change hypernets to use sha256 hashes
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@ -12,7 +12,7 @@ import torch
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import tqdm
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from einops import rearrange, repeat
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from ldm.util import default
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from modules import devices, processing, sd_models, shared, sd_samplers
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from modules import devices, processing, sd_models, shared, sd_samplers, hashes
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from modules.textual_inversion import textual_inversion, logging
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from modules.textual_inversion.learn_schedule import LearnRateScheduler
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from torch import einsum
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@ -225,7 +225,7 @@ class Hypernetwork:
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torch.save(state_dict, filename)
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if shared.opts.save_optimizer_state and self.optimizer_state_dict:
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optimizer_saved_dict['hash'] = sd_models.model_hash(filename)
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optimizer_saved_dict['hash'] = self.shorthash()
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optimizer_saved_dict['optimizer_state_dict'] = self.optimizer_state_dict
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torch.save(optimizer_saved_dict, filename + '.optim')
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@ -237,32 +237,33 @@ class Hypernetwork:
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state_dict = torch.load(filename, map_location='cpu')
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self.layer_structure = state_dict.get('layer_structure', [1, 2, 1])
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print(self.layer_structure)
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optional_info = state_dict.get('optional_info', None)
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if optional_info is not None:
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print(f"INFO:\n {optional_info}\n")
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self.optional_info = optional_info
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self.optional_info = state_dict.get('optional_info', None)
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self.activation_func = state_dict.get('activation_func', None)
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print(f"Activation function is {self.activation_func}")
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self.weight_init = state_dict.get('weight_initialization', 'Normal')
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print(f"Weight initialization is {self.weight_init}")
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self.add_layer_norm = state_dict.get('is_layer_norm', False)
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print(f"Layer norm is set to {self.add_layer_norm}")
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self.dropout_structure = state_dict.get('dropout_structure', None)
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self.use_dropout = True if self.dropout_structure is not None and any(self.dropout_structure) else state_dict.get('use_dropout', False)
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print(f"Dropout usage is set to {self.use_dropout}" )
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self.activate_output = state_dict.get('activate_output', True)
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print(f"Activate last layer is set to {self.activate_output}")
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self.last_layer_dropout = state_dict.get('last_layer_dropout', False)
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# Dropout structure should have same length as layer structure, Every digits should be in [0,1), and last digit must be 0.
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if self.dropout_structure is None:
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print("Using previous dropout structure")
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self.dropout_structure = parse_dropout_structure(self.layer_structure, self.use_dropout, self.last_layer_dropout)
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print(f"Dropout structure is set to {self.dropout_structure}")
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optimizer_saved_dict = torch.load(self.filename + '.optim', map_location = 'cpu') if os.path.exists(self.filename + '.optim') else {}
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if shared.opts.print_hypernet_extra:
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if self.optional_info is not None:
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print(f" INFO:\n {self.optional_info}\n")
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if sd_models.model_hash(filename) == optimizer_saved_dict.get('hash', None):
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print(f" Layer structure: {self.layer_structure}")
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print(f" Activation function: {self.activation_func}")
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print(f" Weight initialization: {self.weight_init}")
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print(f" Layer norm: {self.add_layer_norm}")
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print(f" Dropout usage: {self.use_dropout}" )
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print(f" Activate last layer: {self.activate_output}")
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print(f" Dropout structure: {self.dropout_structure}")
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optimizer_saved_dict = torch.load(self.filename + '.optim', map_location='cpu') if os.path.exists(self.filename + '.optim') else {}
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if self.shorthash() == optimizer_saved_dict.get('hash', None):
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self.optimizer_state_dict = optimizer_saved_dict.get('optimizer_state_dict', None)
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else:
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self.optimizer_state_dict = None
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@ -289,6 +290,11 @@ class Hypernetwork:
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self.sd_checkpoint_name = state_dict.get('sd_checkpoint_name', None)
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self.eval()
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def shorthash(self):
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sha256 = hashes.sha256(self.filename, f'hypernet/{self.name}')
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return sha256[0:10]
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def list_hypernetworks(path):
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res = {}
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@ -296,7 +302,7 @@ def list_hypernetworks(path):
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name = os.path.splitext(os.path.basename(filename))[0]
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# Prevent a hypothetical "None.pt" from being listed.
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if name != "None":
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res[name + f"({sd_models.model_hash(filename)})"] = filename
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res[name] = filename
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return res
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@ -437,7 +437,7 @@ def create_infotext(p, all_prompts, all_seeds, all_subseeds, comments=None, iter
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"Model hash": getattr(p, 'sd_model_hash', None if not opts.add_model_hash_to_info or not shared.sd_model.sd_model_hash else shared.sd_model.sd_model_hash),
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"Model": (None if not opts.add_model_name_to_info or not shared.sd_model.sd_checkpoint_info.model_name else shared.sd_model.sd_checkpoint_info.model_name.replace(',', '').replace(':', '')),
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"Hypernet": (None if shared.loaded_hypernetwork is None else shared.loaded_hypernetwork.name),
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"Hypernet hash": (None if shared.loaded_hypernetwork is None else sd_models.model_hash(shared.loaded_hypernetwork.filename)),
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"Hypernet hash": (None if shared.loaded_hypernetwork is None else shared.loaded_hypernetwork.shorthash()),
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"Hypernet strength": (None if shared.loaded_hypernetwork is None or shared.opts.sd_hypernetwork_strength >= 1 else shared.opts.sd_hypernetwork_strength),
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"Batch size": (None if p.batch_size < 2 else p.batch_size),
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"Batch pos": (None if p.batch_size < 2 else position_in_batch),
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@ -125,7 +125,7 @@ def list_models():
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def get_closet_checkpoint_match(search_string):
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checkpoint_info = checkpoint_alisases.get(search_string, None)
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if checkpoint_info is not None:
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return
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return checkpoint_info
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found = sorted([info for info in checkpoints_list.values() if search_string in info.title], key=lambda x: len(x.title))
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if found:
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@ -361,6 +361,7 @@ options_templates.update(options_section(('system', "System"), {
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"memmon_poll_rate": OptionInfo(8, "VRAM usage polls per second during generation. Set to 0 to disable.", gr.Slider, {"minimum": 0, "maximum": 40, "step": 1}),
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"samples_log_stdout": OptionInfo(False, "Always print all generation info to standard output"),
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"multiple_tqdm": OptionInfo(True, "Add a second progress bar to the console that shows progress for an entire job."),
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"print_hypernet_extra": OptionInfo(False, "Print extra hypernetwork information to console."),
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}))
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options_templates.update(options_section(('training', "Training"), {
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