Abstract

To address the problem of the harsh time-varying multi-path interference (TMI) incurred by moving underwater acoustic communications, a joint multiple turbo equalization (JMTE) algorithm is proposed. The superimposed training scheme and the single turbo equalization have been proposed to address the issue of the TMI. To tackle the more challenging fast TMI, the symbol block has been successfully divided into the segments, and the channel correlation between (among) the segments has been established, improving the tracking performance for fast time-varying channels. When the channels sharply change, the channel correlation between (among) the segments is broken, leading to decoding failure. Therefore, we develop the JMTE algorithm with the calculational complexity of the logarithmic order per symbol, where the channel of each segment is separately estimated, so that the establishment of the channel correlation is avoided, and the corresponding separate equalization results of the segments are combined to construct a joint equalization result. Unlike the Gaussian approximate process of the input symbols of the traditional linear minimum mean square error equalization, the discrete independent random variable form of the input symbols of the JMTE algorithm is retained to avoid input information loss. The ‘separate’ channel estimates, the JMTE and decoding are iteratively operated, where based on the low-complexity diagonal-matrix message passing, the information exchange between the JMTE equalizer and the decoder is carried out to dramatically enhance the equalization performance by utilizing the encoding redundant information. Moving underwater communication experiments were done in 2021 (the communication distance was about 5.5 km, and the relative speed was about 0.5 m/s), and the experimental results verify the effectiveness of the proposed algorithm.

Highlights

  • Moving underwater communication technology can be employed in many fields, such as underwater warfare, marine resource development, etc

  • The incoherent modulation, including multiple frequency shift keying (MFSK), has better anti-frequency-shift performance than the coherent modulation, but it has the disadvantage of low transmission efficiency

  • Based on [20] [21], we develop a joint multiple turbo equalization (JMTE) algorithm, where each segment is fully independent, i.e., channel estimate and equalization of each segment are carried out independently, the ‘separate’ equalization results of multiple segments are combined into one joint equalization result

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Summary

INTRODUCTION

Moving underwater communication technology can be employed in many fields, such as underwater warfare, marine resource development, etc. Unlike the ‘easy’ spread spectrum code in spread spectrum technology, single carrier technology uses the channel encoding with redundant information, such as convolutional encoding, which can be used to greatly improve the bit error rate (BER) performance by using the redundant information. Considering the data transmission rate and the communication reliability for moving underwater acoustic communications, the single carrier technology is employed in this paper. The ‘separate’ channel estimate of each segment, the JMTE, and decoding are iteratively operated to significantly improve the capability of dealing with the harsh TMI and the corresponding equalization performance. The GAMP equalizer in [20], the segment strategy in [21], the ‘separate’ channel estimates of the segments, and the JMTE proposed in this paper, are combined to form the ST-JMTE algorithm to combat the harsh time-varying channels.

SYSTEM STRUCTURE
PRINCIPLE OF THE ST-JMTE ALGORITHM
SIMULATION AND EXPERIMENTAL RESULTS
CONCLUSION
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