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Survival Analysis

Survival Analysis is a branch of statistics focused on the study of time-to-event data, usually called survival times. This type of data appears in a wide range of applications such as failure times in mechanical systems, death times of patients in a clinical trial or duration of unemployment in a population. One of the main objectives of Survival Analysis is the estimation of the so-called survival function and the hazard function. If a random variable has density function $f$ and cumulative distribution function $F$, then its survival function $S$ is $1-F$, and its hazard $λ$ is $f/S$.

Source: Gaussian Processes for Survival Analysis

Image: Kvamme et al.

Papers

Showing 301350 of 472 papers

TitleStatusHype
Survival Analysis on Structured Data using Deep Reinforcement Learning0
Hazard Gradient Penalty for Survival Analysis0
Flexible Group Fairness Metrics for Survival AnalysisCode0
Predicting Time-to-conversion for Dementia of Alzheimer's Type using Multi-modal Deep Survival Analysis0
Survival Seq2Seq: A Survival Model based on Sequence to Sequence Architecture0
Ad Creative Discontinuation Prediction with Multi-Modal Multi-Task Neural Survival Networks0
Calibration Error for Heterogeneous Treatment EffectsCode0
SimHawNet: A Modified Hawkes Process for Temporal Network SimulationCode0
The Concordance Index decomposition: A measure for a deeper understanding of survival prediction modelsCode0
Finite-Sum Coupled Compositional Stochastic Optimization: Theory and Applications0
Dynamic Survival Analysis for non-Markovian Epidemic ModelsCode0
Generalized Bayesian Additive Regression Trees Models: Beyond Conditional Conjugacy0
DeepPAMM: Deep Piecewise Exponential Additive Mixed Models for Complex Hazard Structures in Survival Analysis0
Practical Challenges in Differentially-Private Federated Survival Analysis of Medical Data0
MPVNN: Mutated Pathway Visible Neural Network Architecture for Interpretable Prediction of Cancer-specific Survival RiskCode0
A Multi-modal Fusion Framework Based on Multi-task Correlation Learning for Cancer Prognosis Prediction0
Pricing Time-to-Event Contingent Cash Flows: A Discrete-Time Survival Analysis Approach0
Avoiding C-hacking when evaluating survival distribution predictions with discrimination measuresCode0
Deep Extended Hazard Models for Survival Analysis0
Inverse-Weighted Survival GamesCode0
DAGSurv: Directed Acyclic Graph Based Survival Analysis Using Deep Neural NetworksCode0
Survival-oriented embeddings for improving accessibility to complex data structures0
Towards modelling hazard factors in unstructured data spaces using gradient-based latent interpolation0
Predictive factors associated with survival rate of cervical cancer patients in Brunei Darussalam0
Real-time Mortality Prediction Using MIMIC-IV ICU Data Via Boosted Nonparametric Hazards0
Metaparametric Neural Networks for Survival Analysis0
Energy-based survival modelling using harmoniumsCode0
Simpler Calibration for Survival Analysis0
Assumption-Free Survival Analysis Under Local Smoothness Prior0
Towards simple time-to-event modeling: optimizing neural networks via rank regression0
Early ICU Mortality Prediction and Survival Analysis for Respiratory Failure0
AMMASurv: Asymmetrical Multi-Modal Attention for Accurate Survival Analysis with Whole Slide Images and Gene Expression Data0
Deep survival analysis with longitudinal X-rays for COVID-190
ALBRT: Cellular Composition Prediction in Routine Histology ImagesCode0
Individual Survival Curves with Conditional Normalizing Flows0
DeepMMSA: A Novel Multimodal Deep Learning Method for Non-small Cell Lung Cancer Survival Analysis0
Mortality Analysis of Early COVID-19 Cases in the Philippines Based on Observed Demographic and Clinical Characteristics0
Leveraging Deep Representations of Radiology Reports in Survival Analysis for Predicting Heart Failure Patient MortalityCode0
Development of digitally obtainable 10-year risk scores for depression and anxiety in the general population0
SurvNAM: The machine learning survival model explanation0
The structure of online social networks modulates the rate of lexical changeCode0
BoXHED2.0: Scalable boosting of dynamic survival analysisCode0
BERTSurv: BERT-Based Survival Models for Predicting Outcomes of Trauma Patients0
Conformalized Survival AnalysisCode0
Predicting Kidney Transplant Survival using Multiple Feature Representations for HLAs0
Exploring the Wasserstein metric for survival analysisCode0
The Expediting Effect of Monitoring on Infrastructural Works. A Regression-Discontinuity Approach with Multiple Assignment Variables0
Variational Bayes survival analysis for unemployment modelling0
Computing the Hazard Ratios Associated with Explanatory Variables Using Machine Learning Models of Survival DataCode0
Dynamic prediction of time to event with survival curves0
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