Kevin E Trenberth; 7 November 2016
More generally, there are perhaps two main kinds of attribution performed. The first relates the
particular extreme event to the associated weather and weather patterns with statements such as ‘the
drought was caused by a blocking anticyclone’; ‘the outbreak of tornadoes was caused by a displaced
and active storm track and jet stream’ but although useful, they are really a description of the event, not
a cause and do not ask the questions ‘Why did that weather phenomenon behave the way it did?’ In
particular, ‘What influences external to the atmosphere were playing a role, and what climate factors
were in play?’
The second kind of attribution relates to the objective of assessing the role of human activities, and
especially of human-induced climate change, in the event. Results depend, however, upon how the
questions are framed.
In the past the traditional way of approaching attribution tried to deal with all aspects of the
problem. But the changes in weather phenomena and weather systems, where they go, and so forth
have infinite variety (called weather) and any climate change signal is tiny (except in the case of the
ozone hole). This has confounded the results. In particular, the conventional approach to attribution of
climate events is to characterize the event and ask (i) whether the likelihood or strength of such events
has changed in the observational record, and (ii) whether this change is consistent with the
anthropogenic influence as found in one or more climate models. This approach has had considerable
success with extremes that are strongly governed by thermodynamic aspects of climate change,
especially those related to temperature, each finding providing another independent line of evidence
that anthropogenic climate change is affecting climate extremes.
The conventional approach, however, is severely challenged when it comes to climate extremes that
are strongly governed by atmospheric circulation, including local aspects of precipitation. It is inherently
conservative and prone to false negatives, which underestimate the true likelihood of the human
influence.
More fruitful scientific questions
In contrast to thermodynamic aspects of climate, forced circulation changes in climate models can be
very non-robust, and physical understanding of the causes of these changes is generally lacking.
Separating out the thermodynamic from dynamic effects may be a fruitful way forwards and result in a
different set of questions to be addressed:
• Given the weather pattern, how were the temperatures, precipitation and associated impacts
influenced by climate change?
• Given a drought, how was the drying (evapotranspiration) enhanced by climate change, and how did
that influence the moisture deficits and dryness of soils, and the wildfire risk? Did it lead to a more
intense and perhaps longer-lasting drought, as is likely?
• Given a flood, where did the moisture come from? Was it enhanced by high ocean temperatures that
might have had a climate change component?
• Given a heat wave, how was that influenced by drought, changes in precipitation (absence of
evaporative cooling from dry land) and extra heat from global warming?
• Given extreme snow, where did the moisture come from? Was it related to higher than normal SSTs
off the coast or farther afield?
• Given an extreme storm, how was it influenced by anomalous SSTs and ocean heat content (OHC),
anomalous moisture transports into the storm, and associated rainfall and latent heating? Was the
storm surge worse because of high sea levels?
In other words, given the change in atmospheric circulation that brought about the event, how did
climate change alter its impacts?