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...a.train.dataset.factor=0.05,data=sidae,model=sidae/2023-09-15/20-50-45/.hydra/config.yaml
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data: | ||
batch_size: 256 | ||
n_workers: 0 | ||
name: mnist | ||
train: | ||
_target_: torch.utils.data.DataLoader | ||
dataset: | ||
_target_: autoencoders.data.SiDAEDataset | ||
dataset: | ||
_target_: autoencoders.data.get_mnist_dataset | ||
train: true | ||
num_ops: 1 | ||
loc: 0 | ||
scale: 1 | ||
factor: 0.05 | ||
batch_size: ${data.batch_size} | ||
shuffle: true | ||
num_workers: ${data.n_workers} | ||
valid: | ||
_target_: torch.utils.data.DataLoader | ||
dataset: | ||
_target_: autoencoders.data.SiDAEDataset | ||
dataset: | ||
_target_: autoencoders.data.get_mnist_dataset | ||
train: false | ||
num_ops: 1 | ||
loc: 0 | ||
scale: 1 | ||
factor: 1.0 | ||
batch_size: ${data.batch_size} | ||
shuffle: false | ||
num_workers: ${data.n_workers} | ||
model: | ||
optimizer: | ||
_target_: torch.optim.Adam | ||
_partial_: true | ||
lr: 0.001 | ||
betas: | ||
- 0.9 | ||
- 0.999 | ||
weight_decay: 0 | ||
scheduler: | ||
_target_: torch.optim.lr_scheduler.ReduceLROnPlateau | ||
_partial_: true | ||
mode: min | ||
factor: 0.1 | ||
patience: 10 | ||
name: SiDAE | ||
nn: | ||
_target_: autoencoders.models.sidae.SiDAE | ||
encoder: | ||
_target_: autoencoders.modules.CNNEncoderProjection | ||
channels_in: 1 | ||
base_channels: 32 | ||
latent_dim: ${model.nn.dim} | ||
decoder: | ||
_target_: autoencoders.modules.CNNDecoder | ||
channels_in: 1 | ||
base_channels: 32 | ||
latent_dim: ${model.nn.dim} | ||
dim: 512 | ||
pred_dim: 512 | ||
trainer: | ||
_target_: pytorch_lightning.Trainer | ||
max_epochs: 100 | ||
accelerator: mps | ||
devices: 1 | ||
logger: | ||
_target_: pytorch_lightning.loggers.WandbLogger | ||
project: autoencoders | ||
name: null | ||
id: null | ||
group: null | ||
job_type: null | ||
save_dir: ${hydra:runtime.output_dir} | ||
log_model: true | ||
tags: ${tags} | ||
callbacks: | ||
model_summary: | ||
_target_: pytorch_lightning.callbacks.RichModelSummary | ||
progress_bar: | ||
_target_: pytorch_lightning.callbacks.RichProgressBar | ||
refresh_rate: 5 | ||
leave: true | ||
early_stopping: | ||
_target_: pytorch_lightning.callbacks.EarlyStopping | ||
monitor: train-loss | ||
min_delta: 0.001 | ||
patience: 10 | ||
check_on_train_epoch_end: true | ||
model_checkpoint: | ||
_target_: pytorch_lightning.callbacks.ModelCheckpoint | ||
dirpath: ${hydra:runtime.output_dir}/checkpoints | ||
monitor: train-loss | ||
save_top_k: 1 | ||
save_on_train_epoch_end: true | ||
tags: | ||
- ${data.name} | ||
- ${model.name} |
177 changes: 177 additions & 0 deletions
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...ta.train.dataset.factor=0.05,data=sidae,model=sidae/2023-09-15/20-50-45/.hydra/hydra.yaml
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hydra: | ||
run: | ||
dir: outputs/${model.name}/${hydra.job.name}/${now:%Y-%m-%d}/${now:%H-%M-%S} | ||
sweep: | ||
dir: outputs/${model.name}/${hydra.job.name}/multirun | ||
subdir: ${hydra.job.override_dirname}/${now:%Y-%m-%d}/${now:%H-%M-%S} | ||
launcher: | ||
_target_: hydra_plugins.hydra_joblib_launcher.joblib_launcher.JoblibLauncher | ||
n_jobs: -1 | ||
backend: null | ||
prefer: processes | ||
require: null | ||
verbose: 0 | ||
timeout: null | ||
pre_dispatch: 2*n_jobs | ||
batch_size: auto | ||
temp_folder: null | ||
max_nbytes: null | ||
mmap_mode: r | ||
sweeper: | ||
