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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.

169,181 papers · 148 categories

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2457 · Jan 202019922001200920182026
48 results for Cardiac arrhythmia

New system detects and classifies cardiac arrhythmias in ECGs.

problem Detecting and classifying various types of cardiac arrhythmias.
method Combination of CNNs and LSTM networks with pooling, dropout, and normalization.
result Overall F-measure of 0.8310-0.015 on held-out test data.

Improved cardiac arrhythmia detection in wearable devices with neural networks.

problem Resource constraints in low-power wearable devices for accurate arrhythmia detection.
method Adapted a convolutional-recurrent neural network to a low-power microcontroller, optimizing for precision and memory usage.
result Reduced F1F_1 score from 0.8 to 0.784 in fixed-point precision, with a 195.6KB memory footprint and 33.98MOps/s throughput.

Machine learning enhances cardiac arrhythmia treatment through predictive modelling.

problem Improving catheter ablation success rates for treating atrial fibrillation.
method Combining machine learning and predictive modelling with cardiac electrophysiology data.
result Enhanced accuracy in predicting and inferring parameters of cardiac models.

System detects and predicts cardiac anomalies from ECG data.

problem Early detection of cardiac anomalies to reduce healthcare costs and mortality.
method Discrete Wavelet Transform (DWT) and Undecimated Wavelet Transform (UWT) for feature extraction; Bayesian Network Classifier for anomaly prediction.
result Average accuracy of 96.6% for PAC, 92.8% for MI, and 87% for PVC on real ECG datasets.

AdaCGP learns dynamic graph topology from time series data, improving over existing methods.

problem Learning dynamic graph topology from time-varying signals, especially in real-time applications.
method AdaCGP is a sparsity-aware adaptive algorithm that recursively estimates the Graph Shift Operator (GSO) through variable splitting.
result AdaCGP outperforms state-of-the-art methods in GSO estimation, achieving improvements exceeding 83%.

DeepBeat uses deep learning to assess signal quality and detect arrhythmia in wearable devices.

problem Detecting atrial fibrillation from wearable devices with noise.
method Multi-task deep learning approach using convolutional denoising autoencoders.
result Significantly improved AF detection accuracy compared to traditional methods.

A new method reduces the computational cost of Sinkhorn algorithm for OT and UOT problems.

problem High computational complexity of Sinkhorn algorithm for OT and UOT problems.
method Importance sparsification method called Spar-Sink to efficiently approximate entropy-regularized OT and UOT solutions.
result The method reduces computational cost from O(n2)O(n^2) to O~(n)\widetilde{O}(n), and is consistent under mild regularity conditions.

Personalized deep learning reduces inappropriate shocks in VA detection.

problem High inappropriate shock rate in traditional VA detection methods.
method Personalized deep learning framework using CNN for real-time VA detection and collaborative inference.
result 6.6% reduction in inappropriate shock rate compared to traditional methods.

Deep learning model detects and classifies arrhythmia from ECG signals.

problem Detecting and classifying abnormal heartbeats (arrhythmia) from ECG signals.
method Use of topological data analysis in a modular neural network architecture for generalization.
result Model achieves state-of-the-art performance in arrhythmia detection and classification.

New method detects change points in quasi-periodic signals without supervision.

problem Detecting change points in complex, non-harmonic signals.
method Optimal transport theory, topological analysis, bootstrap procedure.
result Successfully detects abnormal cardiac cycles in various arrhythmias.

We release a large ECG dataset for arrhythmia subtype discovery.

problem Discovering unknown subtypes of arrhythmia from continuous raw signals.
method Unsupervised representation learning task using semi-supervised evaluation.
result Qualitative evaluations show potential for representation learning in arrhythmia sub-type discovery.

Study finds AI can predict diverse cardiac and non-cardiac diagnoses from a single ECG.

problem Narrow focus of ECG analysis models for diverse medical conditions.
method Exploratory study using a single AI model to predict multiple ICD codes.
result Model achieved AUROC scores > 0.8 for 253 cardiac and 172 non-cardiac diagnoses.

Generative adversarial network system improves ECG arrhythmia classification.

problem Improving automatic ECG arrhythmia classification accuracy.
method Generative adversarial network with patient-specific normal beats and generated abnormal beats.
result Superior overall classification performance for SVEB and VEB on MIT-BIH arrhythmia database.

