MULTI-MODE INDICATION IN SUBFIELD IN A SIGNAL FIELD OF A WIRELESS LOCAL AREA NETWORK DATA UNIT
In a method for generating an orthogonal frequency division multiplexing (OFDM) physical layer (PHY) data unit, a signal field of the data unit is generated. The signal field includes a first subfield to indicate a configuration used for transmission of the data unit and a second subfield to indicate information regarding one of a plurality of modes for the data unit. When the configuration is a first configuration, the second subfield indicates information regarding a first mode of the plurality of modes. When the configuration is a second configuration, the second subfield indicates information regarding a second mode of the plurality of modes. The data unit is generated to include a preamble and a data portion. The signal field is included in the preamble. The data portion is generated according to one of i) the information regarding the first mode or ii) the information regarding the second mode.
This application is a continuation of U.S. application Ser. No. 13/957,236, now U.S. Pat. No. 9,246,729, entitled “Multi-Mode Indication in Subfield in a Signal Field of a Wireless Local Area Network Data Unit,” filed on Aug. 1, 2013, which claims the benefit of U.S. Provisional Patent Application No. 61/679,353, entitled “11ah SIG Field Overloading Bits” and filed on Aug. 3, 2012, both of which are incorporated herein by reference in their entireties.
FIELD OF THE DISCLOSUREThe present disclosure relates generally to communication networks and, more particularly, to multi-mode signal field indications in communication networks.
BACKGROUNDWhen operating in an infrastructure mode, wireless local area networks (WLANs) typically include an access point (AP) and one or more client stations. WLANs have evolved rapidly over the past decade. Development of WLAN standards such as the Institute for Electrical and Electronics Engineers (IEEE) 802.11a, 802.11b, 802.11g, and 802.11n Standards has improved single-user peak data throughput. For example, the IEEE 802.11b Standard specifies a single-user peak throughput of 11 megabits per second (Mbps), the IEEE 802.11a and 802.11g Standards specify a single-user peak throughput of 54 Mbps, the IEEE 802.11n Standard specifies a single-user peak throughput of 600 Mbps, and the IEEE 802.11ac Standard specifies a single-user peak throughput in the gigabits per second (Gbps) range.
Work has begun on two new standards, IEEE 802.11ah and IEEE 802.11af, each of which will specify wireless network operation in sub-1 GHz frequencies. Low frequency communication channels are generally characterized by better propagation qualities and extended propagation ranges compared to transmission at higher frequencies. In the past, sub-1 GHz ranges have not been utilized for wireless communication networks because such frequencies were reserved for other applications (e.g., licensed TV frequency bands, radio frequency band, etc.). There are few frequency bands in the sub-1 GHz range that remain unlicensed, with different specific unlicensed frequencies in different geographical regions. The IEEE 802.11ah Standard will specify wireless operation in available unlicensed sub-1GHz frequency bands. The IEEE 802.11af Standard will specify wireless operation in TV White Space (TVWS), i.e., unused TV channels in sub-1GHz frequency bands.
SUMMARYIn an embodiment, a method for generating an orthogonal frequency division multiplexing (OFDM) physical layer (PHY) data unit for transmission via a communication channel includes generating a signal field of the data unit to include a first subfield to indicate a configuration used for transmission of the data unit and a second subfield to indicate information regarding one of a plurality of modes for the data unit. The method also includes, when the configuration is a first configuration, generating the second subfield to indicate information regarding a first mode of the plurality of modes. The method further includes, when the configuration is a second configuration, generating the second subfield to indicate information regarding a second mode of the plurality of modes. The method additionally includes generating the data unit to include a preamble and a data portion, wherein the signal field is included in the preamble, and wherein the data portion is generated according to one of i) the information regarding the first mode or ii) the information regarding the second mode.
