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A major outstanding problem in physics is understanding the nature
of the dark energy that is driving the accelerating expansion of
the Universe. This thesis makes a significant contribution by
demonstrating, for the first time, using state-of-the-art computer
simulations, that the interpretation of future galaxy survey
measurements is far more subtle than is widely assumed, and that a
major revision to our models of these effects is urgently needed.
The work contained in the thesis was used by the WiggleZ dark
energy survey to measure the growth rate of cosmic structure in
2011 and had a direct impact on the design of the surveys to be
conducted by the European Space Agency's Euclid mission, a 650
million euro project to measure dark energy.
A major outstanding problem in physics is understanding the nature
of the dark energy that is driving the accelerating expansion of
the Universe. This thesis makes a significant contribution by
demonstrating, for the first time, using state-of-the-art computer
simulations, that the interpretation of future galaxy survey
measurements is far more subtle than is widely assumed, and that a
major revision to our models of these effects is urgently needed.
The work contained in the thesis was used by the WiggleZ dark
energy survey to measure the growth rate of cosmic structure in
2011 and had a direct impact on the design of the surveys to be
conducted by the European Space Agency's Euclid mission, a 650
million euro project to measure dark energy.
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