) is True", "assert is_prime(99) is False"],
"reference": "def is_prime(n):\n if n < 2: return False\n if n % 2 == 0: return n == 2\n d = 3\n while d * d <= n:\n if n % d == 0: return False\n d += 2\n return True"},
{"id": "fibonacci",
"task": "Write fibonacci(n) returning the nth Fibonacci number with F(0)=0 and F(1)=1; n is non-negative.",
"tests": ["assert fibonacci(0) == 0", "assert fibonacci(1) == 1", "assert fibonacci(2) == 1", "assert fibonacci(10) == 55", "assert fibonacci(20) == 6765", "assert fibonacci(6) == 8"],
"reference": "def fibonacci(n):\n a, b = 0, 1\n for _ in range(n):\n a, b = b, a + b\n return a"},
{"id": "first_unique_char",
"task": "Write first_unique_char(s) returning the index of the first non-repeating character, or -1 if none.",
"tests": ["assert first_unique_char('leetcode') == 0", "assert first_unique_char('loveleetcode') == 2", "assert first_unique_char('aabb') == -1", "assert first_unique_char('') == -1", "assert first_unique_char('z') == 0", "assert first_unique_char('aabcc') == 2"],
"reference": "from collections import Counter\ndef first_unique_char(s):\n counts = Counter(s)\n return next((i for i, c in enumerate(s) if counts[c] == 1), -1)"},
{"id": "rotate_list",
"task": "Write rotate_list(items, k) returning a new list rotated right by k; handle empty lists and negative k.",
"tests": ["assert rotate_list([], 3) == []", "assert rotate_list([1, 2, 3, 4, 5], 2) == [4, 5, 1, 2, 3]", "assert rotate_list([1, 2, 3], 0) == [1, 2, 3]", "assert rotate_list([1, 2, 3], 3) == [1, 2, 3]", "assert rotate_list([1, 2, 3], -1) == [2, 3, 1]", "assert rotate_list([1], 100) == [1]"],
"reference": "def rotate_list(items, k):\n if not items: return []\n k %= len(items)\n return items[-k:] + items[:-k] if k else list(items)"},
{"id": "flatten_dict_paths",
"task": "Write flatten_dict(d) mapping nested dictionary leaves to dot-separated paths; empty nested dictionaries are omitted.",
"tests": ["assert flatten_dict({}) == {}", "assert flatten_dict({'a': 1}) == {'a': 1}", "assert flatten_dict({'a': {'b': 2}}) == {'a.b': 2}", "assert flatten_dict({'a': {'b': 2}, 'c': 3}) == {'a.b': 2, 'c': 3}", "assert flatten_dict({'x': {}, 'y': {'z': {}}}) == {}", "assert flatten_dict({'a': {'b': {'c': 4}}}) == {'a.b.c': 4}"],
"reference": "def flatten_dict(d):\n out = {}\n def visit(obj, prefix):\n for key, value in obj.items():\n path = f'{prefix}.{key}' if prefix else str(key)\n if isinstance(value, dict): visit(value, path)\n else: out[path] = value\n visit(d, '')\n return out"},
{"id": "run_length_encode",
"task": "Write run_length_encode(s) returning (character, count) pairs for each consecutive run.",
"tests": ["assert run_length_encode('') == []", "assert run_length_encode('aaabbc') == [('a', 3), ('b', 2), ('c', 1)]", "assert run_length_encode('x') == [('x', 1)]", "assert run_length_encode('abab') == [('a', 1), ('b', 1), ('a', 1), ('b', 1)]", "assert run_length_encode('11122') == [('1', 3), ('2', 2)]", "assert run_length_encode('aaaa') == [('a', 4)]"],
"reference": "def run_length_encode(s):\n out = []\n for c in s:\n if out and out[-1][0] == c: out[-1] = (c, out[-1][1] + 1)\n else: out.append((c, 1))\n return out"},
{"id": "clamp",
"task": "Write clamp(value, low, high) limiting value to inclusive [low, high]. Assume low <= high.",
"tests": ["assert clamp(5, 0, 10) == 5", "assert clamp(-2, 0, 10) == 0", "assert clamp(12, 0, 10) == 10", "assert clamp(0, 0, 10) == 0", "assert clamp(10, 0, 10) == 10", "assert clamp(3, 3, 3) == 3"],
"reference": "def clamp(value, low, high):\n return max(low, min(value, high))"},
{"id": "is_subsequence",
"task": "Write is_subsequence(s, t) -> bool: return whether s appears in t in order, not necessarily contiguously.",