In another embodiment, an apparatus comprises a network interface configured to generate a signal field of the data unit to include a first subfield to indicate a configuration used for transmission of the data unit, and a second subfield to indicate information regarding one of a plurality of modes for the data unit. The network interface is also configured to, when the configuration is a first configuration, generate the second subfield to indicate information regarding a first mode of the plurality of modes, and when the configuration is a second configuration, generate the second subfield to indicate information regarding a second mode of the plurality of modes. The network interface is further configured to generate the data unit to include a preamble and a data portion. The network interface is further configured to include the signal field in the preamble, and generate the data portion according to one of i) the information regarding the first mode or ii) the information regarding the second mode.
In yet another embodiment, a method for receiving an orthogonal frequency division multiplexing (OFDM) physical layer (PHY) data unit via a communication channel includes receiving a signal field of the data unit. The method also includes decoding a first subfield of the signal field, wherein the first subfield indicates a configuration used for transmission of the data unit, and decoding a second subfield of the signal field, wherein the second subfield indicates one a plurality of modes associated with the data unit. The method further includes determining, based on a value of the first subfield, whether the configuration is a first configuration or a second configuration. The method further still includes, in response to determining that the configuration is a first configuration, determining that the second subfield indicates information regarding a first mode of the plurality of modes and in response to determining that the configuration is a second configuration, determining that the second subfield indicates information regarding a second mode of the plurality of modes. The method additionally includes decoding a data portion of the data unit according to one of i) the information regarding the first mode or ii) the information regarding the second mode.
In still another embodiment an apparatus comprises a network interface configured to receive a signal field of the data unit. The network interface is also configured to decode a first subfield of the signal field, wherein the first subfield indicates a configuration used for transmission of the data unit, and decode a second subfield of the signal field, wherein the second subfield indicates one a plurality of modes associated with the data unit. The network interface is further configured to determine, based on a value of the first subfield, whether the configuration is a first configuration or a second configuration. The network interface is further still configured to in response to determining that the configuration is a first configuration, determine that the second subfield indicates information regarding a first mode of the plurality of modes, and in response to determining that the configuration is a second configuration, determine that the second subfield indicates information regarding a second mode of the plurality of modes. The network interface is additionally configured to decode a data portion of the data unit according to one of i) the information regarding the first mode or ii) the information regarding the second mode.
In embodiments described below, wireless network devices such as an access point (AP) and client devices of a wireless local area network (WLAN) transmit data streams between the AP and the client devices. The AP is configured to operate with client stations according to at least one communication protocol. The communication protocol defines operation in a sub-1 GHz frequency range, and is typically used for applications requiring long range wireless communication with relatively low data rates. The communication protocol (e.g., IEEE 802.11ah or IEEE 802.11af) is referred to herein as a “long range” communication protocol. In some embodiments, physical layer (PHY) data units conforming to the long range communication protocol (“long range data units”) are the same as or similar to “short range” data units conforming to a higher frequency, shorter range communication protocol (e.g., IEEE 802.11n, and/or IEEE 802.11ac), but are generated using a lower clock rate (e.g., by downclocking an IEEE 802.11n or 802.11ac signal). In one embodiment, for example, the long range communication protocol defines 2 MHz, 4 MHz, 8 MHz and 16 MHz data units that are substantially similar to IEEE 802.11n or 802.11ac 20 MHz, 40 MHz, 80 MHz and 160 MHz data units, respectively, and are generated using the same inverse fast Fourier transform (IFFT) size as the respective IEEE 802.11n or 802.11ac data unit, but are generated using a ten times slower clock rate than the respective IEEE 802.11n or 802.11ac data unit. Like IEEE 802.11n and IEEE 802.11ac short range data units, long range data units are transmitted on multiple subcarriers/tones, using orthogonal frequency division multiplexing (OFDM), over a wireless channel.
