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from PIL.ImageOps import colorize, scale |
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import gradio as gr |
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import importlib |
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import sys |
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import os |
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sys.path.append(os.path.join(os.getcwd(), "GroundingDINO")) |
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from matplotlib.pyplot import step |
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from model_args import segtracker_args,sam_args,aot_args |
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from SegTracker import SegTracker |
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import cv2 |
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from PIL import Image |
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from skimage.morphology.binary import binary_dilation |
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import argparse |
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import torch |
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import time |
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from seg_track_anything import aot_model2ckpt, tracking_objects_in_video, draw_mask |
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import gc |
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import numpy as np |
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import json |
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from tool.transfer_tools import mask2bbox |
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def clean(): |
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return None, None, None, None, None, None, [[], []] |
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def get_click_prompt(click_stack, point): |
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click_stack[0].append(point["coord"]) |
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click_stack[1].append(point["mode"] |
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) |
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prompt = { |
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"points_coord":click_stack[0], |
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"points_mode":click_stack[1], |
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"multimask":"True", |
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} |
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return prompt |
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def get_meta_from_video(input_video): |
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if input_video is None: |
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return None, None, None, "" |
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print("get meta information of input video") |
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cap = cv2.VideoCapture(input_video) |
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_, first_frame = cap.read() |
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cap.release() |
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first_frame = cv2.cvtColor(first_frame, cv2.COLOR_BGR2RGB) |
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return first_frame, first_frame, first_frame, "" |
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def get_meta_from_img_seq(input_img_seq): |
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if input_img_seq is None: |
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return None, None, None, "" |
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print("get meta information of img seq") |
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file_name = input_img_seq.name.split('/')[-1].split('.')[0] |
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file_path = f'./assets/{file_name}' |
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if os.path.isdir(file_path): |
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os.system(f'rm -r {file_path}') |
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os.makedirs(file_path) |
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os.system(f'unzip {input_img_seq.name} -d ./assets ') |
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imgs_path = sorted([os.path.join(file_path, img_name) for img_name in os.listdir(file_path)]) |
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first_frame = imgs_path[0] |
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first_frame = cv2.imread(first_frame) |
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first_frame = cv2.cvtColor(first_frame, cv2.COLOR_BGR2RGB) |
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return first_frame, first_frame, first_frame |
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def SegTracker_add_first_frame(Seg_Tracker, origin_frame, predicted_mask): |
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with torch.cuda.amp.autocast(): |
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frame_idx = 0 |
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Seg_Tracker.restart_tracker() |
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Seg_Tracker.add_reference(origin_frame, predicted_mask, frame_idx) |
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Seg_Tracker.first_frame_mask = predicted_mask |
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return Seg_Tracker |
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def init_SegTracker(aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, origin_frame): |
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if origin_frame is None: |
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return None, origin_frame, [[], []], "" |
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aot_args["model"] = aot_model |
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aot_args["model_path"] = aot_model2ckpt[aot_model] |
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aot_args["long_term_mem_gap"] = long_term_mem |
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aot_args["max_len_long_term"] = max_len_long_term |
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segtracker_args["sam_gap"] = sam_gap |
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segtracker_args["max_obj_num"] = max_obj_num |
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sam_args["generator_args"]["points_per_side"] = points_per_side |
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Seg_Tracker = SegTracker(segtracker_args, sam_args, aot_args) |
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Seg_Tracker.restart_tracker() |
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return Seg_Tracker, origin_frame, [[], []], "" |
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def init_SegTracker_Stroke(aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, origin_frame): |
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if origin_frame is None: |
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return None, origin_frame, [[], []], origin_frame |
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aot_args["model"] = aot_model |
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aot_args["model_path"] = aot_model2ckpt[aot_model] |
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aot_args["long_term_mem_gap"] = long_term_mem |
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aot_args["max_len_long_term"] = max_len_long_term |
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segtracker_args["sam_gap"] = sam_gap |
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segtracker_args["max_obj_num"] = max_obj_num |
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sam_args["generator_args"]["points_per_side"] = points_per_side |
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Seg_Tracker = SegTracker(segtracker_args, sam_args, aot_args) |
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Seg_Tracker.restart_tracker() |
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return Seg_Tracker, origin_frame, [[], []], origin_frame |
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def undo_click_stack_and_refine_seg(Seg_Tracker, origin_frame, click_stack, aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side): |
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if Seg_Tracker is None: |
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return Seg_Tracker, origin_frame, [[], []] |
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print("Undo!") |
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if len(click_stack[0]) > 0: |
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click_stack[0] = click_stack[0][: -1] |
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click_stack[1] = click_stack[1][: -1] |
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if len(click_stack[0]) > 0: |
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prompt = { |
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"points_coord":click_stack[0], |
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"points_mode":click_stack[1], |
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"multimask":"True", |
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} |
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masked_frame = seg_acc_click(Seg_Tracker, prompt, origin_frame) |
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return Seg_Tracker, masked_frame, click_stack |
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else: |
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return Seg_Tracker, origin_frame, [[], []] |
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def seg_acc_click(Seg_Tracker, prompt, origin_frame): |
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predicted_mask, masked_frame = Seg_Tracker.seg_acc_click( |
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origin_frame=origin_frame, |
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coords=np.array(prompt["points_coord"]), |
