FA-93236 / EV charging session scheduling / Open access
Contiguous cheap charging blocks: minimum run length · case 01
Runs exactly min_len long are ignored.
ROOT CAUSE
The run length filter is strict.
THE FAILURE
The run length filter is strict.
Unsuccessful approach: Allowing one slot shorter accepts runs the contract rejects.
Case contract
Slots with price <= threshold form runs of consecutive slots; runs shorter than min_len are ignored to avoid contactor cycling. Slots of qualifying runs are taken chronologically until need_slots are chosen. If still short, the remaining cheapest unchosen slots (ties: earlier) are added regardless of runs and fallback is True. Return [sorted slots, fallback].
Why this case matters
Depot, workplace and public EV chargers schedule sessions against prices, circuit limits and departure deadlines; a wrong decision silently strands a driver or overloads a feeder.
1 / The failure
Exit 1"""Failure Map reference implementation. Python standard library only."""
import json
N = 1
observations = []
def solve(prices, threshold, min_len, need_slots):
runs = []
cur = []
for i, p in enumerate(prices):
if p <= threshold:
cur.append(i)
else:
if cur:
runs.append(cur)
cur = []
if cur:
runs.append(cur)
chosen = []
for run in runs:
if len(run) > min_len:
for i in run:
if len(chosen) < need_slots:
chosen.append(i)
fallback = False
if len(chosen) < need_slots:
fallback = True
rest = sorted((p, i) for i, p in enumerate(prices) if i not in chosen)
for p, i in rest[:need_slots - len(chosen)]:
chosen.append(i)
return [sorted(chosen), fallback]
def check(label, actual, expected):
observations.append({"check": label, "actual": actual, "expected": expected, "passed": actual == expected})
fixtures = [[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length',
[[20, 12, 10, 20, 0, 20, 15, 5, -2, 10, 30, 12, 0, 30, 12], 10, 3, 4], [[4, 7, 8, 9], True]],
['regression: minimum run length (partial repair)',
[[0, 12, 8, 15, 10, 30, 5, 5, 5, 5, 8, 20, 15, 12, 8, 8], 8, 2, 3], [[6, 7, 8], False]],
['control 1', [[5, 20, 15, 10, -2], 10, 3, 5], [[0, 1, 2, 3, 4], True]],
['control 2', [[30, 30, 0, -2, 20, 8, 5, 20, 0, 20], 0, 4, 1], [[3], True]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length', [[5, 8, 0, -2, 15, 8, 5], 10, 4, 1], [[0], False]],
['regression: minimum run length (partial repair)',
[[20, 8, 10, 30, -2, 0, 12, 20, 8, 8], 12, 4, 1], [[4], True]],
['control 1', [[30, -2, 5, 12, 8, 20, 20, 20], 12, 1, 7], [[1, 2, 3, 4, 5, 6, 7], True]],
['control 2', [[30, 8, 15, 0, 15], 8, 2, 2], [[1, 3], True]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length', [[5, 15, 8, 12, 15, 20, 10, 15, 30, 15], 10, 1, 3],
[[0, 2, 6], False]],
['regression: minimum run length (partial repair)',
[[30, 10, 12, 0, 0, 5, 5, 30, 15, 0, 10], 10, 2, 4], [[3, 4, 5, 6], False]],
['control 1', [[20, -2, 10, 8, 15, 10, 0, 8, 12, 5, 8, 0, 8], 0, 1, 1], [[1], False]],
['control 2', [[-2, 8, 8, 12, -2, -2, -2, 10, 12, 15], 0, 2, 7], [[0, 1, 2, 4, 5, 6, 7], True]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length',
[[10, 8, 8, 8, 15, 12, 30, -2, 15, -2, 8, 12, 5, 15], 10, 4, 3], [[0, 1, 2], False]],
['regression: minimum run length (partial repair)',
[[10, 30, 5, 20, 0, 8, 20, 10, 30, 30, 20, 30, 8, 30, 10], 12, 3, 2], [[2, 4], True]],
['control 1', [[-2, 12, 30, 10, 10, 10, 15, 0, 15, 10, -2, 20, 0], 12, 4, 5],
[[0, 3, 7, 10, 12], True]],
