Hybrid apparatus using physical channels
10334593 ยท 2019-06-25
Assignee
Inventors
- Stephen E. Terry (Northport, NY)
- Stephen G. Dick (Nesconset, NY)
- James M. Miller (Verona, NJ)
- Eldad M. Zeira (Huntington, NY)
- Ariela Zeira (Huntington, NY)
Cpc classification
H04W72/23
ELECTRICITY
H04B7/2618
ELECTRICITY
H04B7/0686
ELECTRICITY
International classification
Abstract
A user equipment (UE) may receive a first downlink signal, which may include a resource assignment having an indication of a first resource of a plurality of resources. The resource assignment may also have an indication of a number of resources of the plurality of resources. In addition, the plurality of resources may be consecutive resources in a sequence. Further, the first downlink signal may include an indication of a first time interval of a plurality of time intervals and a number of time intervals of the plurality of time intervals to which the resource assignment applies. Moreover, the plurality of time intervals may be consecutive time intervals. Additionally, the UE may receive at least one additional downlink signal over a downlink shared channel in the plurality of resources and in the plurality of time intervals. In an example, the first downlink signal may be received over a downlink signaling channel.
Claims
1. A user equipment comprising: an antenna, operatively coupled to a receiver, the antenna and the receiver configured to receive a first downlink signal; wherein the first downlink signal includes a resource assignment having an indication of a first resource of a plurality of resources and an indication of a number of resources of the plurality of resources; wherein the plurality of resources are consecutive resources in a sequence; wherein the first downlink signal further includes an indication of a first time interval of a plurality of time intervals and a number of time intervals of the plurality of time intervals to which the resource assignment applies; wherein the plurality of time intervals are consecutive time intervals; and a controller, operatively coupled to the antenna and the receiver, the controller, the antenna and the receiver configured to receive at least one additional downlink signal over a downlink shared channel in the plurality of resources and in the plurality of time intervals.
2. The user equipment of claim 1, wherein the plurality of resources are codes.
3. The user equipment of claim 1, wherein the user equipment is a code division multiple access user equipment.
4. The user equipment of claim 1, wherein the first downlink signal is received over a downlink signaling channel.
5. The user equipment of claim 1, wherein the at least one additional downlink signal includes downlink data.
6. A method comprising: receiving, by a user equipment, a first downlink signal; wherein the first downlink signal includes a resource assignment having an indication of a first resource of a plurality of resources and an indication of a number of resources of the plurality of resources; wherein the plurality of resources are consecutive resources in a sequence; wherein the first downlink signal further includes an indication of a first time interval of a plurality of time intervals and a number of time intervals of the plurality of time intervals to which the resource assignment applies; wherein the plurality of time intervals are consecutive time intervals; and receiving, by the user equipment, at least one additional downlink signal over a downlink shared channel in the plurality of resources and in the plurality of time intervals.
7. The method of claim 6, wherein the plurality of resources are codes.
8. The method of claim 6, wherein the user equipment is a code division multiple access user equipment.
9. The method of claim 6, wherein the first downlink signal is received over a downlink signaling channel.
10. The method of claim 6, wherein the at least one additional downlink signal includes downlink data.
11. A network device comprising: an antenna, operatively coupled to a transmitter and a controller, the antenna, the transmitter and the controller configured to transmit a first downlink signal; wherein the first downlink signal includes a resource assignment having an indication of a first resource of a plurality of resources and an indication of a number of resources of the plurality of resources; wherein the plurality of resources are consecutive resources in a sequence; wherein the first downlink signal further includes an indication of a first time interval of a plurality of time intervals and a number of time intervals of the plurality of time intervals to which the resource assignment applies; wherein the plurality of time intervals are consecutive time intervals; and the antenna, the transmitter and the controller configured to transmit at least one additional downlink signal over a downlink shared channel in the plurality of resources and in the plurality of time intervals.
