Systems and methods for communicating orthogonal frequency division multiplexing (OFDM) frame formats
The implementation of OFDMA frames with tailored tone plans addresses interference challenges in next-generation WLANs, enhancing data transmission efficiency and supporting diverse QoS requirements.
Patent Information
- Application Number
- JP2024151518
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2015-01-26
- Filing Date
- 2024-09-03
- Publication Date
- 2026-02-05
- Estimated Expiration
- 2036-01-26
AI Technical Summary
Next-generation wireless local area networks (WLANs) face challenges in supporting diverse quality of service (QoS) requirements due to increased mobile device usage for streaming video and gaming, necessitating improved methods for communicating Orthogonal Frequency Division Multiplexing (OFDM) frame formats to handle various traffic types effectively.
Implementing Orthogonal Frequency Division Multiple Access (OFDMA) frames with specific tone plans that include data, pilot tones, and direct current (DC) regions with null tones to mitigate interference, allowing for efficient data transmission across different channel bandwidths.
The proposed tone plans enhance data transmission efficiency by reducing interference, aligning resource units, and protecting tones near edges and DC regions, thereby supporting higher throughput rates required by next-generation WLANs.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to systems and methods for wireless communications, and more particularly to systems and methods for communicating orthogonal frequency division multiplexing (OFDM) frame formats. [Background technology]
[0002] Next-generation wireless local area networks (WLANs) will be deployed in dense environments, including access points (APs) that provide wireless access to a large number of stations (STAs) in the same geographic area. As mobile devices are increasingly used to access streaming video, mobile gaming, and other services, it is desirable for next-generation WLANs to simultaneously support a variety of traffic types with diverse quality of service (QoS) requirements. Summary of the Invention
[0003] Technical advantages are generally achieved by embodiments of the present disclosure, which describe systems and methods for communicating an Orthogonal Frequency Division Multiplexing (OFDM) frame format.
[0004] According to one embodiment, a method for communicating data is provided. In this example, the method includes transmitting an Orthogonal Frequency Division Multiple Access (OFDMA) frame. The OFDMA frame includes a first set of data and pilot tones, a second set of data and pilot tones, and a direct current (DC) region located between the first set of data and pilot tones and the second set of data and pilot tones. The DC region consists of seven null tones that do not account for data and pilot signaling. An apparatus for performing the method is also provided.
[0005] According to another embodiment, another method for communicating data is provided. In this example, the method includes receiving an Orthogonal Frequency Division Multiple Access (OFDMA) frame. The OFDMA frame includes a first set of data and pilot tones, a second set of data and pilot tones, and a direct current (DC) region located between the first set of data and pilot tones and the second set of data and pilot tones. The DC region consists of seven null tones that do not account for data and pilot signaling. The method further includes decoding at least a portion of the OFDMA frame. An apparatus for performing this method is also provided.
[0006] For a more complete understanding of the present invention, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a diagram of a WiFi network for communicating data.
[0008] [Figure 2] 1 is an example frame structure for an Orthogonal Frequency Division Multiplexing (OFDM) frame. [Figure 3A] FIG. 1 illustrates an example tone plan for a multi-user orthogonal frequency division multiple access (OFDMA) (MU-OFDMA) frame communicated over a 20 megahertz (MHz) channel. [Figure 3B] FIG. 1 illustrates an example tone plan for a Single-User OFDMA (SU-OFDMA) frame communicated over a 20 MHz channel. [Figure 4A] FIG. 2 illustrates an example tone plan for a MU-OFDMA frame communicated over a 40 MHz channel. [Figure 4B] FIG. 1 illustrates an example tone plan for a SU-OFDMA frame communicated over a 40 MHz channel. [Figure 5A]FIG. 2 illustrates an example tone plan for a MU-OFDMA frame communicated over an 80 MHz channel. [Figure 5B] FIG. 1 illustrates an example tone plan for a SU-OFDMA frame communicated over an 80 MHz channel. [Figure 6A] FIG. 10 illustrates another example tone plan for a MU-OFDMA frame communicated over an 80 MHz channel. [Figure 6B] FIG. 10 illustrates another example tone plan for a SU-OFDMA frame communicated over an 80 MHz channel. [Figure 7] 1 illustrates an example tone plan for a 20 MHz OFDMA frame. [Figure 8] 1 illustrates an example tone plan for a 40 MHz OFDMA frame. [Figure 9] 1 illustrates an example tone plan for an 80 MHz OFDMA and SU frame. [Figure 10] 10 illustrates an additional example tone plan for an 80 MHz OFDMA and SU frame. [Figure 11] FIG. 1 is a block diagram of a processing system according to an embodiment. [Figure 12] FIG. 2 is a block diagram of a transceiver according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] Corresponding numerals and symbols in the different drawings generally refer to corresponding parts unless otherwise indicated. The drawings are drawn to clearly illustrate relevant aspects of the embodiments and are not necessarily drawn to scale.
[0010] To begin with, example implementations of one or more embodiments are provided below, but it should be understood that the disclosed systems and / or methods may be implemented using any number of technologies, whether currently known or unknown. The present disclosure should in no way be limited to the example implementations, drawings, and technologies illustrated below, including the designs and implementations illustrated and described herein, but may vary within the scope of the appended claims, along with their full range of equivalents.