_target_: hydra._internal.core_plugins.basic_sweeper.BasicSweeper | ||
max_batch_size: null | ||
params: null | ||
help: | ||
app_name: ${hydra.job.name} | ||
header: '${hydra.help.app_name} is powered by Hydra. | ||
' | ||
footer: 'Powered by Hydra (https://hydra.cc) | ||
Use --hydra-help to view Hydra specific help | ||
' | ||
template: '${hydra.help.header} | ||
== Configuration groups == | ||
Compose your configuration from those groups (group=option) | ||
$APP_CONFIG_GROUPS | ||
== Config == | ||
Override anything in the config (foo.bar=value) | ||
$CONFIG | ||
${hydra.help.footer} | ||
' | ||
hydra_help: | ||
template: 'Hydra (${hydra.runtime.version}) | ||
See https://hydra.cc for more info. | ||
== Flags == | ||
$FLAGS_HELP | ||
== Configuration groups == | ||
Compose your configuration from those groups (For example, append hydra/job_logging=disabled | ||
to command line) | ||
$HYDRA_CONFIG_GROUPS | ||
Use ''--cfg hydra'' to Show the Hydra config. | ||
' | ||
hydra_help: ??? | ||
hydra_logging: | ||
version: 1 | ||
formatters: | ||
simple: | ||
format: '[%(asctime)s][HYDRA] %(message)s' | ||
handlers: | ||
console: | ||
class: logging.StreamHandler | ||
formatter: simple | ||
stream: ext://sys.stdout | ||
root: | ||
level: INFO | ||
handlers: | ||
- console | ||
loggers: | ||
logging_example: | ||
level: DEBUG | ||
disable_existing_loggers: false | ||
job_logging: | ||
version: 1 | ||
formatters: | ||
simple: | ||
format: '[%(asctime)s][%(name)s][%(levelname)s] - %(message)s' | ||
handlers: | ||
console: | ||
class: logging.StreamHandler | ||
formatter: simple | ||
stream: ext://sys.stdout | ||
file: | ||
class: logging.FileHandler | ||
formatter: simple | ||
filename: ${hydra.runtime.output_dir}/${hydra.job.name}.log | ||
root: | ||
level: INFO | ||
handlers: | ||
- console | ||
- file | ||
disable_existing_loggers: false | ||
env: {} | ||
mode: MULTIRUN | ||
searchpath: [] | ||
callbacks: {} | ||
output_subdir: .hydra | ||
overrides: | ||
hydra: | ||
- hydra.mode=MULTIRUN | ||
task: | ||
- data=sidae | ||
- data.train.dataset.factor=0.05 | ||
- data.n_workers=0 | ||
- model=sidae | ||
- callbacks=siam | ||
job: | ||
name: train | ||
chdir: null | ||
override_dirname: callbacks=siam,data.n_workers=0,data.train.dataset.factor=0.05,data=sidae,model=sidae | ||
id: train_0 | ||
num: 0 | ||
config_name: config | ||
env_set: {} | ||
env_copy: [] | ||
config: | ||
override_dirname: | ||
kv_sep: '=' | ||
item_sep: ',' | ||
exclude_keys: [] | ||
runtime: | ||
version: 1.3.2 | ||
version_base: '1.3' | ||
cwd: /Users/chrissantiago/Dropbox/GitHub/autoencoders | ||
config_sources: | ||
- path: hydra.conf | ||
schema: pkg | ||
provider: hydra | ||
- path: /Users/chrissantiago/Dropbox/GitHub/autoencoders/autoencoders/conf | ||
schema: file | ||
provider: main | ||
- path: '' | ||
schema: structured | ||
provider: schema | ||
output_dir: /Users/chrissantiago/Dropbox/GitHub/autoencoders/outputs/SiDAE/train/multirun/callbacks=siam,data.n_workers=0,data.train.dataset.factor=0.05,data=sidae,model=sidae/2023-09-15/20-50-45 | ||
choices: | ||
experiment: null | ||
callbacks: siam | ||
trainer: default | ||
model: sidae | ||
scheduler@model.scheduler: plateau | ||
optimizer@model.optimizer: adam | ||
data: sidae | ||
hydra/env: default | ||
hydra/callbacks: null | ||
hydra/job_logging: default | ||
hydra/hydra_logging: default | ||
hydra/hydra_help: default | ||
hydra/help: default | ||
hydra/sweeper: basic | ||
hydra/launcher: joblib | ||
hydra/output: default | ||