"tests": ["assert is_subsequence('', 'abc') is True", "assert is_subsequence('ace', 'abcde') is True", "assert is_subsequence('aec', 'abcde') is False", "assert is_subsequence('abc', 'abc') is True", "assert is_subsequence('long', 'short') is False", "assert is_subsequence('aab', 'aaab') is True"],
"reference": "def is_subsequence(s, t):\n it = iter(t)\n return all(any(c == x for x in it) for c in s)"},
{"id": "product_except_self",
"task": "Write product_except_self(nums) returning products of all other elements without division; input length >= 1.",
"tests": ["assert product_except_self([1, 2, 3, 4]) == [24, 12, 8, 6]", "assert product_except_self([0, 1, 2]) == [2, 0, 0]", "assert product_except_self([0, 0, 2]) == [0, 0, 0]", "assert product_except_self([5]) == [1]", "assert product_except_self([-1, 2, -3]) == [-6, 3, -2]", "assert product_except_self([2, 2]) == [2, 2]"],
"reference": "def product_except_self(nums):\n out = [1] * len(nums)\n p = 1\n for i, x in enumerate(nums): out[i] = p; p *= x\n p = 1\n for i in range(len(nums) - 1, -1, -1): out[i] *= p; p *= nums[i]\n return out"},
{"id": "longest_common_prefix",
"task": "Write longest_common_prefix(strings) returning the longest prefix shared by every string; empty input returns ''.",
"tests": ["assert longest_common_prefix([]) == ''", "assert longest_common_prefix(['flower', 'flow', 'flight']) == 'fl'", "assert longest_common_prefix(['dog', 'racecar', 'car']) == ''", "assert longest_common_prefix(['same', 'same']) == 'same'", "assert longest_common_prefix(['a']) == 'a'", "assert longest_common_prefix(['', 'abc']) == ''"],
"reference": "def longest_common_prefix(strings):\n if not strings: return ''\n prefix = strings[0]\n for s in strings[1:]:\n while not s.startswith(prefix): prefix = prefix[:-1]\n if not prefix: break\n return prefix"}
]
# ---------------------------------------------------------------------------------------------------------------------
def check_problems(verifier, problems: Sequence[dict]) -> list[str]:
"""Problems with a wrong test (reference fails) or a fake 'repair' (buggy code already passes) poison every number."""
errors = []
for p in problems:
if len(p["tests"]) < 5:
errors.append(f"{p['id']}: needs at least 5 tests (hidden split)")
ref = verifier.run(p["reference"], p["tests"])
if ref.pass_rate < 1.0:
errors.append(f"{p['id']}: the reference solution fails {ref.total - ref.passed}/{ref.total} of its own tests")
if p.get("initial_code") and verifier.run(p["initial_code"], p["tests"]).pass_rate >= 1.0:
errors.append(f"{p['id']}: the 'buggy' initial code already passes every test")
return errors
def wilson(successes: int, n: int, z: float = 1.96) -> tuple[float, float]:
if n == 0:
return 0.0, 0.0
p = successes / n
centre = p + z * z / (2 * n)
margin = z * math.sqrt(p * (1 - p) / n + z * z / (4 * n * n))
denom = 1 + z * z / n
return max(0.0, (centre - margin) / denom), min(1.0, (centre + margin) / denom)
def evaluate(engine, problems: Sequence[dict], iterations: int, candidates: int, label: str,
wrap: Callable | None = None, meta: dict | None = None) -> dict:
from eim_plus import Report
def solve(problem: dict) -> tuple[bool, int, int, int]:
report = None
lm = getattr(engine, "lm", None)
original_generate = getattr(lm, "generate", None) if lm is not None else None
counter = [0]
if original_generate is not None:
def counted_generate(prompts, *args, **kwargs):
try: counter[0] += len(prompts)
except TypeError: counter[0] += 1
return original_generate(prompts, *args, **kwargs)
try: lm.generate = counted_generate
except (AttributeError, TypeError): original_generate = None
try:
