GLVQ with configurable distance.
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@ -4,11 +4,11 @@ import numpy as np
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import pytorch_lightning as pl
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import torch
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from matplotlib import pyplot as plt
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from prototorch.datasets.abstract import NumpyDataset
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from prototorch.models.glvq import SiameseGLVQ
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from sklearn.datasets import load_iris
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from torch.utils.data import DataLoader
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from torch.utils.tensorboard import SummaryWriter
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from prototorch.datasets.abstract import NumpyDataset
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from prototorch.models.glvq import SiameseGLVQ
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class VisualizationCallback(pl.Callback):
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@ -57,10 +57,12 @@ class VisualizationCallback(pl.Callback):
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ax.set_xlim(left=x_min + 0, right=x_max - 0)
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ax.set_ylim(bottom=y_min + 0, top=y_max - 0)
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tb = pl_module.logger.experiment
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tb.add_figure(tag=f"{self.title}",
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tb.add_figure(
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tag=f"{self.title}",
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figure=self.fig,
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global_step=trainer.current_epoch,
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close=False)
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close=False,
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)
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plt.pause(0.1)
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@ -7,8 +7,7 @@ from matplotlib.offsetbox import AnchoredText
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from prototorch.utils.celluloid import Camera
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from prototorch.utils.colors import color_scheme
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from prototorch.utils.utils import (gif_from_dir, make_directory,
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prettify_string)
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from prototorch.utils.utils import gif_from_dir, make_directory, prettify_string
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class VisWeights(Callback):
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@ -12,13 +12,19 @@ class GLVQ(pl.LightningModule):
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"""Generalized Learning Vector Quantization."""
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def __init__(self, hparams, **kwargs):
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super().__init__()
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self.save_hyperparameters(hparams)
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# Default Values
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self.hparams.setdefault("distance", euclidean_distance)
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self.proto_layer = Prototypes1D(
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input_dim=self.hparams.input_dim,
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nclasses=self.hparams.nclasses,
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prototypes_per_class=self.hparams.prototypes_per_class,
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prototype_initializer=self.hparams.prototype_initializer,
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**kwargs)
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self.train_acc = torchmetrics.Accuracy()
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@property
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@ -35,7 +41,7 @@ class GLVQ(pl.LightningModule):
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def forward(self, x):
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protos = self.proto_layer.prototypes
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dis = euclidean_distance(x, protos)
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dis = self.hparams.distance(x, protos)
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return dis
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def training_step(self, train_batch, batch_idx):
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