PyMixEF 0.1 documentation
Mixed-effects modeling in Python
Specify, fit, diagnose, and preserve mixed-effects analyses with an
inspectable model representation. Follow a statistical workflow, reproduce
complete scientific examples, or look up the public Python API.
# Start with your task
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:::{grid-item-card} Install and start
:link: getting-started/index
:link-type: doc
Choose an installation profile, fit a first model, and learn the
declare → validate → compile → fit → diagnose workflow.
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:::{grid-item-card} Choose an analysis
:link: getting-started/choose-analysis
:link-type: doc
Map a scientific question to LMM, GLMM, MMRM, PK/ODE simulation, or a
pharmacometric model declaration.
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:::{grid-item-card} Work through examples
:link: tutorials/index
:link-type: doc
Ten pre-executed, assertion-backed case studies: three materials/catalysis
analyses and seven biomedical/pharmaceutical workflows.
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:::{grid-item-card} Look up an API
:link: api/index
:link-type: doc
Task-oriented navigation plus generated, signature-level documentation for the
complete public Python surface.
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# Analysis areas
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:::{grid-item-card} Linear mixed models
:class-card: pymixef-domain-card
:link: methods/lmm
:link-type: doc
**Continuous outcomes**
Gaussian ML/REML, multiple random blocks, conditional and population
predictions, residual diagnostics, simulation, and reproducible results.
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:::{grid-item-card} Generalized mixed models
:class-card: pymixef-domain-card
:link: methods/glmm
:link-type: doc
**Discrete outcomes**
Bernoulli, binomial, Poisson, and negative-binomial-2 reference fits using the
explicitly labeled first-order Laplace path.
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:::{grid-item-card} MMRM
:class-card: pymixef-domain-card
:link: methods/mmrm
:link-type: doc
**Repeated measures**
Ordered residual covariance, missing-response auditing, longitudinal contrasts,
and explicitly labeled degrees-of-freedom calculations.
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:::{grid-item-card} PK and ODE simulation
:class-card: pymixef-domain-card
:link: pharmacometrics/index
:link-type: doc
**Pharmacology**
Canonical dosing events, closed-form one- and two-compartment PK, event-aware
ODE integration, sensitivities, and residual-error models.
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:::{grid-item-card} Model declarations and IR
:class-card: pymixef-domain-card
:link: concepts/model-ir
:link-type: doc
**Inspectable models**
Formula and typed DSL authoring compile to a backend-neutral, immutable,
schema-versioned ModelIR with deterministic semantic hashes.
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:::{grid-item-card} Evidence and interchange
:class-card: pymixef-domain-card
:link: user-guide/results-provenance
:link-type: doc
**Reproducibility**
Structured convergence, diagnostics, archives, manifests, validation bundles,
comparison reports, and conservative external-format compatibility reports.
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