WO2016149381A1 - Optimized phy frame structure for ofdm based narrowband plc - Google Patents
Optimized phy frame structure for ofdm based narrowband plc Download PDFInfo
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- WO2016149381A1 WO2016149381A1 PCT/US2016/022658 US2016022658W WO2016149381A1 WO 2016149381 A1 WO2016149381 A1 WO 2016149381A1 US 2016022658 W US2016022658 W US 2016022658W WO 2016149381 A1 WO2016149381 A1 WO 2016149381A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B3/00—Line transmission systems
- H04B3/54—Systems for transmission via power distribution lines
- H04B3/542—Systems for transmission via power distribution lines the information being in digital form
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
- H04L27/261—Details of reference signals
- H04L27/2613—Structure of the reference signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
- H04L27/261—Details of reference signals
- H04L27/2613—Structure of the reference signals
- H04L27/26134—Pilot insertion in the transmitter chain, e.g. pilot overlapping with data, insertion in time or frequency domain
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2626—Arrangements specific to the transmitter only
- H04L27/2627—Modulators
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0044—Allocation of payload; Allocation of data channels, e.g. PDSCH or PUSCH
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L7/00—Arrangements for synchronising receiver with transmitter
- H04L7/0079—Receiver details
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L7/00—Arrangements for synchronising receiver with transmitter
- H04L7/04—Speed or phase control by synchronisation signals
- H04L7/041—Speed or phase control by synchronisation signals using special codes as synchronising signal
Definitions
- PLC power line communication
- OFDM orthogonal frequency division multiplex
- Powerline communications include systems for communicating data over the same medium that is used for transmitting electric power to residences, buildings and other premises. After being deployed, PLC systems may enable a wide array of applications, such as automatic meter reading and load control for utility-type applications, automotive uses such as charging electric cars, home automation for controlling appliances and lights, and computer networking for internet of things (IoT).
- applications such as automatic meter reading and load control for utility-type applications
- automotive uses such as charging electric cars, home automation for controlling appliances and lights, and computer networking for internet of things (IoT).
- IoT internet of things
- PLC standardizing efforts are currently being undertaken around the world, each with its own unique characteristics.
- competing PLC standards include the IEEE 1901.2, HomePlug AV and ITU-T G.hn (e.g., G.9960 and G.9961) specifications.
- PLC systems may be implemented differently, depending upon local regulations and characteristics of local power grids.
- the U.S. FCC implementation of IEEE 1901.2 uses OFDM subcamers from 10 kHz to 490 kHz.
- CENELEC the European standard, has various implementations using OFDM subcamers from 3 kHz to 148.5 kHz.
- ARIB the Japanese standard, uses OFDM subcamers from 10 kHz to 450 kHz.
- PRIME Powerline-Related Intelligent Metering Evolution
- OFDM-based Orthogonal Frequency -Division Multiplexing
- OFDM orthogonal frequency division multiplexing
- PHY physical layer
- MAC media access control
- PLC channels are highly challenging environments for digital communication, because they suffer from periodic bursts of impulse noise, and the channel impulse response also varies over time.
- a conventional synchronization preamble structure for a narrowband OFDM PLC standard such as IEEE 1901.2 (G3), includes 8 SYNCP symbols followed by 1.5 SYNCM symbols.
- the synchronization symbols are typically transmitted at a higher (3 dB) rms voltage than the data payload, and no cyclic prefix is between adjacent symbols.
- Each SYNCP symbol is a known preamble sequence of different subcarriers phase shifted by a multiple of 71/8.
- a SYNCP symbol may be a chirp-like sequence of a specific binary sequence of Is and -Is or a constant amplitude, zero autocorrelation (CAZAC) sequence.
- CAZAC constant amplitude, zero autocorrelation
- the preamble serves several purposes, including: (a) indicating to other nodes in the PLC network that a transmission is in progress; (b) determining the frame boundary between the preamble and the PHY header, and between the PHY header and the data payload; (c) determining accurate channel estimates; and (d) frequency offset compensation.
- SYNCM symbols help determine the frame boundary and indicate the end of the preamble sequence.
- the repetitive SYNCP symbols also assist in preamble detection, as receiver nodes are looking for the repetitive sequence of symbols in the PLC channel to determine whether a frame is on the powerline. Multiple SYNCP symbols help in obtaining more accurate channel estimates by averaging the channel estimates across multiple symbols to reduce noise. Improved channel estimates help in improving the header decoding performance when the header is coherently modulated with respect to the SYNCP preamble.
- the method includes forming a data frame having multiple orthogonal frequency division multiplex (OFDM) symbols.
- a first set of preamble subcarriers is allocated to at least one of the OFDM symbols.