[0011] The Institute of Electrical and Electronics Engineers (IEEE) 802.11ac defines a WLAN protocol for communicating data over carrier frequencies of 2.5 gigahertz (GHz) and 5 gigahertz and may be capable of supporting aggregate throughput rates of up to 6.77 gigabits per second (Gbits / s). Even higher throughput rates may be required to meet the performance targets of next-generation WLANs. As a result, IEEE 802.11ax, an extension of IEEE 802.11ac, is being developed with the goal of providing up to 10 Gbits per second over carrier frequencies of 2.4 GHz and 5 GHz.
[0012] Example tone plans are provided herein for communicating Orthogonal Frequency Division Multiple Access (OFDMA) frames over 20 megahertz (MHz), 40 MHz, and 80 MHz channels. One or more of the example tone plans may be adopted by IEEE 802.11ax. In one example, a multi-user OFDMA (MU-OFDMA) frame is communicated over a 20 MHz channel. The MU-OFDMA frame can carry multiple data streams in different resource units (RUs) to one or more receiving devices. A 20 MHz MU-OFDMA frame can include eight 26-tone resource units (RUs), one 26-tone bisected RU, and a direct current (DC) region. The eight 26-tone RUs include 26 consecutive data and pilot tones, and the bisected 26-tone RU is divided into two 13-tone portions, each including 13 consecutive data and pilot tones. The DC region can include seven null tones. In one example, the DC region of a 20 MHz MU-OFDMA frame consists of three DC tones and four null data tones. Null tones are tones that do not account for data, pilot, and control signaling, such as DC tones, guard tones, and / or null data tones (e.g., data tones reused as null tones). Null tones may be placed between adjacent RUs in an OFDMA frame to mitigate inter-symbol interference between the respective data streams carried by adjacent RUs. Null tones can also be placed between adjacent carriers (e.g., in edge regions) to mitigate inter-carrier interference and protect RUs near the edge regions from distortion due to transmit filtering and other effects. Eight 26-tone RUs and each 13-tone portion of the half RU are distributed across two data and pilot regions, with the DC region placed between the data and pilot regions.In particular, four of the 26-tone RUs and a 13-tone portion of one half of the RU can be placed in one data and pilot region, and the remaining four 26-tone RUs and a 13-tone portion of the other half of the RU can be placed in the other data and pilot region. Each of the data and pilot regions can be placed between a DC region and a corresponding edge region. One of the edge regions can include a null data tone pair and six guard tones. The other edge region can include a null data tone pair and five guard tones.
[0013] In another example, an MU-OFDMA frame is communicated over an 80 MHz channel. The 80 MHz MU-OFDMA frame includes 36 26-tone RUs, one 26-tone bisected RU, and a DC region consisting of 7 DC tones. The RUs can be distributed into two innermost data and pilot regions and two outermost data and pilot regions. In one example, nine of the 26-tone RUs and a 13-tone portion of one bisected RU are placed in each of the innermost data and pilot regions, and nine of the 26-tone RUs are placed in each of the outermost data and pilot regions. The DC region can be located between the innermost data and pilot regions, and each of the outermost data and pilot regions can be located between a respective one of the innermost data and pilot regions and a corresponding edge region. One of the edge regions can include a set of eight null data tones and 12 guard tones. The other edge region can include a set of eight null data tones and 11 guard tones. In some embodiments, a set of eight null data tones is placed between each innermost data region and the corresponding outermost data and pilot region, and in such embodiments, an 80 MHz MU-OFDMA frame can carry 36 null data tones.
[0014] In another example, a single-user OFDMA (SU-OFDMA) frame is communicated over an 80 MHz channel. The SU-OFDMA frame can carry a single data stream to a receiving device. In one example, an 80 MHz SU-OFDMA frame includes 994 data and pilot tones, a 26-tone bisected RU, and 7 DC tones. The 994 data and pilot tones are distributed across two innermost data and pilot regions and two outermost data and pilot regions. The two innermost data and pilot regions each carry 242 contiguous data and pilot tones and a 13-tone portion of one of the bisected RUs. The two outermost data and pilot regions each carry 242 contiguous data and pilot tones. Similar to an 80 MHz MU-OFDMA frame, the DC region in an 80 MHz SU-OFDMA frame can be located between the innermost data and pilot regions. Each one of the outermost data and pilot regions in an 80 MHz SU-OFDMA frame can be located between a respective one of the innermost data and pilot regions and a corresponding edge region, one of which includes 12 guard tones and the other of which includes 11 guard tones. These and other aspects are described in more detail below.
[0015] 1 illustrates a network 100 for communicating data. Network 100 includes an access point (AP) 110 having a coverage area 101, a plurality of mobile stations 120, and a backhaul network 130. As shown, AP 110 establishes an uplink (dashed line) and / or downlink (dotted line) connection with mobile station 120, which serves to carry data from mobile station 120 to AP 110 and vice versa. Data carried via the uplink / downlink connection may include data communicated between mobile stations 120, as well as data communicated with a remote end (not shown) via backhaul network 130. As used herein, the term “access point (AP)” refers to any component (or collection of components) configured to provide wireless access to a network, such as an enhanced base station (eNB), macrocell, femtocell, WiFi access point (AP), or other wirelessly enabled device. An AP may provide wireless access according to one or more wireless communication protocols, such as, for example, WiFi 802.11a / b / g / n / ac / ax, Long Term Evolution (LTE), LTE Advanced (LTE-A), High Speed Packet Access (HSPA), etc. As used herein, the term "mobile station" refers to any component (or collection of components) that can establish a wireless connection with an AP, such as a station (STA), user equipment (UE), and other wirelessly enabled devices. In some embodiments, network 100 may include various other wireless devices, such as relays, low power nodes, etc.
