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import os, sys |
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sys.path.append('./') |
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import argparse |
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import gradio as gr |
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from inference.real3d_infer import GeneFace2Infer |
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from utils.commons.hparams import hparams |
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class Inferer(GeneFace2Infer): |
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def infer_once_args(self, *args, **kargs): |
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assert len(kargs) == 0 |
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keys = [ |
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'src_image_name', |
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'drv_audio_name', |
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'drv_pose_name', |
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'bg_image_name', |
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'blink_mode', |
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'temperature', |
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'mouth_amp', |
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'out_mode', |
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'map_to_init_pose', |
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'low_memory_usage', |
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'hold_eye_opened', |
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'a2m_ckpt', |
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'head_ckpt', |
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'torso_ckpt', |
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'min_face_area_percent', |
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] |
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inp = {} |
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out_name = None |
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info = "" |
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try: |
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for key_index in range(len(keys)): |
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key = keys[key_index] |
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inp[key] = args[key_index] |
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if '_name' in key: |
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inp[key] = inp[key] if inp[key] is not None else '' |
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if inp['src_image_name'] == '': |
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info = "Input Error: Source image is REQUIRED!" |
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raise ValueError |
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if inp['drv_audio_name'] == '' and inp['drv_pose_name'] == '': |
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info = "Input Error: At least one of driving audio or video is REQUIRED!" |
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raise ValueError |
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if inp['drv_audio_name'] == '' and inp['drv_pose_name'] != '': |
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inp['drv_audio_name'] = inp['drv_pose_name'] |
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print("No audio input, we use driving pose video for video driving") |
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if inp['drv_pose_name'] == '': |
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inp['drv_pose_name'] = 'static' |
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reload_flag = False |
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if inp['a2m_ckpt'] != self.audio2secc_dir: |
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print("Changes of a2m_ckpt detected, reloading model") |
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reload_flag = True |
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if inp['head_ckpt'] != self.head_model_dir: |
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print("Changes of head_ckpt detected, reloading model") |
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reload_flag = True |
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if inp['torso_ckpt'] != self.torso_model_dir: |
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print("Changes of torso_ckpt detected, reloading model") |
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reload_flag = True |
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inp['out_name'] = '' |
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inp['seed'] = 42 |
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print(f"infer inputs : {inp}") |
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try: |
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if reload_flag: |
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self.__init__(inp['a2m_ckpt'], inp['head_ckpt'], inp['torso_ckpt'], inp=inp, device=self.device) |
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except Exception as e: |
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content = f"{e}" |
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info = f"Reload ERROR: {content}" |
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raise ValueError |
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try: |
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out_name = self.infer_once(inp) |
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except Exception as e: |
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content = f"{e}" |
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info = f"Inference ERROR: {content}" |
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raise ValueError |
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except Exception as e: |
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if info == "": |
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content = f"{e}" |
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info = f"WebUI ERROR: {content}" |
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if len(info) > 0 : |
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print(info) |
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info_gr = gr.update(visible=True, value=info) |
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else: |
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info_gr = gr.update(visible=False, value=info) |
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if out_name is not None and len(out_name) > 0 and os.path.exists(out_name): |
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print(f"Succefully generated in {out_name}") |
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video_gr = gr.update(visible=True, value=out_name) |
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else: |
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print(f"Failed to generate") |
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video_gr = gr.update(visible=True, value=out_name) |
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return video_gr, info_gr |
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def toggle_audio_file(choice): |
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if choice == False: |
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return gr.update(visible=True), gr.update(visible=False) |
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else: |
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return gr.update(visible=False), gr.update(visible=True) |
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def ref_video_fn(path_of_ref_video): |
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if path_of_ref_video is not None: |
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return gr.update(value=True) |
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else: |
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return gr.update(value=False) |
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def real3dportrait_demo( |
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audio2secc_dir, |
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head_model_dir, |
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torso_model_dir, |
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device = 'cuda', |
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warpfn = None, |
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): |
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sep_line = "-" * 40 |
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infer_obj = Inferer( |
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audio2secc_dir=audio2secc_dir, |
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head_model_dir=head_model_dir, |
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torso_model_dir=torso_model_dir, |
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device=device, |
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) |
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print(sep_line) |
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print("Model loading is finished.") |
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print(sep_line) |
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with gr.Blocks(analytics_enabled=False) as real3dportrait_interface: |
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gr.Markdown("\ |
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<div align='center'> <h2> Real3D-Portrait: One-shot Realistic 3D Talking Portrait Synthesis (ICLR 2024 Spotlight) </span> </h2> \ |
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<a style='font-size:18px;color: #a0a0a0' href='https://arxiv.org/pdf/2401.08503.pdf'>Arxiv</a> \ |
