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Dong-In Oh

Kyung Hee University · 工学

研究室紹介

Professor Dong-In Oh's research lab specializes in biomedical electrical impedance imaging and sensing, with a focus on developing advanced multi-frequency electrical impedance tomography (mfEIT) systems for functional medical imaging, particularly of the brain. The lab pioneers innovations in high-precision current and voltage signal acquisition, calibration techniques, and electrode array design to enhance image quality and system reliability. They also investigate the electromechanical behavior of conductive materials, such as smart fabrics, for use in wearable and bio-integrated sensors. Their work bridges engineering, biophysics, and clinical applications through the development of novel measurement systems and calibration protocols.

electrical impedance tomographymulti-frequency EITbio-impedance sensingsignal calibrationconductive textiles

Research Overview

Papers
125
Total Citations
1,590
Papers (5y)
23
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
23total
2022
2023
2024
2025
2026
Citations per year (5y)
30total
20222023202420252026

Selected Papers

15
1
Article|97 citations·2007
Multi-frequency EIT system with radially symmetric architecture: KHU Mark1
Tong In Oh, Eung Je Woo, David Holder
SJR Q2Physiological Measurement

We describe the development of a multi-frequency electrical impedance tomography (EIT) system (KHU Mark1) with a single balanced current source and multiple voltmeters. It was primarily designed for imaging brain function with a flexible strategy for addressing electrodes and a frequency range from 10 Hz-500 kHz. The maximal number of voltmeters is 64, and all of them can simultaneously acquire and demodulate voltage signals. Each voltmeter measures a differential voltage between a pair of elect

Electrical and Electronic EngineeringEngineering
2
Article|97 citations·2011
A fully parallel multi-frequency EIT system with flexible electrode configuration: KHU Mark2
Tong In Oh, Hun Wi, Do Yub Kim, Pil Joong Yoo, Eung Je Woo
SJR Q2Physiological Measurement

We report the development of a new multi-frequency electrical impedance tomography (EIT) system called the KHU Mark2. It is descended from the KHU Mark1 in terms of technical details such as digital waveform generation, Howland current source with multiple generalized impedance converters and digital phase-sensitive demodulators. New features include flexible electrode configurations to accommodate application-specific requirements, multiple independent current sources and voltmeters for fully p

Electrical and Electronic EngineeringEngineering
3
Article|92 citations·2008
Validation of a multi-frequency electrical impedance tomography (mfEIT) system KHU Mark1: impedance spectroscopy and time-difference imaging
Tong In Oh, Hwan Koo, Kyung Heon Lee, Sang Min Kim, Jee Hyun Lee, Sung Wan Kim, Jin Keun Seo, Eung Je Woo
SJR Q2Physiological Measurement

Validation and interpretation of reconstructed images using a multi-frequency electrical impedance tomography (mfEIT) requires a conductivity phantom including imaging objects with known complex conductivity (sigma + iomegaepsilon) spectra. We describe imaging experiments using the recently developed mfEIT system called the KHU Mark1 with the frequency range of 10 Hz to 500 kHz. Using a bio-impedance spectroscopy (BIS) system, we first measured complex conductivity spectra of different imaging o

Electrical and Electronic EngineeringEngineering
4
Article|55 citations·2007
Calibration methods for a multi-channel multi-frequency EIT system
Tong In Oh, Kyung Heon Lee, Sang Min Kim, Hwan Koo, Eung Je Woo, David Holder
SJR Q2Physiological Measurement

Multi-channel multi-frequency electrical impedance tomography (EIT) systems require a careful calibration to minimize systematic errors. We describe novel calibration methods for the recently developed KHU Mark1 EIT system. Current source calibration includes maximization of output resistance and minimization of output capacitance using multiple generalized impedance converters. Phase and gain calibrations are used for voltmeters. Phase calibration nulls out the total system phase shift in measu

