| name | diagnose-modelica |
| description | Diagnose Modelica models (.mo files) by generating a detailed structural and simulation report. Use this skill whenever the user asks to diagnose, analyze, profile, or debug a Modelica model's structure, equations, variables, or performance. Triggers on phrases like 'diagnose this model', 'analyze the model structure', 'show me the equation blocks', 'how many states does this model have', 'why is this model slow', 'debug this model', 'model report', or any request to understand the internals of a Modelica model. |
Diagnose Modelica Model
This skill generates a comprehensive diagnostic report for a Modelica model. You
run the model through the bundled launcher, then turn the artifacts it leaves
behind into a report with the bundled report_blocks.py / trace_variable.py
scripts. The report covers variable counts, equation structure, block analysis,
solver settings, and (if simulated) runtime performance.
Before you run anything
This skill drives WSMKernelX through the shared launcher
../scripts/wsm_run.py. Read the shared-conventions appendix at the end of this file
first — launcher resolution, the Windows-vs-Unix shell/Python rules, the
temp-dir and cleanup conventions, the JSON-array output gotcha, and the MSL 4.x
dialect notes that every step below assumes.
In --mode diagnose the launcher enables the diagnostic options it needs and
keeps all intermediate build artifacts for the report scripts
(report_blocks.py / trace_variable.py). It works in _wsm_diagnose_temp/
next to the .mo file and leaves all artifacts there. Tell the user: "Working
in temporary directory _wsm_diagnose_temp/. This will be deleted after the
report is generated."
Workflow
1. Identify the model file and name
Identify the .mo file and extract the model name — see Appendix → Picking the model name. For a directory-form (multi-file) library, point --model at the library folder (not one class file) and pass the full dotted --name — see Appendix → Directory-form (multi-file) libraries.
2. Run the launcher
python3 "<scripts-dir>/wsm_run.py" --mode diagnose \
--model "<path-to-ModelFile.mo>" --name ModelName --timeout 180
MSL is auto-detected; override with --msl yes|no or --msl-version 4.1.0. If the model uses an installed non-MSL library (e.g. Hydraulic), add --load-library <Name> — see Appendix → Using non-MSL libraries.
For structure only, skip the simulation entirely: add --no-sim (build-only,
much faster). The structural report below still works; only the runtime-performance
line is omitted.
A Fatal error: exception ...(_) (e.g. ErrorExt.ErrorMessage(_), LError.Errors(_))
is not an opaque crash — it's a normal error (assertion, parameter/init, type, lookup)
that +g let escape, since +g keeps build artifacts but disables exception catching.
On any failure the launcher prints the recovered message in an === actual kernel diagnostic === block (re-running the same call without +g, so exception catching is
back on and the error surfaces at whatever stage it occurred). Read that block first;
don't infer a compiler bug from the Fatal error line. Use the staged diagnostics
below only if it surfaces nothing readable.
Staged diagnostics (for a genuinely opaque crash)
A full run goes through the whole pipeline (flatten → optimize → build → simulate);
a crash partway through gives no clue which stage failed. The launcher's --call
option runs a stage-restricted entry point so you can bracket the failure, and
--debug adds the compiler's per-stage dumps and execution statistics:
--call | What it does | When to use |
|---|
instantiate | Flatten only. | First call when a model is failing — confirms whether flattening succeeds. |
build | Flatten + translate to simulator (no simulation). | If flatten passes but the full run crashes — isolates optimization/code-gen from the runtime. |
sim | Full pipeline including simulation. | Default for healthy models (used when --call is omitted). |
Workflow (only when the diagnostic block above surfaced nothing readable):
- Run with
--call instantiate first. If it fails → it's a flatten error (type/connection/balance). Read the === actual kernel diagnostic === block, then diagnose.out.json in the temp dir.
- If flatten passes, run
--call build --debug and capture stdout — the last stage printed before the crash localizes the bug. The --debug output can be large, so redirect it:
python3 "<scripts-dir>/wsm_run.py" --mode diagnose \
--model "<path-to-ModelFile.mo>" --name ModelName \
--call build --debug > debug.log 2>&1
- Only then run the default (
--call sim, or omit it) for the full report.
If the log shows ++++ Running or runtime annotation lines, the model already built —
the failure is at init/simulation (a model error), not code-gen; a truncated _build.log
("Step 2 of 4") does not mark where it died.
