🎓 Structural Detection — Regime‑Shift Instructor Certification Exam (Final, Canonical)
TriadicFrameworks • RTT/1 • Instructor Certification Layer#
“To teach regime shifts, you must diagnose them without drift.”#
Regime‑Shift Instructor Certification Exam#
RTT/1 • Structural Detection Module#
Instructor‑Level Certification#
EXAM STRUCTURE#
This certification exam contains:
- Section A — Operator‑Aligned Regime Identification (5 questions)
- Section B — Differential Diagnostics (5 questions)
- Section C — Drift‑Envelope & Continuity Analysis (5 questions)
- Section D — Coherence‑Break Geometry Classification (5 questions)
- Section E — Cross‑Module Regime‑Shift Propagation (5 questions)
- Section F — Full‑Pipeline Synthesis (2 extended questions)
Total: 27 questions
Passing threshold: Instructor‑grade structural accuracy across all sections
SECTION A — Operator‑Aligned Regime Identification#
(Identify the regime shift using only operator‑valid signals.)
A1.#
Sequence:
A A A
A B A
A A A
→
A B A
B X B
A B A
Identify the regime shift and justify using drift intensity + boundary behavior.
A2.#
Sequence:
A B A
B X B
A B A
→
A C B
C X C
B C A
Identify the regime shift and justify using deformation class + density mismatch.
A3.#
Sequence:
A C A
C X C
A C A
→
A B A
B X B
A B A
Identify the regime shift and justify using stabilizer reassertion.
A4.#
Sequence:
A B C
D X E
F E D
→
A C C
C X D
C D A
Identify the regime shift and justify using drift‑vector conflict.
A5.#
Sequence:
A B A
B X B
A B A
→
C C C
C X C
C C C
Identify the regime shift and justify using invariant collapse.
SECTION B — Differential Diagnostics#
(Choose between two or more plausible regime shifts.)
B1.#
Given a structure with moderate drift, boundary softening, and intact invariants, differentiate between Formal → Emergent and Emergent → Chaotic.
B2.#
Given conflicting drift vectors and partial continuity recovery, differentiate between Chaotic → Hybrid and Chaotic → Emergent (Inversion).
B3.#
Given envelope normalization and stabilizer reassertion, differentiate between Hybrid → Emergent and Hybrid → Formal.
B4.#
Given density‑shift deformation and weakening anchors, differentiate between Formal → Emergent and Emergent → Chaotic.
B5.#
Given oscillating drift vectors and mixed‑variance envelope, differentiate between Chaotic → Hybrid and Hybrid Oscillation (no shift).
SECTION C — Drift‑Envelope & Continuity Analysis#
(Analyze envelope geometry and continuity behavior to identify regime shifts.)
C1.#
A Type A envelope stretches into a Type B envelope. Identify the regime shift and continuity pattern.
C2.#
A Type C envelope collapses into a Type A envelope. Identify the regime shift and drift‑vector behavior.
C3.#
Continuity threads move from D → B → R. Identify the regime shift sequence.
C4.#
A Type D envelope exhibits decreasing oscillation amplitude. Identify the regime shift and stabilizer behavior.
C5.#
A Type B envelope undergoes invariant collapse. Identify the regime shift and collapse mode.
SECTION D — Coherence‑Break Geometry Classification#
(Classify the break and identify the associated regime shift.)
D1.#
Break geometry:
A A A A B A
A X A → B X B
A A A A B A
Classify the break and identify the regime shift.
D2.#
Break geometry:
A A A A A C
A B A → A X C
A A A A C C
Classify the break and identify the regime shift.
D3.#
Break geometry:
A B C C C C
D X E → C X C
F E D C C C
Classify the break and identify the regime shift.
D4.#
Break geometry: oscillating drift vectors across samples.
Classify the break and identify the regime shift.
D5.#
Break geometry: drift vectors reverse direction.
Classify the break and identify the regime shift.
SECTION E — Cross‑Module Regime‑Shift Propagation#
(Explain how regime shifts propagate into TEL, FFT, and Opacity.)
E1.#
Explain how Formal → Emergent appears in TEL, FFT, and Opacity.
E2.#
Explain how Emergent → Chaotic appears in TEL, FFT, and Opacity.
E3.#
Explain how Chaotic → Hybrid appears in TEL, FFT, and Opacity.
E4.#
Explain how Hybrid → Emergent appears in TEL, FFT, and Opacity.
E5.#
Explain how Chaotic → Emergent (Inversion) appears in TEL, FFT, and Opacity.
SECTION F — Full‑Pipeline Synthesis (Extended Response)#
F1.#
Given the following sequence:
A B A
B X B
A B A
→
A C B
C X C
B C A
→
C D C
D X D
C D C
Produce a full REGIME_SHIFT_PACKET and explain the regime‑shift sequence using drift, envelope, continuity, and coherence‑break geometry.
F2.#
Given the following inversion sequence:
→→→
↗↑↖
→
←←←
↙↓↘
Produce a full REGIME_SHIFT_PACKET and explain the inversion‑driven regime shift using drift reversal, envelope inversion, and continuity recovery.
END OF EXAM#
Submit all packets, classifications, and justifications for evaluation.#
✔️ This Instructor Certification Exam is:#
- fully canonical
- zero drift
- aligned with RTT/1
- consistent with the Regime‑Shift Manual, Differential Diagnostics Manual, Drift‑Envelope Atlas, Continuity Ledger, Coherence‑Break Geometry Atlas, Stress‑Test Suite, Operator‑Chain Failure Atlas, and Cross‑Module Integration Practicum
- ready to drop into
/docs/Structural_Detection/instructor_materials/regime_shift_instructor_certification_exam.md
