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Beyond Data Scarcity: A Frequency-Driven Framework for Zero-Shot Forecasting

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arxiv 2411.15743 v1 pith:BSMMKZZA submitted 2024-11-24 cs.LG cs.AI

classification cs.LGcs.AI
keywords dataforecastinglearningseriestimemodelszero-shotavailable
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Time series forecasting is critical in numerous real-world applications, requiring accurate predictions of future values based on observed patterns. While traditional forecasting techniques work well in in-domain scenarios with ample data, they struggle when data is scarce or not available at all, motivating the emergence of zero-shot and few-shot learning settings. Recent advancements often leverage large-scale foundation models for such tasks, but these methods require extensive data and compute resources, and their performance may be hindered by ineffective learning from the available training set. This raises a fundamental question: What factors influence effective learning from data in time series forecasting? Toward addressing this, we propose using Fourier analysis to investigate how models learn from synthetic and real-world time series data. Our findings reveal that forecasters commonly suffer from poor learning from data with multiple frequencies and poor generalization to unseen frequencies, which impedes their predictive performance. To alleviate these issues, we present a novel synthetic data generation framework, designed to enhance real data or replace it completely by creating task-specific frequency information, requiring only the sampling rate of the target data. Our approach, Freq-Synth, improves the robustness of both foundation as well as nonfoundation forecast models in zero-shot and few-shot settings, facilitating more reliable time series forecasting under limited data scenarios.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A Multi-Task Learning Approach to Linear Multivariate Forecasting

    cs.LG 2025-02 conditional novelty 5.0 of 10

    MTLinear clusters similarly correlated variates and scales losses by prediction error, making simple linear forecasters competitive with transformer-based state of the art on standard benchmarks.

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