Data transmission method and apparatus
10742470 ยท 2020-08-11
Assignee
Inventors
- Donglei Chen (Shenzhen, CN)
- Zhisong Zuo (Shenzhen, CN)
- Shuqiang Xia (Shenzhen, CN)
- Peng HAO (Shenzhen, CN)
Cpc classification
H04L5/0007
ELECTRICITY
H04L27/2678
ELECTRICITY
H04L27/2646
ELECTRICITY
H04L27/26025
ELECTRICITY
H04L27/205
ELECTRICITY
H04L27/2603
ELECTRICITY
International classification
Abstract
Provided are a data transmission method and apparatus, a sending end sends data to a receiving end on one or more orthogonal frequency division multiplexing (OFDM) symbols in a scheduling unit, and the receiving end receives data sent by the sending end on one or more OFDM symbols in the scheduling unit. A time length of the scheduling unit is a length of two long term evolution (LTE) OFDM symbols having normal cycle prefixes and a subcarrier spacing of 15 kHz, the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, the scheduling unit is maintained to be the seven OFDM symbols having a subcarrier spacing of 60 kHz and having new extended cycle prefixes.
Claims
1. A data transmission method, comprising: sending, by a sending end, data to a receiving end on one or more orthogonal frequency division multiplexing (OFDM) symbols in a scheduling unit, wherein a time length of the scheduling unit is a length of two long term evolution (LTE) OFDM symbols having normal cycle prefixes and a subcarrier spacing of 15 kilohertz (kHz), the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having the subcarrier spacing of 60 kHz comprise cycle prefixes and valid data, two types of different cycle prefix lengths are used in the seven OFDM symbols having the subcarrier spacing of 60 kHz and the eight OFDM symbols having the subcarrier spacing of 60 kHz in the scheduling unit, wherein a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
2. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is 22192Ts, and configuration of cycle prefix lengths of the seven OFDM symbols having the subcarrier spacing of 60 kHz comprises one of: 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; 480Ts1, 480Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; and 464Ts1, 464Ts1, 464Ts1, 464Ts1, 448Ts1, 448Ts1, and 448Ts1; wherein Ts is a time length of 1/30720 millisecond (ms), and Ts1 is a time length of 1/122880 ms.
3. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by the first gap and the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is 22192Ts, and cycle prefix lengths of the seven OFDM symbols having the subcarrier spacing of 60 kHz respectively are: 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, wherein remaining 64Ts1 obtained by removing a length of the seven OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
4. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of cycle prefix lengths of the seven OFDM symbols having the subcarrier spacing of 60 kHz comprise one of: 576Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; 512Ts1, 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; 480Ts1, 480Ts1, 480Ts1, 480Ts1, 448Ts1, 448Ts1, and 448Ts1; and 480Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
5. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by a first gap and the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of cycle prefix lengths of the seven OFDM symbols having the subcarrier spacing of 60 kHz comprises one of: 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, wherein remaining 128Ts1 obtained by removing a length of the seven OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 128Ts1; and 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1, wherein remaining 16Ts1 obtained by removing a length of the seven OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 16Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
6. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by the eight OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is 22192Ts, and cycle prefix lengths of the eight OFDM symbols having the subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
7. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by the eight OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of cycle prefix lengths of the eight OFDM symbols having the subcarrier spacing of 60 kHz comprise one of: 160Ts1, 160Ts1, 160Ts1, 160Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; and 208Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
8. The data transmission method of claim 1, wherein in condition that the scheduling unit is formed by the second gap and the eight OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two 15 kHz LTE OFDM symbols having normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and cycle prefix lengths of the eight OFDM symbols having the subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, wherein remaining 64Ts1 obtained by removing a length of the eight OFDM symbols having a subcarrier spacing of 60 kHz from the time length of in the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
9. The data transmission method of claim 1, wherein the first predetermined duration is equal to 128Ts1, and the second predetermined duration is equal to 64Ts1, wherein Ts1 is a time length of 1/122880 ms.