3. Generate the structural report
After a successful run, use the bundled report_blocks.py script to generate a complete report. This is the preferred approach — it parses all the artifacts automatically, so you never need to read them by hand:
python3 "<scripts-dir>/report_blocks.py" \
"<temp-dir>/ModelName_blockdebug.json" \
--header "<temp-dir>/ModelName_header.h" \
--reslog "<temp-dir>/ModelName_res.log"
The script produces a full report covering variable counts, block summaries, non-trivial systems with solvability details, eliminated aliases, and runtime performance.
Prefer --summary (or --json) for a few-line digest — states, algebraic/parameter
counts, zero-crossings, coupled-system count + largest block, and runtime — instead of
the full multi-screen report. Reach for the full report only when you need block-level
detail. With --no-sim the same --summary works from the _blockdebug.json alone;
only the runtime-performance line is omitted.
The artifacts report_blocks.py reads all live in the temp dir (ModelName_header.h,
ModelName.sim, ModelName_blockdebug.json, ModelName_res.log, ModelName.log,
diagnose.out.json). The script understands their formats for you; only open them
directly if you need to dig past what the report surfaces.
4. Present the diagnostic report
Present the report to the user in this format:
# Diagnostic Report: ModelName
## Build Status
- Flatten: Pass/Fail
- Build: Pass/Fail
- Simulation: Pass/Fail
## Model Summary
| Metric | Count |
|--------|-------|
| Continuous states (NX) | ... |
| Discrete states (NDX) | ... |
| Algebraic variables (NY) | ... |
| Parameters (NP) | ... |
| Inputs (NI) | ... |
| Outputs (NO) | ... |
| Zero crossings | ... |
| External objects | ... |
| Clocked partitions | ... |
## Solver Settings
- Method: ...
- Time range: ... to ...
- Step size: ...
- Output steps: ...
## Variable Details
| Name | Kind | Type | Unit | Init |
|------|------|------|------|------|
| ... | STATE | Real | m/s | exact |
## Equation Structure
### Initialization (N blocks)
- Block 0: [solved] variable_name ← equation_text
- ...
### ODE (N blocks)
- Block 0: [solved] ...
- ...
### Output (N blocks)
- ...
### Eliminated Variables (N aliases)
- gain.u → sine.y
- ...
## Potential Issues
- [List any nonlinear systems, large blocks, unsolvable equations, etc.]
## Runtime Performance
- Integration time: ... s
- Function evaluations: ...
- Events: ...
- Step events (dynamic state switches): ...
## Compiler
- Version: ...
Tailor the "Potential Issues" section based on what report_blocks.py reports:
- Nonlinear blocks → "Nonlinear system of N equations — may cause convergence issues at initialization or during simulation"
- Large algebraic loops → "Algebraic loop with N equations — consider breaking with
Modelica.Blocks.Math.InverseBlockConstraints or adding initial guesses"
- Many zero crossings → "N zero crossings — may cause slow simulation due to frequent event detection"
- No states → "No continuous states — this is a purely algebraic/discrete model"
- Many events at runtime → "N events detected — consider smoothing discontinuities"
5. Trace a specific variable (optional)
If the user asks to trace a variable (e.g. "trace clutch1.w_rel", "what equations solve w_rel"), use the bundled trace_variable.py script to walk the full dependency chain.
The script needs the _blockdebug.json produced in step 2. Run it from the temp directory:
python3 "<scripts-dir>/trace_variable.py" "<temp-dir>/ModelName_blockdebug.json" "variable.name" --section both
Options for --section:
init — How the variable gets its starting value (initialization phase)
ode — How the variable is computed each integration step
both — Show both traces (default)
The script automatically:
- Walks backwards through predecessor blocks from the target variable to all leaf nodes
- Shows each equation, its source file/line, and solvability
- Flags non-trivial solvability (nonlinear, mixed, conditioned, relaxed)
- If the variable isn't found in the ODE section, automatically tries
der(variable) (since state variables are integrated, their derivatives are what appears in the ODE blocks)
- Reports eliminated variable aliases
6. Clean up
Remove _wsm_diagnose_temp/ entirely — commands per OS: Appendix → Temporary directories.
Edge cases
- Model fails to flatten: Report errors from
diagnose.out.json. Analyze the error messages and suggest fixes (missing components, type mismatches, unbalanced equations).