['control 2', [[10, 30, 15, 20, -2, 20, 10, 20, -2, 8, 5, 0, 20], 8, 3, 1], [[8], False]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length', [[30, 0, -2, 12, 5, 0, 0, -2, 10, 5, 30, 15, 15], 8, 2, 1],
[[1], False]],
['regression: minimum run length (partial repair)',
[[-2, 10, 30, 12, 8, 0, 8, 30, -2, 12, -2, 0, 12], 8, 2, 7], [[0, 4, 5, 6, 8, 10, 11], True]],
['control 1', [[20, 15, 8, 8, -2, 8, -2, 30, 12, 30, 10], 10, 2, 1], [[2], False]],
['control 2', [[5, 12, 20, 0, 15, -2], 12, 4, 6], [[0, 1, 2, 3, 4, 5], True]]]]
for label, args, expected in fixtures[N-1]:
check(label, solve(*args), expected)
print(json.dumps({"observations": observations, "passed": all(x["passed"] for x in observations)}, ensure_ascii=False))
raise SystemExit(0 if all(x["passed"] for x in observations) else 1)
| Boundary fixture | Actual | Expected | Outcome |
|---|---|---|---|
| boundary: run ending at horizon | [[2, 3], True] | [[2, 3], False] | Failed |
| boundary: run exactly min_len | [[0, 1], True] | [[0, 1], False] | Failed |
| boundary: nothing needed | [[], False] | [[], False] | Passed |
| regression: minimum run length | [[4, 7, 8, 12], True] | [[4, 7, 8, 9], True] | Failed |
| regression: minimum run length (partial repair) | [[6, 7, 8], False] | [[6, 7, 8], False] | Passed |
| control 1 | [[0, 1, 2, 3, 4], True] | [[0, 1, 2, 3, 4], True] | Passed |
| control 2 | [[3], True] | [[3], True] | Passed |
SHA-256 / 35f97059cc8a9f1d0cdd8b193678e2801de1ca2a0a0c82a7f63a3adbd5b4b320
2 / The unsuccessful fix
Exit 1"""Failure Map reference implementation. Python standard library only."""
import json
N = 1
observations = []
def solve(prices, threshold, min_len, need_slots):
runs = []
cur = []
for i, p in enumerate(prices):
if p <= threshold:
cur.append(i)
else:
if cur:
runs.append(cur)
cur = []
if cur:
runs.append(cur)
chosen = []
for run in runs:
if len(run) >= min_len - 1:
for i in run:
if len(chosen) < need_slots:
chosen.append(i)
fallback = False
if len(chosen) < need_slots:
fallback = True
rest = sorted((p, i) for i, p in enumerate(prices) if i not in chosen)
for p, i in rest[:need_slots - len(chosen)]:
chosen.append(i)
return [sorted(chosen), fallback]
def check(label, actual, expected):
observations.append({"check": label, "actual": actual, "expected": expected, "passed": actual == expected})
fixtures = [[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length',
[[20, 12, 10, 20, 0, 20, 15, 5, -2, 10, 30, 12, 0, 30, 12], 10, 3, 4], [[4, 7, 8, 9], True]],
['regression: minimum run length (partial repair)',
[[0, 12, 8, 15, 10, 30, 5, 5, 5, 5, 8, 20, 15, 12, 8, 8], 8, 2, 3], [[6, 7, 8], False]],
['control 1', [[5, 20, 15, 10, -2], 10, 3, 5], [[0, 1, 2, 3, 4], True]],
['control 2', [[30, 30, 0, -2, 20, 8, 5, 20, 0, 20], 0, 4, 1], [[3], True]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length', [[5, 8, 0, -2, 15, 8, 5], 10, 4, 1], [[0], False]],
['regression: minimum run length (partial repair)',
[[20, 8, 10, 30, -2, 0, 12, 20, 8, 8], 12, 4, 1], [[4], True]],
['control 1', [[30, -2, 5, 12, 8, 20, 20, 20], 12, 1, 7], [[1, 2, 3, 4, 5, 6, 7], True]],
['control 2', [[30, 8, 15, 0, 15], 8, 2, 2], [[1, 3], True]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length', [[5, 15, 8, 12, 15, 20, 10, 15, 30, 15], 10, 1, 3],
[[0, 2, 6], False]],
['regression: minimum run length (partial repair)',
[[30, 10, 12, 0, 0, 5, 5, 30, 15, 0, 10], 10, 2, 4], [[3, 4, 5, 6], False]],