for event in engine.run(problem["task"], problem["tests"], problem.get("initial_code"), iterations, candidates,
0.25, mutation=False):
if isinstance(event, Report):
report = event
finally:
if original_generate is not None:
try: lm.generate = original_generate
except (AttributeError, TypeError): pass
solved = (report is not None and report.best.result.pass_rate == 1.0
and (report.hidden is None or report.hidden.pass_rate == 1.0))
return solved, (report.iterations if report else 0), (report.restarts if report else 0), counter[0]
run_one = wrap(solve) if wrap else solve # on ZeroGPU: one GPU call per problem
rows = []
for problem in problems:
started = time.perf_counter()
try:
solved, rounds, restarts, attempts = run_one(problem)
except Exception as error: # a crash is a failure, not a reason to lose the whole run
solved, rounds, restarts, attempts = False, 0, 0, 0
print(f" ! {problem['id']}: {type(error).__name__}: {error}")
seconds = time.perf_counter() - started
rows.append({"id": problem["id"], "solved": bool(solved), "seconds": round(seconds, 2),
"iterations": rounds, "restarts": restarts, "attempts": attempts})
print(f" {'OK ' if solved else 'FAIL'} {problem['id']:<22} {seconds:6.1f}s rounds={rounds} restarts={restarts} candidates={attempts}")
n, ok = len(rows), sum(r["solved"] for r in rows)
lo, hi = wilson(ok, n)
record = {"label": label, "ts": int(time.time()), "n": n, "solved": ok, "rate": round(ok / n, 4) if n else 0.0,
"ci95": [round(lo, 4), round(hi, 4)], "mean_seconds": round(sum(r["seconds"] for r in rows) / max(1, n), 2),
"mean_attempts": round(sum(r["attempts"] for r in rows) / max(1, n), 2),
"mean_restarts": round(sum(r["restarts"] for r in rows) / max(1, n), 2),
"settings": {"iterations": iterations, "candidates": candidates, **(meta or {})}, "problems": rows}
return record
def append_history(record: dict, path: str = HISTORY) -> None:
with open(path, "a", encoding="utf-8") as handle:
handle.write(json.dumps(record, ensure_ascii=False) + "\n")
def load_history(path: str = HISTORY) -> list[dict]:
out = []
try:
with open(path, encoding="utf-8") as handle:
for line in handle:
try:
out.append(json.loads(line))
except ValueError:
continue
except OSError:
pass
return out
def compare(before: dict, after: dict) -> str:
pts = (after["rate"] - before["rate"]) * 100
rel = (after["rate"] / before["rate"] - 1) * 100 if before["rate"] else float("nan")
d_time = (after["mean_seconds"] / before["mean_seconds"] - 1) * 100 if before["mean_seconds"] else float("nan")
lines = [f"{before['label']} -> {after['label']}",
f"success {before['solved']}/{before['n']} ({before['rate']:.0%}) -> {after['solved']}/{after['n']} ({after['rate']:.0%})"
f" = {pts:+.1f} points ({rel:+.1f}% relative)",
f"time/task {before['mean_seconds']:.1f}s -> {after['mean_seconds']:.1f}s ({d_time:+.1f}%)",
f"mean candidates/task {before.get('mean_attempts', 0):.1f} -> {after.get('mean_attempts', 0):.1f}; "
f"mean restarts/task {before.get('mean_restarts', 0):.1f} -> {after.get('mean_restarts', 0):.1f}",
f"95% interval before {before['ci95'][0]:.0%}-{before['ci95'][1]:.0%} after {after['ci95'][0]:.0%}-{after['ci95'][1]:.0%}"]
prev = {p["id"]: p["solved"] for p in before["problems"]}
now = {p["id"]: p["solved"] for p in after["problems"]}
fixed = [i for i in now if now[i] and prev.get(i) is False]
broke = [i for i in now if not now[i] and prev.get(i) is True]
lines.append(f"newly solved: {', '.join(fixed) or '-'} | regressed: {', '.join(broke) or '-'}")
if before["ci95"][1] >= after["ci95"][0] and after["ci95"][1] >= before["ci95"][0]:
lines.append("note: the intervals overlap - with this many problems the difference may be noise. "
"Add problems (--problems) before drawing conclusions.")