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<a style='font-size:18px;color: #a0a0a0' href='https://real3dportrait.github.io/'>Homepage</a> \ |
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<a style='font-size:18px;color: #a0a0a0' href='https://github.com/yerfor/Real3DPortrait/'> Github </div>") |
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sources = None |
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with gr.Row(): |
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with gr.Column(variant='panel'): |
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with gr.Tabs(elem_id="source_image"): |
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with gr.TabItem('Upload image'): |
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with gr.Row(): |
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src_image_name = gr.Image(label="Source image (required)", sources=sources, type="filepath", value="data/raw/examples/Macron.png") |
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with gr.Tabs(elem_id="driven_audio"): |
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with gr.TabItem('Upload audio'): |
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with gr.Column(variant='panel'): |
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drv_audio_name = gr.Audio(label="Input audio (required for audio-driven)", sources=sources, type="filepath", value="data/raw/examples/Obama_5s.wav") |
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with gr.Tabs(elem_id="driven_pose"): |
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with gr.TabItem('Upload video'): |
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with gr.Column(variant='panel'): |
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drv_pose_name = gr.Video(label="Driven Pose (required for video-driven, optional for audio-driven)", sources=sources, value="data/raw/examples/May_5s.mp4") |
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with gr.Tabs(elem_id="bg_image"): |
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with gr.TabItem('Upload image'): |
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with gr.Row(): |
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bg_image_name = gr.Image(label="Background image (optional)", sources=sources, type="filepath", value="data/raw/examples/bg.png") |
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with gr.Column(variant='panel'): |
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with gr.Tabs(elem_id="checkbox"): |
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with gr.TabItem('General Settings'): |
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with gr.Column(variant='panel'): |
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blink_mode = gr.Radio(['none', 'period'], value='period', label='blink mode', info="whether to blink periodly") |
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min_face_area_percent = gr.Slider(minimum=0.15, maximum=0.5, step=0.01, label="min_face_area_percent", value=0.2, info='The minimum face area percent in the output frame, to prevent bad cases caused by a too small face.',) |
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temperature = gr.Slider(minimum=0.0, maximum=1.0, step=0.025, label="temperature", value=0.2, info='audio to secc temperature',) |
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mouth_amp = gr.Slider(minimum=0.0, maximum=1.0, step=0.025, label="mouth amplitude", value=0.45, info='higher -> mouth will open wider, default to be 0.4',) |
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out_mode = gr.Radio(['final', 'concat_debug'], value='concat_debug', label='output layout', info="final: only final output ; concat_debug: final output concated with internel features") |
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low_memory_usage = gr.Checkbox(label="Low Memory Usage Mode: save memory at the expense of lower inference speed. Useful when running a low audio (minutes-long).", value=False) |
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map_to_init_pose = gr.Checkbox(label="Whether to map pose of first frame to initial pose", value=True) |
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hold_eye_opened = gr.Checkbox(label="Whether to maintain eyes always open") |
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submit = gr.Button('Generate', elem_id="generate", variant='primary') |
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with gr.Tabs(elem_id="genearted_video"): |
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info_box = gr.Textbox(label="Error", interactive=False, visible=False) |
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gen_video = gr.Video(label="Generated video", format="mp4", visible=True) |
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with gr.Column(variant='panel'): |
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with gr.Tabs(elem_id="checkbox"): |
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with gr.TabItem('Checkpoints'): |
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with gr.Column(variant='panel'): |
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ckpt_info_box = gr.Textbox(value="Please select \"ckpt\" under the checkpoint folder ", interactive=False, visible=True, show_label=False) |
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audio2secc_dir = gr.FileExplorer(glob="checkpoints/**/*.ckpt", value=audio2secc_dir, file_count='single', label='audio2secc model ckpt path or directory') |
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head_model_dir = gr.FileExplorer(glob="checkpoints/**/*.ckpt", value=head_model_dir, file_count='single', label='head model ckpt path or directory (will be ignored if torso model is set)') |
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torso_model_dir = gr.FileExplorer(glob="checkpoints/**/*.ckpt", value=torso_model_dir, file_count='single', label='torso model ckpt path or directory') |
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fn = infer_obj.infer_once_args |
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if warpfn: |
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fn = warpfn(fn) |
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submit.click( |
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fn=fn, |
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inputs=[ |
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src_image_name, |
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drv_audio_name, |
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drv_pose_name, |
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bg_image_name, |
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blink_mode, |
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temperature, |
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mouth_amp, |
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out_mode, |
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map_to_init_pose, |
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low_memory_usage, |
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hold_eye_opened, |
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audio2secc_dir, |
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head_model_dir, |
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torso_model_dir, |
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min_face_area_percent, |
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], |
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outputs=[ |
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gen_video, |
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info_box, |
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], |
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) |
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print(sep_line) |
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print("Gradio page is constructed.") |
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print(sep_line) |
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return real3dportrait_interface |
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if __name__ == "__main__": |
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parser = argparse.ArgumentParser() |
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parser.add_argument("--a2m_ckpt", type=str, default='checkpoints/240210_real3dportrait_orig/audio2secc_vae/model_ckpt_steps_400000.ckpt') |
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parser.add_argument("--head_ckpt", type=str, default='') |
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parser.add_argument("--torso_ckpt", type=str, default='checkpoints/240210_real3dportrait_orig/secc2plane_torso_orig/model_ckpt_steps_100000.ckpt') |
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parser.add_argument("--port", type=int, default=None) |
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parser.add_argument("--server", type=str, default='127.0.0.1') |
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parser.add_argument("--share", action='store_true', dest='share', help='share srever to Internet') |
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args = parser.parse_args() |
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demo = real3dportrait_demo( |
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audio2secc_dir=args.a2m_ckpt, |
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head_model_dir=args.head_ckpt, |
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torso_model_dir=args.torso_ckpt, |
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device='cuda:0', |
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warpfn=None, |
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) |
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demo.queue() |
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demo.launch(share=args.share, server_name=args.server, server_port=args.port) |
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