A Computational Approach to Species Complexes

#Students #OC #Species #Complexes
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Data clustering and classification are fundamental problems in data science, with applications in almost every field of study. In this talk, we present prototype software that applies a data science approach to identifying groups of closely related species and possible species complexes.

We will present our prototype software, which implements a pipeline that queries the GenBank and BOLD databases for genetic data, uses sequence alignment to generate measures of genetic similarity, and augments these measures with morphological data. Similarity relationships are visualized as network graphs, allowing users to identify and propose potential species groupings for further investigation.

This ongoing project has been jointly funded by Okanagan College’s Grants-in-Aid Fund and the College’s Department of Applied Science.



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  • 1000 K. L. O. Rd
  • Kelowna, British Columbia
  • Canada V1Y 4X8
  • Building: E
  • Room Number: 309
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  • Starts 06 October 2026 03:16 AM UTC
  • Ends 09 October 2026 02:00 AM UTC
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  Speakers

Dr. Jim Nastos of COSC, Okanagan College

Biography:

Jim Nastos is a College Professor in the Department of Computer Science at Okanagan College in Kelowna, Canada. He earned degrees from the University of Waterloo, the University of Alberta, and the University of British Columbia, and he has co-authored ten papers in refereed journals. His research interests include algorithmic graph theory, complex networks, complexity theory, social network analysis and their applications. His favourite biological taxon is Agelenopsis.

 

Clara Elliott of COSC, Okanagan College

Biography:

Clara Elliott is a fourth-year BCIS student with two years of experience as a research assistant on graph algorithms research projects at Okanagan College. Her favourite biological taxon is Felidae.