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from ..patch_match import PyramidPatchMatcher | |
import os | |
import numpy as np | |
from PIL import Image | |
from tqdm import tqdm | |
class AccurateModeRunner: | |
def __init__(self): | |
pass | |
def run(self, frames_guide, frames_style, batch_size, window_size, ebsynth_config, desc="Accurate Mode", save_path=None): | |
patch_match_engine = PyramidPatchMatcher( | |
image_height=frames_style[0].shape[0], | |
image_width=frames_style[0].shape[1], | |
channel=3, | |
use_mean_target_style=True, | |
**ebsynth_config | |
) | |
# run | |
n = len(frames_style) | |
for target in tqdm(range(n), desc=desc): | |
l, r = max(target - window_size, 0), min(target + window_size + 1, n) | |
remapped_frames = [] | |
for i in range(l, r, batch_size): | |
j = min(i + batch_size, r) | |
source_guide = np.stack([frames_guide[source] for source in range(i, j)]) | |
target_guide = np.stack([frames_guide[target]] * (j - i)) | |
source_style = np.stack([frames_style[source] for source in range(i, j)]) | |
_, target_style = patch_match_engine.estimate_nnf(source_guide, target_guide, source_style) | |
remapped_frames.append(target_style) | |
frame = np.concatenate(remapped_frames, axis=0).mean(axis=0) | |
frame = frame.clip(0, 255).astype("uint8") | |
if save_path is not None: | |
Image.fromarray(frame).save(os.path.join(save_path, "%05d.png" % target)) |