Technical Field
[0001] The present invention relates to the field of communications, and in particular to
a method and apparatus for sending Hybrid Automatic Repeat Request Acknowledge (HARQ-ACK)
information.
Background
[0002] CN 102 064 921 A relates to a sending method of response information and a user terminal, used for
solving the problem that ACK/NACK response information can not be sent ona PUSCH under
a carrier aggregation scene.
[0003] A radio frame in a Long Term Evolution (LTE) system includes a frame structure of
a Frequency Division Duplex (FDD) mode and a frame structure of a Time Division Duplex
(TDD) mode. As shown in Fig. 1, in the frame structure of the FDD mode, one radio
frame of 10 ms is composed of twenty slots with the length of 0.5 ms and serial numbers
of 0-19, and slots 2i and 2i + 1 make up a subframe i with the length of 1 ms (wherein,
0 ≤ i ≤ 9). As shown in Fig.2, in the frame structure of the TDD mode, one radio frame
of 10 ms is composed of two half frames with the length of 5 ms, wherein one half
frame includes 5 subframes with the length of 1 ms, and subframe i is defined as the
combination of two slots 2i and 2i + 1 with the length of 0.5 ms (wherein, 0 ≤ i ≤
9). The uplink and downlink configurations supported by each subframe are as shown
in Table 1, wherein "D" represents subframes dedicated to downlink transmission, "U"
represents subframes dedicated to uplink transmission, "S" represents special subframes
used in the three domains of Downlink Pilot Time Slot (DwPTS), Guard Period (GP) and
Uplink Pilot Time Slot (UpPTS).
Table 1 Schematic table of uplink and downlink configurations supported by each subframe
| Uplink-Downlink configuration |
Period of downlink-uplink switch point |
Subframe number # |
| 0 |
1 |
2 |
3 |
4 |
5 |
6 |
7 |
8 |
9 |
| 0 |
5 ms |
D |
S |
U |
U |
U |
D |
S |
U |
U |
U |
| 1 |
5 ms |
D |
S |
U |
U |
D |
D |
S |
U |
U |
D |
| 2 |
5 ms |
D |
S |
U |
D |
D |
D |
S |
U |
D |
D |
| 3 |
10 ms |
D |
S |
U |
U |
U |
D |
D |
D |
D |
D |
| 4 |
10 ms |
D |
S |
U |
U |
D |
D |
D |
D |
D |
D |
| 5 |
10 ms |
D |
S |
U |
D |
D |
D |
D |
D |
D |
D |
| 6 |
5 ms |
D |
S |
U |
U |
U |
D |
S |
U |
U |
D |
[0004] It can be seen from the above table that the Long Term Evolution (LTE) TDD supports
uplink and downlink switch periods of 5 ms and 10 ms. If the period of downlink-to-uplink
switch point is 5 ms, then special subframes would exist in two half frames; and if
the period of downlink-to-uplink switch point is 10 ms, then special subframes would
only exist in the first half frame; the subframe #0 and the subframe #5 and the DwPTS
are always used for downlink transmission; and the UpPTS and subframes following the
special subframes are dedicated to uplink transmission.
[0005] In the LTE TDD system, since the uplink and downlink subframes are not in one-to-one
correspondence, that is, the HARQ-ACK information of a plurality of downlink subframes
needs to be sent in the Physical Uplink Control Channel (PUCCH)/Physical uplink shared
channel (PUSCH) of one uplink subframe, wherein the set of downlink subframes associated
with the uplink subframe makes up a bundling window. Two methods of sending the HARQ-ACK
information are defined: one is a HARQ-ACK bundling method, and the other is a HARQ-ACK
multiplexing method. Whether UE (User Equipment) employs the method of bundling or
multiplexing to feed back the HARQ-ACK information is configured by the high-layer.
The basic principle of the bundling method is to carry out a logical AND operation
(time domain bundling) on the HARQ-ACK information of the code word streams corresponding
to respective downlink subframes needing to be fed back in the uplink subframe, to
obtain the HARQ-ACK information of 1/2 bit. When a UE has no PUSCH to send in a current
subframe, the UE would employ a format of 1a/1b to send the 1/2 bit HARQ-ACK information
in the PUCCH; and when the UE has PUSCH to send in a current frame, the UE sends the
1/2 bit acknowledge information in the PUSCH after performing certain channel encoding
and channel interleaving on the 1/2 bit acknowledge information. The core principle
of the multiplexing method is to utilize different PUCCH channels and different modulated
symbols on each channel to represent different feedback states of the downlink subframes
that need to be fed back in the uplink subframe, and if there are a plurality of transport
blocks on the downlink subframes, then firstly spatial logic AND (also referred to
as spatial domain bundling) is carried out on the HARQ-ACK information fed back by
the plurality of transport blocks of the downlink subframes, then channel selection
is performed, and then the PUCCH format 1b is used to send the HARQ-ACK information.
When the UE has no PUSCH to send in a current subframe, the UE would employ the format
1b with channel selection to send the plurality of pieces of HARQ-ACK information
on the PUCCH; and when the UE has PUSCH to send in a current subframe, then the UE
multiplexes a plurality of pieces of bit acknowledge information with data after certain
mapping from HARQ-ACK states to corresponding bits, channel encoding, channel interleaving
are performed to the bit acknowledge information, and then sends them on the PUSCH.
[0006] The encoding process when the HARQ-ACK information is transmitted on the PUSCH includes:
firstly calculating the number
Q'ACK of the symbols needed to be encoded according to the formula

; wherein
O represents the number of bits of the uplink control information to be sent;

represents the bandwidth for PUSCH transmission in a current subframe, and this value
is expressed as the number of carriers;

represents the number of symbols except for those used for the Demodulation Reference
Signal (DMRS) and the Sounding Reference Signal (SRS) in the initial PUSCH transmission;

represents the bandwidth in the initial PUSCH transmission, and this value is expressed
as the number of carriers;
C represents the corresponding number of code blocks after the transport blocks are
subjected to CRC and code block division;
Kr represents the number of bits corresponding to each code block of the transport block;
for an identical transport block, C ,
Kr and

are obtained from an initial PDCCH; when there is no initial PDCCH with DCI format
0,

, C and
Kr could be obtained in the following two ways: (1) when the initial PUSCH employs semi-static
scheduling, they could be obtained from the PDCCH configured by the latest semi-static
scheduling; (2) when the PUSCH is triggered by a random access response authorization,
they are obtained from the random access response authorization corresponding to the
same transport block.

represents

or

, the value is configured by the high-layer. Afterwards, channel encoding is carried
out on the HARQ-ACK information, and the bits of the encoded HARQ-ACK information
are repeated, until a target length

is satisfied. The bits of the encoded information are respectively recorded as

,a corresponding encoding modulation sequence

is generated according to a modulation order, and

and encoded data and/or other encoded uplink control information are transmitted
after channel interleaving.
[0007] In order to satisfy the requirements of the International Telecommunication Union-Advanced
(ITU-Advanced), the Long Term Evolution Advanced (LTE-A) system, as the LTE evolution
standard, needs to support a greater system bandwidth (up to 100 MHz), and needs to
be backward compatible with the existing standards of the LTE. On the basis of an
existing LTE system, a greater bandwidth could be obtained by combining the bandwidths
of the LTE system, and such a technique is called a Carrier Aggregation (CA) technique.
The technique could improve the spectrum efficiency of an IMT-Advance system, relieve
the shortage of spectrum resources, and thus optimizing the utilization of spectrum
resources. The bandwidth of the LTE system using the carrier aggregation could be
regarded as a Component Carrier (CC), each Component Carrier could also be called
a cell, that is, a spectrum could be aggregated by n Component Carriers (n cells).
The resources of a R10 terminal (User Equipment, UE) are composed of n cells/Component
Carriers in the frequency domain, wherein one cell is called a Primary cell (Pcell),
and the rest cells are called Secondary cells (Scells). For the TDD, the uplink and
downlink configurations of the aggregated serving cells are the same.
[0008] In the LTE-A TDD, when the HARQ-ACK information is sent on the PUCCH, two sending
ways are defined: the PUCCH format 1b with channel selection and the PUCCH format
3.
[0009] It is also defined in the LTE-A that, when uplink and downlink configurations 1-6
are employed and the number of configured serving cells is greater than 1, or when
the TDD uplink and downlink configurations 1-6 are employed, the number of the configured
serving cells is equal to 1 and the configuration employs the PUCCH fromat3, the DAI
value in the DCI format 0/4 is