In some embodiments, in addition to defining “normal bandwidth” data units, such as the 2 MHz, 4 MHz, 8 MHz and 16 MHz described above, long range communication protocol defines “low bandwidth mode” data units that are transmitted over a bandwidth smaller than any normal mode bandwidth channel (e.g., over a 1 MHz bandwidth) and have a lower data rate. In one embodiment where a normal mode 2 MHz or greater data unit is generated using a 64-point or greater IFFT, for example, a low bandwidth mode 1 MHz data unit is generated using a 32-point IFFT. The lower data rate of the low bandwidth mode data unit allows the low bandwidth mode to further extend communication range, which generally improves receiver sensitivity, in an embodiment. In various embodiments, the low bandwidth mode is used only as a control mode (e.g., for signal beacon or association procedures, transmit beamforming training operations, etc.), only for extended range data communications, or both.
In an embodiment, a data unit (e.g., a normal mode data unit or a low bandwidth mode data) transmitted by the AP includes a preamble containing one or more signal fields that carry information required at the receiver to properly identify and decode the data unit. For example, the signal field includes a mode indication bit (or bits) used to indicate whether a particular mode is being utilized for transmission of the data unit. In some embodiments, certain such modes are utilized only in some situations (e.g., only in cases of single stream transmissions) and other such modes are utilized in other situations that do not overlap with the first situations (e.g., only in cases of multi stream transmissions). In some such embodiments, a single multi-mode subfield of the signal field is used for indicating both of such modes, and the multi-mode subfield is interpreted based on a value of another subfield of the signal field (e.g., a subfield that indicates whether the data unit is a single stream data unit or a multi-stream data unit). Sharing of a subfield of the signal field by two different mode indications results in efficient utilization of limited number of bits available in the signal field, in at least some embodiments.
The WLAN 10 further includes a plurality of client stations 25. Although four client stations 25 are illustrated in
In some embodiments, one, some, or all of the client stations 25-2, 25-3, and 25-4 has/have a structure the same as or similar to the client station 25-1. In these embodiments, the client stations 25 structured the same as or similar to the client station 25-1 have the same or a different number of transceivers and antennas. For example, the client station 25-2 has only two transceivers and two antennas (not shown), according to an embodiment.
In an embodiment, the PHY processing unit 20 of the AP 14 is configured to generate data units conforming to the long range communication protocol, and the transceiver(s) 21 is/are configured to transmit the generated data units via the antenna(s) 24. Similarly, the PHY processing unit 20 of the AP 14 is configured to process received data units conforming to the long range communication protocol, in an embodiment, with the data units being received by the transceiver(s) 24 via the antenna(s) 24. Data units conforming to the long range protocol will be described with reference to
In some embodiments, each long range data unit can have one of multiple different preamble formats, such as the preamble formats shown in
In various embodiments, a SIG field of a preamble of a data unit (e.g., the SIG field 214, the SIGA field 324, the SIGB field 244, the SIG field 314) contains PHY and/or MAC information needed by a receiving device to properly decode the data unit. For example, a SIG field of a preamble of a data unit includes one or more bits to indicate to the receiving device whether a certain PHY mode (e.g., a short guard interval (SGI) mode, beamforming mode, an STBC mode, Doppler mode, etc.) is being utilized for the data unit. In some embodiments, certain characteristics indicated in the SIG field are limited to certain configurations. For example, some of such characteristics (e.g., modes) are specified for only certain configurations (e.g., when the number of spatial or space-time streams is equal to one) and are invalid in other configurations (e.g., when the number of spatial or space-time streams is greater than one), in an embodiment. Further, some of such modes do not overlap between the configurations, in some embodiments. For example a first mode is utilized in only in a first configuration (e.g., when the number of spatial or space-time streams is equal to one), while a second mode is utilized in only a second configuration (e.g., when the number of spatial or space-time streams is greater than one). In such embodiments, a multi-mode subfield in a SIG field of a data unit is utilized to indicate each of these modes, and the specific mode being indicated by the multi-mode subfield is determined based on the particular configuration being utilized.
