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Main Authors: Liu, Shuang, Hu, Yunkai, Qi, Jinquan, Han, Shensheng, Lin, Zihuai
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2409.15596
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author Liu, Shuang
Hu, Yunkai
Qi, Jinquan
Han, Shensheng
Lin, Zihuai
author_facet Liu, Shuang
Hu, Yunkai
Qi, Jinquan
Han, Shensheng
Lin, Zihuai
contents Ghost imaging (GI) is a high-resolution imaging technology that has been a subject of interest to many fields in the past 20 years. Most GI researchers focus on the reconstruction of signal under-sampling, nevertheless, how to use information redundancy to improve the result's belief in a complex environment has hardly been studied. Motivated by this, we propose a computational GI system based on the low-density parity-check (LDPC) coded radiation field by exploiting the signal redundancy. The non-ideal factors generated within the imaging process can be eliminated by setting up the matching fading channel model. We have derived the analytical lower bound on the bit error rate for the proposed LDPC-coded GI system. The effectiveness and performance of the LDPC-coded GI system are further validated through numerical and experiment results.
format Preprint
id arxiv_https___arxiv_org_abs_2409_15596
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Computational Ghost Imaging with Low-Density Parity-Check Code
Liu, Shuang
Hu, Yunkai
Qi, Jinquan
Han, Shensheng
Lin, Zihuai
Signal Processing
Ghost imaging (GI) is a high-resolution imaging technology that has been a subject of interest to many fields in the past 20 years. Most GI researchers focus on the reconstruction of signal under-sampling, nevertheless, how to use information redundancy to improve the result's belief in a complex environment has hardly been studied. Motivated by this, we propose a computational GI system based on the low-density parity-check (LDPC) coded radiation field by exploiting the signal redundancy. The non-ideal factors generated within the imaging process can be eliminated by setting up the matching fading channel model. We have derived the analytical lower bound on the bit error rate for the proposed LDPC-coded GI system. The effectiveness and performance of the LDPC-coded GI system are further validated through numerical and experiment results.
title Computational Ghost Imaging with Low-Density Parity-Check Code
topic Signal Processing
url https://arxiv.org/abs/2409.15596