Patent classifications
G01S3/04
RF POLARIMETERS WITH OPTICAL DELAY LINES
Systems and methods are provided for determining a polarization state of an input RF signal. Two distinct RF antennas receive the input RF signal and output a first antenna signal and a second antenna signal. Polarizsations of the first and second antenna signals are orthogonal to one another. The first antenna signal is converted to a first optical signal, and the first optical signal is passed through a first optical signal to introduce a first delay. The delayed first optical signal is converted to a first RF signal. An amplitude ratio and a phase difference are determined between the first RF signal and a second RF signal that is associated with the second antenna and optionally includes a second delay. A polarization angle or polarization type of the input RF signal is determined based on the amplitude ratio and phase difference of the first and second RF signals.
Scalability of location in the cloud with angle of arrival (AOA) search on the edge
Determining a device's location in a space in real time is computing intensive. To offload some of the workload in conducting this hyperlocation, the access points in the network conduct some of process in determining the location of a device. The cloud determines a restricted AoA search area based on previous client locations. After this determination, a three-dimensional (3D) AoA search is conducted by each AP in the restricted area (restricted by a range of azimuth directions) for a device. Finally, each AP reports a location(s) for the device, which comprises weights for selected angular sectors. The cloud can then construct a probability heat map for location computation from the weights provided from each AP for the device.
Circular polarized angle of arrival measuring system
Methods and systems are disclosed and include receiving a signal via a first communication channel at a plurality of azimuth angles. The method includes determining a plurality of first communication channel phase angle differences between a pair of antennas. The method includes receiving a second signal via a second communication channel and at the plurality of azimuth angles. The method includes determining a plurality of second communication channel phase angle differences between the pair of antennas that each correspond to one of the plurality of azimuth angles. The method includes generating a first reference curve based on the plurality of first communication channel phase angle differences. The method includes generating a second reference curve based on the plurality of second communication channel phase angle differences. The method also includes generating a calibration curve that is based on an interpolation of the first reference curve and the second reference curve.
METHOD AND SYSTEM TO DIGITALLY TRACK AND MONITOR AN AUTOMOTIVE REFINISH REPAIR PROCESS
A method and a system to digitally track and monitor an automotive refinish repair process of a car within a car body shop is disclosed. The car to be repaired is provided with at least one beacon inside the car, and the car body shop is divided into a plurality of function-specific, geo-fenced areas each geo-fenced area being served by at least one communication node. The at least one communication node is in communicative connection with a cloud server that provides, based on collected data of the repair process, push reports and/or notifications and/or alerts via a user interface.
METHOD AND SYSTEM TO DIGITALLY TRACK AND MONITOR AN AUTOMOTIVE REFINISH REPAIR PROCESS
A method and a system to digitally track and monitor an automotive refinish repair process of a car within a car body shop is disclosed. The car to be repaired is provided with at least one beacon inside the car, and the car body shop is divided into a plurality of function-specific, geo-fenced areas each geo-fenced area being served by at least one communication node. The at least one communication node is in communicative connection with a cloud server that provides, based on collected data of the repair process, push reports and/or notifications and/or alerts via a user interface.
RADIO WAVE ENVIRONMENT DISPLAY DEVICE AND METHOD FOR DISPLAYING RADIO WAVE ENVIRONMENT
A radio wave environment display device includes a display unit that displays a radio wave environment and a controller. The radio wave environment display device displays a radio wave environment in an area where a plurality of wireless transmitters located at different positions transmit radio waves. The controller selects, at each of a plurality of points in the area, a maximum intensity among intensities that are magnitudes of received power of radio waves transmitted from the wireless transmitters and causes the display unit to display the radio wave environment at each of the plurality of points based on the maximum intensity selected and an arrival direction of a radio wave with the maximum intensity selected.
Object orientation system, object orientation method and electronic apparatus
An object orientation system, an object orientation method and an electronic apparatus are provided. A signal transmitter includes a directional antenna and emits a first wireless signal. A plurality of signal receivers are respectively disposed in a plurality of orientations. The signal receivers receive the first wireless signal and measure a plurality of first received signal strength indicators of the first wireless signal. The electronic apparatus is coupled to the signal receivers, estimates a plurality of strength variation data of the first received signal strength indicators measured by the signal receivers, and obtains orientation information of the signal transmitter according to the strength variation data corresponding to the signal receivers.
SYSTEM AND METHOD FOR DETERMINING THE RELATIVE DIRECTION OF AN RF TRANSMITTER
The subject matter discloses a casing of a mobile electronic device, comprising: a body, comprising: two or more antennas for exchanging wireless signals with a target device; an electromagnetic absorbing material located between the two or more antennas; electrical circuitry for sending information concerning the wireless signals exchanged between the two or more antennas and the target device to a direction finding module, wherein the direction finding module is operative to determine a relative direction of the target device based on the wireless signals exchanged between the two or more antennas and the target device.
System and method for determining the relative direction of an RF transmitter
The subject matter discloses a method to determine a relative direction of a target RF transmitter, performed by a direction finding (DF) system comprising at least a pair of antennas having an electromagnetic-absorbing material between them, comprising conducting wireless communication between the target RF transmitter and each one of the antennas of the DF system, measuring the time of flight (TOF) of the target RF transmitter received at each antenna, calculating the difference between the TOFs measured at each one of the antennas in the pair, and determining a relative direction of the target RF transmitter based on the TOF required to reach each of the antennas.
Estimating a source location of a projectile
According to examples of the presently disclosed subject matter, there is provided a system for estimating a source location of a projectile, comprising an optics an optics subsystem, a radar subsystem and a processor. The processor is adapted to use range and velocity measurements obtained from data provided by the radar subsystem, a source direction and an event start time obtained from data provided by the optical subsystem and a predefined kinematic model for the projectile for estimating a range to a source location of the projectile.