Unverified Commit 4a343077 authored by Sayak Paul's avatar Sayak Paul Committed by GitHub
Browse files

add: utility to format our docs too 📜 (#7314)

* add: utility to format our docs too 📜

* debugging saga

* fix: message

* checking

* should be fixed.

* revert pipeline_fixture

* remove empty line

* make style

* fix: setup.py

* style.
parent 8e963d1c
...@@ -112,7 +112,8 @@ def load_or_create_model_card( ...@@ -112,7 +112,8 @@ def load_or_create_model_card(
repo_id_or_path (`str`): repo_id_or_path (`str`):
The repo id (e.g., "runwayml/stable-diffusion-v1-5") or local path where to look for the model card. The repo id (e.g., "runwayml/stable-diffusion-v1-5") or local path where to look for the model card.
token (`str`, *optional*): token (`str`, *optional*):
Authentication token. Will default to the stored token. See https://huggingface.co/settings/token for more details. Authentication token. Will default to the stored token. See https://huggingface.co/settings/token for more
details.
is_pipeline (`bool`): is_pipeline (`bool`):
Boolean to indicate if we're adding tag to a [`DiffusionPipeline`]. Boolean to indicate if we're adding tag to a [`DiffusionPipeline`].
from_training: (`bool`): Boolean flag to denote if the model card is being created from a training script. from_training: (`bool`): Boolean flag to denote if the model card is being created from a training script.
......
...@@ -16,8 +16,8 @@ def load_image( ...@@ -16,8 +16,8 @@ def load_image(
image (`str` or `PIL.Image.Image`): image (`str` or `PIL.Image.Image`):
The image to convert to the PIL Image format. The image to convert to the PIL Image format.
convert_method (Callable[[PIL.Image.Image], PIL.Image.Image], optional): convert_method (Callable[[PIL.Image.Image], PIL.Image.Image], optional):
A conversion method to apply to the image after loading it. A conversion method to apply to the image after loading it. When set to `None` the image will be converted
When set to `None` the image will be converted "RGB". "RGB".
Returns: Returns:
`PIL.Image.Image`: `PIL.Image.Image`:
......
...@@ -253,8 +253,8 @@ def convert_unet_state_dict_to_peft(state_dict): ...@@ -253,8 +253,8 @@ def convert_unet_state_dict_to_peft(state_dict):
def convert_all_state_dict_to_peft(state_dict): def convert_all_state_dict_to_peft(state_dict):
r""" r"""
Attempts to first `convert_state_dict_to_peft`, and if it doesn't detect `lora_linear_layer` Attempts to first `convert_state_dict_to_peft`, and if it doesn't detect `lora_linear_layer` for a valid
for a valid `DIFFUSERS` LoRA for example, attempts to exclusively convert the Unet `convert_unet_state_dict_to_peft` `DIFFUSERS` LoRA for example, attempts to exclusively convert the Unet `convert_unet_state_dict_to_peft`
""" """
try: try:
peft_dict = convert_state_dict_to_peft(state_dict) peft_dict = convert_state_dict_to_peft(state_dict)
......
...@@ -156,8 +156,8 @@ def get_tests_dir(append_path=None): ...@@ -156,8 +156,8 @@ def get_tests_dir(append_path=None):
# https://github.com/huggingface/accelerate/pull/1964 # https://github.com/huggingface/accelerate/pull/1964
def str_to_bool(value) -> int: def str_to_bool(value) -> int:
""" """
Converts a string representation of truth to `True` (1) or `False` (0). Converts a string representation of truth to `True` (1) or `False` (0). True values are `y`, `yes`, `t`, `true`,
True values are `y`, `yes`, `t`, `true`, `on`, and `1`; False value are `n`, `no`, `f`, `false`, `off`, and `0`; `on`, and `1`; False value are `n`, `no`, `f`, `false`, `off`, and `0`;
""" """
value = value.lower() value = value.lower()
if value in ("y", "yes", "t", "true", "on", "1"): if value in ("y", "yes", "t", "true", "on", "1"):
......
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