Electrical and Electronic EngineeringEngineering
5
Article|37 citations·2012
Performance evaluation of wideband bio-impedance spectroscopy using constant voltage source and constant current source
Youssoufa Mohamadou, Tong In Oh, Hun Wi, Harsh Sohal, Adnan Farooq, Eung Je Woo, Alistair McEwan
SJR Q2Measurement Science and Technology

Current sources are widely used in bio-impedance spectroscopy (BIS) measurement systems to maximize current injection for increased signal to noise while keeping within medical safety specifications. High-performance current sources based on the Howland current pump with optimized impedance converters are able to minimize stray capacitance of the cables and setup. This approach is limited at high frequencies primarily due to the deteriorated output impedance of the constant current source when s

Electrical and Electronic EngineeringEngineering
6
Article|33 citations·2014
Electrical Impedance Spectroscopy for Electro-Mechanical Characterization of Conductive Fabrics
Tushar Kanti Bera, Youssoufa Mohamadou, Kyounghun Lee, Hun Wi, Tong In Oh, Eung Je Woo, Manuchehr Soleimani, Jin Keun Seo
SJR Q1SensorsOA

When we use a conductive fabric as a pressure sensor, it is necessary to quantitatively understand its electromechanical property related with the applied pressure. We investigated electromechanical properties of three different conductive fabrics using the electrical impedance spectroscopy (EIS). We found that their electrical impedance spectra depend not only on the electrical properties of the conductive yarns, but also on their weaving structures. When we apply a mechanical tension or compre

Biomedical EngineeringEngineering
7
Article|31 citations·2019
Integrated EIT system for functional lung ventilation imaging
Geuk Young Jang, Ghazal Ayoub, Young‐Eun Kim, Tong In Oh, Chi Ryang Chung, Gee Young Suh, Eung Je Woo
SJR Q2BioMedical Engineering OnLineOA

BACKGROUND: Electrical impedance tomography (EIT) has been used for functional lung imaging of regional air distributions during mechanical ventilation in intensive care units (ICU). From numerous clinical and animal studies focusing on specific lung functions, a consensus about how to use the EIT technique has been formed lately. We present an integrated EIT system implementing the functions proposed in the consensus. The integrated EIT system could improve the usefulness when monitoring of mec

Electrical and Electronic EngineeringEngineering
8
Article|27 citations·2012
Feasibility of magnetic resonance electrical impedance tomography (MREIT) conductivity imaging to evaluate brain abscess lesion:In vivocanine model
Tong In Oh, Woo Chul Jeong, Alistair McEwan, Hee Myung Park, Hyung Joong Kim, Oh In Kwon, Eung Je Woo
SJR Q1Journal of Magnetic Resonance ImagingOA

We performed in vivo disease model animal experiments to validate the MREIT technique providing conductivity information of tissues in situ to be utilized in clinical applications.

Electrical and Electronic EngineeringEngineering
9
Article|26 citations·2013
A Local Region of Interest Imaging Method for Electrical Impedance Tomography with Internal Electrodes
Hyeuknam Kwon, Alistair McEwan, Tong In Oh, Adnan Farooq, Eung Je Woo, Jin Keun Seo
Computational and Mathematical Methods in MedicineOA

Electrical Impedance Tomography (EIT) is a very attractive functional imaging method despite the low sensitivity and resolution. The use of internal electrodes with the conventional reconstruction algorithms was not enough to enhance image resolution and accuracy in the region of interest (ROI). We propose a local ROI imaging method with internal electrodes developed from careful analysis of the sensitivity matrix that is designed to reduce the sensitivity of the voxels outside the local region

Electrical and Electronic EngineeringEngineering
10
Article|25 citations·2007
Feasibility of breast cancer lesion detection using a multi-frequency trans-admittance scanner (TAS) with 10 Hz to 500 kHz bandwidth
Tong In Oh, Jee Hyun Lee, Jin Keun Seo, Sung Wan Kim, Eung Je Woo
SJR Q2Physiological Measurement

We describe a new multi-frequency technique for breast cancer detection. Applying a constant voltage with multiple sinusoidal frequencies between a reference electrode on a distal part of a patient and a scan probe placed on the breast, we measure exit currents from an array of electrodes inside the probe that are kept at the ground potential. The distribution of measured exit currents is called the trans-admittance map and the instrument is called the trans-admittance scanner (TAS). We assume a

