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Exponential Signal Reconstruction With Deep Hankel Matrix Factorization

Yihui Huang, Jinkui Zhao, Zi Wang, Vladislav Orekhov, Di Guo, Xiaobo Qu

2021IEEE Transactions on Neural Networks and Learning Systems34 citationsDOI

Abstract

Exponential function is a basic form of temporal signals, and how to fast acquire this signal is one of the fundamental problems and frontiers in signal processing. To achieve this goal, partial data may be acquired but result in severe artifacts in its spectrum, which is the Fourier transform of exponentials. Thus, reliable spectrum reconstruction is highly expected in the fast data acquisition in many applications, such as chemistry, biology, and medical imaging. In this work, we propose a deep learning method whose neural network structure is designed by imitating the iterative process in the model-based state-of-the-art exponentials' reconstruction method with the low-rank Hankel matrix factorization. With the experiments on synthetic data and realistic biological magnetic resonance signals, we demonstrate that the new method yields much lower reconstruction errors and preserves the low-intensity signals much better than compared methods.

Topics & Concepts

Signal reconstructionHankel matrixAlgorithmIterative reconstructionMatrix decompositionSIGNAL (programming language)Computer scienceSignal processingFourier transformProcess (computing)FactorizationMatrix (chemical analysis)Exponential functionArtificial neural networkMathematicsIterative methodFunction (biology)Artificial intelligenceNon-negative matrix factorizationReconstruction algorithmDeep learningInverse problemFundamental matrix (linear differential equation)Hankel transformExponential growthDiscrete-time signalFourier analysisSingular spectrum analysisSynthetic dataSpectral density estimationSingular value decompositionSpectrum (functional analysis)Discrete Fourier transform (general)DeconvolutionMathematical Analysis and Transform MethodsSparse and Compressive Sensing TechniquesAdvanced MRI Techniques and Applications
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