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modes=np.array(prompt["points_mode"]), |
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multimask=prompt["multimask"], |
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) |
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Seg_Tracker = SegTracker_add_first_frame(Seg_Tracker, origin_frame, predicted_mask) |
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return masked_frame |
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def sam_click(Seg_Tracker, origin_frame, point_mode, click_stack, aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, evt:gr.SelectData): |
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""" |
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Args: |
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origin_frame: nd.array |
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click_stack: [[coordinate], [point_mode]] |
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""" |
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print("Click") |
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if point_mode == "Positive": |
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point = {"coord": [evt.index[0], evt.index[1]], "mode": 1} |
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else: |
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point = {"coord": [evt.index[0], evt.index[1]], "mode": 0} |
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if Seg_Tracker is None: |
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Seg_Tracker, _, _, _ = init_SegTracker(aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, origin_frame) |
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click_prompt = get_click_prompt(click_stack, point) |
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masked_frame = seg_acc_click(Seg_Tracker, click_prompt, origin_frame) |
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return Seg_Tracker, masked_frame, click_stack |
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def sam_stroke(Seg_Tracker, origin_frame, drawing_board, aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side): |
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if Seg_Tracker is None: |
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Seg_Tracker, _ , _, _ = init_SegTracker(aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, origin_frame) |
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print("Stroke") |
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mask = drawing_board["mask"] |
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bbox = mask2bbox(mask[:, :, 0]) |
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predicted_mask, masked_frame = Seg_Tracker.seg_acc_bbox(origin_frame, bbox) |
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Seg_Tracker = SegTracker_add_first_frame(Seg_Tracker, origin_frame, predicted_mask) |
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return Seg_Tracker, masked_frame, origin_frame |
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def gd_detect(Seg_Tracker, origin_frame, grounding_caption, box_threshold, text_threshold, aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side): |
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if Seg_Tracker is None: |
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Seg_Tracker, _ , _, _ = init_SegTracker(aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, origin_frame) |
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print("Detect") |
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predicted_mask, annotated_frame= Seg_Tracker.detect_and_seg(origin_frame, grounding_caption, box_threshold, text_threshold) |
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Seg_Tracker = SegTracker_add_first_frame(Seg_Tracker, origin_frame, predicted_mask) |
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masked_frame = draw_mask(annotated_frame, predicted_mask) |
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return Seg_Tracker, masked_frame, origin_frame |
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def segment_everything(Seg_Tracker, aot_model, long_term_mem, max_len_long_term, origin_frame, sam_gap, max_obj_num, points_per_side): |
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if Seg_Tracker is None: |
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Seg_Tracker, _ , _, _ = init_SegTracker(aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side, origin_frame) |
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print("Everything") |
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frame_idx = 0 |
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with torch.cuda.amp.autocast(): |
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pred_mask = Seg_Tracker.seg(origin_frame) |
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torch.cuda.empty_cache() |
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gc.collect() |
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Seg_Tracker.add_reference(origin_frame, pred_mask, frame_idx) |
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Seg_Tracker.first_frame_mask = pred_mask |
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masked_frame = draw_mask(origin_frame.copy(), pred_mask) |
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return Seg_Tracker, masked_frame |
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def add_new_object(Seg_Tracker): |
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prev_mask = Seg_Tracker.first_frame_mask |
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Seg_Tracker.update_origin_merged_mask(prev_mask) |
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Seg_Tracker.curr_idx += 1 |
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print("Ready to add new object!") |
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return Seg_Tracker, [[], []] |
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def tracking_objects(Seg_Tracker, input_video, input_img_seq, fps): |
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print("Start tracking !") |
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return tracking_objects_in_video(Seg_Tracker, input_video, input_img_seq, fps) |
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def seg_track_app(): |
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app = gr.Blocks() |
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with app: |
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gr.Markdown( |
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''' |
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<div style="text-align:center;"> |
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<span style="font-size:3em; font-weight:bold;">Segment and Track Anything(SAM-Track)</span> |
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</div> |
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''' |
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) |
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click_stack = gr.State([[],[]]) |
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origin_frame = gr.State(None) |
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Seg_Tracker = gr.State(None) |
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aot_model = gr.State(None) |
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sam_gap = gr.State(None) |
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points_per_side = gr.State(None) |
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max_obj_num = gr.State(None) |
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with gr.Row(): |
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with gr.Column(scale=0.5): |
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tab_video_input = gr.Tab(label="Video type input") |
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with tab_video_input: |
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input_video = gr.Video(label='Input video').style(height=550) |
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tab_img_seq_input = gr.Tab(label="Image-Seq type input") |
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with tab_img_seq_input: |
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with gr.Row(): |
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input_img_seq = gr.File(label='Input Image-Seq').style(height=550) |
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with gr.Column(scale=0.25): |
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extract_button = gr.Button(value="extract") |
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fps = gr.Slider(label='fps', minimum=5, maximum=50, value=8, step=1) |
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input_first_frame = gr.Image(label='Segment result of first frame',interactive=True).style(height=550) |
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tab_everything = gr.Tab(label="Everything") |
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with tab_everything: |
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with gr.Row(): |
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seg_every_first_frame = gr.Button(value="Segment everything for first frame", interactive=True) |
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point_mode = gr.Radio( |
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choices=["Positive"], |
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value="Positive", |
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label="Point Prompt", |
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interactive=True) |
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every_undo_but = gr.Button( |
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value="Undo", |
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interactive=True |
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) |
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tab_click = gr.Tab(label="Click") |
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with tab_click: |
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with gr.Row(): |
