Area of research
Atmospheric Science · Environmental Engineering
Research interest
Research interests include Tundra, Environmental science, Biomass (ecology), Lidar, Remote sensing, and Vegetation (pathology).
Next generation Arctic vegetation maps: Aboveground plant biomass and woody dominance mapped at 30 m resolution across the tundra biome
The Arctic Plant Aboveground Biomass Synthesis Dataset
Next Generation Arctic Vegetation Maps: Aboveground Plant Biomass and Woody Dominance Mapped at 30 M Resolution Across the Tundra Biome
A mechanism of expansion: Arctic deciduous shrubs capitalize on warming-induced nutrient availability
Lidar provides novel insights into the effect of pixel size and grazing intensity on measures of spatial heterogeneity in a native bunchgrass ecosystem
Terrestrial lidar scanning reveals fine-scale linkages between microstructure and photosynthetic functioning of small-stature spruce trees at the forest-tundra ecotone
20 cm resolution mapping of tundra vegetation communities provides an ecological baseline for important research areas in a changing Arctic environment
A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
Xanthophyll Cycle Activity in Two Prominent Arctic Shrub Species
High-resolution mapping of aboveground shrub biomass in Arctic tundra using airborne lidar and imagery
LiDAR canopy radiation model reveals patterns of photosynthetic partitioning in an Arctic shrub
An automated method to quantify crop height and calibrate satellite-derived biomass using hypertemporal lidar
Applying terrestrial lidar for evaluation and calibration of airborne lidar-derived shrub biomass estimates in Arctic tundra
Airborne laser scanning and spectral remote sensing give a bird's eye perspective on arctic tundra breeding habitat at multiple spatial scales
Scaling Thermal Properties from the Leaf to the Canopy in the Alaskan Arctic Tundra
Spectral determination of concentrations of functionally diverse pigments in increasingly complex arctic tundra canopies
Estimating aboveground biomass and leaf area of low-stature Arctic shrubs with terrestrial LiDAR
Hyper-temporal LiDAR for tracking fine-scale changes in vegetation structure, phenology, and physiology
AGU Fall Meeting Abstracts 2015cited by 0position: last
Thermal acclimation of shoot respiration in an Arctic woody plant species subjected to 22 years of warming and altered nutrient supply
Estimating aboveground biomass of low-stature Arctic shrubs with terrestrial LiDAR
2014 AGU Fall Meeting 2014cited by 1position: first