In the embodiment of
As just an example, in an embodiment, the long range communication specifies a Doppler mode, the use of which is limited to single stream configurations, and a second space time block coding (STBC2) mode, the use of which is limited to multi stream configurations. In this embodiment, the multi-mode subfield 354 is used as a Doppler mode indication when the configuration field 352 indicates that a single spatial space-time stream is used for transmission of the data unit (NSTS=1), and is used as a second STBC (STBC2) mode indication when the configuration field 352 indicates a multi-stream transmission (NSTS>1). In various embodiments, the Doppler mode is used to combat high Doppler effect communication channels, such as fast changing outdoor communication channels, for example by introducing traveling pilots into OFDM tones of the data unit (e.g., changing pilot tone positions on a per symbol basis), or by introducing one or several “midambles” transmitted in a data portion of the data unit to allow a receiving device to obtain new channel estimations during reception of the data portion of the data unit or to adjust the channel estimations obtained at the beginning of the data unit. The STBC2 mode indicates a space time block code that is optionally utilized for coding a data portion of the data unit, according to an embodiment. In an embodiment, the Doppler mode is utilized only for single stream transmissions, and is invalid for multi-stream transmissions. On the other hand, the STBC2 mode is utilized only for multi-stream transmissions, and is invalid for single stream transmissions, in this embodiment.
In this embodiment, when the value of the configuration subfield 352 indicates that the number of spatial or space-time streams is equal to one, then the value of the multi-mode subfield 354 indicates information regarding the Doppler mode, and when the value of the configuration subfield 352 indicates that the number of spatial or space-time streams is greater than one, then the value of the multi-mode subfield 354 indicates information regarding the STBC2 mode. For example, in this embodiment, when the value of the configuration subfield 352 indicates that the number of spatial or space-time streams is equal to one, a value of zero (0) of the multi-mode subfield 354 indicates that the Doppler mode is being utilized, and a value of one (1) of the multi-mode subfield 418 indicates that the Doppler mode is not being utilized, or vice versa. In this case, a data portion of the data unit is generating according to whether or not the Doppler mode is used for the data unit, as indicated by the subfield 354, in an embodiment. On the other hand, when the value of the configuration subfield 352 indicates that the number of spatial streams is greater than one, then a value of zero (0) of the multi-mode subfield 354 indicates that STBC2 mode is being utilized, and a value of one (1) of the multi-mode subfield 354 indicates that the STBC2 mode is not being utilized, or vice versa, in this embodiment. In this case, a data portion of the data unit is generating according to whether or not the STBC2 mode is used for the data unit, as indicated by the subfield 354, in an embodiment. Although interpretation of the multi-mode subfield 354 is determined according to the number spatial or space-time streams in this embodiment, the interpretation of the multi-mode subfield 354 is determined according to other subfields of the signal field 350 (e.g., the configuration subfield 352 indicating a parameter other than the number of spatial or space-time streams), or by means other than a subfield of the signal field 350, in other embodiments.
In an embodiment, a receiving device (e.g., a client station 25 or the AP14 of
With continued reference to
Referring to
Referring to
At block 702, a signal field of the data unit is generated. For example, the signal field 350 of
The signal field generated at block 702 includes a first subfield to indicate a configuration used for transmission of the data unit and a second subfield to indicate information regarding one of a plurality of modes of the data unit. In various embodiments, the second subfield includes one bit or a plurality of bits (e.g., 2, 3, 4, 5, etc. bits). In the example embodiment in which the signal field 350 of
Generating the signal field at block 702 includes operations of block 704 or operation of block 706, in an embodiment. Block 704 generally corresponds to generation of the second subfield when the configuration indicated by the first subfield is a first configuration, and block 704 generally corresponds to generation of the second subfield when the configuration indicated by the first subfield is a second configuration. More specifically, when the configuration is a first configuration, the second subfield is generated at block 704 to indicate information regarding a first mode of the plurality of modes. On the other hand, when the configuration is a second configuration, the second subfield is generated at block 706 to indicate information regarding a second mode of the plurality of modes.