- Model flattens but fails to build: Still run
report_blocks.py on _blockdebug.json if it was generated — it's produced before compilation. Report build errors from ModelName.log.
- Model builds but fails to simulate: Report runtime errors from
_res.log. Check for division by zero, assertion failures, or solver convergence issues.
Fatal error: exception ...(_) (no _blockdebug.json or .sim): a normal error +g let escape, not a compiler bug. Read the launcher's === actual kernel diagnostic === block (it auto-recovers the message by re-running the same call without +g). Only if it surfaces nothing readable, use the staged diagnostics above; report to Wolfram only when the failure lands in a compiler stage with no model-level cause.
- Multiple models in one file: Use the top-level model/package name — see Appendix → Picking the model name.
- WSMKernelX or compiler not found: see Appendix → When the install or compiler isn't found.
Appendix: shared conventions for the Modelica skills
Shared by every Modelica skill that drives WSMKernelX through the
bundled launcher; inlined here at release time. For the CLI/option
reference, environment variables (WSM_HOME, WSM_VSDEVCMD),
install discovery, and the analysis scripts, see
../scripts/README.md.
Locating the launcher
<scripts-dir> (used throughout the skills) is the shared scripts/ folder.
Some installs symlink the skill directories without it, so resolve it in this
order and use the first that exists:
$WSM_SKILLS_SCRIPTS (bash) or $env:WSM_SKILLS_SCRIPTS (PowerShell), if set.
../scripts relative to the skill directory — in a normal install
../scripts/wsm_run.py already exists, so use that path directly; do not run
a shell probe to "resolve" it.
- The repo checkout you installed from, e.g.
.../agentskills/scripts.
- Last resort, search the home directory:
- PowerShell:
Get-ChildItem $HOME -Recurse -Filter wsm_run.py -ErrorAction SilentlyContinue | Select-Object -First 1
- bash/zsh:
find ~ -name wsm_run.py -path '*scripts*' 2>/dev/null | head -1
If only #4 finds it, the install is missing the scripts/ link — tell the user
to run install.sh (or install.ps1) from the repo, which links scripts/ too.
Shell and Python
On Windows, use PowerShell. The Git-Bash/cygwin layer may be broken (even
ls/find can be absent, giving a misleading "exit 127 / command not found").
Run wsm_run.py with python (not python3); those calls are single-line and
shell-agnostic. For cleanup use Remove-Item -Recurse -Force, not rm -rf.
On macOS/Linux any POSIX shell is fine and python3 is the usual name.
Let the launcher own .mos/.bat and paths
Do not hand-write .mos scripts, .bat files, or hardcode install/compiler
paths. The bundled scripts/wsm_run.py handles every OS difference — it finds
the System Modeler install and kernel binary (macOS / Windows / Linux), finds and
loads the right MSL files, generates the .mos, and runs the kernel with a
working compiler environment per platform (system clang/gcc on macOS/Linux; the
Visual Studio dev environment via VsDevCmd.bat on Windows).
See ../scripts/README.md for WSM_HOME, the Windows compiler prerequisites,
and the full option table.
When the install or compiler isn't found
The launcher searches each OS's standard install locations. If it prints
ERROR: Could not locate a Wolfram System Modeler installation, the install
is in a non-standard place — ask the user for it and re-run with
--wsm-home "<path>" (or have them set WSM_HOME).
Building and simulating also need a C++ toolchain:
- Windows: Visual Studio Build Tools. The launcher locates
VsDevCmd.bat
itself; if it reports the compiler environment is missing, pass
--vsdevcmd "<path-to-VsDevCmd.bat>" (or set WSM_VSDEVCMD) and make sure
Build Tools are installed.
- macOS: the Xcode command-line tools (
xcode-select --install).
- Linux: gcc/g++.
Run python3 "<scripts-dir>/wsm_run.py" --mode info to see what the launcher
discovered.
Temporary directories
The launcher works in a _wsm_<mode>_temp/ directory next to the .mo file
(_wsm_validate_temp/, _wsm_simulate_temp/, _wsm_diagnose_temp/) and leaves
its outputs there. Tell the user, e.g.: "Working in temporary directory
_wsm_<mode>_temp/. This will be deleted afterwards." Pass --tempdir
to reuse one directory across models in a session.
