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import logging
import sys
from copy import deepcopy
from pathlib import Path
import numpy as np
import pandas as pd
import torch
import torch.nn as nn
from configargparse import ArgumentError, ArgumentParser, Namespace
from lightning import pytorch as pl
from lightning.pytorch.callbacks import EarlyStopping, ModelCheckpoint
from lightning.pytorch.loggers import CSVLogger, TensorBoardLogger
from chemprop.cli.common import add_common_args, process_common_args, validate_common_args
from chemprop.cli.conf import NOW
from chemprop.cli.utils import (
LookupAction,
Subcommand,
build_data_from_files,
get_column_names,
make_dataset,
parse_indices,
)
from chemprop.cli.utils.args import uppercase
from chemprop.data import (
MoleculeDataset,
MolGraphDataset,
MulticomponentDataset,
ReactionDatapoint,
SplitType,
build_dataloader,
make_split_indices,
split_data_by_indices,
)
from chemprop.featurizers import MoleculeFeaturizerRegistry
from chemprop.models import MPNN, MulticomponentMPNN, save_model
from chemprop.nn import AggregationRegistry, LossFunctionRegistry, MetricRegistry, PredictorRegistry
from chemprop.nn.message_passing import (
AtomMessagePassing,
BondMessagePassing,
MulticomponentMessagePassing,
)
from chemprop.nn.transforms import GraphTransform, ScaleTransform, UnscaleTransform
from chemprop.nn.utils import Activation
from chemprop.utils import Factory
logger = logging.getLogger(__name__)
class TrainSubcommand(Subcommand):
COMMAND = "train"
HELP = "train a chemprop model"
parser = None
@classmethod
def add_args(cls, parser: ArgumentParser) -> ArgumentParser:
parser = add_common_args(parser)
parser = add_train_args(parser)
cls.parser = parser
return parser
@classmethod
def func(cls, args: Namespace):
args = process_common_args(args)
validate_common_args(args)
args = process_train_args(args)
validate_train_args(args)
args.output_dir.mkdir(exist_ok=True, parents=True)
save_config(cls.parser, args)
main(args)
def add_train_args(parser: ArgumentParser) -> ArgumentParser:
parser.add_argument(
"--config-path",
type=Path,
is_config_file=True,
help="Path to a configuration file. Command line arguments override values in the configuration file.",
)
parser.add_argument(
"-i",
"--data-path",
type=Path,
help="Path to an input CSV file containing SMILES and the associated target values.",
)
parser.add_argument(
"-o",
"--output-dir",
"--save-dir",
type=Path,
help="Directory where training outputs will be saved. Defaults to 'CURRENT_DIRECTORY/chemprop_training/STEM_OF_INPUT/TIME_STAMP'.",
)
