Technique for rotating multi-sector antennas on aircrafts
A technique for rotating one or more multi-sector antennas mounted on unmanned aircrafts of a radio access network, RAN, is described. Each of the multi-sector antennas comprises multiple sectors. The multiple sectors of each of the multi-sector antennas are configured to provide radio access to radio devices in different azimuthal directions that are changeable relative to the aircraft and fixed relative to each other when rotating the respective one of the multi-sector antennas. As to a method aspect of the technique, the at least one or each of the aircrafts of the RAN determines signal strengths of radio signals exchanged between a first radio device and at least two of the multiple sectors of the multi-sector antenna mounted on the respective one of the aircrafts. Based on the determined signal strengths, a first azimuthal direction is computed for providing radio access to the first radio device. A first sector of the multiple sectors of the multi-sector antenna mounted on the respective one of the aircrafts is rotated in the computed first azimuthal direction.
1 . A method of operating an unmanned aircraft of a radio access network (“RAN”) to rotate one or more multi-sector antennas mounted on the unmanned aircraft, each of the multi-sector antennas comprising multiple sectors, the multiple sectors of each of the multi-sector antennas being configured to provide radio access to radio devices in different azimuthal directions that are changeable relative to the aircraft and fixed relative to each other when rotating the respective one of the multi-sector antennas, the method-comprising:
determining signal strengths of radio signals exchanged between a first radio device and at least two of the multiple sectors of the multi-sector antenna mounted on the aircraft;
computing, based on the signal strengths, a first azimuthal direction for providing radio access to the first radio device;
communicating a control message with a second aircraft of the RAN that is separate from the unmanned aircraft, the control message including an indication to rotate a multi-sector antenna mounted on the second aircraft or to rotate a first sector of the multiple sectors of the multi-sector antenna mounted on the unmanned aircraft; and
physically rotating the first sector of the multiple sectors of the multi-sector antenna mounted on the unmanned aircraft in the first azimuthal direction.
2 . The method of claim 1 , wherein computing the first azimuthal direction comprises determining the greatest signal strength among the signal strengths, and
wherein the sector with which the radio signal having the greatest signal strength is exchanged determines the first azimuthal direction.
3 . The method of claim 1 , wherein computing the first azimuthal direction comprises interpolating the signal strengths as a function of azimuthal directions of the at least two of the multiple sectors, and
wherein a maximum of the interpolated function determines the first azimuthal direction between the azimuthal directions of the at least two of the multiple sectors.
4 . The method of claim 1 , wherein rotating the first sector in the first azimuthal direction corresponds to an increase in the signal strength of the radio signals exchanged between the first radio device and the first sector of the multi-sector antenna.
5 . The method of claim 1 , wherein the signal strengths are repeatedly determined, the first azimuthal direction is repeatedly computed based on the signal strengths, and the multi-sector antenna is repeatedly rotated to provide the radio access to the first radio device while the unmanned aircraft is moving on a trajectory relative to the first radio device and/or over ground.
6 . The method of claim 1 , wherein the signal strengths are repeatedly determined, the first azimuthal direction is repeatedly computed based on the signal strengths, and the multi-sector antenna is repeatedly rotated to provide the radio access to the first radio device while the first radio device is moving along a path.
7 . The method of claim 1 , wherein the unmanned aircraft is moving on a closed trajectory relative to the first radio device and/or over ground, and
wherein the first radio device is located outside of the closed trajectory and/or a distance between the first radio device and a center of the closed trajectory is greater than a diagonal of the closed trajectory.
8 . The method of claim 7 , wherein at least one second radio device other than the first radio device is located inside of the closed trajectory.
9 . The method of claim 8 , wherein at least one second sector of the multiple sectors other than the first sector provides radio access to the at least one second radio device.
10 . The method of claim 1 , wherein the unmanned aircraft is moving on a closed trajectory relative to the first radio device and/or over ground, and
wherein the first radio device is inside the closed trajectory.
11 . The method of claim 10 , wherein at least one second radio device other than the first radio device is located outside of the closed trajectory.
12 . The method of claim 1 , wherein determining the signal strengths comprises measuring the signal strengths of the radio signals exchanged between the first radio device and each of the multiple sectors of the multi-sector antenna.
13 . The method of claim 1 , determining the signal strengths comprises:
rotating the multi-sector antenna for measurement; and
measuring the signal strength between the first sector of the multi-sector antenna and the first radio device during the rotation for measurement.
14 . The method of claim 1 , wherein the multi-sector antenna comprises N sectors,
wherein determining the signal strengths comprises rotating the multi-sector antenna by an angle of 360°/N, and
wherein the sector exchanging the greatest signal strength with the first radio device among the N sectors is the first sector.
15 . The method of claim 1 , wherein determining the signal strengths comprises:
transmitting reference signals from each of the multiple sectors of the multi-sector antenna of the unmanned aircraft to the first radio device; and
receiving a measurement report from the first radio device, the measurement report being indicative of the signal strengths of the reference signals measured at the first radio device.
16 . The method of claim 1 , wherein communicating the control message comprises transmitting the control message from the unmanned aircraft to the second aircraft, the control message being configured to initiate rotating a multi-sector antenna mounted on the second aircraft according to the control message.
17 . The method of claim 16 , wherein the control message is indicative of at least one of:
a position of the unmanned aircraft;
the first azimuthal direction for the multi-sector antenna mounted on the unmanned aircraft;
a position of the first radio device computed based on the position of the unmanned aircraft and the first azimuthal direction for the multi-sector antenna mounted on the unmanned aircraft;
a target position of the second aircraft computed based on the position of the unmanned aircraft and the first azimuthal direction for the multi-sector antenna mounted on the unmanned aircraft; and
a target first azimuthal direction for the multi-sector antenna mounted on the second aircraft for providing radio access to the first radio device.
18 . The method of claim 1 , wherein communicating the control message comprises receiving the control message from the second aircraft, the control message being configured to initiate rotating the multi-sector antenna mounted on the first aircraft according to the control message.
19 . The method of claim 18 , wherein the second control message is indicative of at least one of:
a position of the second aircraft;
a first azimuthal direction for the multi-sector antenna mounted on the second aircraft for providing radio access to the first radio device;
a position of the first radio device;
a target position of the unmanned aircraft for providing radio access to the first radio device; and
a target first azimuthal direction for the multi-sector antenna mounted on the first unmanned aircraft for providing radio access to the first radio device.
20 . The method of claim 1 , wherein a position of the first radio device is based on the first azimuthal direction computed for the multi-sector antenna of the respective one of the of the RAN and a distance between the first radio device and the unmanned aircraft.