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arXiv research

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.

169,341 papers · 148 categories

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18365472 · Jun 202019922001200920182026
48 results for X-ray binaries

Bayesian model classifies X-ray binaries as black holes, neutron stars, or bursters.

problem Uncertainty in classifying X-ray binaries as black holes or neutron stars.
method Developed a Bayesian statistical model using 3D coordinates from X-ray spectral data.
result Accurate prediction of X-ray binary types, but non-pulsing neutron stars near black hole boundary misclassified.

Kernel-based learning predicts ICU escalation from COVID-19 chest X-rays.

problem Predicting ICU escalation from chest X-rays using complex data patterns.
method Generalized Linear Models with Integrated Multiple Additive Regression with Kernels (GLIMARK).
result GLIMARK effectively predicts ICU escalation from chest X-rays.

Logistic regression outperforms other models in radiology report classification.

problem Efficiently labeling radiology reports for model training.
method Simple machine learning models, including logistic regression, for binary and multiclass classification.
result Logistic regression binary classifier achieves above 0.9 average precision in unseen reports.

Smartphone app diagnoses pulmonary diseases from chest X-rays.

problem Scarcity of training data and class imbalance issues.
method Data Augmentation Generative Adversarial Network (DAGAN) and Convolutional Siamese Network with attention mechanism.
result Achieved 99.30% and 98.40% testing accuracy on Binary/Multiclass scenarios.

Sharp mapping properties and regularization for X-ray transform on disks of constant curvature.

problem Sharp mapping properties and regularization of X-ray transform.
method Derive functional relations and mapping properties using elliptic differential operators.
result Theoretical possibility of regularized inversions for X-ray transform.

CNNs trained on one hospital's x-rays perform poorly on x-rays from other hospitals.

problem Generalization of radiological deep learning models across different hospitals.
method Cross-sectional design using x-rays from three hospitals (NIH, Mount Sinai, Indiana).
result CNNs trained on one hospital's x-rays perform significantly worse on x-rays from other hospitals.

Paper shows invertibility of tensor X-ray transform on certain manifolds.

problem Invertibility of tensor X-ray transform on asymptotically conic manifolds.
method Used 1-cusp pseudodifferential operator algebra and modified solenoidal gauge condition.
result Invertibility of tensor X-ray transform up to natural obstruction.

Local X-ray transform works well near boundaries in hyperbolic spaces.

problem Injectivity of X-ray transform near boundaries for hyperbolic metrics.
method Local injectivity proof for geodesic X-ray transform on asymptotically hyperbolic manifolds.
result Local injectivity near a boundary point for X-ray transform in dimensions 3 and higher, up to O(ρ5)O(ρ^5).

Machine learning predicts x-ray pulse properties from XFEL parameters.

problem Characterizing XFEL pulses for sorting data due to large fluctuations.
method Applied machine learning to predict x-ray pulse properties using electron beam and x-ray parameters.
result Mean errors below 0.3 eV for photon energy and below 1.6 fs for delay between pulses at 530 eV.

Study characterizes X-ray transform kernel for periodic slabs and related manifolds.

problem Characterizing the kernel of X-ray transform for tensor fields on periodic slabs.
method Characterization of the kernel for L2L^2-regular mm-tensors on [0,1]imesTn[0,1] imes\mathbb T^n.
result Kernel characterization extends to more general manifolds, including the Möbius strip.

Functions with constant geodesic X-ray transform are restricted to manifolds with specific geometrical properties.

problem Existence of functions with constant geodesic X-ray transform on manifolds.
method Analyzing the geometrical properties of manifolds based on the existence of such functions.
result Functions with constant geodesic X-ray transform impose specific geometrical restrictions on the manifold.

Injectivity and support theorem for X-ray transform on specific Lie groups.

problem Injectivity and support theorem for X-ray transform on 2-step nilpotent Lie groups.
method General reduction principle for manifolds with uniformly escaping geodesics.
result Injectivity and support theorem for X-ray transform on 2-step nilpotent Lie groups.

Injectivity of X-ray transform on solenoidal tensors proven for certain manifolds.

problem Injectivity of X-ray transform on solenoidal tensors on manifolds with hyperbolic trapped set.
method Proof of equivalence principle concerning injectivity and surjectivity of operators on symmetric solenoidal tensors.
result Injectivity of X-ray transform on solenoidal tensors of any order for surfaces with hyperbolic trapped set.