# TODO: Add in v2.1
# parser.add_argument(
# "--checkpoint-dir",
# help="Directory from which to load model checkpoints (walks directory and ensembles all models that are found).",
# )
# parser.add_argument("--checkpoint-path", help="Path to model checkpoint (:code:`.pt` file).")
# parser.add_argument(
# "--checkpoint-paths",
# type=list[str],
# help="List of paths to model checkpoints (:code:`.pt` files).",
# )
# # TODO: Is this a prediction only argument?
# parser.add_argument(
# "--checkpoint",
# help="Location of checkpoint(s) to use for ... If the location is a directory, chemprop walks it and ensembles all models that are found. If the location is a path or list of paths to model checkpoints (:code:`.pt` files), only those models will be loaded.",
# )
# TODO: Add in v2.1; see if we can tell lightning how often to log training loss
# parser.add_argument(
# "--log-frequency",
# type=int,
# default=10,
# help="The number of batches between each logging of the training loss.",
# )
transfer_args = parser.add_argument_group("transfer learning args")
transfer_args.add_argument(
"--model-frzn",
help="Path to model checkpoint file to be loaded for overwriting and freezing weights.",
)
transfer_args.add_argument(
"--frzn-ffn-layers",
type=int,
default=0,
help="Overwrites weights for the first n layers of the ffn from checkpoint model (specified checkpoint_frzn), where n is specified in the input. Automatically also freezes mpnn weights.",
)
# transfer_args.add_argument(
# "--freeze-first-only",
# action="store_true",
# help="Determines whether or not to use checkpoint_frzn for just the first encoder. Default (False) is to use the checkpoint to freeze all encoders. (only relevant for number_of_molecules > 1, where checkpoint model has number_of_molecules = 1)",
# )
# TODO: Add in v2.1
# parser.add_argument(
# "--resume-experiment",
# action="store_true",
# help="Whether to resume the experiment. Loads test results from any folds that have already been completed and skips training those folds.",
# )
# parser.add_argument(
# "--config-path",
# help="Path to a :code:`.json` file containing arguments. Any arguments present in the config file will override arguments specified via the command line or by the defaults.",
# )
parser.add_argument(
"--ensemble-size",
type=int,
default=1,
help="Number of models in ensemble for each splitting of data.",
)
# TODO: Add in v2.2
# abt_args = parser.add_argument_group("atom/bond target args")
# abt_args.add_argument(
# "--is-atom-bond-targets",
# action="store_true",
# help="Whether this is atomic/bond properties prediction.",
# )
# abt_args.add_argument(
# "--no-adding-bond-types",
# action="store_true",
# help="Whether the bond types determined by RDKit molecules added to the output of bond targets. This option is intended to be used with the :code:`is_atom_bond_targets`.",
# )
# abt_args.add_argument(
# "--keeping-atom-map",
# action="store_true",
# help="Whether RDKit molecules keep the original atom mapping. This option is intended to be used when providing atom-mapped SMILES with the :code:`is_atom_bond_targets`.",
# )
# abt_args.add_argument(
# "--no-shared-atom-bond-ffn",
# action="store_true",
# help="Whether the FFN weights for atom and bond targets should be independent between tasks.",
# )
# abt_args.add_argument(
# "--weights-ffn-num-layers",
# type=int,
# default=2,
# help="Number of layers in FFN for determining weights used in constrained targets.",
# )
mp_args = parser.add_argument_group("message passing")
mp_args.add_argument(
"--message-hidden-dim", type=int, default=300, help="hidden dimension of the messages"
)
mp_args.add_argument(
"--message-bias", action="store_true", help="add bias to the message passing layers"
)
mp_args.add_argument("--depth", type=int, default=3, help="Number of message passing steps.")
mp_args.add_argument(
"--undirected",
action="store_true",
help="Pass messages on undirected bonds/edges (always sum the two relevant bond vectors).",
)
mp_args.add_argument(
"--dropout",
type=float,
default=0.0,
help="dropout probability in message passing/FFN layers",
)
mp_args.add_argument(
"--mpn-shared",
action="store_true",
help="Whether to use the same message passing neural network for all input molecules. Only relevant if :code:`number_of_molecules > 1`",
)
mp_args.add_argument(
"--activation",
type=uppercase,
default="RELU",
choices=list(Activation.keys()),
help="activation function in message passing/FFN layers",
)
mp_args.add_argument(
"--aggregation",
"--agg",
default="mean",
action=LookupAction(AggregationRegistry),
help="the aggregation mode to use during graph predictor",
)
mp_args.add_argument(
"--aggregation-norm",
type=float,
default=100,
help="normalization factor by which to divide summed up atomic features for 'norm' aggregation",
)
mp_args.add_argument(
"--atom-messages", action="store_true", help="pass messages on atoms rather than bonds"
)
# TODO: Add in v2.1
# mpsolv_args = parser.add_argument_group("message passing with solvent")
# mpsolv_args.add_argument(
# "--reaction-solvent",
# action="store_true",
# help="Whether to adjust the MPNN layer to take as input a reaction and a molecule, and to encode them with separate MPNNs.",
# )
# mpsolv_args.add_argument(
# "--bias-solvent",
# action="store_true",
# help="Whether to add bias to linear layers for solvent MPN if :code:`reaction_solvent` is True.",
# )
# mpsolv_args.add_argument(
# "--hidden-size-solvent",
# type=int,
# default=300,
# help="Dimensionality of hidden layers in solvent MPN if :code:`reaction_solvent` is True.",
# )
# mpsolv_args.add_argument(
# "--depth-solvent",
# type=int,
# default=3,
# help="Number of message passing steps for solvent if :code:`reaction_solvent` is True.",
# )
ffn_args = parser.add_argument_group("FFN args")
ffn_args.add_argument(
"--ffn-hidden-dim", type=int, default=300, help="hidden dimension in the FFN top model"
)
ffn_args.add_argument( # TODO: the default in v1 was 2. (see weights_ffn_num_layers option) Do we really want the default to now be 1?
