Study of the Characteristics of Second-Order Underdamped Unsaturated Stochastic Resonance System Driven by OFDM Signals
Abstract
:1. Introduction
- A method for enhancing and demodulating OFDM signals based on SUUBSR is proposed.
- OFDM signals are divided into in-phase and quadrature components, which are processed separately by stochastic resonance, addressing the limitation that stochastic resonance systems cannot directly process OFDM signals.
- Analytical expressions for the transient and steady-state responses, as well as time-resolved expressions, of the OFDM signal enhancement and demodulation system based on SUUBSR are theoretically derived. The influence of various parameters on the transient and steady-state responses of the system is analyzed.
- The potential energy loss of OFDM signals during enhancement processing by stochastic resonance is theoretically analyzed.
- The enhancement and demodulation system based on SUUBSR is implemented for OFDM signals with different subcarrier modulation schemes.
2. Model of Second-Order Underdamped Unsaturated Bistable Stochastic Resonance System Driven by OFDM Signals
2.1. Potential Function Model
2.2. OFDM Baseband Complex Signal Model and the SUUBSR System Model
OFDM Baseband Complex Signal Model
2.3. OFDM Signal Enhancement and Demodulation Model Based on Second-Order Underdamped Unsaturated Stochastic Resonance System
3. Transient Response Analysis of Second-Order Underdamped Stochastic Resonance System Excited by OFDM Signals
3.1. First Passage Time Analysis of System Response
3.2. Transient Steady-State Response Analysis of Underdamped Stochastic Resonance System
3.2.1. Transient Response Theory Derivation
3.2.2. Influence of System Parameters and Input Signal Frequency on the System Response Speed
3.3. Steady-State Response Analysis
4. Experimental Simulation
4.1. Detection Simulation of Communication Signal Waveform by FUBSR and SUUBSR
4.1.1. Detection Simulation of Single-Carrier Signal Waveform by FUBSR and SUUBSR
4.1.2. Simulation of Detection of OFDM Signal Waveforms by FUBSR Stochastic Resonance and SUUBSR Systems
4.2. Performance Analysis of OFDM Signal Demodulation
4.2.1. Simulation of Demodulation Process of OFDM Signals by FUBSR and SUUBSR Systems
4.2.2. Demodulation Effect of OFDM Signals in Different Stochastic Resonance Systems
4.3. System Bit Error Rate Analysis
4.4. Algorithm Complexity Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
Abbreviation | Full English Name |
OFDM | Orthogonal frequency division multiplexing |
SR | Stochastic resonance |
MPFT | The mean first passage time |
SUUBSR | Second-order underdamped unsaturated bistable stochastic resonance |
FUBSR | First-order unsaturated bistable stochastic resonance |
SNR | Signal–noise ratio |
BER | Bit error rate |
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System | Number of Multiplications | Number of Additions |
---|---|---|
FUBSR | ||
SUUBSR |
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Liu, G.; Wang, D. Study of the Characteristics of Second-Order Underdamped Unsaturated Stochastic Resonance System Driven by OFDM Signals. Appl. Sci. 2024, 14, 11324. https://doi.org/10.3390/app142311324
Liu G, Wang D. Study of the Characteristics of Second-Order Underdamped Unsaturated Stochastic Resonance System Driven by OFDM Signals. Applied Sciences. 2024; 14(23):11324. https://doi.org/10.3390/app142311324
Chicago/Turabian StyleLiu, Gaohui, and Dekang Wang. 2024. "Study of the Characteristics of Second-Order Underdamped Unsaturated Stochastic Resonance System Driven by OFDM Signals" Applied Sciences 14, no. 23: 11324. https://doi.org/10.3390/app142311324
APA StyleLiu, G., & Wang, D. (2024). Study of the Characteristics of Second-Order Underdamped Unsaturated Stochastic Resonance System Driven by OFDM Signals. Applied Sciences, 14(23), 11324. https://doi.org/10.3390/app142311324