2021年三大顶会时间序列论文&代码整理

作者:杰少 @大野人007

2021年三大顶会时间序列论文&代码整理

AAAI 20212021年三大顶会时间序列论文&代码整理AAAI 2021

  1. Deep Switching Auto-Regressive Factorization: Application to Time Series Forecasting
  • 下载:arxiv.org/abs/2009.0513
  • 代码:github.com/ostadabbas/D
Dynamic Gaussian Mixture Based Deep Generative Model for Robust Forecasting on Sparse Multivariate Time Series
  • 下载:arxiv.org/abs/2103.0216
  • 代码:paperswithcode.com/pape
Temporal Latent Autoencoder: A Method for Probabilistic Multivariate Time Series Forecasting
  • 下载:arxiv.org/abs/2101.1046
  • 代码:未找到
Synergetic Learning of Heterogeneous Temporal Sequences for Multi-Horizon Probabilistic Forecasting
  • 下载:arxiv.org/abs/2102.0043
  • 代码:未找到
Correlative Channel-Aware Fusion for Multi-View Time Series Classification
  • 下载:arxiv.org/abs/1911.1156
  • 代码:未找到
Learnable Dynamic Temporal Pooling for Time Series Classification
  • 下载:arxiv.org/abs/2104.0257
  • 代码:github.com/donalee/DTW-
ShapeNet: A Shapelet-Neural Network Approach for Multivariate Time Series Classification
  • 下载:ojs.aaai.org/index.php/
  • 代码:未找到
Joint-Label Learning by Dual Augmentation for Time Series Classification
  • 下载:ojs.aaai.org/index.php/
  • 代码:未找到
Graph Neural Network-Based Anomaly Detection in Multivariate Time Series
  • 下载:arxiv.org/abs/2106.0694
  • 代码:github.com/d-ailin/GDN
Time Series Anomaly Detection with Multiresolution Ensemble Decoding
  • 下载:ojs.aaai.org/index.php/
  • 代码:未找到
Outlier Impact Characterization for Time Series Data
  • 下载:ojs.aaai.org/index.php/
  • 代码:未找到
Generative Semi-Supervised Learning for Multivariate Time Series Imputation
  • 下载:ojs.aaai.org/index.php/
  • 代码:githubmemory.com/repo/z
Bridging Towers of Multi-Task Learning with a Gating Mechanism for Aspect-Based Sentiment Analysis and Sequential Metaphor Identification
  • 下载:ojs.aaai.org/index.php/
  • 代码:未找到
C2F-FWN: Coarse-to-Fine Flow Warping Network for Spatial-Temporal Consistent Motion Transfer
  • 下载:arxiv.org/abs/2012.0897
  • 代码:github.com/wswdx/C2F-FW
Inductive Graph Neural Networks for Spatiotemporal Kriging
  • 下载:arxiv.org/abs/2006.0752
  • 代码:github.com/Kaimaoge/IGN
Temporal-Coded Deep Spiking Neural Network with Easy Training and Robust Performance
  • 下载:ojs.aaai.org/index.php/
  • 代码:github.com/zbs881314/Te
Continuous-Time Attention for Sequential Learning
  • 下载:ojs.aaai.org/index.php/
  • 代码:未找到
ChronoR: Rotation Based Temporal Knowledge Graph Embedding
  • 下载:arxiv.org/abs/2103.1037
  • 代码:未找到
Learning from History: Modeling Temporal Knowledge Graphs with Sequential CopyGeneration Networks
  • 下载:arxiv.org/abs/2012.0849
  • 代码:未找到
Neural Latent Space Model for Dynamic Networks and Temporal Knowledge Graphs
  • 下载:arxiv.org/abs/1911.1145
  • 代码:未找到

ICML 2021

  1. Voice2Series: Reprogramming Acoustic Models for Time Series Classification
  • 下载:arxiv.org/abs/2106.0929
  • 代码:github.com/huckiyang/Vo
Neural Rough Differential Equations for Long Time Series
  • 下载:arxiv.org/abs/2009.0829
  • 代码:github.com/jambo6/neura
Necessary and sufficient conditions for causal feature selection in time series with latent common causes
  • 下载:arxiv.org/abs/2005.0854
  • 代码:未找到
Autoregressive Denoising Diffusion Models for Multivariate Probabilistic Time Series Forecasting
  • 下载:arxiv.org/abs/2101.1207
  • 代码:未找到
Conformal prediction interval for dynamic time-series
  • 下载:arxiv.org/abs/2010.0910
  • 代码:github.com/hamrel-cxu/E
Z-GCNETs: Time Zigzags at Graph Convolutional Networks for Time Series Forecasting
  • 下载:arxiv.org/abs/2105.0410
  • 代码:github.com/Z-GCNETs/Z-G
End-to-End Learning of Coherent Probabilistic Forecasts for Hierarchical Time Series
  • 下载:proceedings.mlr.press/v
  • 代码:github.com/awslabs/gluo
Approximation Theory of Convolutional Architectures for Time Series Modelling
  • 下载:proceedings.mlr.press/v
  • 代码:未找到
Whittle Networks: A Deep Likelihood Model for Time Series
  • 下载:proceedings.mlr.press/v
  • 代码:github.com/ml-research/
Explaining Time Series Predictions with Dynamic Masks
  • 下载:arxiv.org/abs/2106.0530
  • 代码:github.com/JonathanCrab
ST-DETR: Spatio-Temporal Object Traces Attention Detection Transformer
  • - 下载:arxiv.org/pdf/2107.0588
  • - 代码:未找到
  1. Temporal Dependencies in Feature Importance for Time Series Predictions
  • 下载:arxiv.org/abs/2107.1431
  • 代码:未找到

IJCAI 2021

  1. Time-Aware Multi-Scale RNNs for Time Series Modeling
  • 下载:ijcai.org/proceedings/2
  • 代码:github.com/qianlima-lab
Two Birds with One Stone: Series Saliency for Accurate and Interpretable Multivariate Time Series Forecasting
  • 下载:ijcai.org/proceedings/2
  • 代码:未找到
TE-ESN: Time Encoding Echo State Network for Prediction Based on Irregularly Sampled Time Series Data
  • 下载:arxiv.org/abs/2105.0041
  • 代码:未找到
Time-Series Representation Learning via Temporal and Contextual Contrasting
  • 下载:arxiv.org/abs/2106.1411
  • 代码:github.com/emadeldeen24
Time Series Data Augmentation for Deep Learning: A Survey
  • 下载:arxiv.org/abs/2002.1247
  • 代码:无
Uncertain Time Series Classification
  • 下载:ijcai.org/proceedings/2
  • 代码:github.com/frankl1/ustc
Learning Temporal Causal Sequence Relationships from Real-Time Time-
  • 下载:arxiv.org/abs/1905.1226
  • 代码:未找到
Adversarial Spectral Kernel Matching for Unsupervised Time Series Domain Adaptation
  • 下载:ijcai.org/proceedings/2
  • 代码:github.com/jarheadjoe/A
Multi-series Time-aware Sequence Partitioning for Disease Progression Modeling
  • 下载:ijcai.org/proceedings/2
  • 代码:未找到

参考文献

  1. yanxishe.com/reportDeta
  2. icml.cc/Conferences/202
  3. ijcai-21.org/program-ma
  4. dreamhomes.top/posts/20

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