, and the specific value is as shown in Table 2. If there is no PUSCH transmitted,
or, there is no PDCCH indicating downlink SPS release and there is transmission of
corresponding DCI format 0/4,

.
Table 2 Corresponding W
ULDAI values of DAI in the DCI format 0/4
| DAI, High bit, low bit |

|
| 0 , 0 |
1 |
| 0 , 1 |
2 |
| 1 , 0 |
3 |
| 1 , 1 |
4 |
[0010] When the HARQ-ACK information is transmitted over the PUSCH and it is configured
to employ the PUCCH format 3 to transmit the fed back HARQ-ACK information, for TDD
uplink and downlink configuration 0 or PUSCH transmission not performed according
to the DCI format 0/4,

, wherein

is the number of downlink subframes for which the UE needs to feed back the HARQ-ACK
for the serving cell c, and
M is the number of downlink subframes in a bundling window; for the TDD uplink and
downlink configurations {1, 2, 3, 4, 6} and PUSCH transmission performed according
to the DCI format 0/4,

; and for the TDD uplink and downlink configuration 5 and PUSCH transmission performed
according to the DCI format 0/4,

, wherein U represents the maximum
Uc of all serving cells,
Uc refers to the accumulative number of the PDCCH indicating the SPS release and the
PDSCH received on the serving cell c, and if the UE does not receive the PDSCH or
the PDCCH indicating downlink SPS release and

, the UE would not transmit the HARQ-ACK on the PUSCH.
[0011] In the subsequent version, when carrier aggregation is supported, the uplink and
downlink configurations of aggregated serving cells could be different, that is to
say, the numbers of downlink subframes for which the HARQ-ACK information needs to
be fed back for respective serving cells are different, in which case, if the existing
solution of transmitting HARQ-ACK information on the PUSCH is still employed, transmission
of some invalid HARQ-ACK information would be caused. As shown in Fig. 3, assuming

, the HARQ-ACK information transmitted over the PUSCH according to the existing HARQ-ACK
information transmission solution is 8 bits, but the HARQ-ACK information that actually
needs to be fed back is only 5 bits, and 3 bits of invalid HARQ-ACK information are
transmitted to a base station, thus affecting the performance of HARQ-ACK information
and data.
Summary
[0012] The present invention provides a method and apparatus for sending Hybrid Automatic
Repeat Request-Acknowledge information, so as to at least solve the problem in the
related techniques that when uplink and downlink configurations of aggregated serving
cells are different, the performance of HARQ-ACK information and data gets worse when
HARQ-ACKs are transmitted over a PUSCH.
[0013] According to an aspect of the present invention, an apparatus for sending Hybrid
Automatic Repeat Request-Acknowledge information is provided according to appended
claim 1.
[0014] According to another aspect of the present invention, a method for sending Hybrid
Automatic Repeat Request-Acknowledge (HARQ-ACK) information is provided according
to appended claim 6.
[0015] The invention is defined by the appended independent claims. Preferred embodiments
of the present invention are set out in the appended dependent claims.
Brief Description of the Drawings
[0016] Drawings, provided for further understanding of the present invention and forming
a part of the specification, are used to explain the present invention together with
embodiments of the present invention rather than to limit the present invention. In
the drawings:
Fig. 1 is a schematic diagram of a frame structure in a FDD system according to relevant
technologies;
Fig. 2 is a schematic diagram of a frame structure in a TDD system according to relevant
technologies;
Fig. 3 is a schematic diagram showing the number of downlink subframes of a serving
cell under the downlink transmission mode 1 according to relevant technologies;
Fig. 4 is a flow diagram of a method for sending HARQ-ACK information according to
an embodiment of the present invention;
Fig. 5 is a schematic diagram showing the number of downlink subframes of a serving
cell under the transmission mode 4 according to an embodiment of the present invention;
Fig. 6 is another schematic diagram showing the number of downlink subframes of a
serving cell under the transmission mode 4 according to an embodiment of the present
invention;
Fig. 7 is a preferred schematic diagram of mapping HARQ-ACK information to a bit sequence
according to an embodiment of the present invention;
Fig. 8 is a preferred schematic diagram of carrying out spatial domain bundling on
the HARQ-ACK information serving cell by serving cell according to an embodiment of
the present invention;
Fig. 9 is a preferred schematic diagram of carrying out spatial domain bundling on
the HARQ-ACK information PDSCH by PDSCH according to an embodiment of the present
invention;
Fig. 10 is a structure diagram of an apparatus for sending HARQ-ACK information according
to an embodiment of the present invention;
Fig. 11 is a structure diagram of an apparatus for sending HARQ-ACK information according
to a preferred embodiment of the present invention.
Detailed Description of the Embodiments
[0017] The present invention is described below with reference to the accompanying drawings
and embodiments in detail. Note that, the embodiments of the present invention and
the features of the embodiments can be combined with each other if there is no conflict.
[0018] In each of the following embodiments, communication could be achieved by wireless
connection or wired connection or a combination thereof, and is not limited by the
present invention.
Embodiment 1
[0019] Fig. 4 is a flow diagram of a method for sending HARQ-ACK information according to
an embodiment of the present invention, and as shown in Fig. 4, the method for sending
HARQ-ACK information includes:
S402: when a terminal is configured to employ a PUCCH format 3 to transmit HARQ-ACK
information and the HARQ-ACK information is transmitted over a PUSCH, the terminal
determines the number of downlink subframes for serving cells to feed back the HARQ-ACK
information;
S404: the terminal determines the number of encoded modulated symbols required for
sending the HARQ-ACK information according to the determined number of downlink subframes;
S406: the terminal maps the HARQ-ACK information to be sent to the PUSCH of a specified
uplink subframe according to the number of encoded modulated symbols and sends the
HARQ-ACK information.
[0020] Whether or not the terminal is configured to employ a PUCCH format 3 to transmit
HARQ-ACK information and the HARQ-ACK information is transmitted over the PUSCH, the
above processing steps could all be employed to send the HARQ-ACK information, achieving
sending of the HARQ-ACK information according to the number of downlink subframes,
avoiding sending invalid HARQ-ACK information when the uplink and downlink configurations
are different, and thus solving the problem that the existing HARQ-ACK information
transmission method would transmit invalid HARQ-ACK information when the uplink and
downlink configurations of serving cells are different, increasing the efficiency
of sending HARQ-ACK information, improving the performance of HARQ-ACK information,
and when the HARQ-ACK information and encoded data are transmitted after being channel
interleaved, improving the performance of the data by increasing the efficiency of
sending HARQ-ACK information.
[0021] There are various methods for determining the number of downlink subframes, for example,
the number of downlink subframes can be pre-agreed or obtained from the outside, and
in a preferred implementation of the present invention, when transmission of the PUSCH
is based on the DCI format 0/4, the number of the downlink subframes could be determined
according to the following way: the terminal determines the number of downlink subframes
according to the uplink and downlink configurations of serving cells and the DAI signaling
in the DCI format 0/4.
[0022] As mentioned above, the number of downlink subframes could be determined according
to the uplink and downlink configurations of the serving cells and the DAI signaling
in the DCI format 0/4: when the uplink and downlink configurations of the serving
cells are {1, 2, 3, 4, 6}, the number of downlink subframes could, but not limited
to, be obtained by calculating according to the following formula:

