finding good inpainting
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@ -59,32 +59,30 @@ pipe = StableDiffusionPipeline.from_pretrained(
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pipe = pipe.to(device)
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#%% Next let's set up all parameters
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# FIXME below fix numbers
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# We want 20 diffusion steps, begin with 2 branches, have 3 branches at step 12 (=0.6*20)
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# 10 branches at step 16 (=0.8*20) and 24 branches at step 18 (=0.9*20)
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# Furthermore we want seed 993621550 for keyframeA and seed 54878562 for keyframeB ()
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num_inference_steps = 30 # Number of diffusion interations
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list_nmb_branches = [2, 6, 30, 100] # Specify the branching structure
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list_injection_strength = [0.0, 0.3, 0.73, 0.93] # Specify the branching structure
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num_inference_steps = 100 # Number of diffusion interations
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list_nmb_branches = [2, 12, 30, 100, 300] # Specify the branching structure
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list_injection_strength = [0.0, 0.75, 0.9, 0.93, 0.96] # Specify the branching structure
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width = 512
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height = 512
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guidance_scale = 5
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#fixed_seeds = [993621550, 326814432]
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#fixed_seeds = [993621550, 888839807]
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fixed_seeds = [993621550, 753528763]
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fixed_seeds = [993621550, 280335986]
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lb = LatentBlending(pipe, device, height, width, num_inference_steps, guidance_scale)
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prompt1 = "photo of a beautiful forest covered in white flowers, ambient light, very detailed, magic"
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prompt2 = "photo of a mystical sculpture in the middle of the desert, warm sunlight, sand, eery feeling"
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prompt2 = "photo of an eerie statue surrounded by ferns and vines, analog photograph kodak portra, mystical ambience, incredible detail"
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lb.set_prompt1(prompt1)
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lb.set_prompt2(prompt2)
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imgs_transition = lb.run_transition(list_nmb_branches, list_injection_strength, fixed_seeds=fixed_seeds)
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#%
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# let's get more frames
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# let's get more cheap frames via linear interpolation
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duration_transition = 12
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fps = 60
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imgs_transition_ext = add_frames_linear_interp(imgs_transition, duration_transition, fps)
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@ -99,4 +97,3 @@ for img in tqdm(imgs_transition_ext):
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ms.finalize()
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# MOVIE TODO: ueberschreiben! bad prints.
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@ -1484,8 +1484,6 @@ if __name__ == "__main__":
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pipe = StableDiffusionPipeline.from_pretrained(
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model_path,
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revision="fp16",
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height = height,
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width = width,
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torch_dtype=torch.float16,
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scheduler=DDIMScheduler(),
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use_auth_token=True
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@ -1494,33 +1492,44 @@ if __name__ == "__main__":
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#%% seed cherrypicking
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prompt1 = "photo of a surreal brutalistic vault that is glowing in the night, futuristic, greek ornaments, spider webs"
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prompt1 = "photo of an eerie statue surrounded by ferns and vines"
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lb.set_prompt1(prompt1)
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for i in range(1):
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seed = 753528763 #np.random.randint(753528763)
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for i in range(4):
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seed = np.random.randint(753528763)
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lb.set_seed(seed)
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txt = f"{i} {seed}"
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txt = f"index {i+1} {seed}: {prompt1}"
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img = lb.run_diffusion(lb.text_embedding1, return_image=True)
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plt.imshow(img)
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plt.title(txt)
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# plt.title(txt)
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plt.show()
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print(txt)
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#%% prompt finetuning
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seed = 280335986
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prompt1 = "photo of an eerie statue surrounded by ferns and vines, analog photograph kodak portra, mystical ambience, incredible detail"
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lb.set_prompt1(prompt1)
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img = lb.run_diffusion(lb.text_embedding1, return_image=True)
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plt.imshow(img)
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#%% lets make a nice mask
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#%% storage
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#%% make nice images of latents
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num_inference_steps = 10 # Number of diffusion interations
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list_nmb_branches = [2, 3, 7, 12] # Specify the branching structure
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list_injection_idx = [0, 2, 5, 8] # Specify the branching structure
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list_nmb_branches = [2, 3, 7, 10] # Specify the branching structure
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list_injection_idx = [0, 6, 7, 8] # Specify the branching structure
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width = 512
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height = 512
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guidance_scale = 5
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fixed_seeds = [993621550, 326814432]
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fixed_seeds = [993621550, 280335986]
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lb = LatentBlending(pipe, device, height, width, num_inference_steps, guidance_scale)
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prompt1 = "photo of a beautiful forest covered in white flowers, ambient light, very detailed, magic"
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prompt2 = "photo of a mystical sculpture in the middle of the desert, warm sunlight, sand, eery feeling"
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prompt2 = "photo of an eerie statue surrounded by ferns and vines, analog photograph kodak portra, mystical ambience, incredible detail"
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lb.set_prompt1(prompt1)
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lb.set_prompt2(prompt2)
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@ -1535,9 +1544,28 @@ if __name__ == "__main__":
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fn = f"d{d}_b{b}_x{x}.jpg"
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ip.save(os.path.join(dp_tmp, fn), img)
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#%% get source img
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seed = 280335986
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prompt1 = "photo of a futuristic alien temple resting in the desert, mystic, sunlight"
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lb.set_prompt1(prompt1)
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lb.init_inpainting(init_empty=True)
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for i in range(5):
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seed = np.random.randint(753528763)
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lb.set_seed(seed)
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txt = f"index {i+1} {seed}: {prompt1}"
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img = lb.run_diffusion(lb.text_embedding1, return_image=True)
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plt.imshow(img)
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# plt.title(txt)
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plt.show()
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print(txt)
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#%%
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"""
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index 3 303856737: photo of a futuristic alien temple resting in the desert, mystic, sunlight
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"""
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#%%
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"""
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