10. A data reception method, comprising: receiving, by a receiving end, data sent by a sending end on one or more orthogonal frequency division multiplexing (OFDM) symbols in a scheduling unit, wherein a time length of the scheduling unit is a length of two long term evolution (LTE) OFDM symbols having normal cycle prefixes and a subcarrier spacing of 15 kilohertz (kHz), the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having the subcarrier spacing of 60 kHz comprise cycle prefixes and valid data, two types of different cycle prefix lengths are used in the seven OFDM symbols having the subcarrier spacing of 60 kHz and the eight OFDM symbols having the subcarrier spacing of 60 kHz in the scheduling unit, wherein a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
11. The method of claim 10, wherein in condition that the scheduling unit is formed by the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is 22192Ts, and configuration of cycle prefix lengths of the seven OFDM symbols having the subcarrier spacing of 60 kHz comprises one of: 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; 480Ts1, 480Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; and 464Ts1, 464Ts1, 464Ts1, 464Ts1, 448Ts1, 448Ts1, and 448Ts1; wherein Ts is a time length of 1/30720 millisecond (ms), and Ts1 is a time length of 1/122880 ms.
12. The method of claim 10, wherein in condition that the scheduling unit is formed by the first gap and the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is 22192Ts, and cycle prefix lengths of the seven OFDM symbols having the subcarrier spacing of 60 kHz respectively are: 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, wherein, remaining 64Ts1 obtained by removing a length of the seven OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
13. The method of claim 10, wherein in condition that the scheduling unit is formed by the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of cycle prefix lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz comprises one of: 576Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; 512Ts1, 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; 480Ts1, 480Ts1, 480Ts1, 480Ts1, 448Ts1, 448Ts1, and 448Ts1; and 480Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
14. The method of claim 10, wherein in condition that the scheduling unit is formed by the first gap and the seven OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of cycle prefix lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz comprises one of: 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, wherein remaining 128Ts1 obtained by removing a length of the seven OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 128Ts1; and 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1, wherein remaining 16Ts1 obtained by removing a length of the seven OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 16Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
15. The method of claim 10, wherein in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is 22192Ts, and cycle prefix lengths of the eight OFDM symbols having the subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
16. The method of claim 10, wherein in condition that the scheduling unit is formed by the eight OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of cycle prefix lengths of the eight OFDM symbols having the subcarrier spacing of 60 kHz comprises one of: 160Ts1, 160Ts1, 160Ts1, 160Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; and 208Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
17. The method of claim 10, wherein in condition that the scheduling unit is formed by the second gap and the eight OFDM symbols having the subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having the normal cycle prefixes and the subcarrier spacing of 15 kHz is (2192+2208)Ts, and cycle prefix lengths of the eight OFDM symbols having the subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, wherein remaining 64Ts1 obtained by removing a length of the eight OFDM symbols having the subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1; wherein Ts is a time length of 1/30720 ms, and Ts1 is a time length of 1/122880 ms.
18. The method of claim 10, wherein the first predetermined duration is equal to 128Ts1, and the second predetermined duration is equal to 64Ts1, wherein Ts1 is a time length of 1/122880 ms.
19. A data transmission apparatus, comprising: a sending unit, which is configured to send data to a receiving end on one or more orthogonal frequency division multiplexing (OFDM) symbols in a scheduling unit, wherein a time length of the scheduling unit is a length of two long term evolution (LTE) OFDM symbols having normal cycle prefixes and a subcarrier spacing of 15 kilohertz (kHz), the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having the subcarrier spacing of 60 kHz comprise cycle prefixes and valid data, two types of different cycle prefix lengths are used in the seven OFDM symbols having the subcarrier spacing of 60 kHz and the eight OFDM symbols having the subcarrier spacing of 60 kHz in the scheduling unit, a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
20. The data transmission apparatus of claim 19, wherein the first predetermined duration is equal to 128Ts1, and the second predetermined duration is equal to 64Ts1, wherein Ts1 is a time length of 1/122880 millisecond (ms).
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(13) Embodiments of the present application will be described below in detail with reference to the drawings. It is to be noted that if not in collision, the embodiments and features therein in the present application may be combined with each other.
(14) The steps shown in the flowcharts in the drawings may be performed by a computer system such as a group of computers capable of executing instructions. Although logical sequences are shown in the flowcharts, the shown or described steps may be performed in sequences different from the sequences described herein in some cases.
(15) As shown in
(16) A sending end sends data to a receiving end on one or more orthogonal frequency division multiplexing (OFDM) symbols in a scheduling unit, where a time length of the scheduling unit is a length of two long term evolution (LTE) OFDM symbols having normal cycle prefixes (CPs) and a subcarrier spacing of 15 kHz, the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having a subcarrier spacing of 60 kHz include CPs and valid data, two types of different CP lengths are used in the seven OFDM symbols having a subcarrier spacing of 60 kHz and the eight OFDM symbols having a subcarrier spacing of 60 kHz in the scheduling unit, a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
(17) The receiving end receives the data on the one or more OFDM symbols in the scheduling unit.