"--ffn-num-layers", type=int, default=1, help="number of layers in FFN top model"
)
# TODO: Decide if we want to implment this in v2
# ffn_args.add_argument(
# "--features-only",
# action="store_true",
# help="Use only the additional features in an FFN, no graph network.",
# )
extra_mpnn_args = parser.add_argument_group("extra MPNN args")
extra_mpnn_args.add_argument(
"--no-batch-norm",
action="store_true",
help="Don't use batch normalization after aggregation.",
)
extra_mpnn_args.add_argument(
"--multiclass-num-classes",
type=int,
default=3,
help="Number of classes when running multiclass classification.",
)
# TODO: Add in v2.1
# extra_mpnn_args.add_argument(
# "--spectral-activation",
# default="exp",
# choices=["softplus", "exp"],
# help="Indicates which function to use in task_type spectra training to constrain outputs to be positive.",
# )
train_data_args = parser.add_argument_group("training input data args")
train_data_args.add_argument(
"-w",
"--weight-column",
help="the name of the column in the input CSV containg individual data weights",
)
train_data_args.add_argument(
"--target-columns",
nargs="+",
help="Name of the columns containing target values. By default, uses all columns except the SMILES column and the :code:`ignore_columns`.",
)
train_data_args.add_argument(
"--ignore-columns",
nargs="+",
help="Name of the columns to ignore when :code:`target_columns` is not provided.",
)
# TODO: Add in v2.1
# train_data_args.add_argument(
# "--spectra-phase-mask-path",
# help="Path to a file containing a phase mask array, used for excluding particular regions in spectra predictions.",
# )
train_args = parser.add_argument_group("training args")
train_args.add_argument(
"-t",
"--task-type",
default="regression",
action=LookupAction(PredictorRegistry),
help="Type of dataset. This determines the default loss function used during training. Defaults to regression.",
)
train_args.add_argument(
"-l",
"--loss-function",
action=LookupAction(LossFunctionRegistry),
help="Loss function to use during training. If not specified, will use the default loss function for the given task type (see documentation).",
)
train_args.add_argument(
"--v-kl",
"--evidential-regularization",
type=float,
default=0.0,
help="Value used in regularization for evidential loss function. The default value recommended by Soleimany et al.(2021) is 0.2. Optimal value is dataset-dependent; it is recommended that users test different values to find the best value for their model.",
)
train_args.add_argument(
"--eps", type=float, default=1e-8, help="evidential regularization epsilon"
)
# TODO: Add in v2.1
# train_args.add_argument( # TODO: Is threshold the same thing as the spectra target floor? I'm not sure but combined them.
# "-T",
# "--threshold",
# "--spectra-target-floor",
# type=float,
# default=1e-8,
# help="spectral threshold limit. v1 help string: Values in targets for dataset type spectra are replaced with this value, intended to be a small positive number used to enforce positive values.",
# )
train_args.add_argument(
"--metrics",
"--metric",
nargs="+",
action=LookupAction(MetricRegistry),
help="evaluation metrics. If unspecified, will use the following metrics for given dataset types: regression->rmse, classification->roc, multiclass->ce ('cross entropy'), spectral->sid. If multiple metrics are provided, the 0th one will be used for early stopping and checkpointing",
)
# TODO: Add in v2.1
# train_args.add_argument(
# "--show-individual-scores",
# action="store_true",
# help="Show all scores for individual targets, not just average, at the end.",
# )
train_args.add_argument(
"--task-weights",
nargs="+",
type=float,
help="the weight to apply to an individual task in the overall loss",
)
train_args.add_argument(
"--warmup-epochs",
type=int,
default=2,
help="Number of epochs during which learning rate increases linearly from :code:`init_lr` to :code:`max_lr`. Afterwards, learning rate decreases exponentially from :code:`max_lr` to :code:`final_lr`.",
)
train_args.add_argument("--init-lr", type=float, default=1e-4, help="Initial learning rate.")
train_args.add_argument("--max-lr", type=float, default=1e-3, help="Maximum learning rate.")
train_args.add_argument("--final-lr", type=float, default=1e-4, help="Final learning rate.")
