On the dissection of degenerate cosmologies with machine learning
О разборе вырожденных космологий с помощью машинного обучения
2019-04-05
SCID: 54.1/hguycdja
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convolutional neural networkslensing convergence mapsmassive neutrinosmodified gravitytomographic analysis
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Abstract (AI)
Based on the DUSTGRAIN-pathfinder suite of simulations, we investigate observational degeneracies between nine models of modified gravity and massive neutrinos. Three types of machine learning techniques are tested for their ability to discriminate lensing convergence maps by extracting dimensional reduced representations of the data. Classical map descriptors such as the power spectrum, peak counts, and Minkowski functionals are combined into a joint feature vector and compared to the descriptors and statistics that are common to the field of digital image processing. To learn new features directly from the data, we use a convolutional neural network (CNN). For the mapping between feature vectors and the predictions of their underlying model, we implement two different classifiers; one based on a nearest-neighbour search and one that is based on a fully connected neural network. We find that the neural network provides a much more robust classification than the nearest-neighbour approach and that the CNN provides the most discriminating representation of the data. It achieves the cleanest separation between the different models and the highest classification success rate of 59 per cent for a single source redshift. Once we perform a tomographic CNN analysis, the total classification accuracy increases significantly to 76 per cent with no observational degeneracies remaining. Visualizing the filter responses of the CNN at different network depths provides us with the unique opportunity to learn from very complex models and to understand better why they perform so well.
Key Findings
1
A fully connected neural-network classifier is substantially more robust than a nearest-neighbour classifier for mapping extracted features to cosmological models.
2
Among tested representations, a convolutional neural network learns the most discriminating features and achieves 59% classification accuracy for a single source redshift.
3
The study evaluates machine-learning methods for distinguishing nine modified-gravity and massive-neutrino cosmologies using simulated lensing convergence maps.
4
Tomographic CNN analysis raises total classification accuracy to 76% and removes the observational degeneracies between the investigated models.
5
Visualizing CNN filter responses across network depths helps interpret how complex learned representations separate cosmological models.
Research Object
Lensing convergence maps from DUSTGRAIN-pathfinder simulations of nine modified-gravity and massive-neutrino cosmological models
Research Subject
Observational degeneracies and machine-learning-based discrimination among the cosmological models using map representations and tomographic information
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2019-04-05
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