6533b854fe1ef96bd12ade68
RESEARCH PRODUCT
Method for 3D fibre reconstruction on a microrobotic platform
Juha HirvonenPasi KallioM. Myllyssubject
0209 industrial biotechnologyHistologyMicroscopeComputer sciencebusiness.industryOrientation (computer vision)3D reconstructionIterative closest point02 engineering and technologyRepeatabilityCurvatureSample (graphics)Pathology and Forensic Medicinelaw.invention020901 industrial engineering & automationlaw0202 electrical engineering electronic engineering information engineering020201 artificial intelligence & image processingComputer visionSensitivity (control systems)Artificial intelligencebusinessdescription
Automated handling of a natural fibrous object requires a method for acquiring the three-dimensional geometry of the object, because its dimensions cannot be known beforehand. This paper presents a method for calculating the three-dimensional reconstruction of a paper fibre on a microrobotic platform that contains two microscope cameras. The method is based on detecting curvature changes in the fibre centreline, and using them as the corresponding points between the different views of the images. We test the developed method with four fibre samples and compare the results with the references measured with an X-ray microtomography device. We rotate the samples through 16 different orientations on the platform and calculate the three-dimensional reconstruction to test the repeatability of the algorithm and its sensitivity to the orientation of the sample. We also test the noise sensitivity of the algorithm, and record the mismatch rate of the correspondences provided. We use the iterative closest point algorithm to align the measured three-dimensional reconstructions with the references. The average point-to-point distances between the reconstructed fibre centrelines and the references are 20-30 μm, and the mismatch rate is low. Given the manipulation tolerance, this shows that the method is well suited to automated fibre grasping. This has also been demonstrated with actual grasping experiments.
year | journal | country | edition | language |
---|---|---|---|---|
2015-12-23 | Journal of Microscopy |