(18) Exemplarily, the first predetermined duration may be equal to 128Ts1, and the second predetermined duration may be equal to 64Ts1, where a length of the Ts1 is 1/122880 ms.
(19) It should be noted that it is known from related standards that in a short transmission time interval (TTI), the length of the two 15 kHz LTE OFDM symbols having normal CPs may be 22192Ts, or may be (2192+2208)Ts, where the length of the Ts is 1/30720 ms.
(20) In this embodiment, in condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(21) 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(22) 480Ts1, 480Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(23) 464Ts1, 464Ts1, 464Ts1, 464Ts1, 448Ts1, 448Ts1, and 448Ts1;
(24) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(25) On the basis of configuration described above, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and the total length of the seven OFDM symbols having a subcarrier spacing of 60 kHz is 17536Ts1, which is exactly the same as the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz of 22192Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed.
(26) In this embodiment, in condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(27) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 64Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
(28) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(29) At this time, a duration of the first gap is 64Ts1. On the basis of configuration described above, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and a sum of the total length of the seven OFDM symbols having a subcarrier spacing of 60 kHz and the remaining 64Ts1 in which no information is sent or received is 17536Ts1, which is exactly the same as the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz of 22192Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed. In this embodiment, in condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(30) 576Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(31) 512Ts1, 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(32) 480Ts1, 480Ts1, 480Ts1, 480Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(33) 480Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1;
(34) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(35) On the basis of configuration described above, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and the total length of the seven OFDM symbols having a subcarrier spacing of 60 kHz is 17600Ts1, which is exactly the same as the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz of (2192+2208)Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed.
(36) In this embodiment, in condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz include one of: 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 128Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 128Ts1; or
(37) 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1, remaining 16Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 16Ts1; where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(38) On the basis of configuration described above, a duration of the first gap may be 128Ts1 or 16Ts1. The length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and a sum of the total length of the seven OFDM symbols having a subcarrier spacing of 60 kHz and the remaining 128Ts1 or the remaining 16Ts1 in which no information is sent or received is 17600Ts1, which is exactly the same as the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz of (2192+2208)Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed.
(39) In this embodiment, in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(40) On the basis of configuration described above, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and the total length of the eight OFDM symbols having a subcarrier spacing of 60 kHz is 17536Ts1, which is exactly the same as the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz of 22192Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed.
(41) In this embodiment, in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(42) 160Ts1, 160Ts1, 160Ts1, 160Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; and
(43) 208Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1;
(44) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(45) On the basis of configuration described above, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and the total length of the eight OFDM symbols having a subcarrier spacing of 60 kHz is 17600Ts1, which is exactly the same as the length of the two 15 kHz LTE OFDM symbols having normal CPs of (2192+2208)Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed.
(46) In this embodiment, in condition that the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(47) 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, remaining 64Ts1 obtained by removing a length of the eight OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(48) On the basis of configuration described above, a duration of the second gap is 64Ts1. The length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and a sum of the total length of the eight OFDM symbols having a subcarrier spacing of 60 kHz and the remaining 64Ts1 in which no information is sent or received is 17600Ts1, which is exactly the same as the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz of (2192+2208)Ts. Therefore, when start positions are the same, the boundary alignment is guaranteed.
(49) The embodiments of the present application further provide a data transmission method. The method includes a step described below.
(50) A receiving end receives data sent by a sending end on one or more OFDM symbols in a scheduling unit, where a time length of the scheduling unit is a length of two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz, the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having a subcarrier spacing of 60 kHz include CPs and valid data, two types of different CP lengths are used in the seven OFDM symbols having a subcarrier spacing of 60 kHz and the eight OFDM symbols having a subcarrier spacing of 60 kHz in the scheduling unit, a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
(51) Exemplarily, the first predetermined duration may be equal to 128Ts1, and the second predetermined duration may be equal to 64Ts1, where a length of the Ts1 is 1/122880 ms.
(52) In condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz include one of:
(53) 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(54) 480Ts1, 480Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(55) 464Ts1, 464Ts1, 464Ts1, 464Ts1, 448Ts1, 448Ts1, and 448Ts1;
(56) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(57) In condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(58) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 64Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1; where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(59) In condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz includes one of:
(60) 576Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(61) 512Ts1, 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(62) 480Ts1, 480Ts1, 480Ts1, 480Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(63) 480Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1;
(64) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(65) In condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz include one of:
(66) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 128Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 128Ts1; and
464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1, remaining 16Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 16Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(67) In condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(68) In condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz includes one of:
(69) 160Ts1, 160Ts1, 160Ts1, 160Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; or
(70) 208Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1;
(71) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(72) In condition that the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(73) 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, remaining 64Ts1 obtained by removing a length of the eight OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(74) The present application will be described below through multiple embodiments.
