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Running
Running
Harisreedhar
commited on
Commit
•
cf144f1
1
Parent(s):
85ce599
Update app.py
Browse files
app.py
CHANGED
@@ -13,6 +13,7 @@ import onnxruntime
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import numpy as np
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import gradio as gr
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from tqdm import tqdm
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from moviepy.editor import VideoFileClip
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from nsfw_detector import get_nsfw_detector
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@@ -262,17 +263,59 @@ def process(
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torch.cuda.empty_cache()
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split_preds = split_list_by_lengths(preds, num_faces_per_frame)
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split_aimgs = split_list_by_lengths(aimgs, num_faces_per_frame)
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split_matrs = split_list_by_lengths(matrs, num_faces_per_frame)
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yield "### \n ⌛ Post-processing...", *ui_before()
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whole_img_path = frame_img
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whole_img = cv2.imread(whole_img_path)
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for p, a, m in zip(split_preds[
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whole_img = paste_to_whole(p, a, m, whole_img, laplacian_blend=enable_laplacian_blend, crop_mask=(crop_top,crop_bott,crop_left,crop_right))
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cv2.imwrite(whole_img_path, whole_img)
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## ------------------------------ IMAGE ------------------------------
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@@ -621,7 +664,7 @@ with gr.Blocks(css=css) as interface:
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with gr.Group():
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input_type = gr.Radio(
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["Image", "Video"],
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label="Target Type",
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value="Video",
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)
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import numpy as np
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import gradio as gr
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from tqdm import tqdm
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import concurrent.futures
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from moviepy.editor import VideoFileClip
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from nsfw_detector import get_nsfw_detector
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torch.cuda.empty_cache()
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split_preds = split_list_by_lengths(preds, num_faces_per_frame)
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del preds
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split_aimgs = split_list_by_lengths(aimgs, num_faces_per_frame)
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del aimgs
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split_matrs = split_list_by_lengths(matrs, num_faces_per_frame)
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del matrs
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yield "### \n ⌛ Post-processing...", *ui_before()
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def process_frame(frame_idx, frame_img, split_preds, split_aimgs, split_matrs, enable_laplacian_blend, crop_top, crop_bott, crop_left, crop_right):
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whole_img_path = frame_img
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whole_img = cv2.imread(whole_img_path)
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for p, a, m in zip(split_preds[frame_idx], split_aimgs[frame_idx], split_matrs[frame_idx]):
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whole_img = paste_to_whole(p, a, m, whole_img, laplacian_blend=enable_laplacian_blend, crop_mask=(crop_top, crop_bott, crop_left, crop_right))
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cv2.imwrite(whole_img_path, whole_img)
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def optimize_processing(image_sequence, split_preds, split_aimgs, split_matrs, enable_laplacian_blend, crop_top, crop_bott, crop_left, crop_right):
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with concurrent.futures.ThreadPoolExecutor() as executor:
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futures = []
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for idx, frame_img in enumerate(image_sequence):
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future = executor.submit(
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process_frame,
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idx,
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frame_img,
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split_preds,
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split_aimgs,
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split_matrs,
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enable_laplacian_blend,
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crop_top,
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crop_bott,
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crop_left,
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crop_right
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)
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futures.append(future)
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for future in tqdm(concurrent.futures.as_completed(futures), total=len(futures), desc="Post-Processing"):
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try:
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result = future.result()
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except Exception as e:
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print(f"An error occurred: {e}")
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# Usage:
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optimize_processing(
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image_sequence,
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split_preds,
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split_aimgs,
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split_matrs,
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enable_laplacian_blend,
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crop_top,
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crop_bott,
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crop_left,
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crop_right
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)
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## ------------------------------ IMAGE ------------------------------
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with gr.Group():
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input_type = gr.Radio(
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["Image", "Video", "Directory"],
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label="Target Type",
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value="Video",
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)
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