verbose: false |
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...rain.dataset.factor=0.05,data=sidae,model=sidae/2023-09-15/20-50-45/.hydra/overrides.yaml
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- data=sidae | ||
- data.train.dataset.factor=0.05 | ||
- data.n_workers=0 | ||
- model=sidae | ||
- callbacks=siam |
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...set.factor=0.05,data=sidae,model=sidae/2023-09-15/20-50-45/checkpoints/best_k_models.yaml
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? /Users/chrissantiago/Dropbox/GitHub/autoencoders/outputs/SiDAE/train/multirun/callbacks=siam,data.n_workers=0,data.train.dataset.factor=0.05,data=sidae,model=sidae/2023-09-15/20-50-45/checkpoints/epoch=99-step=23500.ckpt | ||
: -0.9743562936782837 |
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...ta.train.dataset.factor=0.1,data=sidae,model=sidae/2023-09-15/20-50-45/.hydra/config.yaml
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data: | ||
batch_size: 256 | ||
n_workers: 0 | ||
name: mnist | ||
train: | ||
_target_: torch.utils.data.DataLoader | ||
dataset: | ||
_target_: autoencoders.data.SiDAEDataset | ||
dataset: | ||
_target_: autoencoders.data.get_mnist_dataset | ||
train: true | ||
num_ops: 1 | ||
loc: 0 | ||
scale: 1 | ||
factor: 0.1 | ||
batch_size: ${data.batch_size} | ||
shuffle: true | ||
num_workers: ${data.n_workers} | ||
valid: | ||
_target_: torch.utils.data.DataLoader | ||
dataset: | ||
_target_: autoencoders.data.SiDAEDataset | ||
dataset: | ||
_target_: autoencoders.data.get_mnist_dataset | ||
train: false | ||
num_ops: 1 | ||
loc: 0 | ||
scale: 1 | ||
factor: 1.0 | ||
batch_size: ${data.batch_size} | ||
shuffle: false | ||
num_workers: ${data.n_workers} | ||
model: | ||
optimizer: | ||
_target_: torch.optim.Adam | ||
_partial_: true | ||
lr: 0.001 | ||
betas: | ||
- 0.9 | ||
- 0.999 | ||
weight_decay: 0 | ||
scheduler: | ||
_target_: torch.optim.lr_scheduler.ReduceLROnPlateau | ||
_partial_: true | ||
mode: min | ||
factor: 0.1 | ||
patience: 10 | ||
name: SiDAE | ||
nn: | ||
_target_: autoencoders.models.sidae.SiDAE | ||
encoder: | ||
_target_: autoencoders.modules.CNNEncoderProjection | ||
channels_in: 1 | ||
base_channels: 32 | ||
latent_dim: ${model.nn.dim} | ||
decoder: | ||
_target_: autoencoders.modules.CNNDecoder | ||
channels_in: 1 | ||
base_channels: 32 | ||
latent_dim: ${model.nn.dim} | ||
dim: 512 | ||
pred_dim: 512 | ||
trainer: | ||
_target_: pytorch_lightning.Trainer | ||
max_epochs: 100 | ||
accelerator: mps | ||
devices: 1 | ||
logger: | ||
_target_: pytorch_lightning.loggers.WandbLogger | ||
project: autoencoders | ||
name: null | ||
id: null | ||
group: null | ||
job_type: null | ||
save_dir: ${hydra:runtime.output_dir} | ||
log_model: true | ||
tags: ${tags} | ||
callbacks: | ||
model_summary: | ||
_target_: pytorch_lightning.callbacks.RichModelSummary | ||
progress_bar: | ||
_target_: pytorch_lightning.callbacks.RichProgressBar | ||
refresh_rate: 5 | ||
leave: true | ||
early_stopping: | ||
_target_: pytorch_lightning.callbacks.EarlyStopping | ||
monitor: train-loss | ||
min_delta: 0.001 | ||
patience: 10 | ||
check_on_train_epoch_end: true | ||
model_checkpoint: | ||
_target_: pytorch_lightning.callbacks.ModelCheckpoint | ||
dirpath: ${hydra:runtime.output_dir}/checkpoints | ||
monitor: train-loss | ||
save_top_k: 1 | ||
save_on_train_epoch_end: true | ||
tags: | ||
- ${data.name} | ||
- ${model.name} |
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