89 lines
2.7 KiB
Python
89 lines
2.7 KiB
Python
"""
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=========================
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Multi-dimensional scaling
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=========================
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An illustration of the metric and non-metric MDS on generated noisy data.
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The reconstructed points using the metric MDS and non metric MDS are slightly
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shifted to avoid overlapping.
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"""
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# Author: Nelle Varoquaux <nelle.varoquaux@gmail.com>
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# License: BSD
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print(__doc__)
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import numpy as np
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from matplotlib import pyplot as plt
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from matplotlib.collections import LineCollection
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from sklearn import manifold
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from sklearn.metrics import euclidean_distances
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from sklearn.decomposition import PCA
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n_samples = 20
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seed = np.random.RandomState(seed=3)
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X_true = seed.randint(0, 20, 2 * n_samples).astype(np.float)
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X_true = X_true.reshape((n_samples, 2))
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# Center the data
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X_true -= X_true.mean()
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similarities = euclidean_distances(X_true)
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# Add noise to the similarities
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noise = np.random.rand(n_samples, n_samples)
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noise = noise + noise.T
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noise[np.arange(noise.shape[0]), np.arange(noise.shape[0])] = 0
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similarities += noise
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mds = manifold.MDS(n_components=2, max_iter=3000, eps=1e-9, random_state=seed,
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dissimilarity="precomputed", n_jobs=1)
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pos = mds.fit(similarities).embedding_
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nmds = manifold.MDS(n_components=2, metric=False, max_iter=3000, eps=1e-12,
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dissimilarity="precomputed", random_state=seed, n_jobs=1,
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n_init=1)
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npos = nmds.fit_transform(similarities, init=pos)
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# Rescale the data
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pos *= np.sqrt((X_true ** 2).sum()) / np.sqrt((pos ** 2).sum())
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npos *= np.sqrt((X_true ** 2).sum()) / np.sqrt((npos ** 2).sum())
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# Rotate the data
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clf = PCA(n_components=2)
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X_true = clf.fit_transform(X_true)
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pos = clf.fit_transform(pos)
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npos = clf.fit_transform(npos)
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fig = plt.figure(1)
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ax = plt.axes([0., 0., 1., 1.])
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s = 100
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plt.scatter(X_true[:, 0], X_true[:, 1], color='navy', s=s, lw=0,
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label='True Position')
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plt.scatter(pos[:, 0], pos[:, 1], color='turquoise', s=s, lw=0, label='MDS')
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plt.scatter(npos[:, 0], npos[:, 1], color='darkorange', s=s, lw=0, label='NMDS')
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plt.legend(scatterpoints=1, loc='best', shadow=False)
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similarities = similarities.max() / similarities * 100
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similarities[np.isinf(similarities)] = 0
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# Plot the edges
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start_idx, end_idx = np.where(pos)
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# a sequence of (*line0*, *line1*, *line2*), where::
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# linen = (x0, y0), (x1, y1), ... (xm, ym)
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segments = [[X_true[i, :], X_true[j, :]]
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for i in range(len(pos)) for j in range(len(pos))]
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values = np.abs(similarities)
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lc = LineCollection(segments,
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zorder=0, cmap=plt.cm.Blues,
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norm=plt.Normalize(0, values.max()))
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lc.set_array(similarities.flatten())
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lc.set_linewidths(np.full(len(segments), 0.5))
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ax.add_collection(lc)
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plt.show()
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