Paper proves injectivity of non-abelian X-ray transform on certain spaces.

problem Injectivity of non-abelian X-ray transform on asymptotically hyperbolic spaces.
method Gauge equivalence for unitary connections and skew-Hermitian Higgs fields.
result Injectivity result for non-abelian X-ray transform over skew-Hermitian Higgs fields.

Large dataset study improves chest x-ray analysis.

problem Improving accuracy in recognizing thorax diseases from chest x-rays.
method Training and evaluating deep convolutional neural networks (CNNs) on a large dataset (473k images).
result DualNet architecture shows improved performance in recognizing chest x-ray findings.

A faster X-ray CT image reconstruction method using relaxed linearized algorithms.

problem Reduced X-ray dose while maintaining image quality in CT scans.
method Relaxed linearized augmented Lagrangian (AL) method with over-relaxation.
result The proposed method is about twice as fast as existing unrelaxed fast algorithms.

Study proper sampling for X-ray transforms on simple surfaces.

problem Proper discretizing and sampling issues related to geodesic X-ray transforms on simple surfaces.
method Provide minimal sampling rates for faithful reconstruction, quantify sampling quality, and predict artifacts.
result Minimal sampling rates and artifact prediction for geodesic X-ray transforms on simple surfaces.

FRODO method rejects out-of-distribution chest x-ray images with high accuracy.

problem Rejecting out-of-distribution samples in medical image analysis.
method Uses feature activations and Mahalanobis distance to measure distribution mismatch.
result Achieves an AUC score of 0.99 in classifying chest x-ray images as in or out of distribution.

New proof of injectivity for broken non-abelian X-ray transform in Minkowski space.

problem Injectivity of broken non-abelian X-ray transform in Minkowski space.
method Stability estimate considering gauge, light-sink connections, Bayesian inversion.
result Consistent recovery of light-sink connections from noisy data.

Enhanced X-ray polarimetry with deep learning for better exposure times.

problem Improving sensitivity of X-ray telescopic observations with imaging polarimeters.
method A weighted maximum likelihood combination of predictions from a deep ensemble of ResNet convolutional neural networks trained on Monte Carlo event simulations.
result Improves effective exposure times by ~45% for power-law source spectra.

Study X-ray transform on manifolds, desingularize, and improve mapping properties.

problem Characterize mapping properties of X-ray transform and its adjoint on manifolds with strictly convex boundary.
method Use b-fibrations, desingularize, and apply Melrose's Pushforward Theorem to analyze polyhomogeneous functions.
result Improved mapping properties of X-ray transform and its adjoint, recovering sharp results.

Unique continuation for X-ray transforms of one-forms with partial data.

problem Proving unique continuation for X-ray transforms of one-forms with limited data.
method Proved unique continuation for the normal operator of X-ray transforms of one-forms, leading to partial data results.
result Unique continuation for X-ray transforms of one-forms with partial data.

Study shows certain manifolds uniquely determined by X-ray data.

problem Determining manifolds from X-ray data.
method Injectivity of X-ray transform over symmetric solenoidal 2-tensors.
result Smooth compact manifolds with strictly convex boundary, no conjugate points, and hyperbolic trapped set are locally marked boundary rigid.

Support theorem proved for X-ray transform on certain non-compact manifolds.

problem Support theorem for X-ray transform on non-compact manifolds with conjugate points.
method Use of plane covers and support theorem for simple manifolds by Krishnan.
result Support theorem proved for simply connected 2-step nilpotent Lie groups and some non-homogeneous 3D manifolds.

New insights into X-ray transform on hyperbolic disk, with functional relations and range characterizations.

problem Understanding the X-ray transform on hyperbolic geometry.
method Derived new singular value decompositions, range characterizations, and intertwining relations with wedge-type differential operators.
result Sharp understanding of boundary behavior and invertibility settings for the X-ray transform.

Novel semi-supervised method for X-ray classification with minimal labels.

problem Classifying X-ray data with limited labeled data.
method Graph-based semi-supervised learning with carefully selected class priors.
result Competitive results on ChestX-ray14 data set with reduced need for annotated data.

The geodesic X-ray transform on disks of constant curvature is characterized and decomposed.

problem Characterizing and decomposing the geodesic X-ray transform on disks of constant curvature.
method Explicit construction of a basis for the range and co-kernel, derivation of Singular Value Decomposition.
result Explicit Singular Value Decomposition for the geodesic X-ray transform.