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 49014925 of 6748 papers

TitleStatusHype
A Statistical Recurrent Stochastic Volatility Model for Stock Markets0
Relaxed Parameter Sharing: Effectively Modeling Time-Varying Relationships in Clinical Time-SeriesCode0
ZeLiC and ZeChipC: Time Series Interpolation Methods for Lebesgue or Event-based Sampling0
Mutual Information and the Edge of Chaos in Reservoir Computers0
Evolution of Hierarchical Structure & Reuse in iGEM Synthetic DNA Sequences0
Application of Machine Learning to accidents detection at directional drilling0
Energy Predictive Models with Limited Data using Transfer Learning0
CCMI : Classifier based Conditional Mutual Information EstimationCode0
PI-Net: A Deep Learning Approach to Extract Topological Persistence ImagesCode0
Brain-Network Clustering via Kernel-ARMA Modeling and the Grassmannian0
Neural Learning of Online Consumer Credit Risk0
Manifold-regression to predict from MEG/EEG brain signals without source modelingCode0
Automatic Health Problem Detection from Gait Videos Using Deep Neural NetworksCode0
Streaming Variational Monte CarloCode0
A Fast-Optimal Guaranteed Algorithm For Learning Sub-Interval Relationships in Time Series0
Learning Interpretable Shapelets for Time Series Classification through Adversarial Regularization0
Cellular Traffic Prediction and Classification: a comparative evaluation of LSTM and ARIMA0
Characterizing and Forecasting User Engagement with In-app Action Graph: A Case Study of SnapchatCode0
Using time series and natural language processing to identify viral moments in the 2016 U.S. Presidential Debate0
Context Dependent Semantic Parsing over Temporally Structured Data0
Multimodal Transformer for Unaligned Multimodal Language SequencesCode0
Patch LearningCode0
Patient-Specific Effects of Medication Using Latent Force Models with Gaussian Processes0
Super-resolution of Time-series Labels for Bootstrapped Event Detection0
Learning low-dimensional state embeddings and metastable clusters from time series data0
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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