, wherein

is the number of downlink subframes, min represents taking a minimum value,
Mc is the number of downlink subframes in a bundling window corresponding to a specified
uplink subframe, and

is the value of the DAI signaling in the DCI format 0/4.
[0023] As mentioned above, the number of downlink subframes could be determined according
to the uplink and downlink configurations of the serving cells and the DAI signaling
in the DCI format 0/4: when the uplink and downlink configurations of the serving
cells are {5}, the number of downlink subframes could, but not limited to, be obtained
by calculating according to the following formula:

, wherein

is the number of downlink subframes, min represents taking a minimum value,
Mc is the number of downlink subframes in a bundling window corresponding to a specified
uplink subframe, U is the maximum value of the
Uc of all serving cells,
Uc is the accumulative number of the PDCCH indicating SPS release and the PDSCH received
by a terminal in the bundling window (here, in the bundling window of a single serving
cell), and

is the value of the DAI signaling in the DCI format 0/4.
[0024] On the basis of the above embodiment, if the terminal does not receive the PDSCH
or the PDCCH indicating downlink SPS release in the bundling window and

, then the terminal does not send HARQ-ACK information on the PUSCH, avoiding sending
invalid HARQ-ACK information, and thus increasing the efficiency of sending HARQ-ACK
information.
[0025] In another preferred implementation of the present invention, when the PUSCH transmission
is not based on signaling of the DCI format 0/4, the above terminal determines the
number of the downlink subframes according to the uplink and downlink configurations
of the serving cells.
[0026] As mentioned above, the number of downlink subframes could be determined according
to the uplink and downlink configurations of the serving cells: the number of downlink
subframes could, but not limited to, be obtained by calculating according to the following
formula:

, wherein

represents the number of the downlink subframes, and
Mc is the number of downlink subframes in the bundling window corresponding to the specified
uplink subframe.
[0027] On the basis of the above embodiment, if the terminal does not receive the PDSCH
or the PDCCH indicating downlink SPS release in the bundling window, then the terminal
does not send HARQ-ACK information on the PUSCH, avoiding sending invalid HARQ-ACK
information, and thus increasing the efficiency of sending HARQ-ACK information.
[0028] In a preferred embodiment of the present invention, a method for determining the
number of encoded modulated symbols required for sending the HARQ-ACK information
according to the determined number of downlink subframes is provided. Specifically,
the method for determining the number of encoded modulated symbols required for sending
the HARQ-ACK information according to the determined number of downlink subframes
includes: the terminal determines a bit sequence of the HARQ-ACK information to be
sent according to the number of downlink subframes, and determines the number of encoded
modulated symbols required for sending the HARQ-ACK information according to the determined
bit sequence. By the above processes, the bit sequence of the HARQ-ACK information
can be determined according to the determined number of downlink subframes, and thus
the number of encoded modulated symbols required for sending the HARQ-ACK information
can be determined.
[0029] There are various methods for mapping HARQ-ACK information to a bit sequence. In
a preferred embodiment of the present invention, a method for determining a bit sequence
of the HARQ-ACK information to be sent according to the number of downlink subframes
is provided: a terminal determines the number of bits of the HARQ-ACK information
to be sent; and the terminal maps the HARQ-ACK information to be sent to a bit sequence
according to the determined number of bits. By the above processes, the HARQ-ACK information
to be sent can be mapped to a bit sequence.
[0030] On the basis of the above embodiments, the present embodiment provides a specific
method for calculating the number of bits, for example, the number of bits N could,
but not limited to, be obtained by calculating according to the following formula:

, wherein N represents the number of bits,

represents the number of configured serving cells,

represents the number of downlink subframes for the serving cells to feed back the
HARQ-ACK information,
kc represents the maximum of the number of transport blocks supported by a PDSCH corresponding
to the downlink transmission of the serving cells. Further, when the maximum number
of transport blocks supported by a PDSCH corresponding to the transmission mode is
1,
kc = 1, and when the maximum number of transport blocks supported by a PDSCH corresponding
to the transmission mode is 2,
kc = 2. In the present embodiment, the number of bits can be determined according to
the number of serving cells, the number of transport blocks and the number of downlink
subframes, and therefore, when the uplink and downlink configurations are different,
invalid HARQ-ACK information will not be sent, which improves the validity of the
HARQ-ACK information.
[0031] In a preferred implementation of the present invention, a preferred method for mapping
the HARQ-ACK information to be sent to a bit sequence according to the number of bits
is provided. Specifically, the method for mapping the HARQ-ACK information to be sent
to a bit sequence according to the number of bits includes:
when the number of bits (N) is no greater than 20, a terminal maps the HARQ-ACK information
to a bit sequence according to the order of code words first, downlink subframes next,
and then serving cells;
when the number of bits (N) is greater than 20, the terminal carries out spatial domain
bundling on the HARQ-ACK information, and maps the HARQ-ACK information to a bit sequence
according to the order of downlink subframes first, and then serving cells; or the
terminal carries out spatial domain bundling on the HARQ-ACK information of serving
cells according to the priority of the serving cells, and maps the HARQ-ACK information
to a bit sequence according to the order of code words first, downlink subframes next,
and then serving cells. In the present embodiment, different methods for mapping HARQ-ACK
information to a bit sequence are provided for different numbers of bits, thereby
selecting different methods to map HARQ-ACK information to a bit sequence according
to different numbers of bits, so as to improve the practicality of the present invention.
[0032] On the basis of the above embodiments, the present invention provides a preferred
method for carrying out spatial domain bundling on the HARQ-ACK information of serving
cells according to the priority of the serving cells. Specifically, the method for
carrying out spatial domain bundling on the HARQ-ACK information of serving cells
according to the priority of the serving cells includes: a terminal determines the
priority of the serving cells according to the number of HARQ-ACK information corresponding
to uplink and downlink configurations of each serving cell; and carrying out spatial
domain bundling on the serving cells one by one according to the priority; or, the
terminal determines the priority of the serving cells according to the number of HARQ-ACK
information corresponding to uplink and downlink configurations of each serving cell;
and carrying out spatial domain bundling on the PDSCHs one by one according to the
priority of the serving cells. In the present embodiment, spatial domain bundling
could be carried out on the HARQ-ACK information on the serving cells one by one according
to the priority of the serving cells, or spatial domain bundling could be carried
out on the PDSCHs one by one according to the priority, and different methods could
be selected to carry out spatial domain bundling on the HARQ-ACK information according
to different needs, improving the flexibility of the present invention while increasing
the efficiency of sending HARQ-ACK information.
[0033] It should be noted that, the above embodiments and the preferred embodiments thereof
could be applied to the situations of component carrier aggregation of different uplink
and downlink configurations.
[0034] The above method for sending HARQ-ACK information is described in specific examples
below, the method for sending HARQ-ACK information is applicable, but not limited
to, the following situation.
[0035] As shown in Fig. 3, it is assumed that the configuration employs the PUCCH format
3 to transmit HARQ-ACK information and transmission on the PUSCH is needed, PUSCH
transmission is performed according to the DCI format 0/4,

, and the downlink transmission mode of the serving cell #0 and the serving cell #1
is 1, that is, the corresponding maximum number of transport blocks supported by the
PDSCH is 1, the uplink and downlink configurations of the serving cell #0 is configuration
0, and the uplink and downlink configurations of the serving cell #1 is configuration
2.
[0036] The UE determines the number of downlink subframes for the serving cell c to feed
back the HARQ-ACK information according to the uplink and downlink configurations
of the configured serving cells and the DAI signaling in the DCI format 0/4. For the
serving cell #0, the number of downlink subframes in the bundling window is 1,

, then

, and for the serving cell #1, the number of downlink subframes in the bundling window
is 4,

