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المؤلفElleuch, Ines
المؤلفAbdelkefi, Fatma
المؤلفSiala, Mohamed
المؤلفHamila, Ridha
المؤلفAl-Dhahir, Naofal
تاريخ الإتاحة2021-04-11T11:07:18Z
تاريخ النشر2016
اسم المنشورEuropean Signal Processing Conference
المصدرScopus
معرّف المصادر الموحدhttp://dx.doi.org/10.1109/EUSIPCO.2016.7760292
معرّف المصادر الموحدhttp://hdl.handle.net/10576/18203
الملخصIn this paper, we address the problem of sparse signal recovery, from multi-bit scalar quantized compressed sensing measurements, where the saturation issue is taken into account. We propose a convex optimization approach, where saturation errors are jointly estimated with the sparse signal to be recovered. In the proposed approach, saturated measurements, even though over-identified, are considered as outliers and the associated errors are handled as non-negative sparse corruptions with partial support information. We highlight the theoretical recovery guarantee of the proposed approach and we demonstrate, via simulation results, its reliability in cancelling out the effect of the outlying saturated measurements.
اللغةen
الناشرEuropean Signal Processing Conference, EUSIPCO
الموضوعConvex optimization
Multi-bit quantized compressed sensing
Saturation
Sign constraint
Sparse corruptions
العنوانOn quantized compressed sensing with saturated measurements via convex optimization
النوعConference Paper
الصفحات468-472
رقم المجلد2016-November


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