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 126150 of 6748 papers

TitleStatusHype
Generalizable autoregressive modeling of time series through functional narratives0
Scintillation pulse characterization with spectrum-inspired temporal neural networks: case studies on particle detector signals0
Towards Generalisable Time Series Understanding Across DomainsCode1
Toward Physics-guided Time Series EmbeddingCode1
Task-oriented Time Series Imputation Evaluation via Generalized RepresentersCode0
Training-free LLM-generated Text Detection by Mining Token Probability Sequences0
Extreme Value Modelling of Feature Residuals for Anomaly Detection in Dynamic Graphs0
Can LLMs Understand Time Series Anomalies?Code1
Neural Fourier Modelling: A Highly Compact Approach to Time-Series AnalysisCode1
Local Attention Mechanism: Boosting the Transformer Architecture for Long-Sequence Time Series ForecastingCode0
BLEND: Behavior-guided Neural Population Dynamics Modeling via Privileged Knowledge DistillationCode0
SEN12-WATER: A New Dataset for Hydrological Applications and its Benchmarking0
TS-HTFA: Advancing Time Series Forecasting via Hierarchical Text-Free Alignment with Large Language Models0
Transforming Multidimensional Time Series into Interpretable Event Sequences for Advanced Data Mining0
Exploring Representations and Interventions in Time Series Foundation Models0
A point process approach for the classification of noisy calcium imaging data0
Weather Prediction Using CNN-LSTM for Time Series Analysis: A Case Study on Delhi Temperature Data0
Second-order difference subspace0
Randomized Spline Trees for Functional Data Classification: Theory and Application to Environmental Time Series0
An Efficient and Generalizable Symbolic Regression Method for Time Series Analysis0
Application Research On Real-Time Perception Of Device Performance Status0
Leveraging RNNs and LSTMs for Synchronization Analysis in the Indian Stock Market: A Threshold-Based Classification ApproachCode0
Time Series Analysis for Education: Methods, Applications, and Future DirectionsCode1
Quantitative Evaluation of Full-Scale Ship Maneuvering Characteristics During Berthing and Unberthing0
Advancing Enterprise Spatio-Temporal Forecasting Applications: Data Mining Meets Instruction Tuning of Language Models For Multi-modal Time Series Analysis in Low-Resource Settings0
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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