Method for detecting chaotic oscillator of submarine weak target signal
A chaotic oscillator and weak target technology, applied in the field of submarine weak target signal detection
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Embodiment 1
[0015] Embodiment 1: the chaos detection of type A submarine line spectrum analysis, its steps are as follows:
[0016] (a) Establish a chaotic oscillator detection model using the Duffing equation.
[0017] Duffing's equation is a second-order differential equation with cubic terms, which oscillates under external excitation, resulting in periodic motion and chaotic motion. Its Holmes type Duffing equation is:
[0018] x n (t)+kx'(t)-x(t)+x 3 (t)=Fcos(t) (1)
[0019] In the formula, x(t) is the system equation variable, k is the damping ratio, Fcos(t) is the reference signal of the periodic driving force, F is the amplitude of the periodic driving force, -x(t)+x 3 (t) is the nonlinear restoring force. When the external signal is determined, the characteristics of the system mainly depend on the nonlinear restoring force of the system. Considering the lower limit of detection of weak signals, the signal-to-noise ratio of chaotic system detection, and the proof of system ...
Embodiment 2
[0044] Embodiment 2: the chaos detection of type B submarine line spectrum analysis, its steps are as follows:
[0045] (a) Establish a chaotic oscillator detection model using the Duffing equation.
[0046] Duffing's equation is a second-order differential equation with cubic terms, which oscillates under external excitation, resulting in periodic motion and chaotic motion. Its Holmes type Duffing equation is:
[0047] x n (t)+kx'(t)-x(t)+x 3 (t)=Fcos(t) (1)
[0048] In the formula, x(t) is the system equation variable, k is the damping ratio, Fcos(t) is the reference signal of the periodic driving force, F is the amplitude of the periodic driving force, -x(t)+x 3 (t) is the nonlinear restoring force. When the external signal is determined, the characteristics of the system mainly depend on the nonlinear restoring force of the system. Considering the lower limit of detection of weak signals, the signal-to-noise ratio of chaotic system detection, and the proof of system ...
Embodiment 3
[0070] Embodiment 3: the chaos detection of C submarine line spectrum analysis, its steps are as follows:
[0071] (a) Establish a chaotic oscillator detection model using the Duffing equation.
[0072] Duffing's equation is a second-order differential equation with cubic terms, which oscillates under external excitation, resulting in periodic motion and chaotic motion. Its Holmes type Duffing equation is:
[0073] x n (t)+kx'(t)-x(t)+x 3 (t)=Fcos(t) (1)
[0074] In the formula, x(t) is the system equation variable, k is the damping ratio, Fcos(t) is the reference signal of the periodic driving force, F is the amplitude of the periodic driving force, -x(t)+x 3 (t) is the nonlinear restoring force. When the external signal is determined, the characteristics of the system mainly depend on the nonlinear restoring force of the system. Considering the lower limit of detection of weak signals, the signal-to-noise ratio of chaotic system detection, and the proof of system chaos...
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