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A locally-built, LLM-digested index of recent arXiv papers in quant finance, geometry/topology, and statistical ML — keyword search served straight from SQLite on this machine.

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48 results for Geological reservoir

Study proposes SVDD framework for classifying water saturation in imbalanced geological datasets.

problem Classification of petrophysical properties from imbalanced datasets with nonlinear and heterogeneous subsurface properties.
method Support Vector Data Description (SVDD) for one class classification of water saturation.
result Proposed SVDD framework outperforms other classifiers in terms of g metric means and execution time.

Deep learning speeds up pressure prediction in carbon storage reservoirs.

problem Accurately forecasting reservoir pressure in geologic carbon storage projects with sparse well data.
method Combining InSAR surface displacement data with deep learning and data assimilation techniques.
result Workflow can predict reservoir pressure with high efficiency and uncertainty quantification.

Generative adversarial network improves geosteering in fluvial reservoirs.

problem Improving geosteering in complex reservoirs with high uncertainties.
method Generative adversarial deep neural network (GAN) trained to model fluvial successions.
result Reduces uncertainty and correctly predicts geological features up to 500 meters ahead of drill-bit.

FNO model predicts GCS pressure fields with 81% less data, even with limited high-fidelity data.

problem Accurate prediction of complex physical behaviors in large-scale 3D geological carbon storage problems with limited data.
method Multi-fidelity Fourier Neural Operator (FNO) for efficient training with multi-fidelity datasets.
result Multi-fidelity FNO model predicts pressure fields with reasonable accuracy even with limited high-fidelity data.

Seismic inversion method uses GAN to improve efficiency and accuracy.

problem Difficulty in combining geological knowledge with seismic data and assessing uncertainty.
method Generative Adversarial Network (GAN) for seismic inversion.
result GAN-generated models conform to observation data with low uncertainty.

Framework synthesizes geological images minimizing patch distribution discrepancy.

problem Synthesizing realistic geological images from a single exemplar.
method Uses kernel discrepancies and generative neural networks for efficient synthesis.
result Synthesized images match visual patterns and spatial statistics of the exemplar.

Deep learning model predicts subsurface flow dynamics.

problem Predicting dynamic subsurface flow in channelized geological systems.
method Residual U-Net and Convolutional LSTM networks trained on pressure and saturation maps.
result Surrogate model accurately predicts pressure, saturation, and well rates for new realizations.

Generative adversarial networks improve geological model generation.

problem Capturing complex geological structures in subsurface models.
method Wasserstein GAN for parametrization and generation of geological models.
result GANs preserve multipoint statistical features of geological models.

New method detects geologic features from seismic data more efficiently.

problem Challenges in detecting subsurface geologic features from limited seismic data.
method Data-driven approach using randomized machine learning and Nyström method.
result Significant speed-up in computational efficiency with comparable accuracy.

Improved GANs model geological facies with diversity and unbiased distribution.

problem Generating unbiased and representative geological models from training images.
method Info-WGAN combining InfoGAN, Wasserstein distance, and Gradient Penalty.
result Generated samples have equal probability distribution as training data.

Simulating fluid flow in geological formations requires mesh generation, lithology mapping to the cells, and computing geometric properties such as normal vectors and volume of cells. The purpose of this research work is to compute and process the geometrical information required for performing numerical simulations in…

2006-07-17abs ↗pdf ↗

Generative models improve carbon storage site prediction using Bayesian inversion.

problem Predicting suitable geologic sites for long-term carbon dioxide storage.
method Generative adversarial networks and Bayesian inversion to condition models on physical measurements and historic data.
result Improved resolution of carbon dioxide storage capacity forecasts.

Deep learning upscales geologic models efficiently.

problem Upscaling large-scale geologic models for efficient simulation.
method Theory-guided convolutional neural network (TgCNN) trained to approximate hydraulic conductivity relationships.
result Deep learning method achieves equivalent upscaling accuracy to numerical methods but with significantly improved efficiency.

Frequency-based reservoir improves prediction accuracy and optimizes short-term forecasts.

problem Lack of precise explanation and optimization methods for reservoir computing.
method Inspired by brain's oscillatory dynamics, frequency-based reservoir uses an ensemble of independent oscillatory units.
result Frequency-based reservoir performs as well as or better than random reservoirs and can predict complex spatiotemporal dynamics.

