FA-56206 / Astronomical coordinate conventions / Open access
Spectrograph grating coordinate: Detector wavelength dispersion multiplies focal length instead of dividing · case 01
The adapter reports an incorrect linear dispersion while other fields remain valid.
ROOT CAUSE
Detector wavelength dispersion multiplies focal length instead of dividing. Faulty expression: d['g']*d['c']*d['F']/d['m']
THE FAILURE
Detector wavelength dispersion multiplies focal length instead of dividing. Faulty expression: d['g']*d['c']*d['F']/d['m']
Unsuccessful approach: A partial convention repair still uses d['g']*d['c']/d['m']
Case contract
A stipulated grating adapter supplies spacing g, signed sine of incidence a, signed sine of diffraction b, positive order m, focal length F, and separate calibration line wavelength line. Wavelength is g*(a+b)/m. A Littrow reference has b=a; supplied diffraction cosine c permits a local angular dispersion derivative. Output fields are defined by: wavelength = d['g']*(d['a']+d['b'])/d['m']; littrow_wavelength = 2*d['g']*d['a']/d['m']; angular_dispersion = d['g']*d['c']/d['m']; linear_dispersion = d['g']*d['c']/(d['m']*d['F']); inferred_diffraction_sine = d['m']*d['line']/d['g']-d['a']; next_order_wavelength = d['g']*(d['a']+d['b'])/(d['m']+1)
Why this case matters
Catalog, detector, sky-coordinate, and spectroscopy adapters must preserve the association between numeric coordinates and their declared reference conventions.
1 / The failure
Exit 1"""Failure Map reference implementation. Python standard library only."""
import json
N = 1
observations = []
def solve(d):
return {'wavelength': d['g']*(d['a']+d['b'])/d['m'], 'littrow_wavelength': 2*d['g']*d['a']/d['m'], 'angular_dispersion': d['g']*d['c']/d['m'], 'linear_dispersion': d['g']*d['c']*d['F']/d['m'], 'inferred_diffraction_sine': d['m']*d['line']/d['g']-d['a'], 'next_order_wavelength': d['g']*(d['a']+d['b'])/(d['m']+1)}
def check(label, actual, expected):
observations.append({"check": label, "actual": actual, "expected": expected, "passed": actual == expected})
fixtures = {1: [({'g': 120, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.0, 'littrow_wavelength': 40.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': -0.25, 'next_order_wavelength': 22.5}), ({'g': 120, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.0, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': 0.25, 'next_order_wavelength': 7.5}), ({'g': 120, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.0, 'littrow_wavelength': 40.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': -0.25, 'next_order_wavelength': 7.5}), ({'g': 120, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 90.0, 'littrow_wavelength': 120.0, 'angular_dispersion': 60.0, 'linear_dispersion': 6.0, 'inferred_diffraction_sine': -0.4166666666666667, 'next_order_wavelength': 45.0}), ({'g': 120, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.0, 'littrow_wavelength': 20.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': 0.0, 'next_order_wavelength': 15.0}), ({'g': 120, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.0, 'littrow_wavelength': 40.0, 'angular_dispersion': 40.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': -0.25, 'next_order_wavelength': 22.5})], 2: [({'g': 121, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.25, 'littrow_wavelength': 40.333333333333336, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.25206611570247933, 'next_order_wavelength': 22.6875}), ({'g': 121, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.083333333333334, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': 0.24793388429752067, 'next_order_wavelength': 7.5625}), ({'g': 121, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.083333333333334, 'littrow_wavelength': 40.333333333333336, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.25206611570247933, 'next_order_wavelength': 7.5625}), ({'g': 121, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 90.75, 'littrow_wavelength': 121.0, 'angular_dispersion': 60.5, 'linear_dispersion': 6.05, 'inferred_diffraction_sine': -0.41735537190082644, 'next_order_wavelength': 45.375}), ({'g': 121, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.166666666666668, 'littrow_wavelength': 20.166666666666668, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.002066115702479332, 'next_order_wavelength': 15.125}), ({'g': 121, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.25, 'littrow_wavelength': 40.333333333333336, 'angular_dispersion': 40.333333333333336, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.25206611570247933, 'next_order_wavelength': 22.6875})], 3: [({'g': 122, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.5, 'littrow_wavelength': 40.666666666666664, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.2540983606557377, 'next_order_wavelength': 22.875}), ({'g': 122, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.166666666666666, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': 0.2459016393442623, 'next_order_wavelength': 7.625}), ({'g': 122, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.166666666666666, 'littrow_wavelength': 40.666666666666664, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.2540983606557377, 'next_order_wavelength': 7.625}), ({'g': 122, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 91.5, 'littrow_wavelength': 122.0, 'angular_dispersion': 61.0, 'linear_dispersion': 6.1, 'inferred_diffraction_sine': -0.4180327868852459, 'next_order_wavelength': 45.75}), ({'g': 122, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.333333333333332, 'littrow_wavelength': 20.333333333333332, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.0040983606557377095, 'next_order_wavelength': 15.25}), ({'g': 122, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.5, 'littrow_wavelength': 40.666666666666664, 'angular_dispersion': 40.666666666666664, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.2540983606557377, 'next_order_wavelength': 22.875})], 4: [({'g': 123, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.75, 'littrow_wavelength': 41.0, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.25609756097560976, 'next_order_wavelength': 23.0625}), ({'g': 123, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.25, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': 0.24390243902439024, 'next_order_wavelength': 7.6875}), ({'g': 123, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.25, 'littrow_wavelength': 41.0, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.25609756097560976, 'next_order_wavelength': 7.6875}), ({'g': 123, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 92.25, 'littrow_wavelength': 123.0, 'angular_dispersion': 61.5, 'linear_dispersion': 6.15, 'inferred_diffraction_sine': -0.4186991869918699, 'next_order_wavelength': 46.125}), ({'g': 123, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.5, 'littrow_wavelength': 20.5, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.0060975609756097615, 'next_order_wavelength': 15.375}), ({'g': 123, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.75, 'littrow_wavelength': 41.0, 'angular_dispersion': 41.0, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.25609756097560976, 'next_order_wavelength': 23.0625})], 5: [({'g': 124, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 31.0, 'littrow_wavelength': 41.333333333333336, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.25806451612903225, 'next_order_wavelength': 23.25}), ({'g': 124, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.333333333333334, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': 0.24193548387096775, 'next_order_wavelength': 7.75}), ({'g': 124, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.333333333333334, 'littrow_wavelength': 41.333333333333336, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.25806451612903225, 'next_order_wavelength': 7.75}), ({'g': 124, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 93.0, 'littrow_wavelength': 124.0, 'angular_dispersion': 62.0, 'linear_dispersion': 6.2, 'inferred_diffraction_sine': -0.41935483870967744, 'next_order_wavelength': 46.5}), ({'g': 124, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.666666666666668, 'littrow_wavelength': 20.666666666666668, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.008064516129032251, 'next_order_wavelength': 15.5}), ({'g': 124, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 31.0, 'littrow_wavelength': 41.333333333333336, 'angular_dispersion': 41.333333333333336, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.25806451612903225, 'next_order_wavelength': 23.25})]}
for i, (record, expected) in enumerate(fixtures[N]):
check('astronomical fixture %s' % i, solve(record), 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 |
|---|---|---|---|
| astronomical fixture 0 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 200.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | Failed |
| astronomical fixture 1 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.25, 'linear_dispersion': 200.0, 'littrow_wavelength': 0.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 0.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | Failed |
| astronomical fixture 2 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 200.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | Failed |
| astronomical fixture 3 | {'angular_dispersion': 60.0, 'inferred_diffraction_sine': -0.4166666666666667, 'linear_dispersion': 600.0, 'littrow_wavelength': 120.0, 'next_order_wavelength': 45.0, 'wavelength': 90.0} | {'angular_dispersion': 60.0, 'inferred_diffraction_sine': -0.4166666666666667, 'linear_dispersion': 6.0, 'littrow_wavelength': 120.0, 'next_order_wavelength': 45.0, 'wavelength': 90.0} | Failed |
| astronomical fixture 4 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.0, 'linear_dispersion': 200.0, 'littrow_wavelength': 20.0, 'next_order_wavelength': 15.0, 'wavelength': 20.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.0, 'linear_dispersion': 2.0, 'littrow_wavelength': 20.0, 'next_order_wavelength': 15.0, 'wavelength': 20.0} | Failed |
| astronomical fixture 5 | {'angular_dispersion': 40.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 800.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | {'angular_dispersion': 40.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | Failed |
SHA-256 / 26d433a620169d811261851b81c5bb800c618c24b46673863832426d05fd709b
2 / The unsuccessful fix
Exit 1"""Failure Map reference implementation. Python standard library only."""