[0016] 2 is a diagram of an example frame structure for a downlink (DL) OFDM frame 200. As shown, the downlink OFDM frame 200 includes a legacy short training field (L-STF) / long training field (LTF) 201, a legacy signaling field (L-SIG) / repeated legacy (RL) SIG field 202, a high-efficiency (HE) first signal (SIGA) field 204, an HE second signal (SIGB) field 206, an HE-STF / LTF field 208, and a data payload field 210. Scheduling index information is embedded in the SIGB field 206. The index information associates an identifier (ID) assigned to an individual STA or group of STAs with the starting or ending position of a subset of assigned RUs within the sequence of RUs carried by the OFDM frame. For example, the scheduling index information may indicate leading and / or trailing RUs within a subset of RUs allocated to the STA, enabling the STA to find the subset of RUs allocated to it upon receiving a frame.
[0017] 3A illustrates an example tone plan for an MU-OFDMA frame 301 communicated over a 20 MHz channel. As illustrated, the MU-OFDMA frame 301 includes eight 26-tone RUs 310, two halves of the 26-tone RUs 311 and 312, null data tones 320, and a DC tone 330. In this example, three DC tones 330 and four null data tones 320 are included in a DC region 350. Four of the 26-tone RUs 310 and one halved RU portion 311 are included in a data and pilot region 381, and four of the 26-tone RUs 310 and the remaining halved RU portion 312 are included in a data and pilot region 382. The DC region 350 is located between the data and pilot regions 381 and 382. Two of the null data tones 320 are included in an edge region 391, and two of the null data tones 320 are located in an edge region 392. Additionally, six guard tones 340 are included in edge region 391 and five guard tones 340 are included in edge region 392. In some embodiments, the guard tones 340 are included within the 20 MHz channel in which the MU-OFDMA frame 301 is transmitted. In other embodiments, the guard tones 340 are located outside of the 20 MHz channel in which the MU-OFDMA frame 301 is transmitted.
[0018] 3B illustrates an example tone plan for an SU-OFDMA frame 302 communicated over a 20 MHz channel. As shown, the SU-OFDMA frame 302 includes data and pilot regions 315, 316 and a DC tone 330. In this example, the data and pilot regions 315, 316 each include 121 contiguous data and pilot tones. The DC tone 330 is located between the data and pilot region 315 and the data and pilot region 316. The data and pilot region 315 is located between six guard tones 340 and the DC tone 330. The data and pilot region 316 is located between the DC tone 330 and five guard tones 340. In some embodiments, the guard tones 340 are included within the 20 MHz channel in which the SU-OFDMA frame 302 is transmitted. In other embodiments, the guard tones 340 are located outside the 20 MHz channel in which the SU-OFDMA frame 302 is transmitted.
[0019] An embodiment of the present disclosure provides a tone plan for an OFDMA frame communicated over a 40 MHz channel. FIG. 4A illustrates an example tone plan for an MU-OFDMA frame 401 communicated over a 40 MHz channel. As illustrated, the MU-OFDMA frame 401 includes eighteen 26-tone RUs 410, null data tones 420, and a DC tone 430. Five DC tones 430 and eight null data tones 420 are included in a DC region 450. Nine of the 26-tone RUs 410 are included in a data and pilot region 481, and nine of the 26-tone RUs 410 are included in a data and pilot region 482. The DC region 450 is located between the data and pilot region 481 and the data and pilot region 482. Four null data tones 420 are included in an edge region 491, and four null data tones 420 are included in an edge region 492. Additionally, 12 guard tones 440 are included in edge region 491 and 11 guard tones 440 are included in edge region 492. In some embodiments, guard tones 440 are included within the 40 MHz channel in which MU-OFDMA frame 401 is transmitted. In other embodiments, guard tones 440 are located outside of the 40 MHz channel in which MU-OFDMA frame 401 is transmitted.
[0020] 4B illustrates an example tone plan for an SU-OFDMA frame 402 communicated over a 40 MHz channel. As shown, the SU-OFDMA frame 402 includes data and pilot regions 415, 416 and a DC tone 430. In this example, the data and pilot regions 415, 416 each include 242 contiguous data and pilot tones. The DC tone 430 is located between the data and pilot region 415 and the data and pilot region 416. The data and pilot region 415 is located between 12 guard tones 440 and the DC tone 430. The data and pilot region 416 is located between the DC tone 430 and 11 guard tones 440. In some embodiments, the guard tones 440 are included within the 40 MHz channel in which the SU-OFDMA frame 402 is transmitted. In other embodiments, the guard tones 440 are located outside the 40 MHz channel in which the SU-OFDMA frame 402 is transmitted.
