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Towards better forecasting by fusing near and distant future visions

Publication ,  Conference
Cheng, J; Huang, K; Zheng, Z
Published in: AAAI 2020 - 34th AAAI Conference on Artificial Intelligence
January 1, 2020

Multivariate time series forecasting is an important yet challenging problem in machine learning. Most existing approaches only forecast the series value of one future moment, ignoring the interactions between predictions of future moments with different temporal distance. Such a deficiency probably prevents the model from getting enough information about the future, thus limiting the forecasting accuracy. To address this problem, we propose Multi-Level Construal Neural Network (MLCNN), a novel multi-task deep learning framework. Inspired by the Construal Level Theory of psychology, this model aims to improve the predictive performance by fusing forecasting information (i.e., future visions) of different future time. We first use the Convolution Neural Network to extract multi-level abstract representations of the raw data for near and distant future predictions. We then model the interplay between multiple predictive tasks and fuse their future visions through a modified Encoder-Decoder architecture. Finally, we combine traditional Autoregression model with the neural network to solve the scale insensitive problem. Experiments on three real-world datasets show that our method achieves statistically significant improvements compared to the most state-of-the-art baseline methods, with average 4.59% reduction on RMSE metric and average 6.87% reduction on MAE metric.

Duke Scholars

Published In

AAAI 2020 - 34th AAAI Conference on Artificial Intelligence

ISBN

9781577358350

Publication Date

January 1, 2020

Start / End Page

3593 / 3600
 

Citation

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Cheng, J., Huang, K., & Zheng, Z. (2020). Towards better forecasting by fusing near and distant future visions. In AAAI 2020 - 34th AAAI Conference on Artificial Intelligence (pp. 3593–3600).
Cheng, J., K. Huang, and Z. Zheng. “Towards better forecasting by fusing near and distant future visions.” In AAAI 2020 - 34th AAAI Conference on Artificial Intelligence, 3593–3600, 2020.
Cheng J, Huang K, Zheng Z. Towards better forecasting by fusing near and distant future visions. In: AAAI 2020 - 34th AAAI Conference on Artificial Intelligence. 2020. p. 3593–600.
Cheng, J., et al. “Towards better forecasting by fusing near and distant future visions.” AAAI 2020 - 34th AAAI Conference on Artificial Intelligence, 2020, pp. 3593–600.
Cheng J, Huang K, Zheng Z. Towards better forecasting by fusing near and distant future visions. AAAI 2020 - 34th AAAI Conference on Artificial Intelligence. 2020. p. 3593–3600.

Published In

AAAI 2020 - 34th AAAI Conference on Artificial Intelligence

ISBN

9781577358350

Publication Date

January 1, 2020

Start / End Page

3593 / 3600