, then

.
[0037] According to the number of downlink subframes for the configured serving cells to
feed back the HARQ-ACK information, the UE calculates the number of encoded modulated
symbols required for sending the HARQ-ACK information, maps the HARQ-ACK information
to the PUSCH of a subframe n, and sends the HARQ-ACK information. Specifically, the
UE determines the number of bits

of the HARQ-ACK information to be sent according to the number of configured serving
cells

, the number of downlink subframes

for which the HARQ-ACK information needs to be fed back by the serving cell c and
the transmission mode of the serving cell c, and because N = 5 < 20, the terminal
maps the HARQ-ACK information to be sent to a bit sequence of the HARQ-ACK information
according to the order of downlink subframes first and serving cells next, and the
UE calculates the number of encoded modulated symbols required for sending the bit
sequence of the HARQ-ACK information and sends the HARQ-ACK information on the PUSCH.
[0038] Further, the above method for sending HARQ-ACK information is described in specific
examples below, the method for sending HARQ-ACK information is applicable, but not
limited to, the following situation.
[0039] As shown in Fig. 5, it is assumed that the configuration employs the PUCCH format
3 to transmit HARQ-ACK information and transmission on the PUSCH is needed, PUSCH
transmission is performed according to the DCI format 0/4,

, and the downlink transmission mode of the serving cell #0 and the serving cell #1
is 4, that is, the corresponding maximum number of transport blocks supported by a
PDSCH is 2, the uplink and downlink configurations of the serving cell #0 is configuration
0, and the uplink and downlink configurations of the serving cell #1 is configuration
2.
[0040] The UE determines the number of downlink subframes for the serving cell c to feed
back the HARQ-ACK information according to the uplink and downlink configurations
of the configured serving cells and the DAI signaling in the DCI format 0/4. For the
serving cell #0, the number of downlink subframes in the bundling window is 1,

, then

, and for the serving cell #1, the number of downlink subframes in the bundling window
is 4,

, then

.
[0041] According to the number of downlink subframes for the configured serving cells to
feed back the HARQ-ACK information, the UE calculates the number of encoded modulated
symbols required for sending the HARQ-ACK information, maps the HARQ-ACK information
to the PUSCH of a subframe n, and sends the HARQ-ACK information. Specifically, the
UE determines the number of bits

of the HARQ-ACK information to be sent according to the number of configured serving
cells

, the number of downlink sub frames

for the serving cell c to feed back the HARQ-ACK information and the transmission
mode of the serving cell c, and because
N = 10 < 20, the terminal maps the HARQ-ACK information to be sent to a bit sequence
of the HARQ-ACK information according to the order of code words first and downlink
subframes next and then serving cells, and the UE calculates the number of encoded
modulated symbols required for sending the bit sequence of the HARQ-ACK information
and sends the HARQ-ACK information on the PUSCH.
[0042] On the basis of each of the above preferred embodiments, the present embodiment describes
different methods for carrying out spatial domain bundling on the HARQ-ACK information
among the above methods for sending HARQ-ACK information by specific examples, and
the present invention is applicable, but not limited to, the following situation.
[0043] As shown in Fig. 6, it is assumed that the configuration employs the PUCCH format
3 to transmit HARQ-ACK information and transmission on the PUSCH is needed, PUSCH
transmission is performed according to the DCI format 0/4,

, and the downlink transmission mode of the serving cell #0 and the serving cell #1
is 4, that is, the corresponding maximum number of transport blocks supported by a
PDSCH is 2, the uplink and downlink configurations of the serving cell #0 is configuration
2, and the uplink and downlink configurations of the serving cell #1 is configuration
5; the UE determines the number of downlink subframes for the serving cell c to feed
back the HARQ-ACK information according to the uplink and downlink configurations
of the configured serving cells and the DAI signaling in the DCI format 0/4. For the
serving cell #0, the number of downlink subframes in the bundling window is 4,

, and the accumulative number of PDSCHs received by the UE is
U0 = 4, then

, and for the serving cell #1, the number of downlink subframes in the bundling window
is 9, the accumulative number of PDSCHs received by the UE is
U0=9, and

, then
U = 9

. According to the number of downlink subframes for the configured serving cells to
feed back the HARQ-ACK information, the UE calculates the number of encoded modulated
symbols required for sending the HARQ-ACK information, maps the HARQ-ACK information
to the PUSCH of a subframe n, and sends the HARQ-ACK information. Specifically, the
UE determines the number of bits

of the HARQ-ACK information to be sent according to the number of configured serving
cells

, the number of downlink subframes

for which the HARQ-ACK information needs to be fed back for the serving cell c and
the transmission mode of the serving cell c, and because N = 22 > 20, the terminal
maps the HARQ-ACK information to be sent to a bit sequence of the HARQ-ACK information
after spatial domain bundling according to the order of downlink subframes first,
and serving cells next. Or, as shown in Fig. 7, the priority is determined according
to the uplink and downlink configurations of the configured serving cells, and spatial
domain bundling is carried out, and then the HARQ-ACK is mapped to a bit sequence
according to the order of code words first, downlink subframes next, and then serving
cells. Since the corresponding number of HARQ-ACKs of the serving cell #1 is maximum,
spatial domain bundling is carried out on all of the HARQ-ACK information of the PDSCHs
corresponding to two transport blocks on the serving cell #1. Or, as shown in Fig.
8, spatial domain bundling is firstly carried out on the HARQ-ACK information of the
PDSCHs corresponding to two transport blocks on the serving cell #1 one by one, until
satisfying that the numbers of bits of all of the HARQ-ACK information is less than
20, as shown in Fig. 9.
Embodiment 2
[0044] This embodiment is for highlighting specific aspects of the subject-matter and is
not part of the present invention.
[0045] On the basis of Figs. 3-9, the present embodiment provides a preferred apparatus
for sending HARQ-ACK information for achieving the above method. The apparatus for
sending HARQ-ACK information could be located in a terminal, as shown in Fig. 10,
the above apparatus for sending HARQ-ACK information includes:
a first determination module 100, configured to, when a terminal is configured to
employ a PUCCH format 3 to transmit HARQ-ACK information and the HARQ-ACK information
is transmitted over the PUSCH, determine the number of downlink subframes for serving
cells to feed back the HARQ-ACK information;
a second determination module 102, which is in communication connection with the first
determination module 100, and configured to determine the number of encoded modulated
symbols required for sending the HARQ-ACK information according to the determined
number of downlink subframes; and
a sending module 104, which is in communication connection with the above second determination
module 102, and configured to map the HARQ-ACK information need sending to the PUSCH
of a subframe according to the number of encoded modulated symbols determined by the
above second determination module 102, and send the HARQ-ACK information.
[0046] In the above embodiments, the apparatus can determine the number of downlink subframes,
determine the number of encoded modulated symbols required for sending the HARQ-ACK
information according to the determined number of downlink subframes, and then map
the HARQ-ACK information to the PUSCH of a subframe according to the determined number
of encoded modulated symbols needed to send the HARQ-ACK information and send the
HARQ-ACK information. By virtue of the present embodiment, HARQ-ACK information can
be sent according to the number of downlink subframes, avoiding sending invalid HARQ-ACK
information when the uplink and downlink configurations are different, solving the
problem that existing HARQ-ACK information transmission way would transmit invalid
HARQ-ACK information when the uplink and downlink configurations of serving cells
are different in the related techniques, thus increasing the efficiency of sending
HARQ-ACK information, improving the performance of HARQ-ACK information, and when
the HARQ-ACK information and encoded data are transmitted after being channel interleaved,
improving the performance of the data by increasing the efficiency of sending HARQ-ACK
information.
[0047] Further, the above first determination module 100 is also configured to, when the
PUSCH transmission is based on the DCI format 0/4, determine the number of the downlink
subframes according to the uplink and downlink configurations of the serving cells
and the DAI signaling in the DCI format 0/4, so that the HARQ-ACK information can
be sent according to the determined number of downlink subframes to increase the efficiency
of HARQ-ACK information.
[0048] On the basis of the above embodiments, the above first determination module 100 is
also configured to, when the PUSCH transmission is not based on the signaling of the
DCI format 0/4, determine the number of the downlink subframes according to the uplink
and downlink configurations of the serving cells.
[0049] On the basis of each of the above preferred embodiments, the above second determination
module 102, as shown in Fig. 11, includes: a first determination unit 1020, configured
to determine a bit sequence of the HARQ-ACK information according to the number of
downlink subframes; a second determination unit 1022, which is in communication with
the first determination unit 1020, and configured to determine the number of encoded
modulated symbols required for sending the HARQ-ACK information according to the determined
bit sequence. In the present embodiment, the bit sequence of the HARQ-ACK information
can be determined according to the determined number of downlink subframes, so that
the number of encoded modulated symbols required for sending the HARQ-ACK information
can be determined, and when the uplink and downlink configurations are different,
invalid HARQ-ACK information would not be sent, as a result, the efficiency of sending
the HARQ-ACK information can be increased.
[0050] In another embodiment, a software is also provided for executing the technical solutions
of the above embodiments and preferred implementations.
[0051] In another embodiment, a storage medium is also provided with the above software
stored therein, and the storage medium includes, but not limited to, an optical disk,
floppy disk, hard disk, erasable storage, etc.
[0052] Obviously, those skilled in the art should know that each of the mentioned modules
or steps of the present invention can be realized by universal computing devices;
the modules or steps can be focused on single computing device, or distributed on
the network formed by multiple computing devices; selectively, they can be realized
by the program codes which can be executed by the computing device; thereby, the modules
or steps can be stored in the storage device and executed by the computing device;
and under some circumstances, the shown or described steps can be executed in different
orders, or can be independently manufactured as each integrated circuit module, or
multiple modules or steps thereof can be manufactured to be single integrated circuit
module, thus to be realized. In this way, the present invention is not restricted
to any particular hardware and software combination.
[0053] The descriptions above are only the preferable embodiment of the present invention,
which are not used to restrict the present invention, for those skilled in the art,
the present invention may have various changes and variations.
1. An apparatus for sending Hybrid Automatic Repeat Request-Acknowledge, HARQ-ACK, information,
located in a terminal, comprising:
a first determination module (100), configured to, when the terminal is configured
to employ a Physical Uplink Control Channel, PUCCH, format 3 to transmit HARQ-ACK
information and the HARQ-ACK information is transmitted over a Physical Uplink Shared
Channel, PUSCH, determine the number of downlink subframes for serving cells to feed
back the HARQ-ACK information;
a second determination module (102), configured to determine the number of encoded
modulated symbols required for sending the HARQ-ACK information according to the determined
number of the downlink subframes; and
a sending module (104), configured to map the HARQ-ACK information to be sent to the
PUSCH of a specified uplink subframe according to the number of the encoded modulated
symbols, and send the HARQ-ACK information;
characterized in that the first determination module is further configured to, when PUSCH transmission
is based on a DCI format 0/4, determine the number of the downlink subframes according
to uplink and downlink configurations of the serving cells and DAI signaling in the
DCI format 0/4; and
wherein determining the number of the downlink subframes according to the uplink and
downlink configurations of the serving cells and the DAI signaling in the DCI format
0/4 comprises:
if the uplink and downlink configuration of the serving cells is {5}, then obtain
the number of the downlink subframes by calculating according to the following formula:

, wherein

is the number of the downlink subframes, min represents taking a minimum value, Mc is the number of downlink subframes within a bundling window corresponding to the
specified uplink subframe, U is a maximum value of Uc of all serving cells, Uc is an accumulative number of PDCCH indicating SPS release and PDSCH received by the
terminal in a bundling window, and

is the value of the DAI signaling in the DCI format 0/4.
2. The apparatus according to claim 1,
characterized in that:
if the terminal does not receive any PDSCH or any PDCCH indicating downlink SPS release
in the bundling window of all serving cells and

, then the sending module does not send the HARQ-ACK information on the PUSCH.
3. The apparatus according to claim 1,
characterized in that:
wherein the first determination module is further configured to, when PUSCH transmission
is not based on signaling of a DCI format 0/4, determine the number of the downlink
subframes according to uplink and downlink configurations of the serving cells; and
wherein the number of the downlink subframes is preferably obtained by calculating
according to the following formula:

, wherein

represents the number of the downlink subframes, and Mc is the number of downlink subframes within a bundling window corresponding to the
specified uplink subframe.
4. The apparatus according to claim 3, characterized in that:
if the terminal does not receive any PDSCH or any PDCCH indicating downlink SPS release
in the bundling window of all serving cells, then the sending module does not send
the HARQ-ACK information on the PUSCH.
5. The apparatus according to claim 1,
characterized in that the second determination module comprises:
a first determination unit (1020), configured to determine a bit sequence of the HARQ-ACK
information according to the number of the downlink subframes; and
a second determination unit (1022), configured to determine the number of the encoded
modulated symbols required for sending the HARQ-ACK information according to the determined
bit sequence;
wherein preferably the first determination unit is further configured to:
determine the number of bits of the HARQ-ACK information to be sent; and
map the HARQ-ACK information to be sent to the bit sequence according to the number
of bits; and
wherein the number of bits is preferably obtained by calculating according to the
following formula:

, wherein N represents the number of bits,

represents the number of configured serving cells,

represents the number of downlink subframes for the serving cells to feed back the
HARQ-ACK information, and kc represents the maximum of the number of transport blocks supported by a PDSCH corresponding
to downlink transmission of the serving cells.
6. A method for sending Hybrid Automatic Repeat Request-Acknowledge, HARQ-ACK, information,
comprising:
when a terminal is configured to employ a Physical Uplink Control Channel, PUCCH,
format 3 to transmit HARQ-ACK information and the HARQ-ACK information is transmitted
over a Physical Uplink Shared Channel (PUSCH), the terminal determining the number
of downlink subframes for serving cells to feed back the HARQ-ACK information (S402);
the terminal determining the number of encoded modulated symbols required for sending
the HARQ-ACK information according to the determined number of the downlink subframes
(S404);
the terminal mapping the HARQ-ACK information to be sent to the PUSCH of a specified
uplink subframe according to the number of the encoded modulated symbols, and sending
the HARQ-ACK information (S406); characterized in that
when PUSCH transmission is based on a DCI format 0/4, the terminal determining determine
the number of the downlink subframes according to uplink and downlink configurations
of the serving cells and DAI signaling in the DCI format 0/4;
wherein the terminal determining the number of the downlink subframes according to
the uplink and downlink configurations of the serving cells and the DAI signaling
in the DCI format 0/4 comprises:
if the uplink and downlink configuration of the serving cells is {5}, then obtain
the number of the downlink subframes by calculating according to the following formula:

, wherein

is the number of the downlink subframes, min represents taking a minimum value, Mc is the number of downlink subframes within a bundling window corresponding to the
specified uplink subframe, U is a maximum value of Uc of all serving cells, Uc is an accumulative number of PDCCH indicating SPS release and PDSCH received by the
terminal in a bundling window, and

is the value of the DAI signaling in the DCI format 0/4.
7. The method according to claim 6,
characterized by further comprising:
if the terminal does not receive any PDSCH or any PDCCH indicating downlink SPS release
in the bundling window of all serving cells and

, then not sending the HARQ-ACK information on the PUSCH.
8. The method according to claim 6,
characterized in that the terminal determining the number of downlink subframes for the serving cells to
feed back the HARQ-ACK information comprises:
when PUSCH transmission is not based on signaling of a DCI format 0/4, the terminal
determining the number of the downlink subframes according to uplink and downlink
configurations of the serving cells;
wherein the number of the downlink subframes is obtained by calculating according
to the following formula:

