| name | numerical-integration |
| description | Select and configure time integration methods for ODE and PDE simulations — choose among explicit Runge-Kutta, BDF, Rosenbrock, and Adams families, set relative and absolute error tolerances, implement adaptive step-size control with P/PI step-size controllers, plan IMEX operator splitting for mixed stiff and non-stiff terms, and estimate splitting errors. Use when picking an integrator for a new simulation, diagnosing step rejections or tolerance failures, setting up operator splitting for phase-field or reaction-diffusion problems, or deciding between explicit and implicit time marching, even if the user only says "my solver keeps rejecting steps" or "which ODE method should I use."
|
| allowed-tools | Read, Write, Grep, Glob |
| metadata | {"author":"HeshamFS","version":"1.2.2","security_tier":"medium","security_reviewed":true,"tested_with":["claude-code"],"last_evaluated":"2026-06-24","eval_cases":4,"last_reviewed":"2026-06-23","standards":["Hairer, Norsett & Wanner, Solving Ordinary Differential Equations I (Nonstiff): RK45 (Dormand-Prince), DOP853, embedded error estimation","Hairer & Wanner, Solving ODEs II (Stiff and DAE): BDF, Radau IIA, Rosenbrock methods","Gustafsson (1991/1994), control-theoretic PI step-size control","Strang (1968), operator splitting; with Lie-Trotter and Marchuk-Strang variants","Eyre (1998), unconditionally gradient-stable convex splitting for phase-field (Allen-Cahn / Cahn-Hilliard)"]} |
Numerical Integration
Goal
Provide a reliable workflow to select integrators, set tolerances, and manage adaptive time stepping for time-dependent simulations.
Requirements
- Python 3.10+
- NumPy (for some scripts)
- No heavy dependencies for core functionality
Inputs to Gather
| Input | Description | Example |
|---|
| Problem type | ODE/PDE, stiff/non-stiff | stiff PDE |
| Jacobian available | Can compute ∂f/∂u? | yes |
| Target accuracy | Desired error level | 1e-6 |
| Constraints | Memory, implicit allowed? | implicit OK |
| Time scale | Characteristic time | 1e-3 s |
Decision Guidance
Choosing an Integrator
Is the problem stiff?
├── YES → Is Jacobian available?
│ ├── YES → Use Rosenbrock or BDF
│ └── NO → Use BDF with numerical Jacobian
└── NO → Is high accuracy needed?
├── YES → Use RK45 or DOP853
└── NO → Use RK4 or Adams-Bashforth
Stiff vs Non-Stiff Detection
| Symptom | Likely Stiff | Action |
|---|
| dt shrinks to tiny values | Yes | Switch to implicit |
| Eigenvalues span many decades | Yes | Use BDF/Radau |
| Smooth solution, reasonable dt | No | Stay explicit |
Script Outputs (JSON Fields)
| Script | Key Outputs |
|---|
scripts/error_norm.py | error_norm, scale_min, scale_max |
scripts/adaptive_step_controller.py | accept, dt_next, factor |
scripts/integrator_selector.py | recommended, alternatives, notes |
scripts/imex_split_planner.py | implicit_terms, explicit_terms, splitting_strategy |
scripts/splitting_error_estimator.py | error_estimate, substeps |
Workflow
- Classify stiffness - Check eigenvalue spread or use stiffness_detector
- Choose tolerances - See
references/tolerance_guidelines.md
- Select integrator - Run
scripts/integrator_selector.py
- Compute error norms - Use
scripts/error_norm.py for step acceptance
- Adapt step size - Use
scripts/adaptive_step_controller.py
- Plan IMEX/splitting - If mixed stiff/nonstiff, use
scripts/imex_split_planner.py
- Validate convergence - Repeat with tighter tolerances
Conversational Workflow Example
User: I'm solving the Allen-Cahn equation with a stiff double-well potential. What integrator should I use?
Agent workflow:
- Check integrator options:
python3 scripts/integrator_selector.py --stiff --jacobian-available --accuracy high --json
- Plan the IMEX splitting (diffusion implicit, reaction explicit):
python3 scripts/imex_split_planner.py --stiff-terms diffusion --nonstiff-terms reaction --coupling weak --json
- Recommend: Use IMEX-BDF2 with diffusion term implicit, double-well reaction explicit.
Pre-Integration Checklist
CLI Examples
python3 scripts/integrator_selector.py --stiff --jacobian-available --accuracy high --json
python3 scripts/error_norm.py --error 0.01,0.02 --solution 1.0,2.0 --rtol 1e-3 --atol 1e-6 --json
python3 scripts/adaptive_step_controller.py --dt 1e-2 --error-norm 0.8 --order 4 --controller pi --json
python3 scripts/imex_split_planner.py --stiff-terms diffusion,elastic --nonstiff-terms reaction --coupling strong --json
python3 scripts/splitting_error_estimator.py --dt 1e-4 --scheme strang --commutator-norm 50 --target-error 1e-6 --json
Error Handling
| Error | Cause | Resolution |
|---|
rtol must be a non-negative finite number / atol must be a non-negative finite number | Invalid tolerances | Use non-negative finite values |
error_norm must be finite and non-negative | Negative or non-finite error norm | Check error computation |
scale must be positive; with min_scale=0 ensure atol>0 or rtol*|y|>0 | All scale entries collapsed to 0 (e.g. rtol=0, atol=0, default min_scale=0) | Set atol>0, rtol>0, or --min-scale > 0 |
argument --controller: invalid choice: ... (choose from p, pi) | Invalid controller type | Use p or pi |
Provide at least one stiff or non-stiff term | Empty term list | Specify stiff or nonstiff terms |
Interpretation Guidance
Error Norm Values
| Error Norm | Meaning | Action |
|---|
| < 1.0 | Step acceptable | Accept, maybe increase dt |
| ≈ 1.0 | At tolerance boundary | Accept with current dt |
| > 1.0 | Step rejected | Reject, reduce dt |
Controller Selection
| Controller | CLI value | Properties | Best For |
|---|
| P (elementary / integral) | p (default) | Simple, some overshoot | Non-stiff, moderate accuracy |
| PI (proportional-integral) | pi | Smooth, robust (requires --prev-error) | General use |
PID control is described in references/error_control.md for reference only; the
adaptive_step_controller.py CLI implements p and pi controllers.
