Papers › Complex Gated Recurrent Neural Networks

Complex Gated Recurrent Neural Networks

21 Jun 2018NeurIPS 2018 12arXiv:1806.08267archive 2025-07-28

Moritz Wolter, Angela Yao

Complex numbers have long been favoured for digital signal processing, yet complex representations rarely appear in deep learning architectures. RNNs, widely used to process time series and sequence information, could greatly benefit from complex representations. We present a novel complex gated recurrent cell, which is a hybrid cell combining complex-valued and norm-preserving state transitions with a gating mechanism. The resulting RNN exhibits excellent stability and convergence properties and performs competitively on the synthetic memory and adding task, as well as on the real-world tasks of human motion prediction.

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compute_parameter_total v0lta/Complex-gated-recurrent-neural-networks/music_exp/networks/cgRNN.py official repository ran · honoured contract Apache-2.0 (permissive) · b929d0aed9c45738 · report
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Human motion predictionMusic TranscriptionTime SeriesTime Series Analysismotion prediction

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