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OpenDAS
OpenFold
Commits
9776b696
Commit
9776b696
authored
Feb 21, 2024
by
jnwei
Browse files
Merge weight-loading changes into setup-improvements
parents
9f346d35
ddfccd56
Changes
4
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4 changed files
with
366 additions
and
128 deletions
+366
-128
openfold/utils/import_weights.py
openfold/utils/import_weights.py
+8
-4
scripts/convert_v1_to_v2_weights.py
scripts/convert_v1_to_v2_weights.py
+95
-0
scripts/zero_to_fp32.py
scripts/zero_to_fp32.py
+255
-122
train_openfold.py
train_openfold.py
+8
-2
No files found.
openfold/utils/import_weights.py
View file @
9776b696
...
@@ -14,6 +14,7 @@
...
@@ -14,6 +14,7 @@
# limitations under the License.
# limitations under the License.
import
re
import
re
import
logging
from
enum
import
Enum
from
enum
import
Enum
from
dataclasses
import
dataclass
from
dataclasses
import
dataclass
from
functools
import
partial
from
functools
import
partial
...
@@ -681,15 +682,18 @@ def convert_deprecated_v1_keys(state_dict):
...
@@ -681,15 +682,18 @@ def convert_deprecated_v1_keys(state_dict):
}
}
convert_key_re
=
re
.
compile
(
"(%s)"
%
"|"
.
join
(
map
(
re
.
escape
,
replacements
.
keys
())))
convert_key_re
=
re
.
compile
(
"(%s)"
%
"|"
.
join
(
map
(
re
.
escape
,
replacements
.
keys
())))
template_emb_re
=
re
.
compile
(
r
"^((module\.)?(model\.)?)(template(?!_embedder).*)"
)
converted_state_dict
=
{}
converted_state_dict
=
{}
for
key
,
value
in
state_dict
.
items
():
for
key
,
value
in
state_dict
.
items
():
# For each match, look-up replacement value in the dictionary
# For each match, look-up replacement value in the dictionary
new_key
=
convert_key_re
.
sub
(
lambda
m
:
replacements
[
m
.
group
()],
key
)
new_key
=
convert_key_re
.
sub
(
lambda
m
:
replacements
[
m
.
group
(
1
)],
key
)
# Add prefix for template modules
# Add prefix for template layers
if
new_key
.
startswith
(
'template'
):
template_match
=
re
.
match
(
template_emb_re
,
new_key
)
new_key
=
f
'template_embedder.
{
new_key
}
'
if
template_match
:
prefix
=
template_match
.
group
(
1
)
new_key
=
f
'
{
prefix
if
prefix
else
""
}
template_embedder.
{
template_match
.
group
(
4
)
}
'
converted_state_dict
[
new_key
]
=
value
converted_state_dict
[
new_key
]
=
value
...
...
scripts/convert_v1_to_v2_weights.py
0 → 100755
View file @
9776b696
# Copyright 2022 AlQuraishi Laboratory
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
#
# Converts OpenFold .pt checkpoints into AlphaFold .npz ones, which can then be
# used to run inference using DeepMind's JAX code.
import
logging
import
argparse
import
os
import
shutil
import
torch
from
openfold.utils.import_weights
import
convert_deprecated_v1_keys
from
zero_to_fp32
import
get_optim_files
,
parse_optim_states
,
get_model_state_file
def
convert_v1_to_v2_weights
(
args
):
checkpoint_path
=
args
.
input_ckpt_path
is_dir
=
os
.
path
.
isdir
(
checkpoint_path
)
if
is_dir
:
# A DeepSpeed checkpoint
logging
.
info
(
'Converting deepspeed checkpoint found at {args.input_checkpoint_path}'
)
state_dict_key
=
'module'
latest_path
=
os
.
path
.
join
(
checkpoint_path
,
'latest'
)
if
os
.
path
.
isfile
(
latest_path
):
with
open
(
latest_path
,
'r'
)
as
fd
:
tag
=
fd
.
read
().
strip
()
else
:
raise
ValueError
(
f
"Unable to find 'latest' file at
{
latest_path
}
"
)
ds_checkpoint_dir
=
os
.
path
.
join
(
checkpoint_path
,
tag
)
model_output_path
=
os
.
path
.
join
(
args
.
output_ckpt_path
,
tag
)
optim_files
=
get_optim_files
(
ds_checkpoint_dir
)
zero_stage
,
_
,
_
=
parse_optim_states
(
optim_files
,
ds_checkpoint_dir
)
model_file
=
get_model_state_file
(
ds_checkpoint_dir
,
zero_stage
)
else
:
# A Pytorch Lightning checkpoint
logging
.