Clean up by removing the whole directory — use the user's shell:
rm -rf "<model-dir>/_wsm_<mode>_temp"
Picking the model name
- The user may provide a path to a
.mo file, or you may already be working with
one in context.
- Extract the model name: the identifier after
model on the first non-comment
line, e.g. model FooBar → FooBar. The filename does not always match the
model name — parse the actual model/package declaration.
- For packages or nested models, use the top-level model name.
- Pick an instantiable model, not a package, for any kernel call. A
package
cannot be validated or simulated ("Invalid instantiation … is a package") — use
a nested model's full dotted name, e.g. Package.Model.
- Pass an absolute path to
--model (relative paths break as the working
directory shifts between calls).
Directory-form (multi-file) libraries
A directory-form library stores one class per file with a package.mo at each
level. You cannot validate such a class by handing the launcher only its own
.mo file — the class's within Lib; clause needs the whole package loaded, and
loading the single file alone fails with
Internal error: ... expandLibNode: Unknown library: Lib. Instead point
--model at the library folder (or its top package.mo, or any class file
inside it) and pass the full dotted class name via --name:
python3 "<scripts-dir>/wsm_run.py" --mode validate \
--model "/abs/path/InvertedPendulum" \
--name InvertedPendulum.Controller
The launcher resolves any of those forms up to the library's root package.mo
and loads the entire package (following package.order) before instantiating
--name. It prints a NOTE: telling you which package.mo it loaded. Do not
try to work around the unknown-library error by --load-ing individual files.
Reading the JSON output
The kernel writes <mode>.out.json into the temp dir. It is a JSON array —
take the first element, then read:
status.flatten: "Pass" / "Fail" (the primary result for validate).
status.build: "Pass" / "Fail" — C++ compilation/linking (simulate).
status.result: simulation result status (simulate).
messages.errors / messages.warnings / messages.notifications:
arrays (empty if none).
flat_model (validate) / simulation.resultFile (simulate): the
flattened class / path to the .mat.
See ../scripts/README.md (wsm_run.py section) for the full field reference.
MSL 4.x dialect
This toolchain ships MSL 4.x. When authoring models, use the 4.x names — the
3.2 names flatten with confusing "not found" errors:
- units:
Modelica.Units.SI.* (not Modelica.SIunits.*)
- source frequency parameter:
f (not freqHz), e.g. SineVoltage(V=.., f=..)
- declare the dependency as
annotation(uses(Modelica(version="4.0.0")))
Run python3 "<scripts-dir>/wsm_run.py" --mode info to confirm the exact MSL
version. wsm_run.py also warns on stderr if it spots a 3.2 name in the model.
When a flatten fails with Element not found ... in Modelica..., the MSL
component path is wrong (a misremembered name, not a missing install). Resolve
the correct path with the search-modelica-docs skill — e.g. sine is
Modelica.Blocks.Sources.Sine (not Math.Sine), difference is Math.Feedback
(not Math.Subtract), and saturation is Nonlinear.Limiter (not
Nonlinear.Saturation). Do not grep or walk the System Modeler install tree
to hunt for the class.
Using non-MSL libraries (Hydraulic, and other installed libraries)
MSL is automatic (--msl). For any other library a model uses — Hydraulic, or
anything the user installed from the Library Store — the launcher can find it for you.
Two steps, no guessing at paths:
-
See what is installed (bundled with System Modeler, user-installed archives, and
any custom folders configured in Model Center):
python3 "<scripts-dir>/wsm_run.py" --mode libraries
To get just one library's package path (e.g. for a manual --load):
--mode libraries --library Hydraulic (add --library-version 2.1 to pin a version).
-
Load it into a build by name — add --load-library <Name> to a validate /
simulate / diagnose run (repeatable; pin a version with Name==Ver):
python3 "<scripts-dir>/wsm_run.py" --mode validate \
--model "<path>/M.mo" --name M --load-library Hydraulic
The launcher resolves the library (bundled → user-installed → Model-Center custom
path, newest version wins) and loadFiles it before the model. A library usually
pulls in MSL, so keep MSL on (auto, or --msl yes). Override a lookup with
$WSM_LIBRARY_<NAME> (e.g. WSM_LIBRARY_HYDRAULIC=/path/to/package.moe), or fall
back to an explicit --load <path-to-package.mo|.moe>.