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import os |
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import sys |
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sys.path.append(os.getcwd()) |
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from glob import glob |
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from argparse import ArgumentParser |
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import json |
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from evaluation.util import * |
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from evaluation.metrics import * |
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from tqdm import tqdm |
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parser = ArgumentParser() |
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parser.add_argument('--speaker', required=True, type=str) |
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parser.add_argument('--post_fix', nargs='+', default=['paper_model'], type=str) |
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args = parser.parse_args() |
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speaker = args.speaker |
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test_audios = sorted(glob('pose_dataset/videos/test_audios/%s/*.wav'%(speaker))) |
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gt_consistency_list=[] |
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pred_consistency_list=[] |
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for aud in tqdm(test_audios): |
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base_name = os.path.splitext(aud)[0] |
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gt_path = get_full_path(aud, speaker, 'val') |
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_, gt_poses, _ = get_gts(gt_path) |
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gt_poses = gt_poses[np.newaxis,...] |
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for post_fix in args.post_fix: |
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pred_path = base_name + '_'+post_fix+'.json' |
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pred_poses = np.array(json.load(open(pred_path))) |
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pred_poses = cvt25(pred_poses, gt_poses) |
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gt_valid_points = hand_points(gt_poses) |
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pred_valid_points = hand_points(pred_poses) |
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gt_velocity = peak_velocity(gt_valid_points, order=2) |
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pred_velocity = peak_velocity(pred_valid_points, order=2) |
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gt_consistency = velocity_consistency(gt_velocity, pred_velocity) |
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pred_consistency = velocity_consistency(pred_velocity, gt_velocity) |
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gt_consistency_list.append(gt_consistency) |
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pred_consistency_list.append(pred_consistency) |
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gt_consistency_list = np.concatenate(gt_consistency_list) |
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pred_consistency_list = np.concatenate(pred_consistency_list) |
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print(gt_consistency_list.max(), gt_consistency_list.min()) |
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print(pred_consistency_list.max(), pred_consistency_list.min()) |
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print(np.mean(gt_consistency_list), np.mean(pred_consistency_list)) |
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print(np.std(gt_consistency_list), np.std(pred_consistency_list)) |
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draw_cdf(gt_consistency_list, save_name='%s_gt.jpg'%(speaker), color='slateblue') |
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draw_cdf(pred_consistency_list, save_name='%s_pred.jpg'%(speaker), color='lightskyblue') |
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to_excel(gt_consistency_list, '%s_gt.xlsx'%(speaker)) |
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to_excel(pred_consistency_list, '%s_pred.xlsx'%(speaker)) |
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np.save('%s_gt.npy'%(speaker), gt_consistency_list) |
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np.save('%s_pred.npy'%(speaker), pred_consistency_list) |