train_args.add_argument(
"--epochs", type=int, default=50, help="the number of epochs to train over"
)
train_args.add_argument(
"--patience",
type=int,
default=None,
help="Number of epochs to wait for improvement before early stopping.",
)
train_args.add_argument(
"--grad-clip",
type=float,
help="Passed directly to the lightning trainer which controls grad clipping. See the :code:`Trainer()` docstring for details.",
)
# TODO: Add in v2.1
# train_args.add_argument(
# "--class-balance",
# action="store_true",
# help="Trains with an equal number of positives and negatives in each batch.",
# )
split_args = parser.add_argument_group("split args")
split_args.add_argument(
"--split",
"--split-type",
type=uppercase,
default="RANDOM",
choices=list(SplitType.keys()),
help="Method of splitting the data into train/val/test (case insensitive).",
)
split_args.add_argument(
"--split-sizes",
type=float,
nargs=3,
default=[0.8, 0.1, 0.1],
help="Split proportions for train/validation/test sets.",
)
split_args.add_argument(
"--split-key-molecule",
type=int,
default=0,
help="The index of the key molecule used for splitting when multiple molecules are present and constrained split_type is used (e.g., 'scaffold_balanced' or 'random_with_repeated_smiles'). Note that this index begins with zero for the first molecule.",
)
split_args.add_argument(
"-k",
"--num-folds",
type=int,
default=1,
help="Number of folds when performing cross validation.",
)
split_args.add_argument(
"--save-smiles-splits",
action="store_true",
help="Save smiles for each train/val/test splits for prediction convenience later.",
)
split_args.add_argument(
"--splits-file",
type=Path,
help="Path to a JSON file containing pre-defined splits for the input data, formatted as a list of dictionaries with keys 'train', 'val', and 'test' and values as lists of indices or strings formatted like '0-2,4'. See documentation for more details.",
)
train_data_args.add_argument(
"--splits-column",
help="Name of the column in the input CSV file containing 'train', 'val', or 'test' for each row.",
)
split_args.add_argument(
"--data-seed",
type=int,
default=0,
help="Random seed to use when splitting data into train/val/test sets. When :code`num_folds > 1`, the first fold uses this seed and all subsequent folds add 1 to the seed. Also used for shuffling data in :code:`build_dataloader` when :code:`shuffle` is True.",
)
parser.add_argument(
"--pytorch-seed",
type=int,
default=None,
help="Seed for PyTorch randomness (e.g., random initial weights).",
)
return parser
def process_train_args(args: Namespace) -> Namespace:
if args.config_path is None and args.data_path is None:
raise ArgumentError(argument=None, message="Data path must be provided for training.")
if args.data_path.suffix not in [".csv"]:
raise ArgumentError(
argument=None, message=f"Input data must be a CSV file. Got {args.data_path}"
)
if args.output_dir is None:
args.output_dir = Path(f"chemprop_training/{args.data_path.stem}/{NOW}")
return args
def validate_train_args(args):
pass
def normalize_inputs(train_dset, val_dset, args):
multicomponent = isinstance(train_dset, MulticomponentDataset)
num_components = train_dset.n_components if multicomponent else 1
X_d_transform = None
V_f_transforms = [nn.Identity()] * num_components
E_f_transforms = [nn.Identity()] * num_components
V_d_transforms = [None] * num_components
graph_transforms = []
d_xd = train_dset.d_xd
d_vf = train_dset.d_vf
d_ef = train_dset.d_ef
d_vd = train_dset.d_vd
if d_xd > 0 and not args.no_descriptor_scaling:
scaler = train_dset.normalize_inputs("X_d")
val_dset.normalize_inputs("X_d", scaler)
scaler = scaler if not isinstance(scaler, list) else scaler[0]
if scaler is not None:
logger.info(
f"Descriptors: loc = {np.array2string(scaler.mean_, precision=3)}, scale = {np.array2string(scaler.scale_, precision=3)}"
)
X_d_transform = ScaleTransform.from_standard_scaler(scaler)
