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3 months ago

Time Evidence Fusion Network: Multi-source View in Long-Term Time Series Forecasting

Tianxiang Zhan Yuanpeng He Yong Deng Zhen Li Wenjie Du Qingsong Wen

Time Evidence Fusion Network: Multi-source View in Long-Term Time Series Forecasting

Abstract

In practical scenarios, time series forecasting necessitates not only accuracy but also efficiency. Consequently, the exploration of model architectures remains a perennially trending topic in research. To address these challenges, we propose a novel backbone architecture named Time Evidence Fusion Network (TEFN) from the perspective of information fusion. Specifically, we introduce the Basic Probability Assignment (BPA) Module based on evidence theory to capture the uncertainty of multivariate time series data from both channel and time dimensions. Additionally, we develop a novel multi-source information fusion method to effectively integrate the two distinct dimensions from BPA output, leading to improved forecasting accuracy. Lastly, we conduct extensive experiments to demonstrate that TEFN achieves performance comparable to state-of-the-art methods while maintaining significantly lower complexity and reduced training time. Also, our experiments show that TEFN exhibits high robustness, with minimal error fluctuations during hyperparameter selection. Furthermore, due to the fact that BPA is derived from fuzzy theory, TEFN offers a high degree of interpretability. Therefore, the proposed TEFN balances accuracy, efficiency, stability, and interpretability, making it a desirable solution for time series forecasting.

Code Repositories

ztxtech/Time-Evidence-Fusion-Network
Official
pytorch
Mentioned in GitHub
WenjieDu/PyPOTS
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
time-series-forecasting-on-electricity-192TEFN
MAE: 0.276
MSE: 0.197
time-series-forecasting-on-electricity-336TEFN
MAE: 0.292
MSE: 0.212
time-series-forecasting-on-electricity-720TEFN
MAE: 0.325
MSE: 0.253
time-series-forecasting-on-electricity-96TEFN
MAE: 0.273
MSE: 0.197
time-series-forecasting-on-etth1-192-1TEFN
MAE: 0.419
MSE: 0.433
time-series-forecasting-on-etth1-336-1TEFN
MAE: 0.441
MSE: 0.475
time-series-forecasting-on-etth1-720-1TEFN
MAE: 0.464
MSE: 0.475
time-series-forecasting-on-etth1-96-1TEFN
MAE: 0.391
MSE: 0.383
time-series-forecasting-on-etth2-192-1TEFN
MAE: 0.392
MSE: 0.375
time-series-forecasting-on-etth2-336-1TEFN
MAE: 0.434
MSE: 0.423
time-series-forecasting-on-etth2-720-1TEFN
MAE: 0.446
MSE: 0.434
time-series-forecasting-on-etth2-96-1TEFN
MAE: 0.337
MSE: 0.288
time-series-forecasting-on-ettm1-192-1TEFN
MAE: 0.383
MSE: 0.381
time-series-forecasting-on-ettm1-336-1TEFN
MAE: 0.404
MSE: 0.414
time-series-forecasting-on-ettm1-720-1TEFN
MAE: 0.438
MSE: 0.475
time-series-forecasting-on-ettm1-96-1TEFN
MAE: 0.367
MSE: 0.343
time-series-forecasting-on-ettm2-192-1TEFN
MAE: 0.304
MSE: 0.381
time-series-forecasting-on-ettm2-336-1TEFN
MAE: 0.343
MSE: 0.307
time-series-forecasting-on-ettm2-720-1TEFN
MAE: 0.398
MSE: 0.407
time-series-forecasting-on-ettm2-96-1TEFN
MAE: 0.264
MSE: 0.181
time-series-forecasting-on-weather-192TEFN
MAE: 0.262
MSE: 0.227
time-series-forecasting-on-weather-336TEFN
MAE: 0.298
MSE: 0.279
time-series-forecasting-on-weather-720TEFN
MAE: 0.344
MSE: 0.352
time-series-forecasting-on-weather-96TEFN
MAE: 0.227
MSE: 0.182

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