, wherein

represents the number of the downlink subframes, and Mc is the number of downlink subframes within a bundling window corresponding to the
specified uplink subframe.
9. The method according to claim 8, characterized by further comprising:
if the terminal does not receive any PDSCH or any PDCCH indicating downlink SPS release
in the bundling window of all serving cells, then not sending the HARQ-ACK information
on the PUSCH.
10. The method according to claim 6,
characterized in that the terminal determining the number of the encoded modulated symbols required for
sending the HARQ-ACK information according to the determined number of the downlink
subframes comprises:
the terminal determining a bit sequence of the HARQ-ACK information to be sent according
to the number of the downlink subframes; and
the terminal determining the number of the encoded modulated symbols required for
sending the HARQ-ACK information according to the determined bit sequence;
wherein the terminal determining the bit sequence of the HARQ-ACK information to be
sent according to the number of the downlink subframes comprises:
the terminal determining the number of bits of the HARQ-ACK information to be sent;
and
the terminal mapping the HARQ-ACK information to be sent to the bit sequence according
to the number of bits; and
wherein the number of bits is obtained by calculating according to the following formula:

, wherein N represents the number of bits,

represents the number of configured serving cells,

represents the number of downlink subframes for the serving cells to feed back the
HARQ-ACK information, and kc represents the maximum of the number of transport blocks supported by a PDSCH corresponding
to downlink transmission of the serving cells.
1. Vorrichtung zum Senden von hybriden automatischen Wiederholungsanfragen-Bestätigungs-,
HARQ-ACK, Informationen, die sich in einem Endgerät befindet, welches aufweist:
ein erstes Bestimmungsmodul (100), das konfiguriert ist, wenn das Endgerät konfiguriert
ist, einen physikalischen Aufwärtsstrecken-Steuerkanal, PUCCH, Format 3 einzusetzen,
um HARQ-ACK-Informationen zu übertragen, und die HARQ-ACK-Informationen über einen
physikalischen gemeinsamen Aufwärtsstreckenkanal, PUSCH, übertragen werden, die Anzahl
der Abwärtsstrecken-Subrahmen für Dienstzellen zu bestimmen, um die HARQ-ACK-Informationen
zurückzumelden;
ein zweites Bestimmungsmodul (102), das konfiguriert ist, die Anzahl der zum Senden
der HARQ-ACK-Informationen erforderlichen codierten modulierten Symbole gemäß der
bestimmten Anzahl der Abwärtsstrecken-Subrahmen zu bestimmen; und
ein Sendemodul (104), das konfiguriert ist, die zu sendenden HARQ-ACK-Informationen
auf den PUSCH eines spezifizierten Aufwärtsstrecken-Subrahmens gemäß der Anzahl der
codierten modulierten Symbole abzubilden und die HARQ-ACK-Informationen zu senden;
dadurch gekennzeichnet, dass
das erste Bestimmungsmodul ferner konfiguriert ist, wenn die PUSCH-Übertragung auf
einem DCI-Format 0/4 basiert, die Anzahl der Abwärtsstrecken-Subrahmen gemäß Aufwärtsstrecken-
und Abwärtsstreckenkonfigurationen der Dienstzellen und einer DAI-Signalisierung im
DCI-Format 0/4 zu bestimmen; und
wobei das Bestimmen der Anzahl der Abwärtsstrecken-Subrahmen gemäß der Aufwärtsstrecken-
und Abwärtsstreckenkonfigurationen der Dienstzellen und der DAI-Signalisierung im
DCI-Format 0/4 aufweist:
wenn die Aufwärtsstrecken- und Abwärtsstreckenkonfiguration der Dienstzellen {5} ist,
dann Erhalten der Anzahl der Abwärtsstrecken-Subrahmen durch Berechnen gemäß der folgenden
Formel:

, wobei

die Anzahl der Abwärtsstrecken-Subrahmen ist, min das Nehmen eines Minimalwerts repräsentiert,
MC die Anzahl der Abwärtsstrecken-Subrahmen innerhalb eines Bündelungsfensters ist,
das dem spezifizierten Aufwärtsstrecken-Subrahmen entspricht, U ein Maximalwert von
UC aller Dienstzellen ist, UC eine akkumulative Anzahl der PDCCH, die eine SPS-Freigabe und PDSCH anzeigen, die
durch das Endgerät in einem Bündelungsfenster empfangen werden, und

der Wert der DAI-Signalisierung im DCI-Format 0/4 ist.
2. Vorrichtung nach Anspruch 1,
dadurch gekennzeichnet, dass:
wenn das Endgerät keinen PDSCH oder keinen PDCCH, der eine Abwärtsstrecken-SPS-Freigabe
anzeigt, im Bündelungsfenster aller Dienstzellen empfängt, und wenn

4, dann sendet das Sendemodul die HARQ-ACK-Informationen auf dem PUSCH nicht.
3. Vorrichtung nach Anspruch 1,
dadurch gekennzeichnet, dass:
wobei das erste Bestimmungsmodul ferner konfiguriert ist, wenn die PUSCH-Übertragung
nicht auf einer Signalisierung eines DCI-Formats 0/4 basiert, die Anzahl der Abwärtsstrecken-Subrahmen
gemäß Aufwärtsstrecken- und Abwärtsstreckenkonfigurationen der Dienstzellen zu bestimmen;
und
wobei die Anzahl der Abwärtsstrecken-Subrahmen vorzugsweise durch Berechnen gemäß
der folgenden Formel erhalten wird:

, wobei

die Anzahl der Abwärtsstrecken-Subrahmen repräsentiert, und MC die Anzahl der Abwärtsstrecken-Subrahmen innerhalb eines Bündelungsfensters ist,
das dem spezifizierten Aufwärtsstrecken-Subrahmen entspricht.
4. Vorrichtung nach Anspruch 3, dadurch gekennzeichnet, dass:
wenn das Endgerät keinen PDSCH oder keinen PDCCH, der eine Abwärtsstrecken-SPS-Freigabe
anzeigt, im Bündelungsfenster aller Dienstzellen empfängt, dann sendet das Sendemodul
die HARQ-ACK-Informationen auf dem PUSCH nicht.
5. Vorrichtung nach Anspruch 1,
dadurch gekennzeichnet, dass das zweite Bestimmungsmodul aufweist:
eine erste Bestimmungseinheit (1020), die konfiguriert ist, eine Bitsequenz der HARQ-ACK-Informationen
gemäß der Anzahl der Abwärtsstrecken-Subrahmen zu bestimmen; und
eine zweite Bestimmungseinheit (1022), die konfiguriert ist, die Anzahl der zum Senden
der HARQ-ACK-Informationen erforderlichen codierten modulierten Symbole gemäß der
bestimmten Bitsequenz zu bestimmen;
wobei die erste Bestimmungseinheit vorzugsweise ferner konfiguriert ist:
die Anzahl der Bits der zu sendenden HARQ-ACK-Informationen zu bestimmen; und
die zu sendenden HARQ-ACK-Informationen auf die Bitsequenz gemäß der Anzahl der Bits
abzubilden; und
wobei die Anzahl der Bits vorzugsweise durch Berechnen gemäß der folgenden Formel
erhalten wird:

, wobei N die Anzahl der Bits repräsentiert,

die Anzahl der konfigurierten Dienstzellen repräsentiert,

die Anzahl der Abwärtsstrecken-Subrahmen für die Dienstzellen repräsentiert, um die
HARQ-ACK-Informationen zurückzumelden, und kC das Maximum der Anzahl der Transportblöcke repräsentiert, die durch einen PDSCH unterstützt
werden, die der Abwärtsstreckenübertragung der Dienstzellen entspricht.
6. Verfahren zum Senden von hybriden automatischen Wiederholungsanfragen-Bestätigungs-,
HARQ-ACK, Informationen, das aufweist:
wenn ein Endgerät konfiguriert ist, einen physikalischen Aufwärtsstrecken-Steuerkanal,
PUCCH, Format 3 einzusetzen, um HARQ-ACK-Informationen zu übertragen, und die HARQ-ACK-Informationen
über einen physikalischen gemeinsamen Aufwärtsstreckenkanal (PUSCH), übertragen werden,
Bestimmen durch das Endgerät der Anzahl der Abwärtsstrecken-Subrahmen für Dienstzellen,
um die HARQ-ACK-Informationen zurückzumelden (S402);
Bestimmen durch das Endgerät der Anzahl der zum Senden der HARQ-ACK-Informationen
erforderlichen codierten modulierten Symbole gemäß der bestimmten Anzahl der Abwärtsstrecken-Subrahmen
(S404);
Abbilden durch das Endgerät der zu sendenden HARQ-ACK-Informationen auf den PUSCH
eines spezifizierten Aufwärtsstrecken-Subrahmens gemäß der Anzahl der codierten modulierten
Symbole, und Senden der HARQ-ACK-Informationen (S406);
dadurch gekennzeichnet, dass
wenn die PUSCH-Übertragung auf einem DCI-Format 0/4 basiert, Bestimmen durch das Endgerät
der Anzahl der Abwärtsstrecken-Subrahmen gemäß Aufwärtsstrecken- und Abwärtsstreckenkonfigurationen
der Dienstzellen und einer DAI-Signalisierung im DCI-Format 0/4;
wobei das Bestimmen durch das Endgerät der Anzahl der Abwärtsstrecken-Subrahmen gemäß
der Aufwärtsstrecken- und Abwärtsstreckenkonfigurationen der Dienstzellen und der
DAI-Signalisierung im DCI-Format 0/4 aufweist:
wenn die Aufwärtsstrecken- und Abwärtsstreckenkonfiguration der Dienstzellen {5} ist,
dann Erhalten der Anzahl der Abwärtsstrecken-Subrahmen durch Berechnen gemäß der folgenden
Formel:

, wobei

die Anzahl der Abwärtsstrecken-Subrahmen ist, min das Nehmen eines Minimalwerts repräsentiert,
MC die Anzahl der Abwärtsstrecken-Subrahmen innerhalb eines Bündelungsfensters ist,
das dem spezifizierten Aufwärtsstrecken-Subrahmen entspricht, U ein Maximalwert von
UC aller Dienstzellen ist, UC eine akkumulative Anzahl der PDCCH, die eine SPS-Freigabe und PDSCH anzeigen, die
durch das Endgerät in einem Bündelungsfenster empfangen werden, und

der Wert der DAI-Signalisierung im DCI-Format 0/4 ist.
7. Verfahren nach Anspruch 6,
dadurch gekennzeichnet, dass es ferner aufweist:
wenn das Endgerät keinen PDSCH oder keinen PDCCH, der eine Abwärtsstrecken-SPS-Freigabe
anzeigt, im Bündelungsfenster aller Dienstzellen empfängt, und wenn

4, dann nicht Senden der HARQ-ACK-Informationen auf dem PUSCH.
8. Verfahren nach Anspruch 6,
dadurch gekennzeichnet, dass das Bestimmen durch das Endgerät der Anzahl der Abwärtsstrecken-Subrahmen für die
Dienstzellen, um die HARQ-ACK-Informationen zurückzumelden, aufweist:
wenn die PUSCH-Übertragung nicht auf einer Signalisierung eines DCI-Formats 0/4 basiert,
Bestimmen durch das Endgerät der Anzahl der Abwärtsstrecken-Subrahmen gemäß Aufwärtsstrecken-
und Abwärtsstreckenkonfigurationen der Dienstzellen;
wobei die Anzahl der Abwärtsstrecken-Subrahmen durch Berechnen gemäß der folgenden
Formel erhalten wird:

, wobei

die Anzahl der Abwärtsstrecken-Subrahmen repräsentiert, und MC die Anzahl der Abwärtsstrecken-Subrahmen innerhalb eines Bündelungsfensters ist,
das dem spezifizierten Aufwärtsstrecken-Subrahmen entspricht.
9. Verfahren nach Anspruch 8, dadurch gekennzeichnet, dass es ferner aufweist:
wenn das Endgerät keinen PDSCH oder keinen PDCCH, der eine Abwärtsstrecken-SPS-Freigabe
anzeigt, im Bündelungsfenster aller Dienstzellen empfängt, dann nicht Senden der HARQ-ACK-Informationen
auf dem PUSCH.
10. Verfahren nach Anspruch 6,
dadurch gekennzeichnet, dass das Bestimmen durch das Endgerät der Anzahl der zum Senden der HARQ-ACK-Informationen
erforderlichen codierten modulierten Symbole gemäß der bestimmten Anzahl der Abwärtsstrecken-Subrahmen
aufweist:
Bestimmen durch das Endgerät einer Bitsequenz der zu sendenden HARQ-ACK-Informationen
gemäß der Anzahl der Abwärtsstrecken-Subrahmen; und
Bestimmen durch das Endgerät der Anzahl der zum Senden der HARQ-ACK-Informationen
erforderlichen codierten modulierten Symbole gemäß der bestimmten Bitsequenz;
wobei das Bestimmen durch das Endgerät der Bitsequenz der zu sendenden HARQ-ACK-Informationen
gemäß der Anzahl der Abwärtsstrecken-Subrahmen aufweist:
Bestimmen durch das Endgerät der Anzahl der Bits der zu sendenden HARQ-ACK-Informationen;
und
Abbilden durch das Endgerät der zu sendenden HARQ-ACK-Informationen auf die Bitsequenz
gemäß der Anzahl der Bits; und
wobei die Anzahl der Bits durch Berechnen gemäß der folgenden Formel erhalten wird:

, wobei N die Anzahl der Bits repräsentiert,

die Anzahl der konfigurierten Dienstzellen repräsentiert,

die Anzahl der Abwärtsstrecken-Subrahmen für die Dienstzellen repräsentiert, um die
HARQ-ACK-Informationen zurückzumelden, und kC das Maximum der Anzahl der Transportblöcke repräsentiert, die durch einen PDSCH unterstützt
werden, die der Abwärtsstreckenübertragung der Dienstzellen entspricht.
1. Dispositif de transmission d'informations d'accusé de réception de demande automatique
de répétition hybride HARQ-ACK, disposé dans un terminal, comprenant
un premier module de détermination (100) prévu pour, si le terminal est prévu pour
recourir à un canal de commande de liaison physique montante PUCCH format 3 pour transmettre
des informations HARQ-ACK et si les informations HARQ-ACK sont transmises sur un canal
partagé de liaison physique montante PUSCH, déterminer le nombre de sous-trames de
liaison descendante permettant à des cellules de desserte de retourner les informations
HARQ-ACK ;
un deuxième module de détermination (102), prévu pour déterminer le nombre de symboles
modulés codés requis pour transmettre les informations HARQ-ACK en fonction du nombre
de sous-trames de liaison descendante déterminé ; et
un module de transmission (104), prévu pour mapper les informations HARQ-ACK à transmettre
au PUSCH d'une sous-trame spécifiée de liaison montante en fonction du nombre de symboles
modulés codés, et transmettre les informations HARQ-ACK ; caractérisé en ce que
le premier module de détermination est en outre prévu pour, si la transmission PUSCH
est basée sur un format DCI 0/4, déterminer le nombre de sous-trames de liaison descendante
en fonction des configurations de liaisons montante et descendante des cellules de
desserte et de la signalisation de DAI en format DCI 0/4 ; et
la détermination du nombre de sous-trames de liaison descendante en fonction des configurations
de liaisons montante et descendante des cellules de desserte et de la signalisation
de DAI en format DCI 0/4 comprend :
si la configuration de liaisons montante et descendante des cellules de desserte est
{5}, l'obtention du nombre de sous-trames de liaison descendante par calcul conformément
à la formule suivante :