IMEX Strategy
| Coupling | Strategy |
|---|
| Weak | Simple operator splitting |
| Moderate | Strang splitting |
| Strong | Fully coupled IMEX-RK |
Verification checklist
Common pitfalls & rationalizations
| Tempting shortcut | Why it's wrong / what to do |
|---|
"I picked an implicit/BDF method, so any dt is fine." | Unconditional stability is not accuracy; large dt still inflates temporal error. Check error_norm against the accept threshold and run the tighter-tolerance convergence check (Workflow step 7). |
"error_norm came back < 1, so the step and the whole run are correct." | The norm only certifies the local step under the chosen rtol/atol. A loose tolerance passes every step while the global solution is wrong — tighten tolerances and confirm convergence before trusting results. |
"I'll use the PI controller for smoother stepping" but omit --prev-error. | Without --prev-error the script silently falls back to the P controller (controller_used: p). You get no PI benefit. Pass the previous accepted error_norm and verify controller_used: pi. |
| "Strang vs Lie splitting won't matter much here." | Splitting error scales as commutator_norm * dt^(order+1) with order 1 (lie) vs 2 (strang). For a nonzero commutator the schemes differ by a full power of dt — run splitting_error_estimator.py with the actual --commutator-norm and --target-error instead of guessing. |
| "The selector recommended IMEX/RK-Chebyshev, so I'll just run explicitly without a Jacobian." | That branch fires only for stiff problems without implicit solves and the script warns "expect smaller dt." Read the notes: provide a Jacobian/Jv product and use BDF/Radau if implicit solves are feasible. |
| "It ran to the final time without crashing, so the integration is valid." | Completion is not correctness. Verify step acceptance (error_norm <= threshold), splitting error within target-error, and convergence under tighter tolerances; for conservative problems pass --conservative to imex_split_planner.py and check conserved quantities. |
Security
Input Validation
- All numeric inputs (
dt, rtol, atol, error_norm, stiffness_ratio, commutator_norm, etc.) are validated as finite numbers at the function boundary
imex_split_planner.py validates term names against [a-zA-Z_][a-zA-Z0-9_ -]* with length and count limits, preventing injection payloads in user-supplied term lists
- Comma-separated value lists are capped at 100,000 entries to prevent resource exhaustion
- Numeric bounds enforced:
dimension capped at 10 billion, order at 20, stiffness_ratio at 1e30
--controller is validated against a fixed allowlist (p, pi)
--scheme is validated against known splitting schemes (lie, strang)
File Access
- Scripts read no external files; all inputs are provided via CLI arguments
- Scripts write only to stdout (JSON output); no files are created unless the agent explicitly uses the Write tool
Tool Restrictions
- Read: Used to inspect script source, references, and user configuration files
- Write: Used to save integrator recommendations or splitting plans; writes are scoped to the user's working directory
- Grep/Glob: Used to locate relevant files and search references
- The skill's
allowed-tools excludes Bash to prevent the agent from executing arbitrary commands when processing user-provided inputs
Safety Measures
- No
eval(), exec(), or dynamic code generation
- All subprocess calls use explicit argument lists (no
shell=True)
- Reduced tool surface (no Bash) limits the agent to read/write operations only
- Term names are sanitized before use, preventing shell metacharacter injection
Limitations
- No automatic stiffness detection: Use stiffness_detector from numerical-stability
- Splitting assumes separability: Terms must be cleanly separable
- Jacobian requirement: Some methods need analytical or numerical Jacobian
References
references/method_catalog.md - Integrator options and properties
references/tolerance_guidelines.md - Choosing rtol/atol
references/error_control.md - Error norm and adaptation formulas
references/imex_guidelines.md - Stiff/non-stiff splitting
references/splitting_catalog.md - Operator splitting patterns
references/multiphase_field_patterns.md - Phase-field specific splits
Version History
- v1.2.2 (2026-06-24): Added Verification checklist and Common pitfalls & rationalizations sections grounding step acceptance, PI controller usage, integrator selection, and splitting-error checks in the scripts' actual outputs
- v1.2.0 (2026-06-23): Fixed PI controller coefficient/sign to standard form, fixed error_norm scale-collapse crash, corrected error-message and controller documentation to match the scripts
- v1.1.0 (2024-12-24): Enhanced documentation, decision guidance, examples
- v1.0.0: Initial release with 5 integration scripts