- a second set of data subcarriers is allocated to the at least one of the OFDM symbols.
- the method includes receiving a data frame having multiple orthogonal frequency division multiplex (OFDM) symbols.
- a first set of preamble signals is received from at least one of the OFDM symbols.
- a second set of data signals is received from the at least one of the OFDM symbols.
- FIG. 1 is a diagram of a power line communication (PLC) environment of example embodiments.
- PLC power line communication
- FIG. 2 is a block diagram of an IEEE 1901.2 (G3) compatible device of example embodiments.
- FIG. 3 is an IEEE 1901.2 (G3) compatible coherent frame structure of example embodiments.
- FIG. 4 is a diagram of a circuit for preamble symbol generation according to a first embodiment.
- FIG. 5 A is a diagram of sequential preamble symbols as generated by the circuit of FIG. 4, for a first logic level of a modulation control scheme (MCS) signal.
- MCS modulation control scheme
- FIG. 5B is a diagram of sequential preamble symbols as generated by the circuit of FIG. 4, for a second logic level of the modulation control scheme (MCS) signal.
- MCS modulation control scheme
- FIG. 6 is a diagram of a circuit for preamble symbol generation according to a second embodiment.
- FIG. 7 is a diagram of sequential preamble symbols as generated by the circuit of FIG. 6, for respective odd and even preamble symbols.
- FIG. 8 is a diagram of throughput gain as a function of payload size according to example embodiments.
- FIG. 1 depicts an electric power distribution system.
- Medium voltage (MV) power lines 103 from substation 101 typically carry voltage in the tens of kilovolts range.
- Transformer 104 steps the MV power down to low voltage (LV) power on LV lines 105, carrying voltage in the range of 100-240 VAC.
- Transformer 104 is typically designed to operate at very low frequencies in the range of 50-60 Hz.
- Transformer 104 does not typically allow high frequencies, such as signals greater than 100 kHz, to pass between LV lines 105 and MV lines 103.
- LV lines 105 feed power to customers via meters 106a-n, which are typically mounted on the outside of residences 102a-n.
- premises 102a-n may include any type of building, facility or location where electric power is received and/or consumed.
- a breaker panel such as panel 107, provides an interface between meter 106n and electrical wires 108 within residence 102n. Electrical wires 108 deliver power to outlets 110, switches 111, and other electric devices within residence 102n.
- the power line topology illustrated in FIG. 1 may be used for delivering high-speed communications to residences 102a-n.
- power line communication (PLC) modems or gateways 112a-n may be coupled to LV power lines 105 at meter 106a-n.
- PLC gateways 112a-n may be used for transmitting and receiving data signals over MV/LV lines 103/105.
- data signals may be used for supporting metering and power delivery applications, communication systems, high speed internet, telephony, video conferencing, and video delivery.
- PLC modems or gateways 112a-n at residences 102a-n use the MV/LV power grid to carry data signals to and from PLC data concentrator 114 without requiring additional wiring.
- Concentrator 114 may be coupled to either MV line 103 or LV line 105.
- Modems or gateways 112a- n may support applications, such as high-speed broadband internet links, narrowband control applications, and low bandwidth data collection applications.
- modems or gateways 112a-n may further enable home and building automation in heat and air conditioning, lighting and security.
- PLC modems or gateways 112a-n may enable AC or DC charging of electric vehicles and other appliances.
- An example of an AC or DC charger is illustrated as PLC device 113. Outside the premises, power line communication networks may provide street lighting control and remote power meter data collection.
- One or more data concentrators 114 may be coupled to control center 130, which may be a utility company, via network 120.
- network 120 may include an internet protocol (IP) based network, a cellular network, a WiFi network or a WiMax network.
- IP internet protocol
- control center 130 may be configured to collect power consumption information and other types of relevant information from gateways 112 and devices 113 through concentrator 114.
- control center 130 may be configured to implement smart grid policies and other regulatory or commercial rules by communicating such rules to each gateway 112 or device 113 through concentrator 114.
- concentrator 114 may be a base node for a PLC domain, each such domain including downstream PLC devices that communicate with control center 130 through a respective concentrator 114.
- devices 106a-n, 112a-n and 113 may all be considered part of the PLC domain that has data concentrator 114 as its base node. In other scenarios other devices may be used as the base node of a PLC domain.
- multiple nodes may be deployed in a given PLC network, and at least a subset of those nodes may be tied to a common clock through a backbone, such as Ethernet or digital subscriber loop (DSL).
- a backbone such as Ethernet or digital subscriber loop (DSL).
- meter 106, gateways 112, PLC device 113 and data concentrator 114 may each be coupled to or otherwise include a PLC modem.