12. The network device of claim 11, wherein the plurality of resources are codes.
13. The network device of claim 11, wherein the network device is a code division multiple access Node-B.
14. The network device of claim 11, wherein the first downlink signal is received over a downlink signaling channel.
15. The network device of claim 11, wherein the at least one additional downlink signal includes downlink data.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(16) The present invention will be described with reference to the drawing figures wherein like numerals represent like elements throughout.
(17) One method 53 for assigning codes to timeslots in accordance with the present invention uses consecutive codes and will be described with reference to the flow diagram of
(18) Each timeslot is potentially assigned a predetermined number of codes, such as sixteen codes. The predetermined number of codes are assigned an order or sequence, such as from 0 to 15, (step 54). For a particular UE, only consecutive codes are assigned to that UE in a given timeslot, (step 56). To illustrate, referring to
(19) Referring back to
(20) One approach to reduce the number of bits signaled for downlink transmissions in the control channels is to signal only a small portion of the assignment information over a control channel, (hereinafter referred to as prior signaled information), and signal the remaining portion of the assignment information with the downlink data, (hereinafter referred to as post signaled information). The post signaled information sent with the downlink data will undergo the same AM&C processing as the data, thereby significantly reducing the amount of air resources required to transmit the assignment information over the control channel.
(21) In a typical system, it takes two (2) timeslots to recover the data, since the control information must be received and then processed in order to be ready to receive the actual data. The prior signaled information must therefore only relay the assignment information for the first two (2) timeslots used to transmit downlink data which comprises a four (4) bit indicator for the first used timeslot; a four (4) bit indicator for the next timeslot; and indicators, (two (2) bits each), for the first and last codes for each of the used timeslots. Accordingly, only a maximum of sixteen (16) bits are signaled as prior signaled information. The remaining assignment information is signaled as post signaled information with the downlink data. As a result, for a sixteen (16) code and a twelve (12) timeslot system, only sixteen (16) bits are prior signaled information, with the remaining post signaled information signaled with the downlink data.
(22) One advantage to this approach is that it allows the use of any number of codes in any timeslot. However, this approach requires signaling for typically at least two timeslot assignments, and possibly all timeslot assignments. Although this limits the code choice to consecutive codes, with the use of code reassignment, this restriction is not significant. If an optimal reassignment requires non-consecutive codes, the timeslot UE code usage can be repacked to allow the assignment of only consecutive codes to all UEs.
(23) A second method 80 to assign codes and timeslots uses common consecutive codes and is described with reference to the flow diagram of
(24) To signal this assignment scheme to a UE, an indication of the first and last codes of the consecutive codes is required as well as an indicator of the used timeslots (step 86). For the system of
(25) The use of prior signaled information and post signaled information with this method 80 reduces the number of prior signaled bits. The prior signaled information must indicate the first used timeslot and the following timeslot, and the first and last codes of the common sequence. For the system of
(26) To further reduce the bits of the prior signaled information, five (5) bits may be used for the first two (2) timeslots. Four (4) bits indicates the first used timeslot and the fifth bit represents whether the following timeslot is used. As a result, either sixteen (16) or thirteen (13) bits are prior signaled information, with at most ten (10) bits of post signaled information.
(27) One advantage to the second method is that it reduces the amount of prior signaled information. One drawback is that it reduces flexibility in code and timeslot assignments, since each timeslot used by a particular UE must be assigned the same codes.
(28) A third method 90 for code and timeslot assignment uses common consecutive codes in consecutive timeslots and is described with reference to the flow diagram of
(29) To signal this assignment scheme to a UE, an indication of the first and last (or number of) assigned codes in each assigned timeslot and an indication of the first and last (or number of) assigned timeslots, (step 96). For the system of
(30) The use of prior signaled information and post signaled information with this method 90 reduces the number of prior signaled bits. In this method 90, thirteen (13) bits must to be signaled prior to the data, (eight (8) for the codes used in the timeslots, four (4) for the first used timeslot and one (1) bit to indicate whether another timeslot is used). If another timeslot is used, four (4) bits indicating the last, or number of, timeslots are signaled as post signaled information with the data.
(31) This third method limits the amount of signaling, but at the expense of code/timeslot assignment flexibility.
