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OpenDAS
torchani
Commits
af50a84f
Unverified
Commit
af50a84f
authored
Sep 02, 2018
by
Gao, Xiang
Committed by
GitHub
Sep 02, 2018
Browse files
Document cache_aev (#84)
parent
83248cf1
Changes
6
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6 changed files
with
30 additions
and
9 deletions
+30
-9
.gitignore
.gitignore
+1
-0
codefresh.yml
codefresh.yml
+3
-3
docs/index.rst
docs/index.rst
+1
-0
examples/inference-benchmark.py
examples/inference-benchmark.py
+5
-0
torchani/data/__init__.py
torchani/data/__init__.py
+0
-4
torchani/data/cache_aev.py
torchani/data/cache_aev.py
+20
-2
No files found.
.gitignore
View file @
af50a84f
...
...
@@ -21,3 +21,4 @@ benchmark_xyz
/*.ipt
/*.params
/*.dat
/tmp
\ No newline at end of file
codefresh.yml
View file @
af50a84f
...
...
@@ -31,9 +31,9 @@ steps:
-
python examples/training-benchmark.py ./dataset/ani_gdb_s01.h5
# run twice to test if checkpoint is working
-
python examples/energy_force.py
-
python examples/neurochem-test.py ./dataset/ani_gdb_s01.h5
-
python examples/inference-benchmark.py examples/xyz_files/CH4-5.xyz
-
python -m torchani.neurochem.trainer tests/test_data/inputtrain.ipt dataset/ani_gdb_s01.h5 dataset/ani_gdb_s01.h5
-
python -m torchani.data.cache
-
aev tmp dataset/ani_gdb_s01.h5
256
-
python examples/inference-benchmark.py
--tqdm
examples/xyz_files/CH4-5.xyz
-
python -m torchani.neurochem.trainer
--tqdm
tests/test_data/inputtrain.ipt dataset/ani_gdb_s01.h5 dataset/ani_gdb_s01.h5
-
python -m torchani.data.cache
_
aev tmp dataset/ani_gdb_s01.h5
256
Docs
:
image
:
'
${{BuildTorchANI}}'
...
...
docs/index.rst
View file @
af50a84f
...
...
@@ -17,6 +17,7 @@ Datasets
.. automodule:: torchani.data
.. autoclass:: torchani.data.BatchedANIDataset
.. automodule:: torchani.data.cache_aev
Utilities
...
...
examples/inference-benchmark.py
View file @
af50a84f
...
...
@@ -3,6 +3,7 @@ import torchani
import
torch
import
os
import
timeit
import
tqdm
path
=
os
.
path
.
dirname
(
os
.
path
.
realpath
(
__file__
))
...
...
@@ -14,6 +15,8 @@ parser.add_argument('filename',
parser
.
add_argument
(
'-d'
,
'--device'
,
help
=
'Device of modules and tensors'
,
default
=
(
'cuda'
if
torch
.
cuda
.
is_available
()
else
'cpu'
))
parser
.
add_argument
(
'--tqdm'
,
dest
=
'tqdm'
,
action
=
'store_true'
,
help
=
'Whether to use tqdm to display progress'
)
parser
=
parser
.
parse_args
()
# set up benchmark
...
...
@@ -88,6 +91,8 @@ print()
# test single mode
print
(
'[Single mode]'
)
start
=
timeit
.
default_timer
()
if
parser
.
tqdm
:
xyz
=
tqdm
.
tqdm
(
xyz
)
for
species
,
coordinates
in
xyz
:
species
=
species
.
unsqueeze
(
0
)
coordinates
=
torch
.
tensor
(
coordinates
.
unsqueeze
(
0
),
requires_grad
=
True
)
...
...
torchani/data/__init__.py
View file @
af50a84f
...
...
@@ -132,11 +132,7 @@ class BatchedANIDataset(Dataset):
shuffle
=
True
,
properties
=
[
'energies'
],
transform
=
(),
dtype
=
torch
.
get_default_dtype
(),
device
=
torch
.
device
(
'cpu'
)):
super
(
BatchedANIDataset
,
self
).
__init__
()
self
.
path
=
path
self
.
batch_size
=
batch_size
self
.
shuffle
=
shuffle
self
.
properties
=
properties
self
.
dtype
=
dtype
self
.
device
=
device
# get name of files storing data
...
...
torchani/data/cache
-
aev.py
→
torchani/data/cache
_
aev.py
View file @
af50a84f
# -*- coding: utf-8 -*-
"""AEVs for a dataset can be precomputed by invoking
``python -m torchani.data.cache_aev``, this would dump the dataset and
computed aevs. Use the ``-h`` option for help.
"""
import
os
import
torch
from
..
import
aev
,
neurochem
...
...
@@ -18,6 +24,12 @@ if __name__ == '__main__':
parser
.
add_argument
(
'--constfile'
,
help
=
'Path of the constant file `.params`'
,
default
=
builtin
.
const_file
)
parser
.
add_argument
(
'--properties'
,
nargs
=
'+'
,
help
=
'Output properties to load.`'
,
default
=
[
'energies'
])
parser
.
add_argument
(
'--dtype'
,
help
=
'Data type'
,
default
=
str
(
torch
.
get_default_dtype
()).
split
(
'.'
)[
1
])
default_device
=
'cuda'
if
torch
.
cuda
.
is_available
()
else
'cpu'
parser
.
add_argument
(
'-d'
,
'--device'
,
help
=
'Device for training'
,
default
=
default_device
)
...
...
@@ -36,13 +48,19 @@ if __name__ == '__main__':
aev_computer
=
aev
.
AEVComputer
(
**
consts
).
to
(
device
)
dataset
=
BatchedANIDataset
(
parser
.
dataset
,
consts
.
species_to_tensor
,
parser
.
batchsize
,
shuffle
=
parser
.
shuffle
,
properties
=
[],
device
=
device
)
properties
=
parser
.
properties
,
device
=
device
,
dtype
=
getattr
(
torch
,
parser
.
dtype
))
# dump out the dataset
filename
=
os
.
path
.
join
(
parser
.
output
,
'dataset'
)
with
open
(
filename
,
'wb'
)
as
f
:
pickle
.
dump
(
dataset
,
f
)
if
parser
.
tqdm
:
import
tqdm
indices
=
tqdm
.
trange
(
len
(
dataset
))
else
:
indices
=
range
(
len
(
dataset
))
for
i
in
indices
:
input_
,
_
=
dataset
[
i
]
aevs
=
[
aev_computer
(
j
)
for
j
in
input_
]
...
...
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