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 35513600 of 6748 papers

TitleStatusHype
StationPlot: A New Non-stationarity Quantification Tool for Detection of Epileptic Seizures0
Statistical analysis and stochastic interest rate modelling for valuing the future with implications in climate change mitigation0
Statistical analysis of coupled time series with Kernel Cross-Spectral Density operators.0
Statistical analysis of Wasserstein GANs with applications to time series forecasting0
Statistical and Computational Guarantees for the Baum-Welch Algorithm0
Statistical and Economic Evaluation of Time Series Models for Forecasting Arrivals at Call Centers0
Statistical Estimation of High-Dimensional Vector Autoregressive Models0
Statistical guided-waves-based SHM via stochastic non-parametric time series models0
Statistical inference of lead-lag at various timescales between asynchronous time series from p-values of transfer entropy0
Statistical Inference with Stochastic Gradient Methods under φ-mixing Data0
Statistical learning method for predicting density-matrix based electron dynamics0
Statistically Guided Divide-and-Conquer for Sparse Factorization of Large Matrix0
Statistically Significant Detection of Linguistic Change0
Statistical Modeling and Forecasting of Automatic Generation Control Signals0
Statistical modeling of isoform splicing dynamics from RNA-seq time series data0
Statistical properties and multifractality of Bitcoin0
Statistical Properties of the Entropy from Ordinal Patterns0
#StayHome or #Marathon? Social Media Enhanced Pandemic Surveillance on Spatial-temporal Dynamic Graphs0
STC-IDS: Spatial-Temporal Correlation Feature Analyzing based Intrusion Detection System for Intelligent Connected Vehicles0
STEER: Simple Temporal Regularization For Neural ODEs0
STEER : Simple Temporal Regularization For Neural ODE0
Spatio-Temporal meets Wavelet: Disentangled Traffic Flow Forecasting via Efficient Spectral Graph Attention Network0
STING: Self-attention based Time-series Imputation Networks using GAN0
STJLA: A Multi-Context Aware Spatio-Temporal Joint Linear Attention Network for Traffic Forecasting0
ST-MVL: Filling Missing Values in Geo-Sensory Time Series Data0
Stochastic density effects on adult fish survival and implications for population fluctuations0
Stochastic Identification-based Active Sensing Acousto-Ultrasound SHM Using Stationary Time Series Models0
Stochastic modelling of non-stationary financial assets0
Stochastic Online Convex Optimization. Application to probabilistic time series forecasting0
Stochastic Recurrent Neural Network for Multistep Time Series Forecasting0
Stochastic Sequential Neural Networks with Structured Inference0
Stock exchange shares ranking and binary-ternary compressive coding0
Stock Performance Evaluation for Portfolio Design from Different Sectors of the Indian Stock Market0
Stock Portfolio Optimization Using a Deep Learning LSTM Model0
Stock Price Forecasting in Presence of Covid-19 Pandemic and Evaluating Performances of Machine Learning Models for Time-Series Forecasting0
Stock price prediction using BERT and GAN0
Stock Price Prediction Using Time Series, Econometric, Machine Learning, and Deep Learning Models0
Stock Volatility Prediction using Time Series and Deep Learning Approach0
STONet: A Neural-Operator-Driven Spatio-temporal Network0
Storylines for structuring massive streams of news0
Stream-Flow Forecasting of Small Rivers Based on LSTM0
Streaming Linear System Identification with Reverse Experience Replay0
Streaming Traffic Flow Prediction Based on Continuous Reinforcement Learning0
STRIC: Stacked Residuals of Interpretable Components for Time Series Anomaly Detection0
Structural and Functional Discovery in Dynamic Networks with Non-negative Matrix Factorization0
Structural Break Detection in Quantile Predictive Regression Models with Persistent Covariates0
Structural Breaks in Time Series0
Structural Change in (Economic) Time Series0
Structural Damage Detection and Localization with Unknown Post-Damage Feature Distribution Using Sequential Change-Point Detection Method0
Structural Forecasting for Tropical Cyclone Intensity Prediction: Providing Insight with Deep Learning0
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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