if d_vf > 0 and not args.no_atom_feature_scaling:
scaler = train_dset.normalize_inputs("V_f")
val_dset.normalize_inputs("V_f", scaler)
scalers = [scaler] if not isinstance(scaler, list) else scaler
for i, scaler in enumerate(scalers):
if scaler is None:
continue
logger.info(
f"Atom features for mol {i}: loc = {np.array2string(scaler.mean_, precision=3)}, scale = {np.array2string(scaler.scale_, precision=3)}"
)
featurizer = (
train_dset.datasets[i].featurizer if multicomponent else train_dset.featurizer
)
V_f_transforms[i] = ScaleTransform.from_standard_scaler(
scaler, pad=featurizer.atom_fdim - featurizer.extra_atom_fdim
)
if d_ef > 0 and not args.no_bond_feature_scaling:
scaler = train_dset.normalize_inputs("E_f")
val_dset.normalize_inputs("E_f", scaler)
scalers = [scaler] if not isinstance(scaler, list) else scaler
for i, scaler in enumerate(scalers):
if scaler is None:
continue
logger.info(
f"Bond features for mol {i}: loc = {np.array2string(scaler.mean_, precision=3)}, scale = {np.array2string(scaler.scale_, precision=3)}"
)
featurizer = (
train_dset.datasets[i].featurizer if multicomponent else train_dset.featurizer
)
E_f_transforms[i] = ScaleTransform.from_standard_scaler(
scaler, pad=featurizer.bond_fdim - featurizer.extra_bond_fdim
)
for V_f_transform, E_f_transform in zip(V_f_transforms, E_f_transforms):
graph_transforms.append(GraphTransform(V_f_transform, E_f_transform))
if d_vd > 0 and not args.no_atom_descriptor_scaling:
scaler = train_dset.normalize_inputs("V_d")
val_dset.normalize_inputs("V_d", scaler)
scalers = [scaler] if not isinstance(scaler, list) else scaler
for i, scaler in enumerate(scalers):
if scaler is None:
continue
logger.info(
f"Atom descriptors for mol {i}: loc = {np.array2string(scaler.mean_, precision=3)}, scale = {np.array2string(scaler.scale_, precision=3)}"
)
V_d_transforms[i] = ScaleTransform.from_standard_scaler(scaler)
return X_d_transform, graph_transforms, V_d_transforms
def save_config(parser: ArgumentParser, args: Namespace):
config_args = deepcopy(args)
for key, value in vars(config_args).items():
if isinstance(value, Path):
setattr(config_args, key, str(value))
for key in ["atom_features_path", "atom_descriptors_path", "bond_features_path"]:
if getattr(config_args, key) is not None:
for index, path in getattr(config_args, key).items():
getattr(config_args, key)[index] = str(path)
config_path = str(args.output_dir / "config.toml")
parser.write_config_file(parsed_namespace=config_args, output_file_paths=[config_path])
def save_smiles_splits(args: Namespace, output_dir, train_dset, val_dset, test_dset):
train_smis = train_dset.smiles
df_train = pd.DataFrame(train_smis, columns=args.smiles_columns)
df_train.to_csv(output_dir / "train_smiles.csv", index=False)
val_smis = val_dset.smiles
df_val = pd.DataFrame(val_smis, columns=args.smiles_columns)
df_val.to_csv(output_dir / "val_smiles.csv", index=False)
if test_dset is not None:
test_smis = test_dset.smiles
df_test = pd.DataFrame(test_smis, columns=args.smiles_columns)
df_test.to_csv(output_dir / "test_smiles.csv", index=False)
def build_splits(args, format_kwargs, featurization_kwargs):
"""build the train/val/test splits"""
logger.info(f"Pulling data from file: {args.data_path}")
all_data = build_data_from_files(
args.data_path,
p_descriptors=args.descriptors_path,
p_atom_feats=args.atom_features_path,
p_bond_feats=args.bond_features_path,
p_atom_descs=args.atom_descriptors_path,
**format_kwargs,
**featurization_kwargs,
)
if args.splits_column is not None:
df = pd.read_csv(
args.data_path, header=None if args.no_header_row else "infer", index_col=False
)
grouped = df.groupby(df[args.splits_column].str.lower())
train_indices = grouped.groups.get("train", pd.Index([])).tolist()
val_indices = grouped.groups.get("val", pd.Index([])).tolist()
test_indices = grouped.groups.get("test", pd.Index([])).tolist()
