Signal designs for D2D subframes
Embodiments of the present disclosure describe apparatuses and methods for signal designs for device-to-device (D2D) subframes. Various embodiments may include a UE with a radio transceiver to communicate with another UE via D2D communications. The UE may further include processing circuitry to generate a cyclic prefix (CP) for a first or second symbol of a D2D subframe at an orthogonal frequency division multiplexing (OFDM) resource block or a single-carrier frequency-division multiple access (SC-FDMA) resource block. Other embodiments may be described and/or claimed.
1. A communication module, comprising:
a radio transceiver to communicate with another communication module via a device-to-device (D2D) communication; and
processing circuitry, coupled to the radio transceiver, to:
schedule a D2D subframe to be transmitted at a timing advance (TA), which is at least 624 basic time units (Ts), ahead of a serving cell downlink reference time, wherein one basic time unit equals 1/30720000 seconds;
receive a first value from an eNB and determine the TA based on the first value;
transmit, via the radio transceiver, information to the other communication module using the D2D subframe: and
generate a guard interval within the D2D subframe by not transmitting at least a part of a data symbol of the D2D subframe.
2. The communication module of claim 1 , wherein,
the radio transceiver is to communicate with the other communication module via a time division duplex (TDD) deployment.
3. The communication module of claim 1 , wherein,
the radio transceiver is to communicate with the other communication module via the D2D communication without involvement of the eNB.
4. The communication module of claim 1 , wherein,
the processing circuitry is to schedule a switch from reception to transmission within a time period of the TA.
5. A communication module comprising:
a radio transceiver to communicate with another communication module via a device-to-device (D2D) communication: and
processing circuitry, coupled to the radio transceiver, to:
schedule a D2D subframe to be transmitted with a timing advance (TA), which is at least 624 basic time units (Ts), ahead of a serving cell downlink reference time,
wherein one basic time unit equals 1/30720000 seconds, the TA equals (N TA +624)*Ts, and the N TA is a value predetermined by the communication module.
6. One or more non-transitory, computer-readable media having instructions that when executed, cause a user equipment (UE) to:
determine a downlink reference time based on timing of a serving cell transmission;
schedule a device-to-device (D2D) subframe to be transmitted at a timing advance (TA), which is at least 624 basic time units, ahead of the downlink reference time, wherein one basic time unit (Ts) equals 1/30720000 seconds and the UE is to receive a first value from an eNB and determine the TA based on the first value;
transmit information to another UE using the D2D subframe; and
cause the UE to perform a switching between reception and transmission within a time period of the TA,
wherein the instructions, when executed, further cause the UE to not transmit an entirety of a last Single Carrier Frequency-Division Multiple Access (SC-FDMA) symbol of the D2D subframe.
7. The one or more non-transitory, computer-readable media of claim 6 , wherein the UE is to communicate with the other UE using a time division duplex (TDD) deployment.
8. The one or more non-transitory, computer-readable media of claim 6 , wherein the
TA equals (N TA +624)*Ts , and N TA is a value predetermined by a communication network.
9. One or more non-transitory, computer-readable media having instructions that, when executed, cause a user equipment (UE) to:
determine a downlink reference time based on timing of a serving cell transmission;
schedule a device-to-device (D2D) subframe to be transmitted at a timing advance (TA), which is at least 624 basic time units, ahead of the downlink reference time, wherein one basic time unit (Ts) equals 1/30720000 seconds and the UE is to receive a first value from an eNB and determine the TA based on the first value;
transmit information to another UE using the D2D subframe: and
generate a guard interval within the D2D subframe by not transmitting at least a part of a data symbol of the D2D subframe.
10. The one or more non-transitory, computer-readable media of claim 9 , wherein the instructions, when executed, further cause the UE to: generate the guard interval of at least 66.67 μs.