Change PODLayer name (#251)
* rename PODBlock * add tutorial rst --------- Co-authored-by: Dario Coscia <dariocoscia@Dario-Coscia.local> Co-authored-by: Dario Coscia <dariocoscia@Dario-Coscia.lan>
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@@ -38,4 +38,4 @@ Supervised Learning
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:titlesonly:
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Unstructured convolutional autoencoder via continuous convolution<tutorials/tutorial4/tutorial.rst>
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POD-NN for reduced order modeling<tutorials/tutorial8/tutorial.rst>
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@@ -38,7 +38,7 @@ minimum PINA version to run this tutorial is the ``0.1``.
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from pina.geometry import CartesianDomain
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from pina.problem import ParametricProblem
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from pina.model.layers import PODLayer
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from pina.model.layers import PODBlock
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from pina import Condition, LabelTensor, Trainer
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from pina.model import FeedForward
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from pina.solvers import SupervisedSolver
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@@ -130,7 +130,7 @@ architecture that takes in input the parameter and return the *modal
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coefficients*, so the reduced dimension representation (the coordinates
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in the POD space). Such latent variable is the projected to the original
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space using the POD modes, which are computed and stored in the
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``PODLayer`` object.
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``PODBlock`` object.
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.. code:: ipython3
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@@ -145,7 +145,7 @@ space using the POD modes, which are computed and stored in the
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"""
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super().__init__()
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self.pod = PODLayer(pod_rank)
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self.pod = PODBlock(pod_rank)
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self.nn = FeedForward(
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input_dimensions=1,
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output_dimensions=pod_rank,
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@@ -168,8 +168,8 @@ space using the POD modes, which are computed and stored in the
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def fit_pod(self, x):
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"""
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Just call the :meth:`pina.model.layers.PODLayer.fit` method of the
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:attr:`pina.model.layers.PODLayer` attribute.
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Just call the :meth:`pina.model.layers.PODBlock.fit` method of the
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:attr:`pina.model.layers.PODBlock` attribute.
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"""
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self.pod.fit(x)
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