Patent classifications
H04B1/7075
THRESHOLD DRIVEN ERROR CORRECTION FOR CHIRP SPREAD SPECTRUM
Systems, devices and methods for enhancing error correction decoding for communications using chirp spread spectrum are disclosed. A chirp signal having a plurality of chirps is received, a codeword is identified based on at least one of the plurality of chirps, a received signal strength indicator (RSSI) associated with at least a portion of the codeword is identified, at least one decoding threshold is adjusted based on the identified RSSI, and the codeword is decoded using the adjusted at least one decoding threshold.
THRESHOLD DRIVEN ERROR CORRECTION FOR CHIRP SPREAD SPECTRUM
Systems, devices and methods for enhancing error correction decoding for communications using chirp spread spectrum are disclosed. A chirp signal having a plurality of chirps is received, a codeword is identified based on at least one of the plurality of chirps, a received signal strength indicator (RSSI) associated with at least a portion of the codeword is identified, at least one decoding threshold is adjusted based on the identified RSSI, and the codeword is decoded using the adjusted at least one decoding threshold.
Method and system for spread spectrum code acquisition
A code acquisition module for a direct sequence spread spectrum (DSSS) receiver includes: a Sparse Discrete Fourier transform (SDFT) module configured to perform an SDFT on a finite number of non-uniformly distributed frequencies comprising a preamble of a received DSSS frame to calculate Fourier coefficients for the finite number of non-uniformly distributed frequencies; a multiplier configured to multiply the Fourier coefficients for the finite number of non-uniformly distributed frequencies of the received DSSS frame by complex conjugate Fourier coefficients for the finite number of non-uniformly distributed frequencies to generate a cross-correlation of the received DSSS frame and the complex conjugate Fourier coefficients; and a filter module configured to input the cross-correlation and output a delay estimation for the received DSSS frame.
Systems and methods for synchronizing time, frequency, and phase among a plurality of devices
Aspects of the present disclosure describe a system and method for synchronizing time, frequency, and phase among a plurality of devices.
Systems and methods for synchronizing time, frequency, and phase among a plurality of devices
Aspects of the present disclosure describe a system and method for synchronizing time, frequency, and phase among a plurality of devices.
Multi-radio synchronization within a single connected system
A multi-radio border router for synchronizing communications of multiple border router radios is provided. For example, the border router includes a border router component connected to each of the plurality of border router radios. The border router component configured for selecting one of the plurality of border router radios as a master radio and assigning channel offset parameters for each of the plurality of border router radios. The master radio is configured for broadcasting synchronization beacons based on which the non-master radios synchronize their respective clocks with that of the master radio. After the synchronization, each of the border router radios communicates with endpoints associated therewith according to a channel hopping pattern modified by applying a channel offset determined based on the channel offset parameters assigned to the respective radio.
Methods and Devices for Global Navigation Satellite System (GNSS) Signal Acquisition
A method is provided for acquiring a signal from a satellite in a global navigation satellite system. The signal includes a pseudorandom code. The method includes, for each time period of a plurality of time periods: generating samples of the signal, segments of the samples of the signal are correlated with a local copy of the pseudorandom code, thereby producing correlation values for the time period. A discrete Fourier transform is performed using, as inputs, the correlation values for the respective time period, thereby producing a frequency representation of the correlation values for the time period. The frequency representations of the correlation values for the plurality of time periods are combined according to a data hypothesis. When a magnitude of the combined frequency representations meets predefined criteria, a frequency corresponding to the magnitude is selected as a tracking frequency for the satellite.
Threshold driven error correction for chirp spread spectrum
Systems, devices and methods for enhancing error correction decoding for communications using chirp spread spectrum are disclosed. A chirp signal having a plurality of chirps is received, a codeword is identified based on at least one of the plurality of chirps, a received signal strength indicator (RSSI) associated with at least a portion of the codeword is identified, at least one decoding threshold is adjusted based on the identified RSSI, and the codeword is decoded using the adjusted at least one decoding threshold.
Threshold driven error correction for chirp spread spectrum
Systems, devices and methods for enhancing error correction decoding for communications using chirp spread spectrum are disclosed. A chirp signal having a plurality of chirps is received, a codeword is identified based on at least one of the plurality of chirps, a received signal strength indicator (RSSI) associated with at least a portion of the codeword is identified, at least one decoding threshold is adjusted based on the identified RSSI, and the codeword is decoded using the adjusted at least one decoding threshold.
ADAPTIVE SPREADING FACTOR MATCHING FOR SINGLE CHANNEL LORA RECEIVERS
A single-channel Long Range (LoRa) receiver device. The device may comprise a communication component comprising a receiver spreading factor (SF), configured to accept LoRa signals. LoRa signals each comprise a transmitter SF. The communication component is only able to receive a LoRa signal if the receiver SF matches the transmitter SF. The device may change its receiver SF and detect LoRa signals. The device may then analyze a LoRa signal if the transmitter SF matches the receiver SF. The device may then synchronize the communication component to the LoRa signal, process the LoRa signal, and repeat changing, detecting, analyzing, and synchronizing until all LoRa signals in range are processed.