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Updated: Jan 19, 2026

Obtaining Specimens with Slowed, Accelerated and Reversed Aging in the Honey Bee Model
Published on: August 29, 2013
Bayesian ages for pollen records since the last glaciation in North America
Yue Wang1, Simon J Goring2, Jenny L McGuire3
1School of Biological Sciences, Georgia Institute of Technology, Atlanta, GA, 30332, USA. yue.wang.pku@gmail.com.
Abstract:
Terrestrial pollen records are abundant and widely distributed, making them an excellent proxy for past vegetation dynamics. Age-depth models relate pollen samples from sediment cores to a depositional age based on the relationship between sample depth and available chronological controls. Large-scale synthesis of pollen data benefit from consistent treatment of age uncertainties. Generating new age models helps to reduce potential artifacts from legacy age models that used outdated techniques. Traditional age-depth models, often applied for comparative purposes, infer ages by fitting a curve between dated samples. Bacon, based on Bayesian theory, simulates the sediment deposition process, accounting for both variable deposition rates and temporal/spatial autocorrelation of deposition from one sample to another within the core. Bacon provides robust uncertainty estimation across cores with different depositional processes. We use Bacon to estimate pollen sample ages from 554 North American sediment cores. This dataset standardizes age-depth estimations, supporting future large spatial-temporal studies and removes a challenging, computationally-intensive step for scientists interested in questions that integrate across multiple cores.
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