H04B1/7136

Terminal and transmission method

In the present invention, regarding a narrowband used in a subframe for transmitting uplink data, if a switch is made from a first narrowband used in a first subframe to a second narrowband that is different from the first narrowband, with respect to a second subframe continuing to the first subframe, a final one symbol of the first subframe and an initial one symbol of the second subframe are punctured and set as a retuning time to transmit the uplink data in the first narrowband and the second narrowband.

FAST FREQUENCY HOPPING OF MODULATED SIGNALS
20230299776 · 2023-09-21 ·

An apparatus is comprised of a processor, a fast-locking Phase-Locked Loop Waveform Generator (PLLWG), an amplifier circuit, and a voltage controlled oscillator (VCO). The processor generates data program signals to program the PLLWG and generates a trigger command signal instructing the PLLWG to generate an analog tuning signal. The PLLWG, coupled to the processor, generates the analog tuning signal based on the trigger command signal. The amplifier circuit, coupled to the PLLWG, receives the analog tuning signal, amplify the analog tuning signal, and generates a control voltage. The VCO, coupled to the amplifier circuit, receives the control voltage and amplifies the control voltage to generate an amplified Radio Frequency (RF) channel frequency signal.

FAST FREQUENCY HOPPING OF MODULATED SIGNALS
20230299776 · 2023-09-21 ·

An apparatus is comprised of a processor, a fast-locking Phase-Locked Loop Waveform Generator (PLLWG), an amplifier circuit, and a voltage controlled oscillator (VCO). The processor generates data program signals to program the PLLWG and generates a trigger command signal instructing the PLLWG to generate an analog tuning signal. The PLLWG, coupled to the processor, generates the analog tuning signal based on the trigger command signal. The amplifier circuit, coupled to the PLLWG, receives the analog tuning signal, amplify the analog tuning signal, and generates a control voltage. The VCO, coupled to the amplifier circuit, receives the control voltage and amplifies the control voltage to generate an amplified Radio Frequency (RF) channel frequency signal.

WIRELESS NETWORK WITH CHANNEL HOPPING
20230291435 · 2023-09-14 ·

A wireless network with network-level channel hopping. A wireless network includes a wireless device. The wireless device includes a receiver, a data channel selector, and a transmitter. The receiver is configured to receive a beacon signal comprising a beacon sequence value. The data channel selector is configured to select, as a pseudorandom function of the beacon sequence value, a data channel on which to transmit in an interval following reception of the beacon signal. The transmitter is configured to transmit on the data channel selected by the channel selector.

WIRELESS NETWORK WITH CHANNEL HOPPING
20230291435 · 2023-09-14 ·

A wireless network with network-level channel hopping. A wireless network includes a wireless device. The wireless device includes a receiver, a data channel selector, and a transmitter. The receiver is configured to receive a beacon signal comprising a beacon sequence value. The data channel selector is configured to select, as a pseudorandom function of the beacon sequence value, a data channel on which to transmit in an interval following reception of the beacon signal. The transmitter is configured to transmit on the data channel selected by the channel selector.

Generating transmission arrangements for device group communication sessions

Methods, apparatus, and processor-readable storage media for generating transmission arrangements for device group communication sessions are provided herein. An example computer-implemented method includes determining a transmission ordering of at least a portion of multiple devices in a designated group with respect to transmitting data packets during at least a portion of a communication session, wherein the transmission ordering comprises device identifiers, attributed to at least a portion of the multiple devices, assigned to sequential transmission slots; determining a scheduled distribution of multiple data packet types transmitted by at least a portion of the multiple devices across the sequential transmission slots, wherein the scheduled distribution comprises an identification of a respective one of the multiple data packet types assigned to each of the sequential transmission slots; and participating in the communication session in accordance with (i) the transmission ordering and (ii) the scheduled distribution of the multiple data packet types.

Opportunistic frequency switching for frame based equipment

Techniques providing opportunistic frequency switching for frame based equipment (FBE), such as may be configured to minimize opportunistic frequency switching delay in FBE new radio (NR) unlicensed (NR-U) networks and/or to provide frequency diversity FBE access based on offset sequences of medium sensing occasions for the carrier frequencies are disclosed. Within the FBE mode network, a base station may configure a pattern of sensing locations in each frame for each frequency transmission unit of the plurality of frequency transmission units, wherein an inter-unit delay of sensing locations between a first frequency transmission unit and a next adjacent frequency transmission unit and between a last frequency transmission unit and the first frequency transmission unit is a fixed duration. Opportunistic frequency switching of embodiments may utilize the medium sensing locations for opportunistically switching between a sequence of the frequency transmission units for implementing frequency diversity FBE access.

Opportunistic frequency switching for frame based equipment

Techniques providing opportunistic frequency switching for frame based equipment (FBE), such as may be configured to minimize opportunistic frequency switching delay in FBE new radio (NR) unlicensed (NR-U) networks and/or to provide frequency diversity FBE access based on offset sequences of medium sensing occasions for the carrier frequencies are disclosed. Within the FBE mode network, a base station may configure a pattern of sensing locations in each frame for each frequency transmission unit of the plurality of frequency transmission units, wherein an inter-unit delay of sensing locations between a first frequency transmission unit and a next adjacent frequency transmission unit and between a last frequency transmission unit and the first frequency transmission unit is a fixed duration. Opportunistic frequency switching of embodiments may utilize the medium sensing locations for opportunistically switching between a sequence of the frequency transmission units for implementing frequency diversity FBE access.

METHOD FOR CONTROLLING DATA TRANSMISSION IN A RADIO COMMUNICATION SYSTEM

The present invention relates to a method for operating a base station transceiver of a cellular radio communication system in controlling transmission of a radio signal to a user equipment, the method comprising determining frequency-hopping control information that is indicative of a hopping-frequency set of frequency sub-bands of a downlink frequency band of a downlink channel of the cellular radio communication system, which are to be used for transmission of consecutive radio signal segments of the radio signal to the user equipment, and that is indicative of a hopping time order of the frequency sub-bands of the hopping frequency set, which is to be used for the transmission of the consecutive radio signal segments of the radio signal to the user equipment; wherein determining the frequency-hopping control information comprises ascertaining user-equipment hopping-limitation information that is indicative of one or more of the frequency sub-bands of the downlink frequency band that are to be excluded from the hopping-frequency set, and using the user-equipment hopping-limitation information in determining the hopping frequency set.

METHOD FOR CONTROLLING DATA TRANSMISSION IN A RADIO COMMUNICATION SYSTEM

The present invention relates to a method for operating a base station transceiver of a cellular radio communication system in controlling transmission of a radio signal to a user equipment, the method comprising determining frequency-hopping control information that is indicative of a hopping-frequency set of frequency sub-bands of a downlink frequency band of a downlink channel of the cellular radio communication system, which are to be used for transmission of consecutive radio signal segments of the radio signal to the user equipment, and that is indicative of a hopping time order of the frequency sub-bands of the hopping frequency set, which is to be used for the transmission of the consecutive radio signal segments of the radio signal to the user equipment; wherein determining the frequency-hopping control information comprises ascertaining user-equipment hopping-limitation information that is indicative of one or more of the frequency sub-bands of the downlink frequency band that are to be excluded from the hopping-frequency set, and using the user-equipment hopping-limitation information in determining the hopping frequency set.