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Lenton, T. M.

Publications and source records attributed to Lenton, T. M..

2 recordsLinked to original sources

Quantifying the Human Cost of Global Warming

The costs of climate change are often estimated in monetary terms1,2 but this raises ethical issues3. Here we express them in terms of numbers of people left outside the human climate niche4 - defined as the historically highly-conserved distribution of relative human population density with respect to mean annual temperature (MAT). We show that climate change has already put [~]8% of people (>500 million) outside this niche. By end-of-century (2080-2100), current policies leading to around 2.7 {degrees}C global warming5-9 could leave one third (21-42% or 2-4 billion) of a future 9.5 billion population outside the niche. Limiting global warming to 1.5 {degrees}C could halve this exposure, reducing it by [~]1.5 billion people. For the two countries with the most people affected - India and Nigeria - reducing global warming from 2.7 to 1.5 {degrees}C results in a >6-fold decrease in the population exposed to unprecedented temperatures, MAT [≥]29 {degrees}C. The lifetime emissions of [~]3.5 global average citizens today (or [~]1.2 average US citizens) expose 1 future person to MAT [≥]29 {degrees}C by end-of-century. That person comes from a place where emissions today are around half of the global average. These results highlight the need for more decisive policy action to limit the human costs and inequities of climate change.

ecology↗

MLS3: A New Type of Multilevel Selection

In most multispecies multilevel selection (MLS) models, offspring communities are generated by random assembly of individuals in numbers reflecting sizes of parental communities releasing them (MLS1), or by differential community dispersal based on a community-level trait such as size (MLS2). In both, offspring communities colonize vacant spaces: different communities never compete for the same space. Here we propose a third MLS type (MLS3) where multispecies communities disperse (migrate) into already-occupied spaces, larger communities more frequently. Conspecific variants compete, often opposing selection for community size against fitness within species. This makes the outcome of MLS3 less apparent than MLS1 and MLS2 where such tension is absent. Our simulations show that, if community size depends strongly on reduction in the fitness of individual community members, such a reduction (comprising a sort of "inter-species altruism") will evolve. The framework we present represents a step toward conceptualizing community coalescence in the context of metacommunities.

evolutionary biology↗