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Artificial intelligence could help cut emissions across sectors including energy, agriculture and buildings, but its climate benefits risk being outweighed by rising data centre emissions and water consumption, according to GlobalData.
The intelligence and productivity company said its latest
report, Artificial intelligence for Climate Mitigation, found that AI
can support targeted emissions-reduction efforts but cannot independently
address the climate crisis.
It warned that the environmental costs associated with
developing and using AI could outpace efficiency gains generated by the
technology.
“AI can support climate mitigation, but it will never be the
whole solution. For AI technology to have a net positive impact on the planet,
the efficiencies it generates must outweigh the environmental harm caused by
data centres and inference,” said Aoife McGurk, Senior Analyst at GlobalData
Strategic Intelligence.
GlobalData said proven climate benefits from AI largely come
from traditional predictive systems rather than energy-intensive generative AI
and large frontier models.
Predictive AI can
improve renewable power-grid management, support sustainable agriculture and
reduce energy use in buildings.
“Predictive AI can help improve efficiency and reduce
resource use across key sectors, through renewable grid optimisation,
sustainable agriculture, and building energy use management. Generative AI, on
the other hand, produces significantly higher emissions, and there is little
evidence that it mitigates climate change,” McGurk said.
The report also cautioned companies against relying heavily
on generative AI, including large language models, for corporate sustainability
strategies.
GlobalData said the technology’s carbon and water
requirements, alongside the risk of inaccurate or fabricated information, could
create compliance and reputational risks and potentially contribute to
greenwashing.
GlobalData advised businesses to assess whether each AI
deployment delivers measurable reductions in greenhouse gas emissions or
ecosystem degradation and whether its environmental costs remain below its
intended climate benefits.
“If a deployment of generative or agentic AI would deliver
significant climate mitigation benefits, companies should do what they can to
limit the environmental harm caused by using these systems,” McGurk said.
She recommended safeguards including smaller language models, automated model triage, carbon-aware computing, edge infrastructure, emissions budgets, greater algorithmic efficiency and improved data centre cooling to limit AI’s environmental impact. -OGN/TradeArabia News Service