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point_mode = gr.Radio( |
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choices=["Positive", "Negative"], |
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value="Positive", |
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label="Point Prompt", |
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interactive=True) |
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click_undo_but = gr.Button( |
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value="Undo", |
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interactive=True |
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) |
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tab_stroke = gr.Tab(label="Stroke") |
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with tab_stroke: |
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drawing_board = gr.Image(label='Drawing Board', tool="sketch", brush_radius=10, interactive=True) |
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with gr.Row(): |
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seg_acc_stroke = gr.Button(value="Segment", interactive=True) |
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tab_text = gr.Tab(label="Text") |
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with tab_text: |
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grounding_caption = gr.Textbox(label="Detection Prompt") |
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detect_button = gr.Button(value="Detect") |
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with gr.Accordion("Advanced options", open=False): |
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with gr.Row(): |
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with gr.Column(scale=0.5): |
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box_threshold = gr.Slider( |
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label="Box Threshold", minimum=0.0, maximum=1.0, value=0.25, step=0.001 |
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) |
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with gr.Column(scale=0.5): |
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text_threshold = gr.Slider( |
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label="Text Threshold", minimum=0.0, maximum=1.0, value=0.25, step=0.001 |
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) |
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with gr.Row(): |
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with gr.Column(scale=0.5): |
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with gr.Tab(label="SegTracker Args"): |
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points_per_side = gr.Slider( |
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label = "points_per_side", |
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minimum= 1, |
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step = 1, |
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maximum=100, |
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value=16, |
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interactive=True |
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) |
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sam_gap = gr.Slider( |
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label='sam_gap', |
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minimum = 1, |
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step=1, |
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maximum = 9999, |
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value=100, |
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interactive=True, |
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) |
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max_obj_num = gr.Slider( |
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label='max_obj_num', |
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minimum = 50, |
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step=1, |
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maximum = 300, |
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value=255, |
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interactive=True |
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) |
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with gr.Accordion("aot advanced options", open=False): |
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aot_model = gr.Dropdown( |
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label="aot_model", |
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choices = [ |
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"deaotb", |
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"deaotl", |
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"r50_deaotl" |
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], |
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value = "r50_deaotl", |
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interactive=True, |
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) |
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long_term_mem = gr.Slider(label="long term memory gap", minimum=1, maximum=9999, value=9999, step=1) |
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max_len_long_term = gr.Slider(label="max len of long term memory", minimum=1, maximum=9999, value=9999, step=1) |
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with gr.Column(): |
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new_object_button = gr.Button( |
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value="Add new object", |
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interactive=True |
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) |
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reset_button = gr.Button( |
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value="Reset", |
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interactive=True, |
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) |
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track_for_video = gr.Button( |
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value="Start Tracking", |
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interactive=True, |
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) |
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with gr.Column(scale=0.5): |
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output_video = gr.Video(label='Output video').style(height=550) |
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output_mask = gr.File(label="Predicted masks") |
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input_video.change( |
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fn=get_meta_from_video, |
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inputs=[ |
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input_video |
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], |
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outputs=[ |
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input_first_frame, origin_frame, drawing_board, grounding_caption |
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] |
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) |
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input_img_seq.change( |
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fn=get_meta_from_img_seq, |
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inputs=[ |
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input_img_seq |
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], |
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outputs=[ |
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input_first_frame, origin_frame, drawing_board, grounding_caption |
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] |
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) |
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tab_video_input.select( |
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fn = clean, |
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inputs=[], |
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outputs=[ |
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input_video, |
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input_img_seq, |
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Seg_Tracker, |
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input_first_frame, |
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origin_frame, |
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drawing_board, |
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click_stack, |
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] |
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) |
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tab_img_seq_input.select( |
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fn = clean, |
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inputs=[], |
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outputs=[ |
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input_video, |
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input_img_seq, |
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Seg_Tracker, |
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input_first_frame, |
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origin_frame, |
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drawing_board, |
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click_stack, |
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] |
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) |
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extract_button.click( |
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fn=get_meta_from_img_seq, |
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inputs=[ |
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input_img_seq |
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], |
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outputs=[ |
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input_first_frame, origin_frame, drawing_board |