[0021] An embodiment of the present disclosure provides a tone plan for an OFDMA frame communicated over an 80 MHz channel. Figure 5A illustrates an example tone plan for an MU-OFDMA frame 501 communicated over an 80 MHz channel. As shown, the MU-OFDMA frame 501 includes a 26-tone RU 510, two 26-tone RU portions 511 and 512, a null data tone 520, and five DC tones 530. In this example, the 26-tone RU 510 and two RU portions 511 and 512 are distributed across four data and pilot regions 581, 582, 583, and 584. In particular, the data and pilot region 581 includes nine 26-tone RUs 510 and one RU portion 511, and the data and pilot region 582 includes nine 26-tone RUs 510 and the remaining RU portion 512. The four data and pilot regions 583, 584 each contain nine 26-tone RUs 510. DC region 550 is located between data and pilot region 581 and data and pilot region 582. Data and pilot region 581 is located between the DC region and data and pilot region 584, and data and pilot region 582 is located between the DC region and data and pilot region 583. Data and pilot region 584 is located between data and pilot region 581 and edge region 591, and data and pilot region 583 is located between data and pilot region 582 and edge region 592. Because of their relative location to one another, data and pilot regions 581, 582 may be referred to herein as the innermost data and pilot regions of MU-OFDMA frame 501, and data and pilot regions 583, 584 may be referred to herein as the outermost data and pilot regions of MU-OFDMA frame 501. Eight null data tones 520 are included in edge region 591 and eight null data tones 520 are included in edge region 592. Additionally, thirteen guard tones 540 are included in edge region 591 and twelve guard tones 540 are included in edge region 592.In some embodiments, guard tones 540 are included within the 80 MHz channel in which MU-OFDMA frame 501 is transmitted. In other embodiments, guard tones 540 are located outside of the 80 MHz channel in which MU-OFDMA frame 501 is transmitted. Eight null data tones 520 are located between data and pilot region 581 and data and pilot region 584. Similarly, eight null data tones 520 are located between data and pilot region 582 and data and pilot region 583.
[0022] 5B illustrates an example tone plan for an SU-OFDMA frame 502 communicated over an 80 MHz channel. As shown, the SU-OFDMA frame 502 includes data and pilot regions 515, 516, 517, and 518, two 26-tone RU portions 511 and 512, and five DC tones 530. In this example, the data and pilot regions 515, 516, 517, and 518 each include 242 contiguous data and pilot tones. The five DC tones 530 are located between the data and pilot region 515 and the data and pilot region 516. The data and pilot regions 515 and 518 are located between the 12 guard tones 540 and the DC tone 530. The data and pilot regions 516 and 517 are located between the DC tone 530 and the 11 guard tones 540. In some embodiments, the guard tones 540 are included within the 80 MHz channel over which the SU-OFDMA frame 502 is transmitted. In another embodiment, guard tones 540 are placed outside the 80 MHz channel in which SU-OFDMA frame 502 is transmitted.
[0023] 6A illustrates an example tone plan for a MU-OFDMA frame 601 communicated over an 80 MHz channel. RUs 610, 611, 612, tones 620, 630, 640, and regions 650, 681, 682, 683, 684, 691, 692 in the MU-OFDMA frame 601 have a similar arrangement and configuration to similar components / regions in the MU-OFDMA frame 501, except that the DC region 650 includes seven DC tones 630, the edge region 691 includes twelve guard tones 640, and the edge region 692 includes eleven guard tones 640.
[0024] 6B illustrates an example tone plan for a SU-OFDMA frame 602 communicated over an 80 MHz channel. The data and pilot regions in the SU-OFDMA frame 602 have a similar arrangement and configuration to similar components / regions of the SU-OFDMA frame 602, except that the DC region 650 includes seven DC tones 630, and there are also 12 guard tones 640 located outside the data and pilot region 618 and 11 guard tones 640 located outside the data and pilot region 617.
[0025] Aspects of the present disclosure provide example frame formats for use in wireless environments such as Institute of Electrical and Electronics Engineers (IEEE) 802.11ax networks. Examples provide tone plans suitable for orthogonal frequency division multiple access (OFDMA) resource units (RUs) for 20 MHz, 40 MHz, and 80 MHz OFDMA transmissions. An example 20 MHz frame includes six null tones at one edge of the orthogonal frequency division multiplexing (OFDM) frame, five null tones at the other edge of the OFDM frame, and three null tones in the direct current (DC) region. An example OFDM frame for 40 MHz has 242 × 2 = 484 data and pilot tones grouped into RUs, with additional null tones in the DC region and on the edges. Single-user (SU) frames are scheduled for a single user. Multi-user OFDMA frames can be scheduled for multiple users. In other examples, for 80 MHz OFDM transmissions, there are either five null tones in the DC region or seven null tones in the DC region. In another embodiment, 20 MHz, 40 MHz, and 80 MHz OFDMA tone plans use 26-tone RUs, and 20 MHz SU scheduling uses 242-tone RUs. An OFDMA or SU frame can be a downlink frame or an uplink frame.
[0026] In one example OFDM frame, there are eight extra tones in each 242-tone block. The extra tones can be used as separators between different RUs, especially smaller RUs, to reduce leakage from adjacent blocks. Additional null tones near the edges can be used for protection from pulse-shaping filters, adjacent blockers, etc. No data is transmitted on the extra tones, DC tone, or edge tones. That is, the extra tones, DC tone, and edge tones are all null tones. An extra tone can be adjacent to an edge tone, in which case the number of null tones near the edge is equal to the sum of the number of edge tones and the number of extra tones adjacent to the edge tone. An extra tone can also be adjacent to a DC tone, in which case the number of null tones in the DC region is equal to the sum of the number of DC tones and the number of extra tones adjacent to the DC region. An edge tone can also be referred to as a guard tone.
[0027] There are several factors that can be considered when determining the tone plan and RU allocation. RUs can be aligned between 20 MHz, 40 MHz, and 80 MHz frame configurations. To protect tones in RUs near the edge and DC tones, null tones in the DC region and null tones at the edges can be allocated based on the spectral mask and carrier frequency offset (CFO) requirements. Other considerations when determining the tone plan and RU allocation include, for example, the use of excess tones to align RUs and protect tones in RUs near the DC and edge tones. The edge, DC, and excess tones are null tones and are not used to transmit data or pilot.