, où

est le nombre de sous-trames de liaison descendante, min représente l'acquisition
d'une valeur minimale, MC est le nombre de sous-trames de liaison descendante à l'intérieur d'une fenêtre de
groupage correspondant à la sous-trame spécifiée de liaison montante, U est une valeur
maximale de Uc de toutes les cellules de desserte, Uc est un nombre cumulé de PDCCH indiquant une libération de SPS et de PDSCH reçus par
le terminal dans une fenêtre de groupage, et

est la valeur de la signalisation de DAI en format DCI 0/4.
2. Dispositif selon la revendication 1,
caractérisé en ce que :
si le terminal ne reçoit aucun PDSCH ou aucun PDCCH indiquant une libération de SPS
sur liaison descendante dans la fenêtre de groupage de toutes les cellules de desserte
et si

, le module de transmissions ne transmet pas les informations HARQ-ACK sur le PUSCH.
3. Dispositif selon la revendication 1,
caractérisé en ce que :
le premier module de détermination est en outre prévu pour, si la transmission PUSCH
n'est pas basée sur la signalisation d'un format DCI 0/4, déterminer le nombre de
sous-trames de liaison descendante en fonction des configurations de liaisons montante
et descendante des cellules de desserte ; et
le nombre de sous-trames de liaison descendante est préférentiellement obtenu par
calcul conformément à la formule suivante :

, où

représente le nombre de sous-trames de liaison descendante, et MC est le nombre de sous-trames de liaison descendante à l'intérieur d'une fenêtre de
groupage correspondant à la sous-trame spécifiée de liaison montante.
4. Dispositif selon la revendication 3, caractérisé en ce que :
si le terminal ne reçoit aucun PDSCH ou aucun PDCCH indiquant une libération de SPS
sur liaison descendante dans la fenêtre de groupage de toutes les cellules de desserte,
le module de transmissions ne transmet pas les informations HARQ-ACK sur le PUSCH.
5. Dispositif selon la revendication 1,
caractérisé en ce que le deuxième module de détermination comprend :
une première unité de détermination (1020), prévue pour déterminer une séquence de
bits des informations HARQ-ACK en fonction du nombre de sous-trames de liaison descendante
; et
une deuxième unité de détermination (1022), prévue pour déterminer le nombre de symboles
modulés codés requis pour transmettre les informations HARQ-ACK en fonction de la
séquence de bits déterminée ;
la première unité de détermination étant préférentiellement prévue pour :
déterminer le nombre de bits des informations HARQ-ACK à transmettre ; et mapper les
informations HARQ-ACK à transmettre à la séquence de bits en fonction du nombre de
bits ; et
où le nombre de bits est préférentiellement obtenu par calcul conformément à la formule
suivante :

, où N représente le nombre de bits,

représente le nombre de cellules de desserte configurées,

représente le nombre de sous-trames de liaison descendante permettant aux cellules
de desserte de retourner les informations HARQ-ACK, et kC représente le maximum du nombre de blocs de transport supportés par un PDSCH correspondant
à une transmission en liaison descendante des cellules de desserte.
6. Procédé de transmission d'informations d'accusé de réception de demande automatique
de répétition hybride HARQ-ACK, comprenant :
si un terminal est prévu pour recourir à un canal de commande de liaison physique
montante PUCCH format 3 pour transmettre des informations HARQ-ACK et si les informations
HARQ-ACK sont transmises sur un canal partagé de liaison physique montante (PUSCH),
la détermination par le terminal du nombre de sous-trames de liaison descendante permettant
à des cellules de desserte de retourner les informations HARQ-ACK (S402);
la détermination par le terminal du nombre de symboles modulés codés requis pour transmettre
les informations HARQ-ACK en fonction du nombre de sous-trames de liaison descendante
déterminé (S404) ;
le mappage par le terminal des informations HARQ-ACK à transmettre au PUSCH d'une
sous-trame spécifiée de liaison montante en fonction du nombre de symboles modulés
codés, et la transmission des informations HARQ-ACK (S406) ; caractérisé en ce que,
si la transmission PUSCH est basée sur un format DCI 0/4, la détermination par le
terminal détermine le nombre de sous-trames de liaison descendante en fonction des
configurations de liaisons montante et descendante des cellules de desserte et de
la signalisation de DAI en format DCI 0/4 ;
la détermination par le terminal du nombre de sous-trames de liaison descendante en
fonction des configurations de liaisons montante et descendante des cellules de desserte
et de la signalisation de DAI en format DCI 0/4 comprenant :
si la configuration de liaisons montante et descendante des cellules de desserte est
{5}, l'obtention du nombre de sous-trames de liaison descendante par calcul conformément
à la formule suivante :

, où

est le nombre de sous-trames de liaison descendante, min représente l'acquisition
d'une valeur minimale, MC est le nombre de sous-trames de liaison descendante à l'intérieur d'une fenêtre de
groupage correspondant à la sous-trame spécifiée de liaison montante, U est une valeur
maximale de Uc de toutes les cellules de desserte, Uc est un nombre cumulé de PDCCH indiquant une libération de SPS et de PDSCH reçus par
le terminal dans une fenêtre de groupage, et

est la valeur de la signalisation de DAI en format DCI 0/4.
7. Procédé selon la revendication 6,
caractérisé en ce qu'il comprend en outre :
si le terminal ne reçoit aucun PDSCH ou aucun PDCCH indiquant une libération de SPS
sur liaison descendante dans la fenêtre de groupage de toutes les cellules de desserte
et si

, la non-transmission des informations HARQ-ACK sur le PUSCH.
8. Procédé selon la revendication 6,
caractérisé en ce que la détermination par le terminal du nombre de sous-trames de liaison descendante
permettant aux cellules de desserte de retourner les informations HARQ-ACK comprend
:
si la transmission PUSCH n'est pas basée sur la signalisation d'un format DCI 0/4,
la détermination par le terminal du nombre de sous-trames de liaison descendante en
fonction des configurations de liaisons montante et descendante des cellules de desserte
;
le nombre de sous-trames de liaison descendante est obtenu par calcul conformément
à la formule suivante :

, où

représente le nombre de sous-trames de liaison descendante, et MC est le nombre de sous-trames de liaison descendante à l'intérieur d'une fenêtre de
groupage correspondant à la sous-trame spécifiée de liaison montante.
9. Procédé selon la revendication 8, caractérisé en ce qu'il comprend en outre :
si le terminal ne reçoit aucun PDSCH ou aucun PDCCH indiquant une libération de SPS
sur liaison descendante dans la fenêtre de groupage de toutes les cellules de desserte,
la non-transmission des informations HARQ-ACK sur le PUSCH.
10. Procédé selon la revendication 6,
caractérisé en ce que la détermination par le terminal du nombre de symboles modulés codés requis pour
transmettre les informations HARQ-ACK en fonction du nombre de sous-trames de liaison
descendante déterminé comprend :
la détermination par le terminal d'une séquence de bits des informations HARQ-ACK
à transmettre en fonction du nombre de sous-trames de liaison descendante ; et
la détermination par le terminal du nombre de symboles modulés codés requis pour transmettre
les informations HARQ-ACK en fonction de la séquence de bits déterminée ;
la détermination par le terminal de la séquence de bits des informations HARQ-ACK
à transmettre en fonction du nombre de sous-trames de liaison descendante comprenant
:
la détermination par le terminal du nombre de bits des informations HARQ-ACK à transmettre
; et
le mappage par le terminal des informations HARQ-ACK à transmettre à la séquence de
bits en fonction du nombre de bits ; et
le nombre de bits étant obtenu par calcul conformément à la formule suivante :

, où N représente le nombre de bits,

représente le nombre de cellules de desserte configurées,

représente le nombre de sous-trames de liaison descendante permettant aux cellules
de desserte de retourner les informations HARQ-ACK, et kC représente le maximum du nombre de blocs de transport supportés par un PDSCH correspondant
à une transmission en liaison descendante des cellules de desserte.