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diffusers/src/diffusers/utils/hub_utils.py at main · feisan/diffusers · GitHub
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# coding=utf-8
# Copyright 2022 The HuggingFace Inc. team.
#
# 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.
import
os
import
sys
from
pathlib
import
Path
from
typing
import
Dict
,
Optional
,
Union
from
uuid
import
uuid4
from
huggingface_hub
import
HfFolder
,
ModelCard
,
ModelCardData
,
whoami
from
huggingface_hub
.
utils
import
is_jinja_available
from
..
import
__version__
from
.
constants
import
HUGGINGFACE_CO_RESOLVE_ENDPOINT
from
.
import_utils
import
(
ENV_VARS_TRUE_VALUES
,
_flax_version
,
_jax_version
,
_onnxruntime_version
,
_torch_version
,
is_flax_available
,
is_onnx_available
,
is_torch_available
,
)
from
.
logging
import
get_logger
logger
=
get_logger
(
__name__
)
MODEL_CARD_TEMPLATE_PATH
=
Path
(
__file__
).
parent
/
"model_card_template.md"
SESSION_ID
=
uuid4
().
hex
HF_HUB_OFFLINE
=
os
.
getenv
(
"HF_HUB_OFFLINE"
,
""
).
upper
()
in
ENV_VARS_TRUE_VALUES
DISABLE_TELEMETRY
=
os
.
getenv
(
"DISABLE_TELEMETRY"
,
""
).
upper
()
in
ENV_VARS_TRUE_VALUES
HUGGINGFACE_CO_TELEMETRY
=
HUGGINGFACE_CO_RESOLVE_ENDPOINT
+
"/api/telemetry/"
def
http_user_agent
(
user_agent
:
Union
[
Dict
,
str
,
None
]
=
None
)
->
str
:
"""
Formats a user-agent string with basic info about a request.
"""
ua
=
f"diffusers/
{
__version__
}
; python/
{
sys
.
version
.
split
()[
0
]
}
; session_id/
{
SESSION_ID
}
"
if
DISABLE_TELEMETRY
or
HF_HUB_OFFLINE
:
return
ua
+
"; telemetry/off"
if
is_torch_available
():
ua
+=
f"; torch/
{
_torch_version
}
"
if
is_flax_available
():
ua
+=
f"; jax/
{
_jax_version
}
"
ua
+=
f"; flax/
{
_flax_version
}
"
if
is_onnx_available
():
ua
+=
f"; onnxruntime/
{
_onnxruntime_version
}
"
# CI will set this value to True
if
os
.
environ
.
get
(
"DIFFUSERS_IS_CI"
,
""
).
upper
()
in
ENV_VARS_TRUE_VALUES
:
ua
+=
"; is_ci/true"
if
isinstance
(
user_agent
,
dict
):
ua
+=
"; "
+
"; "
.
join
(
f"
{
k
}
/
{
v
}
"
for
k
,
v
in
user_agent
.
items
())
elif
isinstance
(
user_agent
,
str
):
ua
+=
"; "
+
user_agent
return
ua
def
get_full_repo_name
(
model_id
:
str
,
organization
:
Optional
[
str
]
=
None
,
token
:
Optional
[
str
]
=
None
):
if
token
is
None
:
token
=
HfFolder
.
get_token
()
if
organization
is
None
:
username
=
whoami
(
token
)[
"name"
]
return
f"
{
username
}
/
{
model_id
}
"
else
:
return
f"
{
organization
}
/
{
model_id
}
"
def
create_model_card
(
args
,
model_name
):
if
not
is_jinja_available
():
raise
ValueError
(
"Modelcard rendering is based on Jinja templates."
" Please make sure to have `jinja` installed before using `create_model_card`."
" To install it, please run `pip install Jinja2`."
)
if
hasattr
(
args
,
"local_rank"
)
and
args
.
local_rank
not
in
[
-
1
,
0
]:
return
hub_token
=
args
.
hub_token
if
hasattr
(
args
,
"hub_token"
)
else
None
repo_name
=
get_full_repo_name
(
model_name
,
token
=
hub_token
)
model_card
=
ModelCard
.
from_template
(
card_data
=
ModelCardData
(
# Card metadata object that will be converted to YAML block
language
=
"en"
,
license
=
"apache-2.0"
,
library_name
=
"diffusers"
,
tags
=
[],
datasets
=
args
.
dataset_name
,
metrics
=
[],
),
template_path
=
MODEL_CARD_TEMPLATE_PATH
,
model_name
=
model_name
,
repo_name
=
repo_name
,
dataset_name
=
args
.
dataset_name
if
hasattr
(
args
,
"dataset_name"
)
else
None
,
learning_rate
=
args
.
learning_rate
,
train_batch_size
=
args
.
train_batch_size
,
eval_batch_size
=
args
.
eval_batch_size
,
gradient_accumulation_steps
=
(
args
.
gradient_accumulation_steps
if
hasattr
(
args
,
"gradient_accumulation_steps"
)
else
None
),
adam_beta1
=
args
.
adam_beta1
if
hasattr
(
args
,
"adam_beta1"
)
else
None
,
adam_beta2
=
args
.
adam_beta2
if
hasattr
(
args
,
"adam_beta2"
)
else
None
,
adam_weight_decay
=
args
.
adam_weight_decay
if
hasattr
(
args
,
"adam_weight_decay"
)
else
None
,
adam_epsilon
=
args
.
adam_epsilon
if
hasattr
(
args
,
"adam_epsilon"
)
else
None
,
lr_scheduler
=
args
.
lr_scheduler
if
hasattr
(
args
,
"lr_scheduler"
)
else
None
,
lr_warmup_steps
=
args
.
lr_warmup_steps
if
hasattr
(
args
,
"lr_warmup_steps"
)
else
None
,
ema_inv_gamma
=
args
.
ema_inv_gamma
if
hasattr
(
args
,
"ema_inv_gamma"
)
else
None
,
ema_power
=
args
.
ema_power
if
hasattr
(
args
,
"ema_power"
)
else
None
,
ema_max_decay
=
args
.
ema_max_decay
if
hasattr
(
args
,
"ema_max_decay"
)
else
None
,
mixed_precision
=
args
.
mixed_precision
,
)
card_path
=
os
.
path
.
join
(
args
.
output_dir
,
"README.md"
)
model_card
.
save
(
card_path
)
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