EP1509783B1

Methods and apparatus for conversion of radar return data

Abstract

This record has no abstract on file.

EP1509783B1, drawing sheet 1
Sheet 1 of 20

Term

Term ended

Expired 12 May 2023, 3.4 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

10 claims: 1 independent, 9 dependent

  1. 1
    An in-phase/quadrature component (IQ) mixer (306), said mixer configured to reject returns from a negative doppler shift swath in order to mitigate corruption of a positive doppler shift swath, said mixer comprising:a sample delay element (330) configured to produce a quadrature component of the returned swaths;a plurality of mixer elements, at least one said mixer element (322) configured to sample an in-phase component of the returned swaths at a pulse repetition interval, at least one said mixer element (332) configured to sample the quadrature component at a pulse repetition interval;a plurality of low pass filters electrically connected to outputs of said mixer elements, at least one said low pass filter (324) configured to filter the in-phase component, at least one said low pass filter (334) configured to filter the quadrature component;a plurality of decimators electrically connected to outputs of said low pass filters, at least one said decimator (326) configured to down sample the in-phase component to a doppler frequency, at least one said decimator(336) configured to down sample the quadrature component to the doppler frequency;a plurality of all pass filters electrically connected to outputs of said decimators, at least one said all pass filter (328) configured to filter the down sampled in-phase component, at least one said all pass filter (338) configured to filter the down sampled quadrature component;and a subtraction element (340) electrically connected to outputs of said all pass filters, said subtraction element configured to subtract the filtered and down sampled quadrature component from the filtered and down sampled in-phase component, the resulting difference signal containing the positive doppler shift swath.
  2. 2
    A mixer (306) according to Claim 1 wherein said mixer elements (322, 332) are configured to sample the components at a multiple of the frequency of the input signal.
  3. 3
    A mixer (306) according to Claim 2 wherein the frequency of the input signal is 100MHz and said mixer elements (322,332) are configured to sample the components of the input signal at 25MHz.
  4. 4
    A mixer (306) according to Claim 1 wherein said all pass filters (328, 338) comprise four cascaded second order infinite impulse response (IIR) filters.
  5. 5
    A mixer (306) according to Claim 4 wherein said second order IIR filter operate according to output = ((A0×input) + (A1×P_in) + (A2×PP_in) - (B1×P_out) - (B2×PP_out))B0, where P_in is the input from the previous sample, PP_in is the input from two samples previous, P_out is the output from the previous sample, PP_out is the output from two samples previous, and A0, A1, A2, B0, B1, and B2 are coefficients.
  6. 6
    A mixer (306) according to Claim 5 wherein a first IIR filter (352) for an in-phase component is configured with coefficients A2=(4.0 / T) / T + (2.0 × w0 × a/T) + w0 × w0, A1= (-8.0/T)/T+2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0× w0 × a/T) + w0 × w0, B2 =(4.011) / T -(2.0 × w0 × a/B + w0 × w0, B1 = (-8.0 / T) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × w0 × a/T) + w0 × w0, where a = 1.0 / 0.3225, w0 = 57.956, and T = 1.0 / a base band sampling frequency, and a first IIR filter (352) for a quadrature component is configured with coefficients A2 = (4.0 / T) / T + (2.0 × w0 × e/T) + w0 × w0, A1 = (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 /T) / T - (2.0 × w0 × e/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × e/T) + w0 × w0, B1 = (-8.0 /T) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × w0 × e/T) + w0 × w0, where e= 1.0 /0.3908, w0 = 152.05, and T = 1.0 / a base band sampling frequency.
  7. 7
    A mixer (306) according to Claim 5 wherein a second IIR filter (354) for an in-phase component is configured with coeffcients A2 = (4.0 / T) / T + (2.0 × w0 × b/T) + w0 × w0, A1 = (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0 × w0 × b/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × b/T) + w0 × w0, B1 = (-8.0 / T) / T + 2.0 × w0 × w0, and B0 = (4.0 /T) / T + (2.0 × w0 × b/T) + w0 × w0, where b = 1.0/0.4071, w0 = 1198.2, and T = 1.0 / a base band sampling frequency, and a second IIR filter (364) for a quadrature component is configured with coefficients A2 = (4.0 / T) / T + (2.0 × w0 × f/T) + w0 × w0, A1 = (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0 × w0 × f/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × f/T) + w0 × w0, B1 = (-8.0 / T) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × w0 × f/T) + w0 × w0, where f=1.0 /.0.4073, w0 = 2326.03, and T = 1.0 / a base band sampling frequency.
  8. 8
    A mixer (306) according to Claim 5 wherein a third IIR filter (356) for an in-phase component is configured with coefficients A2 = (4.0 / T) / T + (2.0 × w0 × c/T) + w0 × w0, A1 = (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0 × w0 × c/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × c/T) + w0 × w0, B1 = (-8.0 / T) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × w0 × c/T) + w0 × w0, where c = 1.0 / 0.4073, w0 = 16974.0, and T = 1.0 / a base band sampling frequency, and a third IIR filter (366) for a quadrature component is configured with coefficients A2 = (4.0 / T) / T + (2.0 × w0 × g/T) + w0 × w0, A1= (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0 × w0 × g/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × g/T) + w0 × w0, B 1 = (-8.0 / T) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × w0 × g/T) + w0 × w0, where g = 1.0 / 0.4071, w0 = 32949.65, and T = 1.0 / a base band sampling frequency.
  9. 9
    A mixer according to Claim 5 wherein a fourth IIR filter (358) for an in-phase component is configured with coefficients A2 = (4.0 / T) T + (2.0 × w0 × d/T) + w0 × w0, A1 = (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0 × w0 × d/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × d/T) + w0 × w0, B1 = (-8.0 T ) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × two × d/T) + w0 × w0, where d =1.0 / 0.3908, w0 = 259583.5, and T = 1.0 / a base band sampling frequency, and a fourth IIR filter (368) for a quadrature component is configured with coefficients A2 = (4.0 / T) / T + (2.0 × w0 × h/T) + w0 × w0, A1 = (-8.0 / T) / T + 2.0 × w0 × w0, A0 = (4.0 / T) / T - (2.0 × w0 × h/T) + w0 × w0, B2 = (4.0 / T) / T - (2.0 × w0 × h/T) + w0 × w0, B1 = (-8.0 / T) / T + 2.0 × w0 × w0, and B0 = (4.0 / T) / T + (2.0 × w0 × h/T) + w0 × w0, where h = 1.0 / 0.3225, w0 = 681178.9, and T = 1.0 / a base band sampling frequency.
  10. 10
    A mixer (306) according to Claim 1 wherein said sample delay element (330) is configured to produce a quadrature component by shifting a phase of an in-phase component by 90 degrees.