if before["settings"] != after["settings"]:
lines.append(f"warning: settings differ ({before['settings']} vs {after['settings']}) - not a like-for-like comparison")
if set(prev) != set(now):
lines.append("warning: the two runs used different problem IDs - compare only after using the same benchmark set")
return "\n".join(lines)
def _flag(name: str, default: str | None = None) -> str | None:
if name in sys.argv:
i = sys.argv.index(name)
return sys.argv[i + 1] if i + 1 < len(sys.argv) and not sys.argv[i + 1].startswith("--") else default
return None
def main() -> int:
if "--selftest" in sys.argv:
return selftest()
problems = PROBLEMS
custom = _flag("--problems")
if custom:
with open(custom, encoding="utf-8") as handle:
problems = json.load(handle)
if "--compare" in sys.argv:
history = load_history()
labels = [a for a in sys.argv[sys.argv.index("--compare") + 1:] if not a.startswith("--")]
if len(labels) >= 2:
pick = {r["label"]: r for r in history}
if labels[0] not in pick or labels[1] not in pick:
print("unknown label; known:", ", ".join(pick) or "(none)")
return 1
print(compare(pick[labels[0]], pick[labels[1]]))
elif len(history) >= 2:
print(compare(history[-2], history[-1]))
else:
print("need at least two runs in", HISTORY)
return 1
return 0
from app import CFG, EUTV, gpu, get_lm
from eim_plus import EIMPlus, SmartMemory, hardware_profile
if "--check" in sys.argv:
errors = check_problems(EUTV(CFG), problems)
print("\n".join(errors) if errors else f"all {len(problems)} problems are sound")
return 1 if errors else 0
os.environ["EIM_RESULT_CACHE"] = "0"
class _LM:
def generate(self, prompts, temperature, max_new_tokens):
return get_lm().generate(prompts, temperature, max_new_tokens)
with_memory = "--with-memory" in sys.argv
engine = EIMPlus(_LM(), EUTV(CFG), CFG, SmartMemory(path=CFG.memory_path if with_memory else ""),
repair_log="auto" if with_memory else None)
label = _flag("--label", time.strftime("run-%Y%m%d-%H%M"))
iterations, candidates = int(_flag("--iterations", "4")), int(_flag("--candidates", "3"))
print(f"evaluating '{label}': {len(problems)} problems, iterations={iterations}, candidates={candidates}, "
f"profile={hardware_profile().name}, memory={'on' if with_memory else 'off'}")
record = evaluate(engine, problems, iterations, candidates, label, wrap=gpu,
meta={"model": CFG.model_name, "profile": hardware_profile().name, "memory": with_memory})
append_history(record)
history = load_history()
print(f"\nsolved {record['solved']}/{record['n']} ({record['rate']:.0%}, 95% interval "
f"{record['ci95'][0]:.0%}-{record['ci95'][1]:.0%}), mean {record['mean_seconds']:.1f}s per problem -> {HISTORY}")
if len(history) >= 2:
print("\n" + compare(history[-2], history[-1]))
return 0
# ---------------------------------------------------------------------------------------------------------------------
def selftest() -> int:
from app import Config, EUTV, _ScriptedLM
from eim_plus import EIMPlus, Profile, SmartMemory
failures = 0
def check(name: str, ok: bool) -> None:
nonlocal failures
print(("PASS " if ok else "FAIL ") + name)
failures += not ok
fast = Config(per_test_seconds=2, wall_seconds=10.0, cpu_seconds=8, memory_path="")
verifier = EUTV(fast)
# Keep this smoke-test bounded; the full 25-task reference set has an independent offline check
# in test_eval_benchmarks.py. Real process startup is intentionally exercised on a representative subset.
smoke_problems = PROBLEMS[:3]
check("representative references pass and buggy code fails in real child processes", check_problems(verifier, smoke_problems) == [])
bad = [{"id": "x", "task": "t", "tests": ["assert f() == 1"] * 5, "reference": "def f():\n return 2"}]
check("a wrong reference is reported", len(check_problems(verifier, bad)) == 1)
check("wilson interval brackets the rate", wilson(6, 8)[0] < 0.75 < wilson(6, 8)[1] and wilson(0, 0) == (0.0, 0.0))
flat = Profile("test", 4, 8.0, False, 8, False, 0, 0)
os.environ["EIM_RESULT_CACHE"] = "0"
perfect = EIMPlus(_ScriptedLM([p["reference"] for p in smoke_problems]), verifier, fast, SmartMemory(path=""), profile=flat,
repair_log=None)
good = evaluate(perfect, smoke_problems, 2, 1, "good")
check("a scripted model that returns the references solves all smoke problems", good["solved"] == len(smoke_problems) and good["rate"] == 1.0)
nothing = EIMPlus(_ScriptedLM(["def nothing():\n return None"]), verifier, fast, SmartMemory(path=""), profile=flat,
repair_log=None)
poor = evaluate(nothing, smoke_problems[:2], 1, 1, "poor")
check("a model that returns nonsense solves nothing", poor["solved"] == 0)
with tempfile.TemporaryDirectory() as tmp:
path = os.path.join(tmp, "history.jsonl")
append_history(poor, path)
append_history(good, path)
loaded = load_history(path)
check("history round-trips", [r["label"] for r in loaded] == ["poor", "good"])
text = compare({**good, "label": "A", "rate": 0.5, "solved": 1, "ci95": [0.2, 0.8]}, {**good, "label": "B"})
check("comparison reports points, time and overlap warning", "+50.0 points" in text and "overlap" in text)
print(f"\n{'All checks passed.' if not failures else str(failures) + ' check(s) FAILED.'}")
return 1 if failures else 0
if __name__ == "__main__":
raise SystemExit(main())
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