1. A method, comprising:
forming, by an analog beamformer, a super delta channel signal; and
outputting, by the analog beamformer, the super delta channel signal.
2. The method of claim 1, further comprising:
combining, by the analog beamformer, a conjugation of a first independent circular delta channel signal with a sum signal to form a first combined signal that serves as a minuend of the super delta channel signal.
3. The method of claim 2, further comprising:
combining, by the analog beamformer, a second independent circular delta channel signal with a conjugation of the sum signal to form a second combined signal that serves as a subtrahend of the super delta channel signal.
4. The method of claim 3, wherein the sum signal \u03a3, the first independent circular delta channel \u03941, and the second independent circular delta channel \u03942 are represented by
\u2211
\u0394
1
\u0394
2
=
1
1
1
1
1
j
–
1
–
j
1
–
j
–
1
j
\ue8a0
A
B
C
D
where j is an imaginary number \u221a{square root over (\u22121)}, and A is a lower left quadrant, B is a lower right quadrant, C is an upper right quadrant, and D is an upper left quadrant, respectively, of an aperture.
5. The method of claim 3, further comprising:
subtracting, by the analog beamformer, the second combined signal from the first combined signal to form the super delta channel signal.
6. The method of claim 3, wherein a direction finding signal-to-noise ratio (SNR) of the super delta channel signal is 3 decibels larger than a SNR of the first independent circular delta channel signal and the second independent circular delta channel signal.
7. The method of claim 1, wherein the analog beamformer using the super delta channel signal and a sum signal of four aperture quadrants has an accuracy of a three channel system using an azimuth delta, an elevation delta, and the sum signal of the four aperture quadrants.
8. An apparatus, comprising:
a plurality of conjugation components; and
at least two mixers, wherein
the plurality of conjugation components and the at least two mixers are configured to produce a super delta channel signal.
9. The apparatus of claim 8, wherein at least one of the plurality of conjugation components is configured to output a conjugation of an independent circular delta channel.
10. The apparatus of claim 8, wherein the at least two mixers comprise:
a first mixer configured to combine a conjugation of a first independent circular delta channel signal with a sum signal to form a first combined signal; and
a second mixer configured to combine a second independent circular delta channel signal with a conjugation of the sum signal to form a second combined signal.
11. The apparatus of claim 10, wherein one of the plurality of conjugation components is configured to subtract the second combined signal from the first combined signal to produce the super delta channel signal.
12. The apparatus of claim 10, wherein the sum signal E, the first independent circular delta channel \u03941, and the second independent circular delta channel \u03942 are represented by
\u2211
\u0394
1
\u0394
2
=
1
1
1
1
1
j
–
1
–
j
1
–
j
–
1
j
\ue8a0
A
B
C
D
where j is an imaginary number \u221a{square root over (\u22121)}, and A is a lower left quadrant, B is a lower right quadrant, C is an upper right quadrant, and D is an upper left quadrant, respectively, of an aperture.
13. The apparatus of claim 10, wherein a direction finding signal-to-noise ratio (SNR) of the super delta channel signal is 3 decibels larger than a SNR of the first independent circular delta channel signal and the second independent circular delta channel signal.
14. The apparatus of claim 8, wherein the apparatus, using the super delta channel signal and a sum signal of four aperture quadrants, has an accuracy of a three channel system using an azimuth delta, an elevation delta, and the sum signal of the four aperture quadrants.
15. A computer program embodied on a non-transitory computer-readable medium, the computer program configured to cause at least one processor to:
receive digital data streams comprising direction finding information;
process the received digital data streams to produce a super delta channel signal; and
output the super delta channel signal.
16. The computer program of claim 15, wherein the received digital data comprises digital data streams from four array quadrants A, B, C, and D.
17. The computer program of claim 16, wherein the program is further configured to cause the at least one processor to multiply each sample set {a, b, c, d} taken from quadrant streams for quadrants A, B, C, and D by a beamforming matrix
\u2211
\u0394
1
\u0394
2
=
1
1
1
1
1
j
–
1
–
j
1
–
j
–
1
j
\ue8a0
a
b
c
d
.
18. The computer program of claim 17, wherein the program is further configured to cause the at least one processor to produce the super delta channel signal using a complex conjugate of \u03941\u2212\u03942.
19. The computer program of claim 15, wherein the received digital data comprises digital data streams corresponding to an analog sum (\u03a3), azimuth delta (\u0394az), and elevation delta (\u0394el) from a three channel system.
20. The computer program of claim 19, wherein the digital data streams comprise complex data streams of the form
\u2211
\u0394
1
\u0394
2
=
1
0
0
0
(
1
–
j
)
2
(
1
+
j
)
2
0
(
1
+
j
)
2
(
1
–
j
)
2
\ue8a0
\u2211
\u0394
az
\u0394
el
.
21. The computer program of claim 20, wherein the program is further configured to cause the at least one processor to produce the super delta channel signal using a complex conjugate of \u03941\u2212\u03942.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A continuous one-piece apparatus for the protection of roofing materials from weather elements comprising:
a base that attaches to a roof, said base having a top surface, a bottom surface, a first side with a second side parallel to said first side, a third side that is proximate the edge of said roof and a fourth side that is parallel with said third side and that is distal the edge of said roof;
a first panel that is attached to said third side that extends downward from said base at angle so that said first panel is substantially vertical, said panel being substantially planar and transitioning in a second panel that angles away from said panel;
a third panel that is on the opposite side of said second panel that is exposed and from which water drips;
an exposed fourth panel that extends upward from said third panel and that is substantially parallel with said first panel;
a lip extending upward from said fourth side of said base and extending in a direction toward said third side of said based thereby creating an open space between said base and said lip;
a top panel that extends from said exposed fourth panel in a direction away from said exposed fourth panel wherein said top panel is substantially parallel with said base leaving a space between said top panel and said base for the placement therein of roof material.
2. The continuous one-piece apparatus as defined in claim 1 wherein a hem extending upward from said top panel is added that extends in a direction toward said first and fourth panels thereby creating an open space between said top panel and said hem.
3. The continuous one-piece apparatus as defined in claim 1 wherein one or more apertures are placed on said second panel.