train_indices, val_indices, test_indices = [train_indices], [val_indices], [test_indices]
elif args.splits_file is not None:
with open(args.splits_file, "rb") as json_file:
split_idxss = json.load(json_file)
train_indices = [parse_indices(d["train"]) for d in split_idxss]
val_indices = [parse_indices(d["val"]) for d in split_idxss]
test_indices = [parse_indices(d["test"]) for d in split_idxss]
else:
splitting_data = all_data[args.split_key_molecule]
if isinstance(splitting_data[0], ReactionDatapoint):
splitting_mols = [datapoint.rct for datapoint in splitting_data]
else:
splitting_mols = [datapoint.mol for datapoint in splitting_data]
train_indices, val_indices, test_indices = make_split_indices(
splitting_mols, args.split, args.split_sizes, args.data_seed, args.num_folds
)
if not (
SplitType.get(args.split) == SplitType.CV_NO_VAL
or SplitType.get(args.split) == SplitType.CV
):
train_indices, val_indices, test_indices = (
[train_indices],
[val_indices],
[test_indices],
)
train_data, val_data, test_data = split_data_by_indices(
all_data, train_indices, val_indices, test_indices
)
for i_split in range(len(train_data)):
sizes = [len(train_data[i_split][0]), len(val_data[i_split][0]), len(test_data[i_split][0])]
logger.info(f"train/val/test split_{i_split} sizes: {sizes}")
return train_data, val_data, test_data
def build_datasets(args, train_data, val_data, test_data):
"""build the train/val/test datasets, where :attr:`test_data` may be None"""
multicomponent = len(train_data) > 1
if multicomponent:
train_dsets = [
make_dataset(data, args.rxn_mode, args.multi_hot_atom_featurizer_mode)
for data in train_data
]
val_dsets = [
make_dataset(data, args.rxn_mode, args.multi_hot_atom_featurizer_mode)
for data in val_data
]
train_dset = MulticomponentDataset(train_dsets)
val_dset = MulticomponentDataset(val_dsets)
if len(test_data[0]) > 0:
test_dsets = [
make_dataset(data, args.rxn_mode, args.multi_hot_atom_featurizer_mode)
for data in test_data
]
test_dset = MulticomponentDataset(test_dsets)
else:
test_dset = None
else:
train_data = train_data[0]
val_data = val_data[0]
test_data = test_data[0]
train_dset = make_dataset(train_data, args.rxn_mode, args.multi_hot_atom_featurizer_mode)
val_dset = make_dataset(val_data, args.rxn_mode, args.multi_hot_atom_featurizer_mode)
if len(test_data) > 0:
test_dset = make_dataset(test_data, args.rxn_mode, args.multi_hot_atom_featurizer_mode)
else:
test_dset = None
return train_dset, val_dset, test_dset
def build_model(
args,
train_dset: MolGraphDataset | MulticomponentDataset,
output_transform: UnscaleTransform,
input_transforms: tuple[ScaleTransform, list[GraphTransform], list[ScaleTransform]],
) -> MPNN:
mp_cls = AtomMessagePassing if args.atom_messages else BondMessagePassing
X_d_transform, graph_transforms, V_d_transforms = input_transforms
if isinstance(train_dset, MulticomponentDataset):
mp_blocks = [
mp_cls(
train_dset.datasets[i].featurizer.atom_fdim,
train_dset.datasets[i].featurizer.bond_fdim,
d_h=args.message_hidden_dim,
d_vd=(
train_dset.datasets[i].d_vd
if isinstance(train_dset.datasets[i], MoleculeDataset)
else 0
),
bias=args.message_bias,
depth=args.depth,
undirected=args.undirected,
dropout=args.dropout,
activation=args.activation,
V_d_transform=V_d_transforms[i],
graph_transform=graph_transforms[i],
)
for i in range(train_dset.n_components)
]
if args.mpn_shared:
if args.reaction_columns is not None and args.smiles_columns is not None:
raise ArgumentError(
argument=None,
message="Cannot use shared MPNN with both molecule and reaction data.",
)
mp_block = MulticomponentMessagePassing(mp_blocks, train_dset.n_components, args.mpn_shared)
# NOTE(degraff): this if/else block should be handled by the init of MulticomponentMessagePassing
# if args.mpn_shared:
# mp_block = MulticomponentMessagePassing(mp_blocks[0], n_components, args.mpn_shared)
# else:
d_xd = train_dset.datasets[0].d_xd