Deep neural network predicts cardiac shape from MRI images and patient data.

problem Automatic 3D cardiac shape analysis for large-scale studies.
method Uses deep neural networks combining MRI images and patient metadata.
result Significant agreement with reference shapes in cardiac parameters.

Automatically computes reference ranges for UK Biobank cardiac data.

problem Improving healthcare by discovering patterns in large-scale population data.
method Fully automatic pipeline for 3D cardiac MR image analysis.
result Statistically significant agreement between manual and automatic indexes.

Reservoir computing models classify ECG signals for patient-adaptive monitoring.

problem Classifying ECG signals for patients with imbalanced heartbeat classes.
method Reservoir computing paradigm applied to recurrent neural networks (RNNs).
result Accurate patient-adaptive ECG classifier that handles imbalanced classes.

Automated LV segmentation across the cardiac cycle using deep learning.

problem Segmentation of left ventricle from CINE MRI images using only two phases.
method A deep learning workflow that learns from images throughout the cardiac cycle, including localization, cropping, and contour identification using a Temporal FCNN with CRFs and Semantic Flow.
result Significant improvement in performance by explicitly learning cardiac motion patterns.

Semi-supervised learning classifies cardiac pathology using motion features from cine MRI.

problem Classifying cardiac pathology based on motion features from cine MRI.
method Semi-supervised learning of apparent flow to generate motion features from non-segmented images.
result The model achieves 95% classification accuracy on ACDC test set.

Enhanced deep CNNs improve cardiac abnormality diagnosis from ECGs.

problem Diagnosing cardiac abnormalities from 12-lead ECGs.
method Training an enhanced deep convolutional neural network with hand-crafted features, data preprocessing, and augmentation.
result Promising generalization performance in ECG diagnosis.

Proposes a hybrid deep learning network for better heart failure survival prediction.

problem Improving survival prediction in heart failure patients.
method Joint analysis of cardiac motion features and clinical risk factors using a hybrid deep learning network.
result Optimal integration of clinical risk factors into deep prediction networks.

VFPred combines signal processing and machine learning for VF detection from short ECG signals.

problem Detecting Ventricular Fibrillation from short ECG signals.
method VFPred uses Empirical Mode Decomposition, Discrete Time Fourier Transform, and Support Vector Machine.
result VFPred achieves high sensitivity and specificity even from short 5-second signals.

Novel framework monitors cardiac image segmentation models in real-time.

problem Ensuring continuous high model performance and segmentation results in clinics.
method Formulated as anomaly detection, the framework derives surrogate quality measures for segmentation.
result Demonstrated accurate, fast, and scalable quality control monitoring.

hyperSBINN improves drug cardiosafety assessment by efficiently modeling cardiac action potentials.

problem Complexity and limited data in modeling cardiac effects of drugs.
method Combining meta-learning with SBINNs to solve parameterized cardiac action potential models.
result hyperSBINN outperforms traditional solvers in speed and accuracy for predicting APD90 values.

Paper tackles ICU false alarms by learning features from ECG signals.

problem High rate of false alarms in ICU due to patient movements and sensor detachment.
method Unsupervised feature learning to extract and cluster high-level features from ECG signals.
result The method reduces false arrhythmia alarms using a few high-level features from a single ECG lead.

CardiacGen generates realistic ECG signals for training deep learning models.

problem Creating realistic synthetic ECG signals for training deep learning models.
method Hierarchical deep generative model with multi-objective loss functions.
result Synthetic ECG signals from CardiacGen can be used for data augmentation and improve classifier performance.

Researchers use operator learning to predict cardiac activation and repolarization times.

problem Computational demands and need for clear, interpretable information in cardiac electrophysiology.
method Exploiting Fourier Neural Operators (FNO) and Kernel Operator Learning (KOL) to learn operator mappings.
result Both FNO and KOL approaches are computationally efficient and robust to hyperparameters.

This study benchmarks algorithms for automatic segmentation of LGE-MRI images of the left atrium.

problem Challenging segmentation of LGE-MRI images due to low contrast.
method Organized a large-scale benchmarking challenge with 154 3D LGE-MRIs and 27 teams.
result Top method achieved 93.2% dice score and 0.7 mm mean surface to surface distance.

Bayesian optimization on cardiac models using a graph convolutional VAE.

problem Optimizing tissue properties in cardiac models with spatially varying properties.
method Graph convolutional VAE for generative modeling of non-Euclidean data.
result Effective optimization of cardiac tissue properties using a novel generative model.