Population-level studies of how tit species (Parus spp.) track the changing phenology of their caterpillar food source have provided a model system allowing inference into how populations can adjust to changing climates, but are often limited because they implicitly assume all individuals experience similar environments. Ecologists are increasingly using satellite-derived data to quantify aspects of animals' environments, but so far studies examining phenology have generally done so at large spatial scales. Considering the scale at which individuals experience their environment is likely to be key if we are to understand the ecological and evolutionary processes acting on reproductive phenology within populations. Here, we use time series o...
© 2019 The Author(s) Published by the Royal Society. All rights reserved. Establishing the cues or c...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
Population-level studies of how tit species (Parus spp.) track the changing phenology of their cater...
Environmental heterogeneity in space and time plays a key role in influencing trait variability in a...
In seasonal environments, the timing of reproduction has important fitness consequences. Our current...
Changes in climate shape biological populations. They can alter spatial distributions, the timing of...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
While there is overwhelming evidence for phenological responses of animal and plant populations to c...
Consistent with a warming climate, birds are shifting the timing of their migrations, but it remains...
Identifying the environmental drivers of variation in fitness-related traits is a central objective ...
Identifying the environmental drivers of variation in fitness-related traits is a central objective ...
Establishing the cues or constraints that influence avian timing of breeding is key to accurate pred...
© 2019 The Author(s) Published by the Royal Society. All rights reserved. Establishing the cues or c...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
Population-level studies of how tit species (Parus spp.) track the changing phenology of their cater...
Environmental heterogeneity in space and time plays a key role in influencing trait variability in a...
In seasonal environments, the timing of reproduction has important fitness consequences. Our current...
Changes in climate shape biological populations. They can alter spatial distributions, the timing of...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
While there is overwhelming evidence for phenological responses of animal and plant populations to c...
Consistent with a warming climate, birds are shifting the timing of their migrations, but it remains...
Identifying the environmental drivers of variation in fitness-related traits is a central objective ...
Identifying the environmental drivers of variation in fitness-related traits is a central objective ...
Establishing the cues or constraints that influence avian timing of breeding is key to accurate pred...
© 2019 The Author(s) Published by the Royal Society. All rights reserved. Establishing the cues or c...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...
Increasing temperatures associated with climate change may generate phenological mismatches that dis...