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Woongsup Lee

Researcher at Gyeongsang National University

Publications -  109
Citations -  2307

Woongsup Lee is an academic researcher from Gyeongsang National University. The author has contributed to research in topics: Cognitive radio & Spectral efficiency. The author has an hindex of 20, co-authored 100 publications receiving 1717 citations. Previous affiliations of Woongsup Lee include University of Erlangen-Nuremberg & KAIST.

Papers
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Deep Power Control: Transmit Power Control Scheme Based on Convolutional Neural Network

TL;DR: Through simulations, it is shown that the DPC can achieve almost the same or even higher SE and EE than a conventional power control scheme, with a much lower computation time.
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A Novel PAPR Reduction Scheme for OFDM System Based on Deep Learning

TL;DR: This letter proposes a novel PAPR reduction scheme, known as P APR reducing network (PRNet), based on the autoencoder architecture of deep learning, where the constellation mapping and demapping of symbols on each subcarrier is determined adaptively through a deep learning technique.
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Deep Learning-Aided SCMA

TL;DR: A deep learning-aided SCMA (D-SCMA) in which the codebook that minimizes the bit error rate (BER) is adaptively constructed, and a decoding strategy is learned using a deep neural network-based encoder and decoder.
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Direct Electricity Trading in Smart Grid: A Coalitional Game Analysis

TL;DR: The asymptotic Shapley value is shown to be in the core of the coalitional game such that no group of SESs and EUs has an incentive to abandon the coalition, which implies the stable operation of DT for the proposed pricing scheme.
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Deep Cooperative Sensing: Cooperative Spectrum Sensing Based on Convolutional Neural Networks

TL;DR: Through simulations, it is shown that the performance of CSS can be greatly improved by the proposed Deep cooperative sensing (DCS), which constitutes the first CSS framework based on a convolutional neural network (CNN).