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Integrated sensing and jamming waveform design for range-velocity deception via hybrid intelligent optimization

  • Yuanshuai Li
  • , Yi Liu
  • , Zhaopeng Cao
  • , Kaixiang Zhang*
  • , Yan Wang
  • , Quanhua Liu
  • *Corresponding author for this work
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

The design of integrated sensing and jamming waveform (ISJW) aims to seamlessly unify radar sensing and electronic jamming functionalities within a single transmission framework. Although existing research has made progress in shared waveform construction and false-target generation, a unified framework remains elusive for achieving range–velocity (RV) deception while mitigating the sidelobe incoherence caused by velocity-induced pulse agility. To address these issues, this paper proposes an ISJW design method for RV deception via hybrid intelligent optimization. Specifically, a multi-dimensional modulation ISJW model is established, and the formation mechanism of two-dimensional false targets on the RV plane is analyzed. Furthermore, the pulse-agility period is derived from the slow-time phase evolution induced by relative velocities, and a joint mismatched filtering approach is introduced to recover sidelobe coherence. Subsequently, a constant-modulus multi-objective optimization problem is formulated to balance sidelobe suppression and inter-pulse similarity. To solve this, an integrated differential evolution and annealing (IDEA) algorithm is developed, incorporating a group-wise incremental synthesis mechanism to reduce computational overhead. Simulations demonstrate that the proposed method achieves RV deception for multiple false targets, effectively mitigates Doppler defocusing, and preserves sensing performance.

Original languageEnglish
Article number110860
JournalSignal Processing
Volume251
DOIs
Publication statusPublished - Feb 2027

Keywords

  • Integrated sensing and jamming waveform
  • Intelligent optimization algorithm
  • Joint mismatched filter
  • Range–velocity deception

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