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https://github.com/AUTOMATIC1111/stable-diffusion-webui.git
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added support for hypernetworks (???)
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modules/hypernetwork.py
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55
modules/hypernetwork.py
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@ -0,0 +1,55 @@
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import glob
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import os
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import torch
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from modules import devices
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class HypernetworkModule(torch.nn.Module):
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def __init__(self, dim, state_dict):
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super().__init__()
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self.linear1 = torch.nn.Linear(dim, dim * 2)
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self.linear2 = torch.nn.Linear(dim * 2, dim)
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self.load_state_dict(state_dict, strict=True)
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self.to(devices.device)
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def forward(self, x):
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return x + (self.linear2(self.linear1(x)))
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class Hypernetwork:
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filename = None
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name = None
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def __init__(self, filename):
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self.filename = filename
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self.name = os.path.splitext(os.path.basename(filename))[0]
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self.layers = {}
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state_dict = torch.load(filename, map_location='cpu')
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for size, sd in state_dict.items():
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self.layers[size] = (HypernetworkModule(size, sd[0]), HypernetworkModule(size, sd[1]))
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def load_hypernetworks(path):
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res = {}
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for filename in glob.iglob(path + '**/*.pt', recursive=True):
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hn = Hypernetwork(filename)
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res[hn.name] = hn
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return res
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def apply(self, x, context=None, mask=None, original=None):
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if CrossAttention.hypernetwork is not None and context.shape[2] in CrossAttention.hypernetwork:
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if context.shape[1] == 77 and CrossAttention.noise_cond:
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context = context + (torch.randn_like(context) * 0.1)
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h_k, h_v = CrossAttention.hypernetwork[context.shape[2]]
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k = self.to_k(h_k(context))
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v = self.to_v(h_v(context))
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else:
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k = self.to_k(context)
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v = self.to_v(context)
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@ -5,6 +5,8 @@ from torch import einsum
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from ldm.util import default
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from einops import rearrange
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from modules import shared
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# see https://github.com/basujindal/stable-diffusion/pull/117 for discussion
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def split_cross_attention_forward_v1(self, x, context=None, mask=None):
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@ -42,8 +44,19 @@ def split_cross_attention_forward(self, x, context=None, mask=None):
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q_in = self.to_q(x)
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context = default(context, x)
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k_in = self.to_k(context) * self.scale
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v_in = self.to_v(context)
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hypernetwork = shared.selected_hypernetwork()
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hypernetwork_layers = (hypernetwork.layers if hypernetwork is not None else {}).get(context.shape[2], None)
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if hypernetwork_layers is not None:
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k_in = self.to_k(hypernetwork_layers[0](context))
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v_in = self.to_v(hypernetwork_layers[1](context))
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else:
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k_in = self.to_k(context)
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v_in = self.to_v(context)
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k_in *= self.scale
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del context, x
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q, k, v = map(lambda t: rearrange(t, 'b n (h d) -> (b h) n d', h=h), (q_in, k_in, v_in))
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@ -13,7 +13,7 @@ import modules.memmon
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import modules.sd_models
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import modules.styles
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import modules.devices as devices
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from modules import sd_samplers
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from modules import sd_samplers, hypernetwork
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from modules.paths import models_path, script_path, sd_path
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sd_model_file = os.path.join(script_path, 'model.ckpt')
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@ -76,6 +76,12 @@ parallel_processing_allowed = not cmd_opts.lowvram and not cmd_opts.medvram
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config_filename = cmd_opts.ui_settings_file
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hypernetworks = hypernetwork.load_hypernetworks(os.path.join(models_path, 'hypernetworks'))
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def selected_hypernetwork():
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return hypernetworks.get(opts.sd_hypernetwork, None)
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class State:
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interrupted = False
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@ -206,6 +212,7 @@ options_templates.update(options_section(('system', "System"), {
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options_templates.update(options_section(('sd', "Stable Diffusion"), {
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"sd_model_checkpoint": OptionInfo(None, "Stable Diffusion checkpoint", gr.Dropdown, lambda: {"choices": modules.sd_models.checkpoint_tiles()}),
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"sd_hypernetwork": OptionInfo("None", "Stable Diffusion finetune hypernetwork", gr.Dropdown, lambda: {"choices": ["None"] + [x for x in hypernetworks.keys()]}),
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"img2img_color_correction": OptionInfo(False, "Apply color correction to img2img results to match original colors."),
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"save_images_before_color_correction": OptionInfo(False, "Save a copy of image before applying color correction to img2img results"),
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"img2img_fix_steps": OptionInfo(False, "With img2img, do exactly the amount of steps the slider specifies (normally you'd do less with less denoising)."),
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@ -77,6 +77,11 @@ def apply_checkpoint(p, x, xs):
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modules.sd_models.reload_model_weights(shared.sd_model, info)
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def apply_hypernetwork(p, x, xs):
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hn = shared.hypernetworks.get(x, None)
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opts.data["sd_hypernetwork"] = hn.name if hn is not None else 'None'
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def format_value_add_label(p, opt, x):
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if type(x) == float:
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x = round(x, 8)
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@ -122,6 +127,7 @@ axis_options = [
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AxisOption("Prompt order", str_permutations, apply_order, format_value_join_list),
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AxisOption("Sampler", str, apply_sampler, format_value),
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AxisOption("Checkpoint name", str, apply_checkpoint, format_value),
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AxisOption("Hypernetwork", str, apply_hypernetwork, format_value),
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AxisOption("Sigma Churn", float, apply_field("s_churn"), format_value_add_label),
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AxisOption("Sigma min", float, apply_field("s_tmin"), format_value_add_label),
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AxisOption("Sigma max", float, apply_field("s_tmax"), format_value_add_label),
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@ -193,6 +199,8 @@ class Script(scripts.Script):
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modules.processing.fix_seed(p)
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p.batch_size = 1
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initial_hn = opts.sd_hypernetwork
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def process_axis(opt, vals):
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if opt.label == 'Nothing':
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return [0]
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@ -300,4 +308,6 @@ class Script(scripts.Script):
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# restore checkpoint in case it was changed by axes
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modules.sd_models.reload_model_weights(shared.sd_model)
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opts.data["sd_hypernetwork"] = initial_hn
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return processed
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