Anomaly Detection-Based UE-Centric Inter-Cell Interference Suppression

Fuente: arXiv
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Autori principali: Park, Kwonyeol, Choi, Hyuckjin, Ko, Beomsoo, Kim, Minje, Lee, Gyoseung, Kwon, Daecheol, Park, Hyunjae, Kim, Byungseung, Shin, Min-Ho, Choi, Junil
Natura: Preprint
Pubblicazione: 2025
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author Park, Kwonyeol
Choi, Hyuckjin
Ko, Beomsoo
Kim, Minje
Lee, Gyoseung
Kwon, Daecheol
Park, Hyunjae
Kim, Byungseung
Shin, Min-Ho
Choi, Junil
author_facet Park, Kwonyeol
Choi, Hyuckjin
Ko, Beomsoo
Kim, Minje
Lee, Gyoseung
Kwon, Daecheol
Park, Hyunjae
Kim, Byungseung
Shin, Min-Ho
Choi, Junil
contents The increasing spectral reuse can cause significant performance degradation due to interference from neighboring cells. In such scenarios, developing effective interference suppression schemes is necessary to improve overall system performance. To tackle this issue, we propose a novel user equipment-centric interference suppression scheme, which effectively detects inter-cell interference (ICI) and subsequently applies interference whitening to mitigate ICI. The proposed scheme, named Z-refined deep support vector data description, exploits a one-class classification-based anomaly detection technique. Numerical results verify that the proposed scheme outperforms various baselines in terms of interference detection performance with limited time or frequency resources for training and is comparable to the performance based on an ideal genie-aided interference suppression scheme. Furthermore, we demonstrate through test equipment experiments using a commercial fifth-generation modem chipset that the proposed scheme shows performance improvements across various 3rd generation partnership project standard channel environments, including tapped delay line-A, -B, and -C models.
format Preprint
id arxiv_https___arxiv_org_abs_2511_02320
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Anomaly Detection-Based UE-Centric Inter-Cell Interference Suppression
Park, Kwonyeol
Choi, Hyuckjin
Ko, Beomsoo
Kim, Minje
Lee, Gyoseung
Kwon, Daecheol
Park, Hyunjae
Kim, Byungseung
Shin, Min-Ho
Choi, Junil
Information Theory
Signal Processing
The increasing spectral reuse can cause significant performance degradation due to interference from neighboring cells. In such scenarios, developing effective interference suppression schemes is necessary to improve overall system performance. To tackle this issue, we propose a novel user equipment-centric interference suppression scheme, which effectively detects inter-cell interference (ICI) and subsequently applies interference whitening to mitigate ICI. The proposed scheme, named Z-refined deep support vector data description, exploits a one-class classification-based anomaly detection technique. Numerical results verify that the proposed scheme outperforms various baselines in terms of interference detection performance with limited time or frequency resources for training and is comparable to the performance based on an ideal genie-aided interference suppression scheme. Furthermore, we demonstrate through test equipment experiments using a commercial fifth-generation modem chipset that the proposed scheme shows performance improvements across various 3rd generation partnership project standard channel environments, including tapped delay line-A, -B, and -C models.
title Anomaly Detection-Based UE-Centric Inter-Cell Interference Suppression
topic Information Theory
Signal Processing
url https://arxiv.org/abs/2511.02320