[0028] Distortion may affect tones in RUs near the edges of the OFDMA frame more significantly than tones in RUs near the edges of the SU frame. In one example, the tone plan used for both the SU frame and the OFDMA frame is similar. Alternatively, the tones for the SU frame and the OFDMA frame are different. In one example, additional null tones are used in the OFDMA frame to provide additional protection for RUs near the edges and RUs in the DC region. Thus, the OFDMA frame may have more null tones near the edges and more null tones in the DC region compared to the SU frame. The null tones near the edges are placed as guard tones at the edges of the transmission band to reduce the impact of transmit filtering on data and pilot tones. The null tones in the DC region are empty subcarriers (i.e., subcarriers that do not carry data / information) used by mobile devices to find the center of the OFDM frequency band.
[0029] Examples provide tone plans for 40 MHz and 80 MHz OFDM frames. In some embodiments, five DC tones are used, e.g., with a CFO of 40 ppm. In other embodiments, seven DC tones or five DC tones can be used, e.g., for 80 MHz. In various embodiments, null tones are utilized to align RUs and protect tones near the DC region and edges.
[0030] In an example 40 MHz tone plan, there are two 242-tone RUs, including data and pilot tones, and 28 tones allocated to null tones in the DC region and null tones near the edges. In one example, there are five null tones in the DC region and [12, 11] null tones near the edges. The notation [A, B] indicates A edge tones on one edge of the OFDM frame and B edge tones on the other edge of the OFDM frame. In an example 80 MHz tone plan, there are [13, 12] null tones near the edges and five null tones in the DC region. In another example 80 MHz tone plan, there are [12, 11] null tones near the edges and seven null tones in the DC region. There are 994 possible tones for data, pilot, and excess tones. In one example, the tone plans are the same for SU frames and OFDMA frames. Alternatively, the tone plan for SU frames may differ from the tone plan for OFDMA frames.
[0031] Before a frame is transmitted, transmit filtering can be performed. The transmit filter can be based on a spectral mask. Extra tones can be used to protect RUs near null tones at the edges and in the DC region.
[0032] In OFDMA, different RUs are assigned to different STAs. Any number of RUs can be assigned to a particular STA. Each STA estimates the channel and regenerates the entire message. A signaling field is used by each STA to determine which RU(s) are assigned to that particular STA.
[0033] FIG. 7 illustrates an example tone plan 740 for a 20 MHz OFDMA frame. There are a total of 242 data, pilot, and excess tones. Excess tones are used to protect RUs near the DC and edge tones, increasing the number of null tones in the DC region and the number of null tones near the edges. Excess tones used to protect RUs near the DC tone increase the number of null tones in the DC region. Excess tones used to protect RUs near the edge tones also increase the number of null tones near the edges. The DC, edge, and excess tones are all null tones. The tones in RU 744 include data and pilot tones, and tones 746, 747, and 742 are excess tones, which are null tones. The pilot tones can be distributed throughout the RUs within RU 744. Separate pilot tones carried by the RU can be used to adjust or estimate the phase and / or frequency offset of the data tones carried by the RU. For example, in an uplink OFDMA frame carrying RUs transmitted by different STAs, the pilot tones carried in each RU can be used by the serving AP to perform residual carrier frequency offset estimation for the uplink OFDMA frame. There are 234 data and pilot tones, including eight 26-tone RUs 744 and a 26-tone RU 745 divided into 13 tones on either side of the null tone in the DC region 743. There are eight excess tones used to protect RUs near the edge and DC tones. Two of the excess tones 742 are used on either side of the DC tone 748. To obtain eight null tones near the edge 747, two excess tones 746 are placed adjacent to six edge tones 749. To obtain seven null tones near the edge 747, two excess tones 746 are placed adjacent to five edge tones 749.
[0034] Figure 8 illustrates a tone plan 850 suitable for 40 MHz transmission for OFDMA and SU frames. There are 484 tones for data, pilot, and excess tones, and 28 tones for DC and edge tones. Tone plan 850 includes an OFDMA tone plan 870 and an SU tone plan 872. Tones in OFDMA tone plan 870 are transmitted to or received from multiple STAs. Tones in SU tone plan 872 are transmitted to or received from a single STA.
[0035] The SU tone plan 872 includes five DC tones 852. The five DC tones 852 are contained in the DC region. On either side of the DC tones 852 are 242-tone RUs 864. Each 242-tone RU contains four pilot tones and 238 data tones. One edge contains 12 edge tones 866. The other edge contains 11 edge tones 868.
[0036] The RUs and excess tones of OFDMA tone plan 870 are aligned with the RUs of SU tone plan 872. OFDMA tone plan 870 includes five DC tones 852. Four excess tones 854 are on either side of DC tone 852 to obtain 13 null tones in DC region 853, protecting RUs near the null tones in DC region 853. At one edge are 12 edge tones 860. Four excess tones 856 are adjacent to edge tone 860 to obtain 16 null tones near edge 861. At the other edge are 11 edge tones 862, and four excess tones 857 are adjacent to edge tone 862 to obtain 15 null tones near edge 863. The 468 data and pilot tones are distributed among 18 26-tone RUs. Nine of the 26-tone RUs are located on either side of DC region 853. Each 26-tone RU contains 2 pilot tones and 24 data tones.
[0037] Figure 9 illustrates an 80 MHz tone plan 950 for OFDMA and SU frames. There are 994 data, pilot, and excess tones, and 30 DC and edge tones. Tone plan 950 includes an OFDMA tone plan 979 and an SU tone plan 978. Tones in OFDMA tone plan 979 are transmitted to or received from multiple STAs. Tones in SU tone plan 978 are transmitted to or received from a single STA. RUs in OFDMA tone plan 979 are aligned with RUs in SU tone plan 978.
