Mercurial > ift6266
view scripts/nist_read2.py @ 115:b84a0d009af8
changes on pipeline mecanism: we now sample a different complexity for each transformations, this because when we use the same sampled complexity for all the modules 1/8 of the time we are close to 0 and we obtain an image very close to the source, we now save a complexity for each module in the parameters array
author | Xavier Glorot <glorotxa@iro.umontreal.ca> |
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date | Wed, 17 Feb 2010 16:20:15 -0500 |
parents | a9b87b68101d |
children |
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#!/usr/bin/env python from pylearn.io import filetensor as ft import pylab, numpy datapath = '/data/lisa/data/ift6266h10/train_' f = open(datapath+'data.ft') d = ft.read(f) f = open(datapath+'labels.ft') labels = ft.read(f) def label2chr(l): if l<10: return chr(l + ord('0')) elif l<36: return chr(l-10 + ord('A')) else: return chr(l-36 + ord('a')) for i in range(min(d.shape[0],30)): pylab.figure() pylab.title(label2chr(labels[i])) pylab.imshow(d[i].reshape((32,32))/255., pylab.matplotlib.cm.Greys_r, interpolation='nearest') pylab.show()