(32) A fourth method 100 to assign codes and timeslots assigns UEs all the codes in a timeslot and is described with reference to the flow diagram of
(33) To signal this assignment scheme to a UE, an indicator of the assigned timeslots is needed, (step 104). For the system of
(34) The use of prior signaled information and post signaled information with this method 100 reduces the number of prior signaled bits. In this method 100, an indicator of the first two used timeslots is signaled. For the system of
(35) A fifth method 110 for code and timeslot assignment uses entire consecutive timeslots and is described with reference to the flow chart of
(36) To signal this assignment scheme to a UE, an indicator of the first and last timeslots (or number of) used timeslots is signaled, (step 114). For the system of
(37) The use of prior signaled information and post signaled information with this method 110 reduces the number of prior signaled bits. In this method 110, only five (5) bits are sent as prior signaled information. Four (4) bits indicate the first used code and the fifth bit indicates whether the following timeslot is used. If the following timeslot is used, four (4) bits are signaled as post signaled information with the transmitted downlink data to indicate the last timeslot or number of timeslots.
(38) A sixth method 120 numbers all codes consecutively in all timeslots and is described with reference to the flow diagram of
(39) To signal this assignment scheme to a UE, an indicator of the first and last codes is needed (step 126). For the system of
(40) The use of prior signaled information and post signaled information with this method 120 reduces the number of prior signaled bits. In this method 120, thirteen (13) bits must be signaled as prior signaled information, (eight (8) for the first code and five (5) bits for the number of codes in the first two (2) timeslots). If more codes are used, the code count can be superseded in the post signaled information.
(41) The table of
(42) Although the present invention may be implemented by many physical systems, one such system for implementing the invention will be described with reference to
(43) Downlink data to be communicated to a particular UE 24 is assigned at least one code and at least one timeslot by a resource management device 28. The resource management device 28 may be in a radio network controller (RNC) or Node-B 20. The resource management device 28 assigns codes and timeslots as will be described in detail hereinafter. The assigned code and timeslot are sent to a signaling transmitter 30 and an AM&C controller 32 in the base station 22. The signaling transmitter 30 formats for transmission the code and timeslot information as will also be described in detail hereinafter.
(44) A data modulation and spreading device 34 modulates, spreads and time multiplexes the downlink data in the timeslots and with the codes assigned by the resource management device 28. The modulated data and signaled information is radiated by an antenna 36 or antenna array through a wireless radio channel 26.
(45) At the particular UE 24, the transmitted downlink data and signaled information is received by an antenna 38. A signaling receiver 40 recovers the signaled information and relays it to an AM&C controller 42. The AM&C controller 42 determines the modulation to be used and indicates the code and timeslot used for the downlink data to the data detection device 44. One potential data detection device 44 is a joint detection device using a channel estimation device, although other data detection devices may be used. The data detection device 44 recovers the downlink data using the timeslot and code information from the AM&C controller 42.
(46)
(47) The particular UE 24 receives the signaled information. The received information is passed through a switch 50 or isolator to a signaling receiver 40. The signaled information is recovered by the signaling receiver 40 and relayed to an AM&C controller 42. The AM&C controller 42 relays the uplink code and timeslot assignment to the data modulation and spreading device 52. The data modulation and spreading device 52 modulates, spreads and time multiplexes the uplink data as directed by the AM&C controller 42 in the timeslots and with codes signaled by the base station 22. The modulated data is passed through a switch 50 or isolator and radiated by the UE antenna 38 through the wireless radio channel 26.
(48) The transmitted data is received by the base station antenna 36 or antenna array. The received data is passed through a switch 48 or isolator to a data detection device 46. One possible data detection device 46 is a joint detection device using a channel estimation device, although other data detection devices may be used. A base station AM&C controller 32 receives the code and timeslot assignment from the resource management device 28. The data detection device 46 recovers the uplink data from the received uplink signal using the assigned code and timeslot as directed by the AM&C controller 32.
(49) While the present invention has been described in terms of the preferred embodiment, other variations which are within the scope of the invention as outlined in the claims below will be apparent to those skilled in the art.