Mercurial > repos > imgteam > spot_detection_2d
comparison spot_detection_2d.py @ 0:d78372040976 draft
"planemo upload for repository https://github.com/BMCV/galaxy-image-analysis/tree/master/tools/spot_detection_2d/ commit 481cd51a76341c0ec3759f919454e95139f0cc4e"
author | imgteam |
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date | Wed, 21 Jul 2021 19:59:00 +0000 |
parents | |
children | 859dd1c11ac0 |
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-1:000000000000 | 0:d78372040976 |
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1 """ | |
2 Copyright 2021 Biomedical Computer Vision Group, Heidelberg University. | |
3 Author: Qi Gao (qi.gao@bioquant.uni-heidelberg.de) | |
4 | |
5 Distributed under the MIT license. | |
6 See file LICENSE for detail or copy at https://opensource.org/licenses/MIT | |
7 | |
8 """ | |
9 | |
10 import argparse | |
11 | |
12 import imageio | |
13 import numpy as np | |
14 import pandas as pd | |
15 from skimage.feature import peak_local_max | |
16 from skimage.filters import gaussian | |
17 | |
18 | |
19 def getbr(xy, img, nb, firstn): | |
20 ndata = xy.shape[0] | |
21 br = np.empty((ndata, 1)) | |
22 for j in range(ndata): | |
23 br[j] = np.NaN | |
24 if not np.isnan(xy[j, 0]): | |
25 timg = img[xy[j, 1] - nb - 1:xy[j, 1] + nb, xy[j, 0] - nb - 1:xy[j, 0] + nb] | |
26 br[j] = np.mean(np.sort(timg, axis=None)[-firstn:]) | |
27 return br | |
28 | |
29 | |
30 def spot_detection(fn_in, fn_out, frame_1st=1, frame_end=0, typ_br='smoothed', th=10, ssig=1, bd=10): | |
31 ims_ori = imageio.mimread(fn_in, format='TIFF') | |
32 ims_smd = np.zeros((len(ims_ori), ims_ori[0].shape[0], ims_ori[0].shape[1]), dtype='float64') | |
33 if frame_end == 0 or frame_end > len(ims_ori): | |
34 frame_end = len(ims_ori) | |
35 | |
36 for i in range(frame_1st - 1, frame_end): | |
37 ims_smd[i, :, :] = gaussian(ims_ori[i].astype('float64'), sigma=ssig) | |
38 ims_smd_max = np.max(ims_smd) | |
39 | |
40 txyb_all = np.array([]).reshape(0, 4) | |
41 for i in range(frame_1st - 1, frame_end): | |
42 tmp = np.copy(ims_smd[i, :, :]) | |
43 tmp[tmp < th * ims_smd_max / 100] = 0 | |
44 coords = peak_local_max(tmp, min_distance=1) | |
45 idx_to_del = np.where((coords[:, 0] <= bd) | (coords[:, 0] >= tmp.shape[0] - bd) | | |
46 (coords[:, 1] <= bd) | (coords[:, 1] >= tmp.shape[1] - bd)) | |
47 coords = np.delete(coords, idx_to_del[0], axis=0) | |
48 xys = coords[:, ::-1] | |
49 | |
50 if typ_br == 'smoothed': | |
51 intens = getbr(xys, ims_smd[i, :, :], 0, 1) | |
52 elif typ_br == 'robust': | |
53 intens = getbr(xys, ims_ori[i], 1, 4) | |
54 else: | |
55 intens = getbr(xys, ims_ori[i], 0, 1) | |
56 | |
57 txyb = np.concatenate(((i + 1) * np.ones((xys.shape[0], 1)), xys, intens), axis=1) | |
58 txyb_all = np.concatenate((txyb_all, txyb), axis=0) | |
59 | |
60 df = pd.DataFrame() | |
61 df['FRAME'] = txyb_all[:, 0].astype(int) | |
62 df['POS_X'] = txyb_all[:, 1].astype(int) | |
63 df['POS_Y'] = txyb_all[:, 2].astype(int) | |
64 df['INTENSITY'] = txyb_all[:, 3] | |
65 df.to_csv(fn_out, index=False, float_format='%.2f', sep="\t") | |
66 | |
67 | |
68 if __name__ == "__main__": | |
69 parser = argparse.ArgumentParser(description="Spot detection based on local maxima") | |
70 parser.add_argument("fn_in", help="Name of input image sequence (stack)") | |
71 parser.add_argument("fn_out", help="Name of output file to save the coordinates and intensities of detected spots") | |
72 parser.add_argument("frame_1st", type=int, help="Index for the starting frame to detect spots (1 for first frame of the stack)") | |
73 parser.add_argument("frame_end", type=int, help="Index for the last frame to detect spots (0 for the last frame of the stack)") | |
74 parser.add_argument("typ_intens", help="smoothed or robust (for measuring the intensities of spots)") | |
75 parser.add_argument("thres", type=float, help="Percentage of the global maximal intensity for thresholding candidate spots") | |
76 parser.add_argument("ssig", type=float, help="Sigma of the Gaussian filter for noise suppression") | |
77 parser.add_argument("bndy", type=int, help="Number of pixels (Spots close to image boundaries will be ignored)") | |
78 args = parser.parse_args() | |
79 spot_detection(args.fn_in, | |
80 args.fn_out, | |
81 frame_1st=args.frame_1st, | |
82 frame_end=args.frame_end, | |
83 typ_br=args.typ_intens, | |
84 th=args.thres, | |
85 ssig=args.ssig, | |
86 bd=args.bndy) |