Merge pull request #48 from CSTR-Edinburgh/mlp2017-8/lab1
Mlp2017 8/lab1
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data/mnist-test.npz
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data/mnist-train.npz
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data/mnist-valid.npz
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@ -47,7 +47,7 @@ bash Miniconda3-latest-Linux-x86_64.sh
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You will first be asked to review the software license agreement. Assuming you choose to agree, you will then be asked
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to choose an install location for Miniconda. The default is to install in the root of your home directory
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`~/miniconda2`. We recommend going with this default unless you have a particular reason to do otherwise.
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`~/miniconda3`. We recommend going with this default unless you have a particular reason to do otherwise.
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You will then be asked whether to prepend the Miniconda binaries directory to the `PATH` system environment variable
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definition in `.bashrc`. As the DICE bash start-up mechanism differs from the standard set up
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@ -355,7 +355,7 @@ Run the install script:
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bash Miniconda3-latest-Linux-x86_64.sh
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```
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Review the software license agreement and choose whether to accept. Assuming you accept, you be asked to choose an install location for Miniconda. The default is to install in the root of your home directory `~/miniconda2`. We will assume below you have used this default. **If you use a different path you will need to adjust the paths in the commands below to suit.**
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Review the software license agreement and choose whether to accept. Assuming you accept, you be asked to choose an install location for Miniconda. The default is to install in the root of your home directory `~/miniconda3`. We will assume below you have used this default. **If you use a different path you will need to adjust the paths in the commands below to suit.**
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You will then be asked whether to prepend the Miniconda binaries directory to the `PATH` system environment variable definition in `.bashrc`. You should respond `no` here as we will set up the addition to `PATH` manually in the next step.
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@ -5,7 +5,7 @@ This module provides classes for loading datasets and iterating over batches of
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data points.
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"""
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import cPickle
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import pickle
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import gzip
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import numpy as np
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import os
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@ -121,22 +121,25 @@ class MNISTDataProvider(DataProvider):
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# separator for the current platform / OS is used
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# MLP_DATA_DIR environment variable should point to the data directory
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data_path = os.path.join(
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os.environ['MLP_DATA_DIR'], 'mnist_{0}.pkl.gz'.format(which_set))
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os.environ['MLP_DATA_DIR'], 'mnist-{0}.npz'.format(which_set))
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assert os.path.isfile(data_path), (
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'Data file does not exist at expected path: ' + data_path
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)
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# use a context-manager to ensure the files are properly closed after
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# we are finished with them
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with gzip.open(data_path) as f:
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inputs, targets = cPickle.load(f)
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# load data from compressed numpy file
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loaded = np.load(data_path)
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inputs, targets = loaded['inputs'], loaded['targets']
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inputs = inputs.astype(np.float32)
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# pass the loaded data to the parent class __init__
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super(MNISTDataProvider, self).__init__(
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inputs, targets, batch_size, max_num_batches, shuffle_order, rng)
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#def next(self):
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# """Returns next data batch or raises `StopIteration` if at end."""
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# inputs_batch, targets_batch = super(MNISTDataProvider, self).next()
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# return inputs_batch, self.to_one_of_k(targets_batch)
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def next(self):
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"""Returns next data batch or raises `StopIteration` if at end."""
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inputs_batch, targets_batch = super(MNISTDataProvider, self).next()
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return inputs_batch, self.to_one_of_k(targets_batch)
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def __next__(self):
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return self.next()
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def to_one_of_k(self, int_targets):
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"""Converts integer coded class target to 1 of K coded targets.
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@ -1,6 +1,6 @@
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# Exceeded quota problems on DICE
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Apologies to those who had issues with having insufficient quota space on DICE in the labs on Monday (25th September).
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Apologies to those who may have issues with having insufficient quota space on DICE in the labs on Monday (25th September).
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This was caused by the [dynamic AFS quota system](http://computing.help.inf.ed.ac.uk/dynamic-afs-quotas) which only initially allocates users a subset of their maximum quota and then checks hourly to increase this quota as needed. Unfortunately the amount of disk space needed to store the temporary files used in installing the course dependencies exceeded the current dynamic quota for some people. This meant when running the `conda install ...` command it exited with a quota exceeded error.
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2
setup.py
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setup.py
@ -4,7 +4,7 @@ from setuptools import setup
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setup(
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name = "mlp",
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author = "Pawel Swietojanski, Steve Renals and Matt Graham",
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author = "Pawel Swietojanski, Steve Renals, Matt Graham and Antreas Antoniou",
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description = ("Neural network framework for University of Edinburgh "
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"School of Informatics Machine Learning Practical course."),
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url = "https://github.com/CSTR-Edinburgh/mlpractical",
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