Claims
- 1. A method for improving range resolution of a radar receiving linear frequency modulated first radar returns reflected from a transmitted first sub-pulse and second radar returns reflected from a transmitted second sub-pulse,said first transmitted sub-pulse having linear frequency modulation centered about a first center frequency, f1, and transmitted at time t1, said second transmitted sub-pulse having linear frequency modulation centered about a second center frequency, f2, and transmitted at time t2, said second center frequency higher than said first center frequency, said first transmitted sub-pulse and said second transmitted sub-pulse having a linear frequency modulated chirp slope γ, said method comprising the step of sample shifting and phase adjusting said first radar returns reflected from said transmitted first sub-pulse with respect to said second radar returns reflected from said second sub-pulse to form a line of frequency modulated chirp slope γ with respect to time, said line connecting said first center frequency with said second center frequency.
- 2. The method for improving range resolution as claimed in claim 1 wherein said first sub-pulse and second sub-pulse have equal time duration, said second center frequency equidistant from a reference frequency, said returns reflected by a target located at a location near a reference point s, further comprising the steps of:computing said reference frequency fref centered with respect to said first center frequency and said second center frequency, fref=f1+f22;computing a reference time tref=t1+t22;computing a time delay τs,ref to said reference point s with respect to said reference time tref using τs,ref=τs,1+τs,22;computing a time delay τs,m to said reference point s with respect to time tm for m=1, 2; time shifting said first sub-pulse returns received from said first sub-pulse by an amount Δ τm=-(fref-fm)γ+τs,ref-τs,mthereby time shifting and phase adjusting said return information obtained from said first sub-pulse with information obtained from said second sub-pulse to increase the apparent receiving bandwidth of said radar.
- 3. A method for improving range resolution as claimed in claim 1 wherein said linear frequency modulation has a positive slope.
- 4. A method for improving range resolution as claimed in claim 1 wherein said first sub-pulse has linear frequency modulation extending from a minimum frequency of f1,min to a maximum frequency f1,max and said second sub-pulse has linear frequency modulation extending from a minimum frequency of f2,min to a maximum frequency f2,max.
- 5. A method for improving range resolution as claimed in claim 4 wherein f1,max and f2,min overlap and data generated during this overlap is deleted so as not to contribute to the resulting radar image of said target.
- 6. A method for improving range resolution as claimed in claim 5 for a target resolution δ, number of steps Mstep, main lobe broadening factor k, overlap Oυ and speed of light C, wherein said radar full bandwidth is BW=kC2 δ,the single step bandwidth BW1 is BW1=BWMstep (1-Ov)+Ov,and the center frequency fm at step m for m=1, 2 . . . Mstep is computed from fm=fc-BW2+BW1[(m-1) (1-Ov)+1/2].
- 7. A method for improving range resolution as claimed in claim 5 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, are de-chirped prior to said step of sample shifting and phase adjusting.
- 8. A method for improving range resolution as claimed in claim 7 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, are de-skewed prior to said step of sample shifting and phase adjusting.
- 9. A method for improving range resolution as claimed in claim 7 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, are de-skewed after said step of sample shifting and phase adjusting.
- 10. A method for improving range resolution as claimed in claim 9 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, each have a pulse width Tp covering a swath width SW, traveling at speed of light C, the overlap frequency O2υ of said first radar return and said second radar return is computed from: O2v=2·SWC·Tp.
- 11. A radar system having improved range resolution from linear frequency modulated first radar returns reflected from a transmitted first sub-pulse and second radar returns reflected from a transmitted second sub-pulse,said first transmitted sub-pulse having linear frequency modulation centered about a first center frequency, f1, and transmitted at time t1, said second transmitted sub-pulse having linear frequency modulation centered about a second center frequency, f2, and transmitted at time t2, said second center frequency higher than said first center frequency, said first transmitted sub-pulse and said second transmitted sub-pulse having a linear frequency modulated chirp slope γ, comprising: means for sample shifting and phase adjusting said first radar returns reflected from said transmitted first sub-pulse with respect to said second radar returns reflected from said second sub-pulse to form a line of frequency modulated chirp slope γ with respect to time, said line connecting said first center frequency with said second center frequency.
- 12. The radar as claimed in claim 11 wherein said first sub-pulse and second sub-pulse have equal time duration, said second center frequency equidistant from a reference frequency, said returns reflected by a target located at a location near a reference point s, further comprising:means for computing said reference frequency fref centered with respect to said first center frequency and said second center frequency, fref=f1+f22;a reference time tref=t1+t22;a time delay τs,m to said reference point s with respect to time tm for m=1, 2; a time delay τs,ref to said reference point s with respect to said reference time tref; means for time shifting said first sub-pulse returns received from said first sub-pulse by an amount Δ τm=-(fref-fm)γ+τs,ref-τs,mthereby time shifting and phase aligning said return information obtained from said first sub-pulse with information obtained from said second sub-pulse to increase the apparent receiving bandwidth of said radar.
- 13. A radar as claimed in claim 11 wherein said linear frequency modulation has a positive slope.
- 14. A radar as claimed in claim 11 wherein said first sub-pulse has linear frequency modulation extending from a minimum frequency of f1,min to a maximum frequency f1,max and said second sub-pulse has linear frequency modulation extending from a minimum frequency of f2,min to a maximum frequency f2,max.
- 15. A radar as claimed in claim 14 wherein f1,max and f2,min overlap and data generated during this overlap is deleted so as not to contribute to the resulting radar image of said target.
- 16. A radar as claimed in claim 15 having a target resolution δ, number of steps Mstep, main lobe broadening factor k, overlap Oυ and speed of light C, wherein said radar full bandwidth is BW=kC2 δthe single step bandwidth BW1 is BW1=BWMstep (1-Ov)+Ov,and a center frequency fm at step m for m=1, 2 . . . Mstep is computed from fm=fc-BW2+BW1[(m-1) (1-Ov)+1/2].
- 17. A radar as claimed in claim 15 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, are de-chirped prior to said sample shifting and phase adjusting.
- 18. A radar as claimed in claim 17 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, are de-skewed prior to said sample shifting and phase adjusting.
- 19. A radar as claimed in claim 17 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, are de-skewed after sample shifting and phase adjusting.
- 20. A radar as claimed in claim 19 wherein said first radar returns reflected from said transmitted first sub-pulse and second radar returns reflected from said transmitted second sub-pulse, each have a pulse width Tp covering a swath width SW, traveling at speed of light C, the overlap frequency O2υ of said first radar return and said second radar return is computed from: O2v=2·SWC·Tp.
Government Interests
This invention was made with Government support under Contract No. F19628-00-C-0100 awarded by the Department of the Air Force. The Government has certain rights in this invention.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
5019825 |
McCorkle |
May 1991 |
A |
5339084 |
Watanabe et al. |
Aug 1994 |
A |
5428361 |
Hightower et al. |
Jun 1995 |
A |
5731784 |
Barron et al. |
Mar 1998 |
A |
Foreign Referenced Citations (1)
Number |
Date |
Country |
PCTGB8600347 |
Dec 1986 |
WO |