['control 1', [[20, -2, 10, 8, 15, 10, 0, 8, 12, 5, 8, 0, 8], 0, 1, 1], [[1], False]],
['control 2', [[-2, 8, 8, 12, -2, -2, -2, 10, 12, 15], 0, 2, 7], [[0, 1, 2, 4, 5, 6, 7], True]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length',
[[10, 8, 8, 8, 15, 12, 30, -2, 15, -2, 8, 12, 5, 15], 10, 4, 3], [[0, 1, 2], False]],
['regression: minimum run length (partial repair)',
[[10, 30, 5, 20, 0, 8, 20, 10, 30, 30, 20, 30, 8, 30, 10], 12, 3, 2], [[2, 4], True]],
['control 1', [[-2, 12, 30, 10, 10, 10, 15, 0, 15, 10, -2, 20, 0], 12, 4, 5],
[[0, 3, 7, 10, 12], True]],
['control 2', [[10, 30, 15, 20, -2, 20, 10, 20, -2, 8, 5, 0, 20], 8, 3, 1], [[8], False]]],
[['boundary: run ending at horizon', [[20, 20, 5, 5], 8, 2, 2], [[2, 3], False]],
['boundary: run exactly min_len', [[5, 5, 20, 5], 8, 2, 2], [[0, 1], False]],
['boundary: nothing needed', [[5, 5, 5], 8, 1, 0], [[], False]],
['regression: minimum run length', [[30, 0, -2, 12, 5, 0, 0, -2, 10, 5, 30, 15, 15], 8, 2, 1],
[[1], False]],
['regression: minimum run length (partial repair)',
[[-2, 10, 30, 12, 8, 0, 8, 30, -2, 12, -2, 0, 12], 8, 2, 7], [[0, 4, 5, 6, 8, 10, 11], True]],
['control 1', [[20, 15, 8, 8, -2, 8, -2, 30, 12, 30, 10], 10, 2, 1], [[2], False]],
['control 2', [[5, 12, 20, 0, 15, -2], 12, 4, 6], [[0, 1, 2, 3, 4, 5], True]]]]
for label, args, expected in fixtures[N-1]:
check(label, solve(*args), expected)
print(json.dumps({"observations": observations, "passed": all(x["passed"] for x in observations)}, ensure_ascii=False))
raise SystemExit(0 if all(x["passed"] for x in observations) else 1)
| Boundary fixture | Actual | Expected | Outcome |
|---|---|---|---|
| boundary: run ending at horizon | [[2, 3], False] | [[2, 3], False] | Passed |
| boundary: run exactly min_len | [[0, 1], False] | [[0, 1], False] | Passed |
| boundary: nothing needed | [[], False] | [[], False] | Passed |
| regression: minimum run length | [[4, 7, 8, 9], True] | [[4, 7, 8, 9], True] | Passed |
| regression: minimum run length (partial repair) | [[0, 2, 6], False] | [[6, 7, 8], False] | Failed |
| control 1 | [[0, 1, 2, 3, 4], True] | [[0, 1, 2, 3, 4], True] | Passed |
| control 2 | [[3], True] | [[3], True] | Passed |
SHA-256 / f1cb61aaaf4c940c01f7f43f6db5f834305cddea5a23dfb25bdeffe71cb87794
HELD IN THE MEMBER ARCHIVE
The verified repair and its recorded checks are member-only.
This mechanism has 7 recorded checks per implementation. The open-access tier publishes the failure and the unsuccessful fix; the repaired source that passes every check, and the observations that prove it, are available to members.
Every case sharing this mechanism uses the same contract and the same repair, so this one record is held back for all of them.
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Sign in to the archive ↗Verification & scope
Deterministic stipulated toy contract for teaching; no claim of conformance with any standard, vendor protocol or production controller. This reproducer isolates one failure mechanism. Results cover the supplied fixtures. Variants within a family share a test contract and should remain grouped when constructing evaluation splits. Related mechanisms with a shared evaluation_group must also remain together; these controlled models are not independent production incidents.
Observations recorded using Python 3.12.14 at 2026-09-29T14:51:53.243079+00:00.
Case digest / da470cb1a1212c8c5c6aa3a36bb5d4e48cbee88cde8658497ec0ceb7ef146b1b