Method and transmitter for analog beam steering
Disclosed is a transmitter configured for analog beam steering, the transmitter comprising a plurality of antenna branches, each having an antenna ( 326 ). The transmitter comprises, at each of the antenna branches, a signal splitter ( 308 ) for splitting an analog radio signal into a number of beam signals, the number of beam signals equals a number of desired beams to be transmitted. Further, the transmitter comprises, for each of the number of beam signals, a phase shifter ( 310, 312 ) for phase shifting the beam signal according to a phase shift setting for that beam and for that antenna branch, the phase shift settings being taken from a single look-up table, and a signal combiner ( 314 ) for combining the phase shifted beam signals into one combined signal. Further, the transmitter is arranged for transmitting the combined signal from the antenna ( 326 ) of that antenna branch towards a receiver.
1 . A method for analog beam steering performed by a transmitter of a wireless communication network, the transmitter comprising a plurality of antenna branches, each antenna branch comprising an antenna, the method comprising, for each antenna branch:
receiving an analog radio signal, the analog radio signal being the same at each of the antenna branches;
splitting the analog radio signal into a number of beam signals, the number of beam signals equals a number of desired beams to be transmitted, the number of beams being at least two;
for each of the beam signals, phase shifting the beam signal according to a phase shift setting for that beam and for that antenna branch, the phase shift settings being taken from a single look-up table that is common for the number of beams;
combining the phase shifted beam signals into one combined signal; and
transmitting the combined signal from the antenna of that antenna branch towards a receiver.
2 . The method of claim 1 , further comprising:
for each antenna branch, amplitude tapering the combined signal using an isolation impedance arranged at the antenna branch.
3 . The method of claim 2 , wherein the amplitude tampering is performed without calculating or tabulating an attenuation of the amplitude tampering.
4 . The method of claim 2 , wherein the isolation impedance is configured such that no power is reflected back into a generator of the signal.
5 . The method of claim 1 , further comprising, before the analog radio signal is received at each of the antenna branches:
receiving a digital baseband signal;
converting the signal into an analog form;
transforming the signal from baseband frequency into radio frequency, and
splitting the signal into a number of signals equaling the number of antenna branches.
6 . The method of claim 1 , wherein the phase shift setting for each of the beam signals is independent of the number of beam signals to be transmitted.
7 . The method of claim 1 , wherein the single look-up table that is common for the number of beams does not comprise amplitude taper values.
8 . The method of claim 1 , wherein, for each of the beam signals, only one phase shift setting for the antenna branch is used from the single look-up table.
9 . A transmitter configured for analog beam steering, the transmitter comprising a plurality of antenna branches, each antenna branch comprising an antenna, the transmitter comprising, at each of the antenna branches:
a signal splitter for receiving an analog radio signal, the analog radio signal being the same at each of the antenna branches, the signal splitter further being arranged for splitting the analog radio signal into a number of beam signals, the number of beam signals equals a number of desired beams to be transmitted, the number of beams being at least two;
for each of the beam signals, a phase shifter for phase shifting the beam signal according to a phase shift setting for that beam and for that antenna branch, the phase shift settings being taken from a single look-up table;
a signal combiner for combining the phase shifted beam signals into one combined signal, and
wherein the transmitter is arranged for transmitting the combined signal from the antenna of that antenna branch towards a receiver.
10 . The transmitter of claim 9 , further comprising, for each antenna branch and at the signal combiner, an isolation impedance for amplitude tapering of the signal.
11 . The transmitter of claim 10 , wherein the signal splitter is a hybrid power splitter and the signal combiner is a hybrid combiner, and wherein the isolation impedance is arranged at the output of the signal combiner 314 between the respective antenna branch and ground.
12 . The transmitter of claim 10 , wherein the signal splitter is a Wilkinson divider and the signal combiner is a Wilkinson combiner, and wherein each antenna branch is split up into a number of beam branches, the number of which equals the number of beam signals, and wherein the isolation impedance is arranged between at least two of the number of beam branches at the input of the signal combiner.
13 . The transmitter of claim 10 , further comprising, for each antenna branch, a second isolation impedance arranged at the input of the signal splitter.
14 . The transmitter of claim 9 , wherein the phase shifters are realized as True Time Delay units.
15 . A transmitter operable in a wireless communication system configured for analog beam steering, the transmitter comprising a processing circuitry and a memory, said memory containing instructions executable by said processing circuitry, whereby the transmitter is operative for:
receiving an analog radio signal, the analog radio signal being the same at each of the antenna branches;
splitting the analog radio signal into a number of beam signals, the number of beam signals equals a number of desired beams to be transmitted, the number of beams being at least two;
for each of the beam signals, phase shifting the beam signal according to a phase shift setting for that beam and for that antenna branch, the phase shift settings being taken from a single look-up table that is common for the number of beams; and
combining the phase shifted beam signals into one combined signal, and transmitting the combined signal from the antenna of that antenna branch towards a receiver.
16 . The transmitter of claim 15 , further being operative for:
for each antenna branch, amplitude tapering the combined signal using an isolation impedance arranged at the antenna branch.
17 . The transmitter of claim 15 , further being operative for, before the analog radio signal is received at each of the antenna branches:
receiving a digital baseband signal;
converting the signal into an analog form;
transforming the signal from baseband frequency into radio frequency, and
splitting the signal into a number of signals equaling the number of antenna branches.
18 . A non-transitory computer readable storage medium storing a computer program comprising instructions, which, when executed by processing circuitry of a transmitter of a wireless communication network, configured for analog beam steering, causes the transmitter to perform the following steps:
receiving an analog radio signal, the analog radio signal being the same at each of the antenna branches;
splitting the analog radio signal into a number of beam signals, the number of beam signals equals a number of desired beams to be transmitted, the number of beams being at least two;
for each of the number of beam signals, phase shifting the beam signal according to a phase shift setting for that beam and for that antenna branch, the phase shift settings being taken from a single look-up table that is common for the number of beams;
combining the phase shifted beam signals into one combined signal, and
transmitting the combined signal from the antenna of that antenna branch towards a receiver.