n_tasks = train_dset.datasets[0].Y.shape[1]
mpnn_cls = MulticomponentMPNN
else:
mp_block = mp_cls(
train_dset.featurizer.atom_fdim,
train_dset.featurizer.bond_fdim,
d_h=args.message_hidden_dim,
d_vd=train_dset.d_vd if isinstance(train_dset, MoleculeDataset) else 0,
bias=args.message_bias,
depth=args.depth,
undirected=args.undirected,
dropout=args.dropout,
activation=args.activation,
V_d_transform=V_d_transforms[0],
graph_transform=graph_transforms[0],
)
d_xd = train_dset.d_xd
n_tasks = train_dset.Y.shape[1]
mpnn_cls = MPNN
agg = Factory.build(AggregationRegistry[args.aggregation], norm=args.aggregation_norm)
predictor_cls = PredictorRegistry[args.task_type]
if args.loss_function is not None:
criterion = Factory.build(
LossFunctionRegistry[args.loss_function],
task_weights=args.task_weights,
v_kl=args.v_kl,
# threshold=args.threshold, TODO: Add in v2.1
eps=args.eps,
)
else:
criterion = None
if args.metrics is not None:
metrics = [Factory.build(MetricRegistry[metric]) for metric in args.metrics]
else:
metrics = None
predictor = Factory.build(
predictor_cls,
input_dim=mp_block.output_dim + d_xd,
n_tasks=n_tasks,
hidden_dim=args.ffn_hidden_dim,
n_layers=args.ffn_num_layers,
dropout=args.dropout,
activation=args.activation,
criterion=criterion,
n_classes=args.multiclass_num_classes,
output_transform=output_transform,
# spectral_activation=args.spectral_activation, TODO: Add in v2.1
)
if args.loss_function is None:
logger.info(
f"No loss function was specified! Using class default: {predictor_cls._T_default_criterion}"
)
if args.model_frzn is not None:
model = mpnn_cls.load_from_file(args.model_frzn)
model.message_passing.apply(lambda module: module.requires_grad_(False))
model.message_passing.apply(
lambda m: setattr(m, "p", 0.0) if isinstance(m, torch.nn.Dropout) else None
)
model.bn.apply(lambda module: module.requires_grad_(False))
for idx in range(args.frzn_ffn_layers):
model.predictor.ffn[idx].requires_grad_(False)
setattr(model.predictor.ffn[idx + 1][1], "p", 0.0)
return model
return mpnn_cls(
mp_block,
agg,
predictor,
not args.no_batch_norm,
metrics,
args.warmup_epochs,
args.init_lr,
args.max_lr,
args.final_lr,
X_d_transform=X_d_transform,
)
def train_model(
args, train_loader, val_loader, test_loader, output_dir, output_transform, input_transforms
):
for model_idx in range(args.ensemble_size):
model_output_dir = output_dir / f"model_{model_idx}"
model_output_dir.mkdir(exist_ok=True, parents=True)
if args.pytorch_seed is None:
seed = torch.seed()
deterministic = False
else:
seed = args.pytorch_seed + model_idx
deterministic = True
torch.manual_seed(seed)
model = build_model(args, train_loader.dataset, output_transform, input_transforms)
logger.info(model)
monitor_mode = "min" if model.metrics[0].minimize else "max"
logger.debug(f"Evaluation metric: '{model.metrics[0].alias}', mode: '{monitor_mode}'")
try:
trainer_logger = TensorBoardLogger(model_output_dir, "trainer_logs")
except ModuleNotFoundError:
trainer_logger = CSVLogger(model_output_dir, "trainer_logs")
checkpointing = ModelCheckpoint(
model_output_dir / "checkpoints",
"best-{epoch}-{val_loss:.2f}",
"val_loss",
mode=monitor_mode,
save_last=True,
)
patience = args.patience if args.patience is not None else args.epochs
early_stopping = EarlyStopping("val_loss", patience=patience, mode=monitor_mode)
trainer = pl.Trainer(
logger=trainer_logger,
enable_progress_bar=True,
accelerator=args.accelerator,
devices=args.devices,
max_epochs=args.epochs,
callbacks=[checkpointing, early_stopping],
gradient_clip_val=args.grad_clip,
deterministic=deterministic,
)
trainer.fit(model, train_loader, val_loader)
if test_loader is not None:
predss = trainer.predict(dataloaders=test_loader)
preds = torch.concat(predss, 0).numpy()
if isinstance(test_loader.dataset, MulticomponentDataset):
test_dset = test_loader.dataset.datasets[0]
else:
test_dset = test_loader.dataset
