Claims
- 1. A method comprising the steps of:(a) coupling a carrier signal through N successive mixer stages; and (b) applying, to said N successive mixer stages, respectively different, relatively low rate, PN spreading sequences, that are mutually offset in time by a fraction of a chip, so as to produce, at an output of an Nth one of said mixer stages, a direct sequence spread spectrum carrier having its energy spread out over a bandwidth that is N times the spreading bandwidth of an individual one of said PN spreading sequences.
- 2. The method according to claim 1, further including the steps of:(c) launching the direct sequence spread spectrum carrier produced in step (b) as a test signal so that said test signal is be incident upon an antenna; (d) receiving said test signal at said antenna; (e) extracting energy in said test signal received at said antenna in step (d), while excluding energy in unwanted signals that may be incident upon said antenna, by correlating a signal demodulated from said test signal as received by said antenna with a replica of a PN spreading sequence for said test signal; and (f) processing said energy extracted in step (e) to derive a measure of at least one characteristic of said antenna.
- 3. The method according to claim 2, wherein step (c) comprises launching said test signal from a plurality of spaced apart locations having respectively different azimuth and elevation parameters relative to the boresight of said antenna.
- 4. A communication signal arrangement comprising:a cascaded arrangement of N mixer stages adapted to have a carrier signal coupled through successive ones thereof; a direct spreading PN generator that is operative to couple a plurality of different, relatively low rate, PN spreading sequences, mutually offset in time by a fraction of a chip, to respective ones of said N mixer stages, and thereby produce, at an output of an Nth mixer stage of said plurality of N mixer stages, a direct sequence spread spectrum carrier signal, energy of which spread out over a bandwidth that is N times the spreading bandwidth of an individual one of said PN spreading sequences.
- 5. The communication signal arrangement according to claim 4, further comprising:a test signal source that is operative to launch said direct sequence spread spectrum carrier signal as a test signal so that said test signal is incident upon an antenna spaced apart from said test signal source; a receiver coupled to demodulate a signal received by said antenna, and to correlate a replica of said PN spreading sequences of said test signal with the demodulated signal so as to extract energy in said test signal and exclude energy in unwanted signals that may be incident upon said antenna; and a signal processor, coupled to said receiver, and being operative to process the energy extracted by said receiver and derive a measure of at least one characteristic of said antenna.
- 6. The communication signal arrangement according to claim 5, wherein said test signal source is operative to launch said test signal from a plurality of spaced apart locations having respectively different azimuth and elevation parameters relative to the boresight of said antenna.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation of Ser. No. 09/294,940 filed on Apr. 20, 1999 now U.S. Pat. No. 6,184,826. The subject matter of the present invention relates to that disclosed in U.S. patent application, Ser. No. 09/295,015 now U.S. Pat. No. 6,236,362 filed coincident herewith, entitled: “Mitigation of Antenna Test Range Impairments Caused by Presence of Undesirable Emitters,” by M. Walley et al (hereinafter referred to as the '362 patent), assigned to the assignee of the present application, and the disclosure of which is incorporated herein.
US Referenced Citations (10)
Continuations (1)
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Number |
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09/294940 |
Apr 1999 |
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Child |
09/777214 |
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US |