info
(
'Converting pytorch lightning checkpoint found at {args.input_checkpoint_path}'
)
state_dict_key
=
'state_dict'
model_output_path
=
args
.
output_ckpt_path
model_file
=
checkpoint_path
model_dict
=
torch
.
load
(
model_file
,
map_location
=
torch
.
device
(
'cpu'
))
model_dict
[
state_dict_key
]
=
convert_deprecated_v1_keys
(
model_dict
[
state_dict_key
])
if
'ema'
in
model_dict
:
ema_state_dict
=
model_dict
[
'ema'
][
'params'
]
model_dict
[
'ema'
][
'params'
]
=
convert_deprecated_v1_keys
(
ema_state_dict
)
if
is_dir
:
param_shapes
=
convert_deprecated_v1_keys
(
model_dict
[
'param_shapes'
][
0
])
model_dict
[
'param_shapes'
]
=
[
param_shapes
]
shutil
.
copytree
(
checkpoint_path
,
args
.
output_ckpt_path
)
out_fname
=
os
.
path
.
join
(
model_output_path
,
os
.
path
.
basename
(
model_file
))
for
optim_file
in
optim_files
:
optim_dict
=
torch
.
load
(
optim_file
)
new_optim_dict
=
optim_dict
.
copy
()
new_optim_dict
[
'optimizer_state_dict'
][
'param_slice_mappings'
][
0
]
=
convert_deprecated_v1_keys
(
optim_dict
[
'optimizer_state_dict'
][
'param_slice_mappings'
][
0
])
out_optim_fname
=
os
.
path
.
join
(
model_output_path
,
os
.
path
.
basename
(
optim_file
))
torch
.
save
(
new_optim_dict
,
out_optim_fname
)
else
:
out_fname
=
model_output_path
torch
.
save
(
model_dict
,
out_fname
)
if
__name__
==
"__main__"
:
parser
=
argparse
.
ArgumentParser
()
parser
.
add_argument
(
"input_ckpt_path"
,
type
=
str
)
parser
.
add_argument
(
"output_ckpt_path"
,
type
=
str
)
args
=
parser
.
parse_args
()
convert_v1_to_v2_weights
(
args
)
scripts/zero_to_fp32.py
View file @
9776b696
This diff is collapsed.
Click to expand it.
train_openfold.py
View file @
9776b696
...
@@ -39,6 +39,7 @@ from scripts.zero_to_fp32 import (
...
@@ -39,6 +39,7 @@ from scripts.zero_to_fp32 import (
get_fp32_state_dict_from_zero_checkpoint
,
get_fp32_state_dict_from_zero_checkpoint
,
get_global_step_from_zero_checkpoint
get_global_step_from_zero_checkpoint
)
)
from
scripts.zero_to_fp32
import
get_optim_files
,
parse_optim_states
,
get_model_state_file
from
openfold.utils.logger
import
PerformanceLoggingCallback
from
openfold.utils.logger
import
PerformanceLoggingCallback
...
@@ -294,8 +295,13 @@ def main(args):
...
@@ -294,8 +295,13 @@ def main(args):
sd
=
get_fp32_state_dict_from_zero_checkpoint
(
args
.
resume_from_ckpt
)
sd
=
get_fp32_state_dict_from_zero_checkpoint
(
args
.
resume_from_ckpt
)
else
:
else
:
sd
=
torch
.
load
(
args
.
resume_from_ckpt
)
sd
=
torch
.
load
(
args
.
resume_from_ckpt
)
sd
=
{
k
[
len
(
"module."
):]:
v
for
k
,
v
in
sd
.
items
()}
if
'module'
in
sd
:
import_openfold_weights_
(
model
=
model_module
,
state_dict
=
sd
)
module_sd
=
{
k
[
len
(
"module."
):]:
v
for
k
,
v
in
sd
[
'module'
].
items
()}
import_openfold_weights_
(
model
=
model_module
,
state_dict
=
module_sd
)
elif
'state_dict'
in
sd
:
import_openfold_weights_
(
model
=
model_module
,
state_dict
=
sd
[
'state_dict'
])
else
:
import_openfold_weights_
(
model
=
model_module
,
state_dict
=
sd
)
logging
.
info
(
"Successfully loaded model weights..."
)
logging
.
info
(
"Successfully loaded model weights..."
)
if
(
args
.
resume_from_jax_params
):
if
(
args
.
resume_from_jax_params
):
model_module
.
load_from_jax
(
args
.
resume_from_jax_params
)
model_module
.
load_from_jax
(
args
.
resume_from_jax_params
)
...
...
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