At block 708, the data unit is generated to include a preamble and a data portion. For example, in an embodiment, the data unit 200 of
At block 802, a signal field of a data unit is received. For example, the signal field 350 of
At block 804, a first subfield of the signal field is decoded. The first subfield indicates a configuration used for transmission of the data unit. In an embodiment, the first subfield corresponds to the subfield 352 of the signal field 350 of
At block 806, a second subfield of the signal field is decoded. The second subfield indicates one of a plurality of modes for the data unit. In an embodiment, various modes in the plurality of modes are non-overlapping modes in that a first mode is utilized only for some values of the first subfield and a second mode is utilized only for other values of the first subfield. As just some examples, in various embodiments, the plurality of modes includes a Doppler mode, a STBC2 mode, and/or other non-overlapping modes.
At block 808, it is determined whether the first subfield indicates a first configuration or a second configuration. If it is determined that the first subfield indicates a first configuration, the method continues at block 810, at which it is determined that the second subfield indicates information regarding the first mode. Then, at block 812, a data portion of the data unit is decoded according to the information regarding the first mode. On the other hand, if it is determined at block 808 that the first subfield indicates a second configuration, the method continues at block 814, at which it is determined that the second subfield indicates information regarding the second mode. Then, at block 812, a data portion of the data unit is decoded according to the information regarding the second mode.
At least some of the various blocks, operations, and techniques described above may be implemented utilizing hardware, one or more processors executing firmware instructions, one or more processors executing software instructions, or any combination thereof. When implemented utilizing one or more processors executing software or firmware instructions, the software or firmware instructions may be stored in any computer readable memory such as on a magnetic disk, an optical disk, or other storage medium, in a RAM or ROM or flash memory, processor, hard disk drive, optical disk drive, tape drive, etc. Likewise, the software or firmware instructions may be delivered to a user or a system via any known or desired delivery method including, for example, on a computer readable disk or other transportable computer storage mechanism or via communication media. Communication media typically embodies computer readable instructions, data structures, program modules or other data in a modulated data signal such as a carrier wave or other transport mechanism. The term “modulated data signal” means a signal that has one or more of its characteristics set or changed in such a manner as to encode information in the signal. By way of example, and not limitation, communication media includes wired media such as a wired network or direct-wired connection, and wireless media such as acoustic, radio frequency, infrared and other wireless media. Thus, the software or firmware instructions may be delivered to a user or a system via a communication channel such as a telephone line, a DSL line, a cable television line, a fiber optics line, a wireless communication channel, the Internet, etc. (which are viewed as being the same as or interchangeable with providing such software via a transportable storage medium). The software or firmware instructions may include machine readable instructions that, when executed by the one or more processors, cause the one or more processors to perform various acts.
When implemented in hardware, the hardware may comprise one or more of discrete components, an integrated circuit, an application-specific integrated circuit (ASIC), etc.
While the present invention has been described with reference to specific examples, which are intended to be illustrative only and not to be limiting of the invention, changes, additions and/or deletions may be made to the disclosed embodiments without departing from the scope of the claims.
Claims
1. A method for generating an orthogonal frequency division multiplexing (OFDM) physical layer (PHY) data unit for transmission via a communication channel, the method comprising:
- generating a signal field of the data unit to include a first subfield to indicate a configuration used for transmission of the data unit, and a second subfield to indicate information regarding one of a plurality of modes for the data unit, including: when the configuration is a first configuration, generating the second subfield to indicate information regarding a first mode of the plurality of modes, and when the configuration is a second configuration, generating the second subfield to indicate information regarding a second mode of the plurality of modes; and
- generating the data unit to include a preamble and a data portion, wherein the signal field is included in the preamble, and wherein the data portion is generated according to one of i) the information regarding the first mode or ii) the information regarding the second mode.
Type: Application
Filed: Jan 25, 2016
Publication Date: Jun 2, 2016
Inventor: Hongyuan ZHANG (Fremont, CA)
Application Number: 15/005,314