keep textual inversion dataset latents in CPU memory to save a bit of VRAM
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@ -8,6 +8,7 @@ from torchvision import transforms
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import random
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import tqdm
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from modules import devices
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class PersonalizedBase(Dataset):
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@ -47,6 +48,7 @@ class PersonalizedBase(Dataset):
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torchdata = torch.moveaxis(torchdata, 2, 0)
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init_latent = model.get_first_stage_encoding(model.encode_first_stage(torchdata.unsqueeze(dim=0))).squeeze()
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init_latent = init_latent.to(devices.cpu)
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self.dataset.append((init_latent, filename_tokens))
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@ -212,7 +212,10 @@ def train_embedding(embedding_name, learn_rate, data_root, log_directory, steps,
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with torch.autocast("cuda"):
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c = cond_model([text])
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x = x.to(devices.device)
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loss = shared.sd_model(x.unsqueeze(0), c)[0]
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del x
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losses[embedding.step % losses.shape[0]] = loss.item()
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@ -1002,8 +1002,8 @@ def create_ui(wrap_gradio_gpu_call):
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log_directory = gr.Textbox(label='Log directory', placeholder="Path to directory where to write outputs", value="textual_inversion")
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template_file = gr.Textbox(label='Prompt template file', value=os.path.join(script_path, "textual_inversion_templates", "style_filewords.txt"))
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steps = gr.Number(label='Max steps', value=100000, precision=0)
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create_image_every = gr.Number(label='Save an image to log directory every N steps, 0 to disable', value=1000, precision=0)
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save_embedding_every = gr.Number(label='Save a copy of embedding to log directory every N steps, 0 to disable', value=1000, precision=0)
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create_image_every = gr.Number(label='Save an image to log directory every N steps, 0 to disable', value=500, precision=0)
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save_embedding_every = gr.Number(label='Save a copy of embedding to log directory every N steps, 0 to disable', value=500, precision=0)
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with gr.Row():
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with gr.Column(scale=2):
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