Embodiment 1
(75) In this embodiment, the receiving end is, for example, a terminal, and the sending end is, for example, a base station. As shown in
(76) In this embodiment, the terminal may receive the data on first five symbols in the scheduling unit.
Embodiment 2
(77) In this embodiment, the receiving end is, for example, a base station, and the sending end is, for example, a terminal. As shown in
(78) In this embodiment, the base station may receive the data on seven symbols in the scheduling unit.
Embodiment 3
(79) In this embodiment, the receiving end is, for example, a terminal, and the sending end is, for example, a base station. As shown in
(80) In this embodiment, the terminal may receive the data on seven symbols in the scheduling unit.
Embodiment 4
(81) In this embodiment, the receiving end is, for example, a terminal, and the sending end is, for example, a base station. As shown in
(82) In this embodiment, the terminal may receive the data on first four symbols in the scheduling unit.
Embodiment 5
(83) In this embodiment, the receiving end is, for example, a base station, and the sending end is, for example, a terminal. As shown in
(84) In this embodiment, the base station may receive the data on last six symbols in the scheduling unit.
Embodiment 6
(85) In this embodiment, the receiving end is, for example, a terminal, and the sending end is, for example, a base station. As shown in
(86) In this embodiment, the first terminal may receive the data on eight symbols in the first scheduling unit, and the second terminal may receive the data on seven symbols in the second scheduling unit.
Embodiment 7
(87) As shown in
(88) Two symbols whose CP lengths are 512Ts1 may be disposed in any two of seven positions.
(89) In addition, the embodiments of the present application further provide a data transmission apparatus. As shown in
(90) Exemplarily, the first predetermined duration may be equal to 128Ts1, and the second predetermined duration may be equal to 64Ts1, where a length of the Ts1 is 1/122880 ms.
(91) In this embodiment, in condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(92) 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(93) 480Ts1, 480Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(94) 464Ts1, 464Ts1, 464Ts1, 464Ts1, 448Ts1, 448Ts1, and 448Ts1;
(95) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(96) In condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(97) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 64Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(98) In this embodiment, in condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(99) 576Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(100) 512Ts1, 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(101) 480Ts1, 480Ts1, 480Ts1, 480Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(102) 480Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1;
(103) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(104) In condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz include one of:
(105) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 128Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 128Ts1; and
464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1, remaining 16Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 16Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(106) In this embodiment, in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(107) In this embodiment, in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(108) 160Ts1, 160Ts1, 160Ts1, 160Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; and
(109) 208Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1;
(110) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(111) In condition that the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(112) 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, remaining 64Ts1 obtained by removing a length of the eight OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(113) The embodiments of the present application further provide a data transmission apparatus. As shown in
(114) Exemplarily, the first predetermined duration may be equal to 128Ts1, and the second predetermined duration may be equal to 64Ts1, where a length of the Ts1 is 1/122880 ms. In this embodiment, in condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(115) 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(116) 480Ts1, 480Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(117) 464Ts1, 464Ts1, 464Ts1, 464Ts1, 448Ts1, 448Ts1, and 448Ts1;
(118) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(119) In condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(120) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 64Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(121) In this embodiment, in condition that the scheduling unit is formed by seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(122) 576Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(123) 512Ts1, 512Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1;
(124) 480Ts1, 480Ts1, 480Ts1, 480Ts1, 448Ts1, 448Ts1, and 448Ts1; and
(125) 480Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1;
(126) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(127) In condition that the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the seven OFDM symbols having a subcarrier spacing of 60 kHz includes one of:
(128) 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, 448Ts1, and 448Ts1, remaining 128Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 128Ts1; and
464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, 464Ts1, and 464Ts1, remaining 16Ts1 obtained by removing a length of the seven OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 16Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(129) In this embodiment, in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is 22192Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are: 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(130) In this embodiment, in condition that the scheduling unit is formed by eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and configuration of CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz may include one of:
(131) 160Ts1, 160Ts1, 160Ts1, 160Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1; and
(132) 208Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1;
(133) where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(134) In condition that the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the length of the two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz is (2192+2208)Ts, and CP lengths of the eight OFDM symbols having a subcarrier spacing of 60 kHz respectively are:
(135) 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, 144Ts1, and 144Ts1, remaining 64Ts1 obtained by removing a length of the eight OFDM symbols having a subcarrier spacing of 60 kHz from the time length of the scheduling unit is disposed before or after all symbols in the scheduling unit, and no information is sent or received in the remaining 64Ts1;
where a length of the Ts is 1/30720 ms, and a length of the Ts1 is 1/122880 ms.
