SOTAVerified

Time Series Analysis

Time Series Analysis is a statistical technique used to analyze and model time-based data. It is used in various fields such as finance, economics, and engineering to analyze patterns and trends in data over time. The goal of time series analysis is to identify the underlying patterns, trends, and seasonality in the data, and to use this information to make informed predictions about future values.

( Image credit: Autoregressive CNNs for Asynchronous Time Series )

Papers

Showing 10011050 of 6748 papers

TitleStatusHype
MulBot: Unsupervised Bot Detection Based on Multivariate Time Series0
Tab2vox: CNN-Based Multivariate Multilevel Demand Forecasting Framework by Tabular-To-Voxel Image Conversion0
PromptCast: A New Prompt-based Learning Paradigm for Time Series ForecastingCode1
Dataset: Impact Events for Structural Health Monitoring of a Plastic Thin PlateCode1
An Attention Free Long Short-Term Memory for Time Series Forecasting0
Probabilistic Dalek -- Emulator framework with probabilistic prediction for supernova tomography0
The boosted HP filter is more general than you might think0
Estimation of Shade Losses in Unlabeled PV Data0
Quantifying How Hateful Communities Radicalize Online Users0
Predicting Mutual Funds' Performance using Deep Learning and Ensemble Techniques0
Deep Convolutional Architectures for Extrapolative Forecast in Time-dependent Flow Problems0
Koopman-theoretic Approach for Identification of Exogenous Anomalies in Nonstationary Time-series DataCode0
De Bruijn goes Neural: Causality-Aware Graph Neural Networks for Time Series Data on Dynamic Graphs0
A review of predictive uncertainty estimation with machine learning0
DynaConF: Dynamic Forecasting of Non-Stationary Time SeriesCode0
DBT-DMAE: An Effective Multivariate Time Series Pre-Train Model under Missing Data0
Dynamics-informed deconvolutional neural networks for super-resolution identification of regime changes in epidemiological time seriesCode0
Multi-time Predictions of Wildfire Grid Map using Remote Sensing Local Data0
Understanding of the properties of neural network approaches for transient light curve approximationsCode1
Neuro-symbolic Models for Interpretable Time Series Classification using Temporal Logic Description0
Statistical Properties of the Entropy from Ordinal Patterns0
Universal abundance fluctuations across microbial communities, tropical forests, and urban populations0
FRANS: Automatic Feature Extraction for Time Series Forecasting0
Out-of-Distribution Representation Learning for Time Series Classification0
Efficient learning of nonlinear prediction models with time-series privileged informationCode0
Information Theoretic Measures of Causal Influences during Transient Neural Events0
Improving Accuracy and Explainability of Online Handwriting RecognitionCode0
Explainable AI for clinical and remote health applications: a survey on tabular and time series data0
Data-Driven Machine Learning Models for a Multi-Objective Flapping Fin Unmanned Underwater Vehicle Control System0
Scalable Spatiotemporal Graph Neural NetworksCode1
Time Series Prediction for Food sustainabilityCode0
TSFool: Crafting Highly-Imperceptible Adversarial Time Series through Multi-Objective AttackCode1
Bioeconomic analysis of harvesting within a predator-prey system: A case study in the Chesapeake Bay fisheries0
Fast fitting of neural ordinary differential equations by Bayesian neural gradient matching to infer ecological interactions from time series dataCode0
A topological analysis of cointegrated data: a Z24 Bridge case study0
BayesLDM: A Domain-Specific Language for Probabilistic Modeling of Longitudinal Data0
Fairness in Forecasting of Observations of Linear Dynamical SystemsCode0
Uncovering Regions of Maximum Dissimilarity on Random Process Data0
An Evaluation of Low Overhead Time Series Preprocessing Techniques for Downstream Machine Learning0
A new hazard event classification model via deep learning and multifractal0
Modeling of Political Systems using Wasserstein Gradient Flows0
Self-supervised Sequential Information Bottleneck for Robust Exploration in Deep Reinforcement Learning0
Structured Recognition for Generative Models with Explaining AwayCode0
Testing the martingale difference hypothesis in high dimension0
Deep Baseline Network for Time Series Modeling and Anomaly Detection0
A Comparative Study on Unsupervised Anomaly Detection for Time Series: Experiments and Analysis0
Symbolic Knowledge Extraction from Opaque Predictors Applied to Cosmic-Ray Data Gathered with LISA Pathfinder0
Yes, DLGM! A novel hierarchical model for hazard classification0
Autoencoder Based Iterative Modeling and Multivariate Time-Series Subsequence Clustering AlgorithmCode1
In-situ animal behavior classification using knowledge distillation and fixed-point quantization0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1naive classifierF187.47Unverified
2GRU-D - APC (n = 1)F127.3Unverified
3GRU-APC (n = 1)F125.7Unverified
4GRU-DF122.5Unverified
5GRUF122.3Unverified
6GRU-SimpleF122.2Unverified
7GRU-MeanF122.1Unverified
#ModelMetricClaimedVerifiedStatus
1SepTr% Test Accuracy98.51Unverified
2ViT% Test Accuracy98.11Unverified
3FlexTCN-4% Test Accuracy97.73Unverified
4MatchboxNet% Test Accuracy97.4Unverified
5CKCNN (100k)% Test Accuracy95.27Unverified
6FlexTCN-6% Test Accuracy (Raw Data)91.73Unverified
#ModelMetricClaimedVerifiedStatus
1ResBiLSTMMAE0.13Unverified