[0038] The SU tone plan 978 includes five DC tones 966. The RU 968 is divided into two 13-tone portions. The five DC tones 966 are placed between each 13-tone portion of the RU 968. To obtain four 242-tone RUs, the tones in the RU 970 include two sets of 242-tone RUs on either side. Thirteen edge tones 974 are on one edge and twelve edge tones 975 are on the opposite edge.
[0039] The RUs, DC tones, and edge tones of OFDMA tone plan 979 are aligned with the RUs, DC tones, and edge tones of SU tone plan 978, respectively. OFDMA tone plan 979 has 262 pilot and data tones grouped into 37 26-tone RUs. OFDMA tone plan 979 includes five DC tones 952, which are aligned with DC tone 966. There are a total of five null tones in the DC region. OFDMA tone plan 979 also includes 13 edge tones 964. Eight excess tones 962 are adjacent to edge tones 964 to obtain a total of 21 null tones at edge 963. OFDMA tone plan 979 also includes 12 edge tones 965. Excess tones 963 are adjacent to edge tones 965 to obtain a total of 20 null tones near edge 967. 26-tone RU 954 is separated by DC tone 952, with 13 tones on either side of DC tone 952. There are four sets of nine 26-tone RUs: 960, 956, 957, and 961. The excess tones include tones 962, 958, 959, and 963. Tones 958 and 959 are between the sets of nine 26-tone RUs.
[0040] Figure 10 illustrates an 80 MHz tone plan 1080 for an OFDMA frame and an SU frame. There are 994 data, pilot, and spare tones, and 30 DC and edge tones. The tone plan 1080 includes an OFDMA tone plan 1006 and an SU tone plan 1008. The tones in the OFDMA tone plan 1006 are transmitted to or received from multiple STAs. The tones in the SU tone plan 1008 are transmitted to or received from a single STA. The RUs, DC tones, and edge tones of the OFDMA tone plan 1006 are aligned with the RUs, DC tones, and edge tones of the SU tone plan 1008, respectively.
[0041] The SU tone plan 1008 includes seven DC tones 1096. There are a total of seven null tones in the DC region. Additionally, the RU 1098 includes two 13-tone sections. The DC tones 1096 are positioned between each of the 13-tone sections of the RU 1098. The RU 1000 includes two sets of 242-tone RUs on either side of the DC tones 1096 and the RU 1098. Twelve edge tones 1002 are located on one edge to achieve a total of 12 null tones on that edge, and eleven edge tones 1004 are located on that edge to achieve 11 null tones on the opposite edge.
[0042] OFDMA tone plan 1006 is aligned with SU tone plan 1008. There are a total of 37 26-tone RUs in OFDMA tone plan 1006. To obtain a total of 7 null tones in the DC region, OFDMA tone plan 1006 includes seven DC tones 1082. OFDMA tone plan 1006 also includes 12 edge tones 1094 and 11 edge tones 1095. The excess tones include four sets of eight tones 1092, 1088, 1089, and 1093. Eight tones 1092 are adjacent to edge tone 1094 to obtain 20 null tones at edge 1093. Eight excess tones 1093 are adjacent to edge tone 1095 to obtain 19 null tones at edge 1097. Tones 1088 and 1089 are between the nine sets of 26-tone RUs. The 26 tones 1084 include 13 tones on either side of the DC tone 1082. There are four sets of nine 26-tone RUs 1090, 1086, 1078, 1091.
[0043] In another embodiment, there are a total of 37 26-tone RUs, one of which can be used to schedule a STA.
[0044] Additional examples may include RUs of different sizes, such as an RU that includes 26 tones, 52 tones, 106 tones, 242 tones, or another number of tones.
[0045] For a downlink frame based on the signaling field of the frame, the receiver determines which RUs are scheduled for that STA. The receiver can use the pilots to perform CFO estimation. Residual frequency offset compensation can include estimating the carrier frequency offset based on dedicated pilots carried in the OFDMA transmission.
[0046] Examples include tone plans for 40 MHz and 80 MHz OFDMA transmissions. In one embodiment, the OFDMA tone plan is the same as or similar to the SU tone plan. Alternatively, the OFDMA tone plan is different from the SU tone plan. In one embodiment, there are five DC tones for a 40 ppm CFO. In one embodiment, the 26-tone RU for the OFDMA frame is aligned with the 242-tone RU for the SU frame, and no RU overlaps with the location of another RU. In one embodiment, excess tones are used to align the RUs and protect tones near the DC and edge tones. In one embodiment, one 26-tone RU is used for scheduling at 80 MHz.
[0047] FIG. 11 is a block diagram of an example processing system 1100, which may be installed in a host device, for performing the methods described herein. As shown, the processing system 1100 includes a processor 1104, a memory 1106, and interfaces 1110-1114, which may (or may not) be arranged as shown in FIG. 11. The processor 1104 may be any component or collection of components configured to perform computations and / or other processing-related tasks, and the memory 1106 may be any component or collection of components configured to store programming and / or instructions for execution by the processor 1104. In one embodiment, the memory 1106 includes a non-transitory computer-readable medium. The interfaces 1110, 1112, and 1114 may be any component or collection of components that enable the processing system 1100 to communicate with other devices / components and / or users. For example, one or more of the interfaces 1110, 1112, 1114 can be configured to communicate data, control, or management messages from the processor 1104 to applications installed on the host device and / or remote devices. As another example, one or more of the interfaces 1110, 1112, 1114 can be configured to allow a user or a user device (e.g., a personal computer (PC), etc.) to interact / communicate with the processing system 1100. The processing system 1100 can include additional components not shown in FIG. 11 , such as long-term storage (e.g., non-volatile memory, etc.).