(136) The embodiments of the present application further provide an electronic device. The electronic device includes a processor and a memory storing processor-executable instructions which, when executed by the processor, execute following operations:
(137) sending data to a receiving end on one or more OFDM symbols in a scheduling unit, where a time length of the scheduling unit is a length of two LTE OFDM symbols having normal CPs, the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having a subcarrier spacing of 60 kHz include CPs and valid data, two types of different CP lengths are used in the seven OFDM symbols having a subcarrier spacing of 60 kHz and the eight OFDM symbols having a subcarrier spacing of 60 kHz in the scheduling unit, a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
(138) Exemplarily, the first predetermined duration may be equal to 128Ts1, and the second predetermined duration may be equal to 64Ts1, where a length of the Ts1 is 1/122880 ms. The embodiments of the present application further provide an electronic device. The electronic device includes a processor and a memory storing processor-executable instructions which, when executed by the processor, execute following operations:
(139) receiving data sent by a sending end on one or more OFDM symbols in a scheduling unit, where a time length of the scheduling unit is a length of two LTE OFDM symbols having normal CPs and a subcarrier spacing of 15 kHz, the scheduling unit is formed by seven or eight OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz formed by a first gap and seven OFDM symbols having a subcarrier spacing of 60 kHz, or the scheduling unit is formed by a second gap and eight OFDM symbols having a subcarrier spacing of 60 kHz, the OFDM symbols having a subcarrier spacing of 60 kHz include CPs and valid data, two types of different CP lengths are used in the seven OFDM symbols having a subcarrier spacing of 60 kHz and the eight OFDM symbols having a subcarrier spacing of 60 kHz in the scheduling unit, a duration of the first gap is less than or equal to a first predetermined duration, and a duration of the second gap is less than or equal to a second predetermined duration.
(140) Exemplarily, the first predetermined duration may be equal to 128Ts1, and the second predetermined duration may be equal to 64Ts1, where a length of the Ts1 is 1/122880 ms.
(141) In addition, the embodiments of the present application further provide a computer-readable storage medium configured to store computer-executable instructions for executing the data transmission method applied to a sending end when executed by a processor.
(142) In addition, the embodiments of the present application further provide a computer-readable storage medium configured to store computer-executable instructions for executing the data transmission method applied to a receiving end when executed by a processor.
(143) It should be understood by those skilled in the art that functional modules or units in all or part of the steps of the method, the system and the apparatus disclosed above may be implemented as software, firmware, hardware and appropriate combinations thereof. In the hardware implementation, the division of functional modules or units mentioned in the above description may not correspond to the division of physical components. For example, one physical component may have multiple functions, or one function or step may be executed jointly by several physical components. Some or all components may be implemented as software executed by processors such as digital signal processors or microcontrollers, hardware, or integrated circuits such as application specific integrated circuits. Such software may be distributed on a computer-readable medium, which may include a computer storage medium (or a non-transitory medium) and a communication medium (or a transitory medium). As is known to those skilled in the art, the term, computer storage medium, includes volatile and nonvolatile, removable and non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules or other data). The computer storage medium includes, but is not limited to, a random access memory (RAM), a read-only memory (ROM), an electrically erasable programmable read-only memory (EEPROM), a flash memory or other memory technologies, a compact disc-read only memory (CD-ROM), a digital versatile disc (DVD) or other optical disc storage, a magnetic cassette, a magnetic tape, a magnetic disk storage or other magnetic storage apparatuses, or any other medium used for storing desired information and accessed by a computer. In addition, as is known to those skilled in the art, the communication medium generally includes computer-readable instructions, data structures, program modules or other data in modulated data signals such as carriers or other transmission mechanisms, and may include any information delivery medium.
(144) Although the embodiments disclosed by the present application are as described above, the content thereof is merely embodiments for facilitating the understanding of the present application and is not intended to limit the present application. Any person skilled in the art to which the present application pertains may make any modifications and variations in the implementation forms and details without departing from the spirit and scope disclosed by the present application, but the patent protection scope of the present application is still subject to the scope defined by the appended claims.