Low-connectivity reservoirs outperform standard designs in chaotic system forecasting.

problem Forecasting chaotic systems with high accuracy and low computational resources.
method Used Bayesian optimization to find optimal reservoir configurations, focusing on global system climate rather than short-term prediction.
result Optimized reservoirs with very low connectivity perform well in forecasting chaotic systems, challenging existing design heuristics.

Deep learning improves history matching of complex facies models.

problem Preserving geological realism in reservoir models with complex facies distributions.
method Convolutional variational autoencoder and ensemble smoother with multiple data assimilation.
result The parameterization generated well-defined channelized facies, outperforming previous methods.

Generative neural networks generate complex geological patterns with conditioning.

problem Generating complex geological patterns with spatial observations.
method Extending a generator network with a second inference network to learn conditioning.
result Parametrization for direct generation of conditional realizations.

Dual neural networks tackle uncertainty in geophysical data.

problem Quantifying and separating epistemic and aleatoric uncertainties in geophysical data.
method Combination of Bayesian Neural Network (BNN) and Artificial Neural Network (ANN).
result Reduces uncertainties in rock and fluid property estimation for better reservoir optimization.

Reservoir computing's success depends on mapping different input time series to separable states.

problem Quantifying the ability of random linear reservoirs to map different input time series.
method Mathematical framework using spectral properties of the connectivity matrix.
result Separation capacity is fully characterized by the spectral properties of the connectivity matrix.

Bayesian approach estimates sub-resolution reservoir properties from seismic data.

problem Estimating sub-resolution reservoir properties from seismic data.
method Bayesian evidential learning approach, direct relation between seismic data and reservoir properties.
result Efficient estimation of reservoir properties with uncertainty quantification.

A hardware-based reservoir computing system predicts time series with high speed and accuracy.

problem Processing time-dependent signals with high speed and accuracy.
method A hardware-based reservoir computing system using a field-programmable gate array (FPGA) for both the reservoir and output layers.
result Achieves comparable accuracy to software approaches but with a superior real-time prediction rate up to 160 MHz.

New explanation of reservoir computing using random projections.

problem Understanding the randomness in reservoir computing.
method Constructing strongly universal reservoir systems as random projections of state-space systems.
result Approximation of any fading memory filters class by training a linear readout for each filter.

Study characterizes memory capacity of quantum reservoirs using transmon qubits.

problem Understanding the memory capacity of quantum reservoirs built with transmon qubits.
method Characterized memory capacity of quantum reservoirs using transmon qubits from IBM, focusing on NMSE and topology complexity.
result Found a peak in memory capacity for configurations with n-1 self-loops, suggesting optimal design for forecasting tasks.

The paper analyzes the performance of delay-based reservoir computing using eigenvalue analysis.

problem Quantifying the performance of delay-based reservoir computing.
method Eigenvalue analysis of the dynamical system to predict reservoir computing performance.
result The performance of a reservoir computing system can be predicted by analyzing the small signal response and eigenvalue spectrum.

This paper provides a mathematical framework for time-delay reservoir computing.

problem Lack of rigorous mathematical foundations for reservoir computing properties.
method Control-theoretic framework, formal definitions of separation and fading memory, explicit lower bound derivation.
result Established formal definitions and connections to stability notions for time-delay systems.

Study on deep and wide echo state networks for forecasting complex time series.

problem Performance analysis of deep reservoir computing models.
method Investigates the impact of partitioning neurons and parallel pathways on forecasting accuracy.
result Wide and deep networks outperform shallow models in forecasting multiscale spatiotemporal data.

Reduced reservoir size for faster edge computing.

problem Efficiently reducing computational resources for reservoir computing.
method Concatenating past or drifting states of the reservoir to the output layer.
result Reduced reservoir size up to one tenth without significant error increase.

New neural network model reduces complexity of geological media sampling.

problem Efficient and high-fidelity sampling of complex binary geological media.
method Variational autoencoder-based deep neural network for low-dimensional base model parameterization.
result Our DR approach outperforms PCA, OPCA, and DCT in probabilistic inversion.

This work improves Recursive Neural Gas (RNG) for reservoir computing.

problem Improving performance of fully-trainable reservoirs in Recurrent Neural Networks (RNN).
method Describes an accurate model of RNG and shows comparative results on three datasets.
result RNG-based reservoirs can achieve better performance under specific circumstances.