import json
N = 1
observations = []
def solve(d):
return {'wavelength': d['g']*(d['a']+d['b'])/d['m'], 'littrow_wavelength': 2*d['g']*d['a']/d['m'], 'angular_dispersion': d['g']*d['c']/d['m'], 'linear_dispersion': d['g']*d['c']/d['m'], 'inferred_diffraction_sine': d['m']*d['line']/d['g']-d['a'], 'next_order_wavelength': d['g']*(d['a']+d['b'])/(d['m']+1)}
def check(label, actual, expected):
observations.append({"check": label, "actual": actual, "expected": expected, "passed": actual == expected})
fixtures = {1: [({'g': 120, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.0, 'littrow_wavelength': 40.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': -0.25, 'next_order_wavelength': 22.5}), ({'g': 120, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.0, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': 0.25, 'next_order_wavelength': 7.5}), ({'g': 120, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.0, 'littrow_wavelength': 40.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': -0.25, 'next_order_wavelength': 7.5}), ({'g': 120, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 90.0, 'littrow_wavelength': 120.0, 'angular_dispersion': 60.0, 'linear_dispersion': 6.0, 'inferred_diffraction_sine': -0.4166666666666667, 'next_order_wavelength': 45.0}), ({'g': 120, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.0, 'littrow_wavelength': 20.0, 'angular_dispersion': 20.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': 0.0, 'next_order_wavelength': 15.0}), ({'g': 120, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.0, 'littrow_wavelength': 40.0, 'angular_dispersion': 40.0, 'linear_dispersion': 2.0, 'inferred_diffraction_sine': -0.25, 'next_order_wavelength': 22.5})], 2: [({'g': 121, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.25, 'littrow_wavelength': 40.333333333333336, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.25206611570247933, 'next_order_wavelength': 22.6875}), ({'g': 121, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.083333333333334, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': 0.24793388429752067, 'next_order_wavelength': 7.5625}), ({'g': 121, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.083333333333334, 'littrow_wavelength': 40.333333333333336, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.25206611570247933, 'next_order_wavelength': 7.5625}), ({'g': 121, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 90.75, 'littrow_wavelength': 121.0, 'angular_dispersion': 60.5, 'linear_dispersion': 6.05, 'inferred_diffraction_sine': -0.41735537190082644, 'next_order_wavelength': 45.375}), ({'g': 121, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.166666666666668, 'littrow_wavelength': 20.166666666666668, 'angular_dispersion': 20.166666666666668, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.002066115702479332, 'next_order_wavelength': 15.125}), ({'g': 121, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.25, 'littrow_wavelength': 40.333333333333336, 'angular_dispersion': 40.333333333333336, 'linear_dispersion': 2.0166666666666666, 'inferred_diffraction_sine': -0.25206611570247933, 'next_order_wavelength': 22.6875})], 3: [({'g': 122, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.5, 'littrow_wavelength': 40.666666666666664, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.2540983606557377, 'next_order_wavelength': 22.875}), ({'g': 122, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.166666666666666, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': 0.2459016393442623, 'next_order_wavelength': 7.625}), ({'g': 122, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.166666666666666, 'littrow_wavelength': 40.666666666666664, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.2540983606557377, 'next_order_wavelength': 7.625}), ({'g': 122, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 91.5, 'littrow_wavelength': 122.0, 'angular_dispersion': 61.0, 'linear_dispersion': 6.1, 'inferred_diffraction_sine': -0.4180327868852459, 'next_order_wavelength': 45.75}), ({'g': 122, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.333333333333332, 'littrow_wavelength': 20.333333333333332, 'angular_dispersion': 20.333333333333332, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.0040983606557377095, 'next_order_wavelength': 15.25}), ({'g': 122, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.5, 'littrow_wavelength': 40.666666666666664, 'angular_dispersion': 40.666666666666664, 'linear_dispersion': 2.033333333333333, 'inferred_diffraction_sine': -0.2540983606557377, 'next_order_wavelength': 22.875})], 4: [({'g': 123, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 30.75, 'littrow_wavelength': 41.0, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.25609756097560976, 'next_order_wavelength': 23.0625}), ({'g': 123, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.25, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': 0.24390243902439024, 'next_order_wavelength': 7.6875}), ({'g': 123, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.25, 