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examples/introductory/api_quickstart.myst.md

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@@ -87,7 +87,7 @@ Every probabilistic program consists of observed and unobserved Random Variables
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- {ref}`pymc:api_distributions_discrete`
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- {ref}`pymc:api_distributions_multivariate`
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- {ref}`pymc:api_distributions_mixture`
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- {ref}`pymc:api_distributions_rimeseries`
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- {ref}`pymc:api_distributions_timeseries`
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- {ref}`pymc:api_distributions_censored`
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- {ref}`pymc:api_distributions_simulator`
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examples/variational_inference/pathfinder.ipynb

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examples/variational_inference/pathfinder.myst.md

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@@ -38,6 +38,7 @@ Instructions for installing other packages:
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```{code-cell} ipython3
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import arviz as az
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import matplotlib.pyplot as plt
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import numpy as np
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import pymc as pm
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import pymc_experimental as pmx
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mu = pm.Normal("mu", mu=0.0, sigma=10.0)
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tau = pm.HalfCauchy("tau", 5.0)
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theta = pm.Normal("theta", mu=0, sigma=1, shape=J)
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theta_1 = mu + tau * theta
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z = pm.Normal("z", mu=0, sigma=1, shape=J)
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theta = mu + tau * z
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obs = pm.Normal("obs", mu=theta, sigma=sigma, shape=J, observed=y)
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```
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Next, we call `pmx.fit()` and pass in the algorithm we want it to use.
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```{code-cell} ipython3
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with model:
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idata = pmx.fit(method="pathfinder")
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idata = pmx.fit(method="pathfinder", num_samples=1000)
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```
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Just like `pymc.sample()`, this returns an idata with samples from the posterior. Note that because these samples do not come from an MCMC chain, convergence can not be assessed in the regular way.
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```{code-cell} ipython3
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az.plot_trace(idata);
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az.plot_trace(idata)
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plt.tight_layout();
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```
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## References
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## Authors
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* Authored by Thomas Wiecki on Oct 11 2022 ([pymc-examples#429](https://github.com/pymc-devs/pymc-examples/pull/429))
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* Re-execute notebook, by Reshama Shaikh on Feb 5, 2023
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* Re-execute notebook by Reshama Shaikh on Feb 5, 2023
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* Bug fix by Chris Fonnesbeck on Jul 17, 2024
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