[0048] In some embodiments, processing system 1100 is included in a network device that accesses or is otherwise part of a telecommunications network. In one example, processing system 1100 is in a network-side device in a wireless or wired telecommunications network, such as a base station, a relay station, a scheduler, a controller, a gateway, a router, an application server, or any other device in a telecommunications network. In other embodiments, processing system 1100 is in a user-side device that accesses a wireless or wired telecommunications network, such as a mobile station, a user equipment (UE), a personal computer (PC), a tablet, a wearable communication device (e.g., a smart watch, etc.), or any other device configured to access a telecommunications network.
[0049] In some embodiments, one or more of interfaces 1110, 1112, 1114 connect processing system 1100 to a transceiver configured to transmit and receive signaling over a telecommunications network. FIG. 12 illustrates a block diagram of a transceiver 1200 configured to transmit and receive signaling over a telecommunications network. The transceiver 1200 can be installed in a host device. As shown, the transceiver 1200 includes a network-side interface 1202, a combiner 1204, a transmitter 1206, a receiver 1208, a signal processor 1210, and a device-side interface 1212. The network-side interface 1202 can include any component or collection of components configured to transmit or receive signaling over a wireless or wired telecommunications network. The combiner 1204 can include any component or collection of components configured to enable bidirectional communication over the network-side interface 1202. Transmitter 1206 may include any component or collection of components (e.g., an upconverter, a power amplifier, etc.) configured to convert baseband signals to modulated carrier signals suitable for transmission via network-side interface 1202. Receiver 1208 may include any component or collection of components (e.g., a downconverter, a low-noise amplifier, etc.) configured to convert carrier signals received via network-side interface 1202 to baseband signals. Signal processor 1210 may include any component or collection of components configured to convert baseband signals to data signals suitable for communication via device-side interface(s) 1212, or vice versa. Device-side interface(s) 1212 may include any component or collection of components configured to communicate data signals between signal processor 1210 and components within the host device (e.g., processing system 1100, a local area network (LAN) port, etc.).
[0050] The transceiver 1200 can transmit and receive signaling over any type of communication medium. In some embodiments, the transceiver 1200 transmits and receives signaling over a wireless medium. For example, the transceiver 1200 may be a wireless transceiver configured to communicate according to a wireless telecommunications protocol, such as a cellular protocol (e.g., Long Term Evolution (LTE)), a Wireless Local Area Network (WLAN) protocol (e.g., WiFi), or any other type of wireless protocol (e.g., Bluetooth, Near Field Communication (NFC), etc.). In such embodiments, the network-side interface 1202 comprises one or more antennas / radiating elements. For example, the network-side interface 1202 may include a single antenna, multiple separate antennas, or a multi-antenna array configured for multi-layer communication, e.g., single-input multiple-output (SIMO), multiple-input single-output (MISO), multiple-input multiple-output (MIMO), etc. In other embodiments, transceiver 1200 transmits and receives signaling over a wired medium, such as twisted pair cable, coaxial cable, optical fiber, etc. A particular processing system and / or transceiver may utilize all of the components shown, or only a subset of the components, and the level of integration may vary from device to device.
[0051] Although several examples are provided in this disclosure, it should be understood that the disclosed systems and methods may be embodied in many other specific forms without departing from the spirit or scope of the disclosure. The examples should be considered illustrative and not limiting, and the intention is not to be limited to the details given herein. For example, various elements or components may be combined or integrated into another system, or certain features may be omitted, or not implemented.
[0052] Furthermore, the techniques, systems, subsystems, and methods described and illustrated individually or separately in various embodiments may be combined or integrated with other systems, modules, techniques, or methods without departing from the scope of the present disclosure. Other items shown or discussed as connected or directly connected or in communication with each other may also be indirectly connected or in communication through some interface, device, or intermediate component, whether electrical, mechanical, or otherwise. Other examples of changes, substitutions, and alterations are ascertainable by those skilled in the art and could be made without departing from the spirit and scope disclosed herein. [Explanation of symbols]
[0053] 100 Network 110 Access Point (AP) 120 Mobile Station 130 Backhaul Network
Claims
1. 1. A method of wireless communication, comprising: transmitting an Orthogonal Frequency Division Multiple Access (OFDMA) frame according to an 80 MHz tone plan; the 80 MHz tone plan includes 12 guard tones, a first set of tones, a second set of tones, the first 13 tones of a 26-tone RU in half, 7 DC tones, the second 13 tones of the 26-tone RU in half, a third set of tones, a fourth set of tones, and 11 guard tones; the first set of tones is located between the 12 guard tones and the second set of tones, the second set of tones is located between the first set of tones and the first 13 tones of the bisected 26-tone RU, the first 13 tones of the bisected 26-tone RU are located between the second set of tones and the 7 DC tones, the 7 DC tones are located between the first 13 tones of the bisected 26-tone RU and the second 13 tones of the bisected 26-tone RU, the second 13 tones of the bisected 26-tone RU are located between the 7 DC tones and the third set of tones, the third set of tones is located between the second 13 tones of the bisected 26-tone RU and the fourth set of tones, and the fourth set of tones is located between the third set of tones and the 11 guard tones; 10. A method according to claim 1, wherein the first set of tones includes nine 26-tone resource units (RUs), the second set of tones includes nine 26-tone RUs, the third set of tones includes nine 26-tone RUs, and the fourth set of tones includes nine 26-tone RUs.