Electrical and Electronic EngineeringEngineering
11
Article|24 citations·2012
Flexible electrode belt for EIT using nanofiber web dry electrodes
Tong In Oh, Tae Eui Kim, Sun Yoon, Kap Jin Kim, Eung Je Woo, Rosalind Sadleir
SJR Q2Physiological Measurement

Efficient connection of multiple electrodes to the body for impedance measurement and voltage monitoring applications is of critical importance to measurement quality and practicality. Electrical impedance tomography (EIT) experiments have generally required a cumbersome procedure to attach the multiple electrodes needed in EIT. Once placed, these electrodes must then maintain good contact with the skin during measurements that may last several hours. There is usually also the need to manage the

Electrical and Electronic EngineeringEngineering
12
Article|22 citations·2014
Design of a microscopic electrical impedance tomography system for 3D continuous non-destructive monitoring of tissue culture
Eunjung Lee, Hun Wi, Alistair McEwan, Adnan Farooq, Harsh Sohal, Eung Je Woo, Jin Keun Seo, Tong In Oh
SJR Q2BioMedical Engineering OnLineOA

BACKGROUND: Non-destructive continuous monitoring of regenerative tissue is required throughout the entire period of in vitro tissue culture. Microscopic electrical impedance tomography (micro-EIT) has the potential to monitor the physiological state of tissues by forming three-dimensional images of impedance changes in a non-destructive and label-free manner. We developed a new micro-EIT system and report on simulation and experimental results of its macroscopic model. METHODS: We propose a new

Electrical and Electronic EngineeringEngineering
13
Article|22 citations·2014
Electrical impedance imaging system using FPGAs for flexibility and interoperability
Harsh Sohal, Hun Wi, Alistair McEwan, Eung Je Woo, Tong In Oh
SJR Q2BioMedical Engineering OnLineOA

BACKGROUND: Modern EIT systems require simultaneously operating multiple functions for flexibility, interoperability, and clinical applicability. To implement versatile functions, expandable design and implementation tools are needed. On the other hand, it is necessary to develop an ASIC-based EIT system to maximize its performance. Since the ASIC design is expensive and unchangeable, we can use FPGAs as a prior step to the digital ASIC design and carefully classify which functions should be inc

Electrical and Electronic EngineeringEngineering
14
Article|21 citations·2011
Ion mobility imaging and contrast mechanism of apparent conductivity in MREIT
Tong In Oh, Young Tae Kim, Atul S. Minhas, Jin Keun Seo, Oh In Kwon, Eung Je Woo
SJR Q1Physics in Medicine and Biology

Magnetic resonance electrical impedance tomography (MREIT) aims to produce high-resolution cross-sectional images of conductivity distribution inside the human body. Injected current into an imaging object induces a distribution of internal magnetic flux density, which is measured by using an MRI scanner. We can reconstruct a conductivity image based on its relation with the measured magnetic flux density. In this paper, we explain the contrast mechanism in MREIT by performing and analyzing a se

Electrical and Electronic EngineeringEngineering
15
Article|20 citations·2015
Real‐time conductivity imaging of temperature and tissue property changes during radiofrequency ablation: An ex vivo model using weighted frequency difference
Hun Wi, Alistair McEwan, Vincent Lam, Hyung Joong Kim, Eung Je Woo, Tong In Oh
SJR Q3Bioelectromagnetics

We demonstrated the feasibility of time difference and weighted frequency difference conductivity imaging for real-time monitoring of temperature distribution and ablation region estimation during radiofrequency (RF) ablation. The electrical conductivity spectrum of biological tissue reflects mobility of ions in intra- and extra-cellular fluids and changes in cellular morphology induced by heating. The time series conductivity spectra were measured in an ex vivo bovine liver by a high-speed elec

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringBiomedical EngineeringSurgeryPhysiologyRheumatologyNeurology

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