cleanup some code
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@ -16,6 +16,7 @@ from modules.textual_inversion import textual_inversion
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from modules.textual_inversion.learn_schedule import LearnRateScheduler
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from torch import einsum
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from collections import defaultdict, deque
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from statistics import stdev, mean
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class HypernetworkModule(torch.nn.Module):
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@ -269,15 +270,6 @@ def stack_conds(conds):
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return torch.stack(conds)
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def log_statistics(loss_info:dict, key, value):
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if key not in loss_info:
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loss_info[key] = [value]
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else:
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loss_info[key].append(value)
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if len(loss_info[key]) > 1024:
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loss_info[key].pop(0)
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def statistics(data):
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total_information = f"loss:{mean(data):.3f}"+u"\u00B1"+f"({stdev(data)/ (len(data)**0.5):.3f})"
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recent_data = data[-32:]
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@ -341,7 +333,7 @@ def train_hypernetwork(hypernetwork_name, learn_rate, batch_size, data_root, log
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weight.requires_grad = True
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size = len(ds.indexes)
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loss_dict = {}
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loss_dict = defaultdict(lambda : deque(maxlen = 1024))
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losses = torch.zeros((size,))
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previous_mean_loss = 0
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print("Mean loss of {} elements".format(size))
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@ -383,7 +375,7 @@ def train_hypernetwork(hypernetwork_name, learn_rate, batch_size, data_root, log
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losses[hypernetwork.step % losses.shape[0]] = loss.item()
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for entry in entries:
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log_statistics(loss_dict, entry.filename, loss.item())
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loss_dict[entry.filename].append(loss.item())
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optimizer.zero_grad()
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weights[0].grad = None
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