view auto_local_threshold.py @ 3:be2d3ce89c0f draft default tip

"planemo upload for repository https://github.com/BMCV/galaxy-image-analysis/tools/2d_auto_local_threshold/ commit b1b3c63ab021aa77875c3b04127f6836024812f9"
author imgteam
date Sat, 19 Feb 2022 15:17:19 +0000
parents 497dcd834bb3
children
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import argparse
import sys

import numpy as np
import skimage.filters
import skimage.io
import skimage.util

threshOptions = {
    'gaussian': lambda img_raw, bz: skimage.filters.threshold_local(img_raw, bz, method='gaussian'),
    'mean': lambda img_raw, bz: skimage.filters.threshold_local(img_raw, bz, method='mean'),
    'median': lambda img_raw, bz: skimage.filters.threshold_local(img_raw, bz, method='median')
}

if __name__ == "__main__":
    parser = argparse.ArgumentParser(description='Segment Foci')
    parser.add_argument('input_file', type=argparse.FileType('r'), default=sys.stdin, help='input file')
    parser.add_argument('out_file', type=argparse.FileType('w'), default=sys.stdin, help='out file (TIFF)')
    parser.add_argument('block_size', type=int, default=5, help='Odd size of pixel neighborhood which is used to calculate the threshold value')
    parser.add_argument('thresh_type', choices=threshOptions.keys(), help='thresholding method')
    parser.add_argument('dark_background', default=True, type=bool, help='True if background is dark')
    args = parser.parse_args()

    img_in = skimage.io.imread(args.input_file.name)
    img_in = np.reshape(img_in, [img_in.shape[0], img_in.shape[1]])
    thresh = threshOptions[args.thresh_type](img_in, args.block_size)

    if args.dark_background:
        res = img_in > thresh
    else:
        res = img_in <= thresh

    res = skimage.util.img_as_uint(res)
    skimage.io.imsave(args.out_file.name, res, plugin="tifffile")