'littrow_wavelength': 41.0, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.25609756097560976, 'next_order_wavelength': 7.6875}), ({'g': 123, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 92.25, 'littrow_wavelength': 123.0, 'angular_dispersion': 61.5, 'linear_dispersion': 6.15, 'inferred_diffraction_sine': -0.4186991869918699, 'next_order_wavelength': 46.125}), ({'g': 123, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.5, 'littrow_wavelength': 20.5, 'angular_dispersion': 20.5, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.0060975609756097615, 'next_order_wavelength': 15.375}), ({'g': 123, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 30.75, 'littrow_wavelength': 41.0, 'angular_dispersion': 41.0, 'linear_dispersion': 2.05, 'inferred_diffraction_sine': -0.25609756097560976, 'next_order_wavelength': 23.0625})], 5: [({'g': 124, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 31.0, 'littrow_wavelength': 41.333333333333336, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.25806451612903225, 'next_order_wavelength': 23.25}), ({'g': 124, 'a': 0, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.333333333333334, 'littrow_wavelength': 0.0, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': 0.24193548387096775, 'next_order_wavelength': 7.75}), ({'g': 124, 'a': 0.5, 'b': -0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 10.333333333333334, 'littrow_wavelength': 41.333333333333336, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.25806451612903225, 'next_order_wavelength': 7.75}), ({'g': 124, 'a': 0.5, 'b': 0.25, 'm': 1, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 93.0, 'littrow_wavelength': 124.0, 'angular_dispersion': 62.0, 'linear_dispersion': 6.2, 'inferred_diffraction_sine': -0.41935483870967744, 'next_order_wavelength': 46.5}), ({'g': 124, 'a': 0.25, 'b': 0.25, 'm': 3, 'F': 10, 'c': 0.5, 'line': 10}, {'wavelength': 20.666666666666668, 'littrow_wavelength': 20.666666666666668, 'angular_dispersion': 20.666666666666668, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.008064516129032251, 'next_order_wavelength': 15.5}), ({'g': 124, 'a': 0.5, 'b': 0.25, 'm': 3, 'F': 20, 'c': 1, 'line': 10}, {'wavelength': 31.0, 'littrow_wavelength': 41.333333333333336, 'angular_dispersion': 41.333333333333336, 'linear_dispersion': 2.066666666666667, 'inferred_diffraction_sine': -0.25806451612903225, 'next_order_wavelength': 23.25})]}
for i, (record, expected) in enumerate(fixtures[N]):
check('astronomical fixture %s' % i, solve(record), 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 |
|---|---|---|---|
| astronomical fixture 0 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 20.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | Failed |
| astronomical fixture 1 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.25, 'linear_dispersion': 20.0, 'littrow_wavelength': 0.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 0.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | Failed |
| astronomical fixture 2 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 20.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 7.5, 'wavelength': 10.0} | Failed |
| astronomical fixture 3 | {'angular_dispersion': 60.0, 'inferred_diffraction_sine': -0.4166666666666667, 'linear_dispersion': 60.0, 'littrow_wavelength': 120.0, 'next_order_wavelength': 45.0, 'wavelength': 90.0} | {'angular_dispersion': 60.0, 'inferred_diffraction_sine': -0.4166666666666667, 'linear_dispersion': 6.0, 'littrow_wavelength': 120.0, 'next_order_wavelength': 45.0, 'wavelength': 90.0} | Failed |
| astronomical fixture 4 | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.0, 'linear_dispersion': 20.0, 'littrow_wavelength': 20.0, 'next_order_wavelength': 15.0, 'wavelength': 20.0} | {'angular_dispersion': 20.0, 'inferred_diffraction_sine': 0.0, 'linear_dispersion': 2.0, 'littrow_wavelength': 20.0, 'next_order_wavelength': 15.0, 'wavelength': 20.0} | Failed |
| astronomical fixture 5 | {'angular_dispersion': 40.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 40.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | {'angular_dispersion': 40.0, 'inferred_diffraction_sine': -0.25, 'linear_dispersion': 2.0, 'littrow_wavelength': 40.0, 'next_order_wavelength': 22.5, 'wavelength': 30.0} | Failed |
SHA-256 / 74212d2b8df1d613949a36e66fa0bff425319be0f134f854a6e4dfd296f161f8
HELD IN THE MEMBER ARCHIVE
The verified repair and its recorded checks are member-only.
This mechanism has 6 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.
Member access is invitation-based. Sign in with your invited account to inspect the repair.
Sign in to the archive ↗Verification & scope
Explicitly stipulated finite algebraic adapter; no standards conformance, physical accuracy, or production-library claim. Inputs are the documented finite valid model domain. 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 2026-09-29T14:46:05.017654+00:00.
Case digest / cf9f74586297100ef5419aaa3badee858dd6c977e0506070a1713406348af5e8