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import gradio as gr | |
from stitching import Stitcher | |
import cv2 | |
import numpy as np | |
def stitch_images(image_mode, image1, image2, images, detector, matcher, estimator, blender_type, crop, wave_correct): | |
if image_mode == "Two Images": | |
if image1 is None or image2 is None: | |
return None, "Please upload both images." | |
cv_images = [cv2.cvtColor(np.array(img), cv2.COLOR_RGB2BGR) for img in [image1, image2]] | |
else: # Multiple Images | |
if len(images) < 2: | |
return None, "Please upload at least 2 images." | |
cv_images = [cv2.cvtColor(np.array(img), cv2.COLOR_RGB2BGR) for img in images] | |
try: | |
stitcher = Stitcher( | |
detector=detector, | |
matcher_type=matcher, | |
estimator=estimator, | |
blender_type=blender_type, | |
crop=crop, | |
wave_correct_kind=wave_correct | |
) | |
panorama = stitcher.stitch(cv_images) | |
# Convert back to RGB for display | |
panorama_rgb = cv2.cvtColor(panorama, cv2.COLOR_BGR2RGB) | |
return panorama_rgb, "Stitching successful!" | |
except Exception as e: | |
return None, f"Stitching failed: {str(e)}" | |
def update_image_input(choice): | |
if choice == "Two Images": | |
return gr.update(visible=True), gr.update(visible=True), gr.update(visible=False) | |
else: | |
return gr.update(visible=False), gr.update(visible=False), gr.update(visible=True) | |
with gr.Blocks() as iface: | |
gr.Markdown("# Advanced Image Stitcher") | |
gr.Markdown("Upload images to create a panorama. Adjust parameters for better results.") | |
with gr.Row(): | |
image_mode = gr.Radio(["Two Images", "Multiple Images"], label="Image Upload Mode", value="Two Images") | |
with gr.Row(): | |
image1 = gr.Image(label="Image 1") | |
image2 = gr.Image(label="Image 2") | |
images = gr.File(file_count="multiple", label="Upload multiple images", visible=False) | |
image_mode.change(update_image_input, image_mode, [image1, image2, images]) | |
with gr.Row(): | |
detector = gr.Dropdown(["orb", "sift", "surf", "akaze"], label="Feature Detector", value="orb") | |
matcher = gr.Dropdown(["homography", "affine"], label="Matcher Type", value="homography") | |
estimator = gr.Dropdown(["homography", "affine"], label="Estimator", value="homography") | |
with gr.Row(): | |
blender_type = gr.Dropdown(["multiband", "feather", "no"], label="Blender Type", value="multiband") | |
crop = gr.Checkbox(label="Crop Result", value=True) | |
wave_correct = gr.Radio(["horiz", "vert", "no"], label="Wave Correction", value="horiz") | |
stitch_button = gr.Button("Stitch Images") | |
with gr.Row(): | |
output_image = gr.Image(type="numpy", label="Stitched Panorama") | |
status = gr.Textbox(label="Status") | |
stitch_button.click( | |
stitch_images, | |
inputs=[image_mode, image1, image2, images, detector, matcher, estimator, blender_type, crop, wave_correct], | |
outputs=[output_image, status] | |
) | |
gr.Examples( | |
[ | |
["Two Images", "exposure_error_1.jpg", "exposure_error_2.jpg", None, "orb", "homography", "homography", "multiband", True, "horiz"], | |
["Multiple Images", None, None, ["weir_1.jpg", "weir_2.jpg", "weir_3.jpg"], "orb", "homography", "homography", "multiband", True, "horiz"] | |
], | |
inputs=[image_mode, image1, image2, images, detector, matcher, estimator, blender_type, crop, wave_correct], | |
) | |
iface.launch() |