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import gradio as gr | |
import numpy as np | |
import cv2 | |
from core_pipeline import extract_frames, detect_trees, plot_detections | |
def process_video(video_file): | |
if video_file is None: | |
return None | |
video_path = video_file.name # β fix for NamedString input | |
frames = extract_frames(video_path) | |
results = [] | |
for i, frame in enumerate(frames[:3]): # Show top 3 sample frames | |
detected, bboxes, confs, labels = detect_trees(frame) | |
annotated = plot_detections(detected, bboxes) | |
results.append(annotated) | |
if results: | |
preview = np.hstack(results) | |
return preview | |
return None | |
gr.Interface( | |
fn=process_video, | |
inputs=gr.File(label="Upload Drone Video", file_types=[".mp4"]), | |
outputs=gr.Image(label="Tree Detections (Sample Frames)"), | |
title="π³ Drone Tree Detection App", | |
description="Upload top-down drone footage (.mp4). This app detects trees using YOLOv8 and shows sample frames with bounding boxes." | |
).launch() | |