targets = test_dset.Y
mask = torch.from_numpy(np.isfinite(targets))
targets = np.nan_to_num(targets, nan=0.0)
weights = torch.from_numpy(test_dset.weights)
lt_mask = (
torch.from_numpy(test_dset.lt_mask) if test_dset.lt_mask[0] is not None else None
)
gt_mask = (
torch.from_numpy(test_dset.gt_mask) if test_dset.gt_mask[0] is not None else None
)
preds_losses = [
metric(
torch.from_numpy(preds),
torch.from_numpy(targets),
mask,
weights,
lt_mask,
gt_mask,
)
for metric in model.metrics
]
preds_metrics = {
f"entire_test/{m.alias}": l.item() for m, l in zip(model.metrics, preds_losses)
}
print(f"Entire Test Set results: {preds_metrics}")
columns = get_column_names(
args.data_path,
args.smiles_columns,
args.reaction_columns,
args.target_columns,
args.ignore_columns,
args.splits_column,
args.weight_column,
args.no_header_row,
)
names = test_loader.dataset.names
if isinstance(test_loader.dataset, MulticomponentDataset):
namess = list(zip(*names))
else:
namess = [names]
if "multiclass" in args.task_type:
df_preds = pd.DataFrame(list(zip(*namess, preds)), columns=columns)
else:
df_preds = pd.DataFrame(list(zip(*namess, *preds.T)), columns=columns)
df_preds.to_csv(model_output_dir / "test_predictions.csv", index=False)
best_model_path = checkpointing.best_model_path
model = model.__class__.load_from_checkpoint(best_model_path)
p_model = model_output_dir / "best.pt"
save_model(p_model, model)
logger.info(f"Best model saved to '{p_model}'")
def main(args):
format_kwargs = dict(
no_header_row=args.no_header_row,
smiles_cols=args.smiles_columns,
rxn_cols=args.reaction_columns,
target_cols=args.target_columns,
ignore_cols=args.ignore_columns,
splits_col=args.splits_column,
weight_col=args.weight_column,
bounded=args.loss_function is not None and "bounded" in args.loss_function,
)
if args.features_generators is not None:
# TODO: MorganFeaturizers take radius, length, and include_chirality as arguements. Should we expose these through the CLI?
features_generators = [
Factory.build(MoleculeFeaturizerRegistry[features_generator])
for features_generator in args.features_generators
]
else:
features_generators = None
featurization_kwargs = dict(
features_generators=features_generators, keep_h=args.keep_h, add_h=args.add_h
)
splits = build_splits(args, format_kwargs, featurization_kwargs)
for fold_idx, (train_data, val_data, test_data) in enumerate(zip(*splits)):
if args.num_folds == 1:
output_dir = args.output_dir
else:
output_dir = args.output_dir / f"fold_{fold_idx}"
output_dir.mkdir(exist_ok=True, parents=True)
train_dset, val_dset, test_dset = build_datasets(args, train_data, val_data, test_data)
input_transforms = normalize_inputs(train_dset, val_dset, args)
if args.save_smiles_splits:
save_smiles_splits(args, output_dir, train_dset, val_dset, test_dset)
if "regression" in args.task_type:
output_scaler = train_dset.normalize_targets()
val_dset.normalize_targets(output_scaler)
logger.info(f"Train data: mean = {output_scaler.mean_} | std = {output_scaler.scale_}")
output_transform = UnscaleTransform.from_standard_scaler(output_scaler)
else:
output_transform = None
train_loader = build_dataloader(
train_dset, args.batch_size, args.num_workers, seed=args.data_seed
)
val_loader = build_dataloader(val_dset, args.batch_size, args.num_workers, shuffle=False)
if test_dset is not None:
test_loader = build_dataloader(
test_dset, args.batch_size, args.num_workers, shuffle=False
)
else:
test_loader = None
train_model(
args,
train_loader,
val_loader,
test_loader,
output_dir,
output_transform,
input_transforms,
)
if __name__ == "__main__":
# TODO: update this old code or remove it.
parser = ArgumentParser()
parser = TrainSubcommand.add_args(parser)
logging.basicConfig(stream=sys.stdout, level=logging.DEBUG, force=True)
args = parser.parse_args()
TrainSubcommand.func(args)
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