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Spatial bias in the marine fossil record
Daril A Vilhena1, Andrew B Smith
1Department of Biology, University of Washington, Seattle, Washington, United States of America.
Plos One
|November 9, 2013
Summary
Global marine fossil data reveals sampling bias masks true biodiversity patterns. Correcting for this bias shows diversity trends are driven by planetary tectonics and regional factors, not just sampling intensity.
Area of Science:
- Paleontology
- Biodiversity Science
- Geology
Background:
- Global biodiversity inference is challenged by sampling biases in fossil records.
- Previous studies often overlook paleobiogeography, a crucial element in understanding ancient diversity.
- Correlations between richness and sampling intensity are common in paleontological data.
Purpose of the Study:
- To investigate global marine fossil richness patterns.
- To differentiate true biological patterns from sampling artifacts.
- To assess the impact of paleobiogeography on diversity estimations.
Main Methods:
- Analysis of 481,613 marine fossils from the Phanerozoic.
- Focusing on occurrence records from two paleolatitudinal bands to mitigate spatial sampling bias.
- Applying corrections for sampling bias to analyze diversity patterns.
Main Results:
- Empirical spatial patterns of richness are predominantly determined by fossil locality and sampling intensity.
- After bias correction, two distinct paleolatitudinal bands exhibit similar richness patterns.
- This suggests that sampling bias obscures underlying biological diversity signals.
Conclusions:
- Long-term diversity trends are linked to large-scale tectonic evolution.
- Short-term diversity trends appear to be region-specific.
- Future paleodiversity studies should focus on well-sampled regions to reveal non-sampling-driven patterns.
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