pupilsense / preprocessing /dataset_creation_utils.py
vijul.shah
End-to-End Pipeline Configured
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import os
import torch
import random
import numpy as np
from SR_Inference.inference_hat import HAT
from SR_Inference.inference_gfpgan import GFPGAN
from SR_Inference.inference_realesr import RealEsr
from SR_Inference.inference_srresnet import SRResNet
from SR_Inference.inference_codeformer import CodeFormer
def seed_everything(seed=42):
random.seed(seed)
os.environ["PYTHONHASHSEED"] = str(seed)
np.random.seed(seed)
torch.manual_seed(seed)
torch.cuda.manual_seed(seed)
torch.backends.cudnn.benchmark = True
torch.backends.cudnn.deterministic = True
def get_sr_method(self, sr_configs):
sr_method_class = globals().get(self.sr_method_name)
if sr_method_class is not None:
return sr_method_class(**sr_configs["params"])
else:
raise Exception(
f"No such SR method called '{self.sr_method_name}' implemented!"
)