2. 2. The method of claim 1, wherein the first set of tones further includes eight excess tones, the second set of tones further includes eight excess tones, the third set of tones further includes eight excess tones, and the fourth set of tones further includes eight excess tones.
3. The method described in claim 2, wherein, in each of the first, second, third, and fourth sets of tones, eight excess tones are located between the nine 26-tone RUs and adjacent RUs.
4. 1. A method of wireless communication, comprising: receiving an Orthogonal Frequency Division Multiple Access (OFDMA) frame according to an 80 MHz tone plan; the 80 MHz tone plan includes 12 guard tones, a first set of tones, a second set of tones, the first 13 tones of a 26-tone RU in half, 7 DC tones, the second 13 tones of the 26-tone RU in half, a third set of tones, a fourth set of tones, and 11 guard tones; the first set of tones is located between the 12 guard tones and the second set of tones, the second set of tones is located between the first set of tones and the first 13 tones of the bisected 26-tone RU, the first 13 tones of the bisected 26-tone RU are located between the second set of tones and the 7 DC tones, the 7 DC tones are located between the first 13 tones of the bisected 26-tone RU and the second 13 tones of the bisected 26-tone RU, the second 13 tones of the bisected 26-tone RU are located between the 7 DC tones and the third set of tones, the third set of tones is located between the second 13 tones of the bisected 26-tone RU and the fourth set of tones, and the fourth set of tones is located between the third set of tones and the 11 guard tones; 10. A method according to claim 1, wherein the first set of tones includes nine 26-tone resource units (RUs), the second set of tones includes nine 26-tone RUs, the third set of tones includes nine 26-tone RUs, and the fourth set of tones includes nine 26-tone RUs.
5. 5. The method of claim 4, wherein the first set of tones further includes eight excess tones, the second set of tones further includes eight excess tones, the third set of tones further includes eight excess tones, and the fourth set of tones further includes eight excess tones.
6. The method described in claim 5, wherein, in each of the first, second, third, and fourth sets of tones, eight excess tones are located between the nine 26-tone RUs and adjacent RUs.
7. A wireless communication device, a processor; a computer-readable storage medium storing programming for execution by the processor, the programming including instructions for transmitting Orthogonal Frequency Division Multiple Access (OFDMA) frames according to an 80 MHz tone plan; and Including, the 80 MHz tone plan includes 12 guard tones, a first set of tones, a second set of tones, the first 13 tones of a 26-tone RU in half, 7 DC tones, the second 13 tones of the 26-tone RU in half, a third set of tones, a fourth set of tones, and 11 guard tones; the first set of tones is located between the 12 guard tones and the second set of tones, the second set of tones is located between the first set of tones and the first 13 tones of the bisected 26-tone RU, the first 13 tones of the bisected 26-tone RU are located between the second set of tones and the 7 DC tones, the 7 DC tones are located between the first 13 tones of the bisected 26-tone RU and the second 13 tones of the bisected 26-tone RU, the second 13 tones of the bisected 26-tone RU are located between the 7 DC tones and the third set of tones, the third set of tones is located between the second 13 tones of the bisected 26-tone RU and the fourth set of tones, and the fourth set of tones is located between the third set of tones and the 11 guard tones; the first set of tones includes nine 26-tone resource units (RUs), the second set of tones includes nine 26-tone RUs, the third set of tones includes nine 26-tone RUs, and the fourth set of tones includes nine 26-tone RUs.
8. 8. The device of claim 7, wherein the first set of tones further includes eight excess tones, the second set of tones further includes eight excess tones, the third set of tones further includes eight excess tones, and the fourth set of tones further includes eight excess tones.
9. The device described in claim 8, wherein, among each of the first, second, third, and fourth sets of tones, eight excess tones are located between the nine 26-tone RUs and adjacent RUs.
10. A wireless communication device, a processor; a computer-readable storage medium storing programming for execution by the processor, the programming including instructions for receiving Orthogonal Frequency Division Multiple Access (OFDMA) frames according to an 80 MHz tone plan; and Including, the 80 MHz tone plan includes 12 guard tones, a first set of tones, a second set of tones, the first 13 tones of a 26-tone RU in half, 7 DC tones, the second 13 tones of the 26-tone RU in half, a third set of tones, a fourth set of tones, and 11 guard tones; the first set of tones is located between the 12 guard tones and the second set of tones, the second set of tones is located between the first set of tones and the first 13 tones of the bisected 26-tone RU, the first 13 tones of the bisected 26-tone RU are located between the second set of tones and the 7 DC tones, the 7 DC tones are located between the first 13 tones of the bisected 26-tone RU and the second 13 tones of the bisected 26-tone RU, the second 13 tones of the bisected 26-tone RU are located between the 7 DC tones and the third set of tones, the third set of tones is located between the second 13 tones of the bisected 26-tone RU and the fourth set of tones, and the fourth set of tones is located between the third set of tones and the 11 guard tones; the first set of tones includes nine 26-tone resource units (RUs), the second set of tones includes nine 26-tone RUs, the third set of tones includes nine 26-tone RUs, and the fourth set of tones includes nine 26-tone RUs.
11. 11. The device of claim 10, wherein the first set of tones further includes eight excess tones, the second set of tones further includes eight excess tones, the third set of tones further includes eight excess tones, and the fourth set of tones further includes eight excess tones.
12. The device described in claim 11, wherein, within each of the first, second, third, and fourth sets of tones, eight excess tones are located between the nine 26-tone RUs and adjacent RUs.
Citation Information
Patent Citations
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