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Add hausdorff distance computation for laz files #12

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9 changes: 9 additions & 0 deletions hausdorff_distances/environment.yml
Original file line number Diff line number Diff line change
@@ -0,0 +1,9 @@
name: hausdorff-distance
channels:
- conda-forge
- defaults
dependencies:
- numpy
- scipy
- pdal
- python-pdal
103 changes: 103 additions & 0 deletions hausdorff_distances/hausdorff_distance.py
Original file line number Diff line number Diff line change
@@ -0,0 +1,103 @@
# -*- coding: utf-8 -*-
"""

@author: Chris Lucas
"""

import os
import numpy as np
from numpy.lib import recfunctions
from scipy.spatial import cKDTree
import pdal


READ_PIPELINE = """
{{
"pipeline": [
{{
"type": "readers.las",
"filename": "{path}"
}}
]
}}
"""

WRITE_PIPELINE = """
{{
"pipeline": [
{{
"type": "writers.las",
"filename": "{path}",
"extra_dims": "all"
}}
]
}}
"""


def read(path):
pipeline = pdal.Pipeline(
READ_PIPELINE.format(path=path)
)
pipeline.validate()
pipeline.execute()
point_cloud = pipeline.arrays[0]

return point_cloud


def write(point_cloud, path):
pipeline = pdal.Pipeline(
WRITE_PIPELINE.format(path=path),
arrays=[point_cloud]
)
pipeline.validate()
pipeline.execute()


def hausdorff_distance(reference_cloud, compared_cloud):
tree = cKDTree(reference_cloud)
distances, _ = tree.query(compared_cloud, k=1)
return distances


def main():
output_folder = "/var/data/rws/data/2019/change/"
laz_folder_2018 = "/var/data/rws/data/2018/las_processor_bundled_out/"
laz_folder_2019 = "/var/data/rws/data/2019/amsterdam/"

laz_files_2018 = os.listdir(laz_folder_2018)
laz_files_2019 = os.listdir(laz_folder_2019)

for laz_2019 in laz_files_2019:
if not os.path.isfile(output_folder + laz_2019):
print(f'Processing: {laz_2019} ..')
if laz_2019 in laz_files_2018:
print('Found matching 2018 file, computing distances..')
point_cloud_2019 = read(laz_folder_2019 + laz_2019)
points_2019 = point_cloud_2019[['X', 'Y', 'Z']]
points_2019 = np.array(points_2019[['X', 'Y', 'Z']].tolist())
point_cloud_2018 = read(laz_folder_2018 + laz_2019)
points_2018 = point_cloud_2018[['X', 'Y', 'Z']]
points_2018 = np.array(points_2018[['X', 'Y', 'Z']].tolist())

if len(points_2018) > 0 and len(points_2019) > 0:
distances = hausdorff_distance(points_2018, points_2019)

print(f'Done, saving to: {output_folder + laz_2019} ..')

point_cloud_2019 = recfunctions.append_fields(
point_cloud_2019, 'HausdorffDist2018', distances, 'f8'
)
write(point_cloud_2019, output_folder + laz_2019)
else:
print('No points found in one of the '
'point clouds, skipping..')
else:
print('No matching 2018 file found, skipping..')
else:
print('Already done, skipping..')


if __name__ == '__main__':
main()