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DecompKAN: Decomposed Patch-KAN for Long-Term Time Series Forecasting

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Accurate time series forecasting in scientific domains such as climate modeling, physiological monitoring, and energy systems benefits from both competitive predictions and model transparency. This work proposes DecompKAN, a lightweight attention-free architecture that combines trend-residual decomposition, channel-wise patching, learned instance normalization, and B-spline Kolmogorov-Arnold Network (KAN) edge functions. Each KAN edge learns an explicit, inspectable 1D scalar function over learned patch-embedding coordinates that can be directly visualized. On standard benchmarks, DecompKAN achieves best or tied-best MSE on 15 of 32 dataset-horizon combinations among selected published baselines, and achieves best or tied-best MSE on 20 of 36 comparisons under a controlled same-recipe evaluation across 9 datasets including the physiological PPG-DaLiA benchmark. The architecture shows particular strength on datasets with smooth temporal dynamics (Solar -17%, ECL -10% vs. iTransformer, Weather) and physiological time series. Visualization of learned edge functions reveals qualitatively different latent nonlinearities across domains. Ablation analysis shows that the architectural pipeline (decomposition, patching, normalization) drives performance more than the choice of nonlinear layer, while the KAN formulation enables inspection of learned latent transformations.

Naveen Mysore• 2026

Related benchmarks

TaskDatasetResultRank
Multivariate long-term forecastingETTh1
MSE0.447
472
Multivariate long-term series forecastingETTh2
MSE0.235
445
Multivariate long-term series forecastingWeather
MSE0.148
425
Multivariate long-term series forecastingETTm1
MSE0.349
383
Multivariate long-term series forecastingETTm2
MSE0.153
301
Multivariate long-term forecastingTraffic
MSE0.379
190
Multi-variate long-term time series forecastingsolar
MSE0.176
144
Multivariate long-term forecastingECL
MSE0.13
109
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