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] |
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) |
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tab_everything.select( |
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fn=init_SegTracker, |
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inputs=[ |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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origin_frame |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack, grounding_caption |
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], |
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queue=False, |
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) |
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tab_click.select( |
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fn=init_SegTracker, |
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inputs=[ |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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origin_frame |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack, grounding_caption |
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], |
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queue=False, |
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) |
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tab_stroke.select( |
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fn=init_SegTracker_Stroke, |
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inputs=[ |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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origin_frame, |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack, drawing_board |
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], |
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queue=False, |
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) |
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tab_text.select( |
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fn=init_SegTracker, |
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inputs=[ |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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origin_frame |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack, grounding_caption |
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], |
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queue=False, |
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) |
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seg_every_first_frame.click( |
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fn=segment_everything, |
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inputs=[ |
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Seg_Tracker, |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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origin_frame, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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], |
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outputs=[ |
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Seg_Tracker, |
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input_first_frame, |
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], |
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) |
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input_first_frame.select( |
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fn=sam_click, |
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inputs=[ |
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Seg_Tracker, origin_frame, point_mode, click_stack, |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack |
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] |
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) |
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seg_acc_stroke.click( |
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fn=sam_stroke, |
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inputs=[ |
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Seg_Tracker, origin_frame, drawing_board, |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, drawing_board |
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] |
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) |
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detect_button.click( |
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fn=gd_detect, |
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inputs=[ |
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Seg_Tracker, origin_frame, grounding_caption, box_threshold, text_threshold, |
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aot_model, long_term_mem, max_len_long_term, sam_gap, max_obj_num, points_per_side |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame |
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] |
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) |
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new_object_button.click( |
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fn=add_new_object, |
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inputs= |
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[ |
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Seg_Tracker |
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], |
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outputs= |
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[ |
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Seg_Tracker, click_stack |
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] |
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) |
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track_for_video.click( |
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fn=tracking_objects, |
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inputs=[ |
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Seg_Tracker, |
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input_video, |
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input_img_seq, |
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fps, |
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], |
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outputs=[ |
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output_video, output_mask |
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] |
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) |
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reset_button.click( |
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fn=init_SegTracker, |
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inputs=[ |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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origin_frame |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack, grounding_caption |
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], |
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queue=False, |
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show_progress=False |
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) |
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click_undo_but.click( |
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fn = undo_click_stack_and_refine_seg, |
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inputs=[ |
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Seg_Tracker, origin_frame, click_stack, |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack |
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] |
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) |
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every_undo_but.click( |
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fn = undo_click_stack_and_refine_seg, |
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inputs=[ |
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Seg_Tracker, origin_frame, click_stack, |
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aot_model, |
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long_term_mem, |
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max_len_long_term, |
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sam_gap, |
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max_obj_num, |
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points_per_side, |
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], |
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outputs=[ |
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Seg_Tracker, input_first_frame, click_stack |
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] |
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) |
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with gr.Tab(label='Video example'): |
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gr.Examples( |
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examples=[ |
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os.path.join(os.path.dirname(__file__), "assets", "blackswan.mp4"), |
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], |
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inputs=[input_video], |
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) |
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with gr.Tab(label='Image-seq expamle'): |
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gr.Examples( |
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examples=[ |
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os.path.join(os.path.dirname(__file__), "assets", "840_iSXIa0hE8Ek.zip"), |
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], |
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inputs=[input_img_seq], |
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) |
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app.queue(concurrency_count=1) |
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app.launch(debug=True, enable_queue=True) |
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if __name__ == "__main__": |
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seg_track_app() |