- the PLC modem may include transmitter and receiver circuitry to facilitate the device's connection to power lines 103, 105 and/or 108.
- FIG. 2 is a block diagram of an example low cost, low power IEEE 1901.2 compatible device 200 that may be used in blocks 112a-n (FIG. 1) according to example embodiments.
- the diagram illustrates an OFDM transmitter 210 and receiver 220 for use in a power line communication node for PLC over a power line 202.
- the power line channel is very hostile. Channel characteristics and parameters vary with frequency, location, time and the type of equipment connected to it. The lower frequency regions from 10 kHz to 200 kHz used in G3 PLC and in IEEE 1901.2 are especially susceptible to interference.
- the power line is a very frequency selective channel. In addition to background noise, it is subject to impulsive noise often occurring at 50/60 Hz, and narrowband interference and group delays up to several hundred microseconds.
- Preamble circuit 232 produces a preamble to synchronize each transmitted data frame with a receiving device.
- Preamble sequence allocator circuit 230 determines which tones in an OFDM symbol will be occupied by the preamble.
- Data 211 and a frame control header (FCH) 212 are provided by an application via a media access layer (MAC) of the communication protocol.
- MAC media access layer
- data sequence allocator circuit 234 determines which tones in an OFDM symbol will be used by data circuit 211 or FCH circuit 212.
- An OFDM signal is generated by performing an inverse fast Fourier transform (IFFT) 215 on the complex valued signal points that are produced by differentially encoded phase modulation from forward error correction encoder 213 using Reed Solomon encoding. Tone mapping 214 is performed to allocate the signal points to individual subcarriers.
- An OFDM symbol is built by appending a cyclic prefix (CP) 216 to the beginning of each block generated by IFFT 215. The length of a cyclic prefix is chosen, so that a channel group delay will not cause successive OFDM Symbols or adjacent sub-carriers to interfere.
- the OFDM symbols are then windowed 217 and impressed on power line 202 via analog front end (AFE) 218.
- AFE 218 provides isolation of transmitter 210 from the 50/60 Hz power line voltage.
- receiver 220 receives OFDM signals from power line 202 via AFE 221 that isolates receiver 220 from the 50/60 HZ power line voltage.
- OFDM demodulator 222 removes the CP, converts the OFDM signal to the frequency domain using a fast Fourier transform (FFT), and performs demodulation of the differential binary or quadrature phase shift keyed (DBPSK, DQPSK) symbols.
- FEC decoder 223 performs error correction using Reed Solomon decoding and then descrambles the symbols to produce received data 224.
- Frame control header 225 information is also produced by FEC decoder 220, as defined by the G3 and IEEE 1901.2 PLC standards. Similar to the transmitter 210, receiver 220 also has a preamble sequence allocator circuit 236 and data sequence allocator circuit 238 to indicate which tones are used for the preamble and which tones are used for data in any OFDM symbol.
- a blind channel estimation technique may be used for link adaptation. Based on the quality of the received signal, the receiver decides on the modulation scheme to be used, as defined in the PLC standards. Moreover, the system may differentiate the subcamers with a bad signal to noise ratio (S R) and not transmit data on them.
- S R signal to noise ratio
- Transmitter 210 and receiver 220 may be implemented using a digital signal processor (DSP) or another type of microprocessor that is executes control software instructions stored in memory.
- DSP digital signal processor
- the processor may perform operations, such as FEC encoding, mapping and OFDM modulation, demodulation and FEC decoding in software.
- portions or all of the transmitter or receiver may be implemented with hardwired control logic.
- the analog front ends 218 and 221 require analog logic and isolation transformers that can withstand the voltage levels on the power line.
- a G3 and IEEE 1901.2 PLC system is specified to have the ability to communicate in both low voltage (LV) power lines (typically 100-240 VAC) and medium voltage (MV) power lines up to approximately 12 kV by crossing LV/MV transformers. Accordingly, the receiver on the LV side must be able to detect the transmitted signal after it has been severely attenuated as a result of going through a MV/LV transformer. As the signal goes through the transformer, it is expected to experience overall severe attenuation in its power level and frequency-dependent attenuation that attenuates higher frequencies. Both transmitter and receiver have mechanisms to compensate for this attenuation. The transmitter has the capability to adjust its overall signal level and to shape its power spectrum based on tone map information provided by a target receiver, while the receiver has both an analog and digital automatic gain control (AGC) to achieve enough gain to compensate for the overall attenuation.
- AGC analog and digital automatic gain control
- FIG. 3 shows a coherent frame structure for communication between the network of FIG. 1 and the device of FIG. 2 according to example embodiments.
- the frame includes a preamble, a frame control header (FCH) and payload data.
- the preamble includes synchronization symbols (such as SYNCP 300 and SYNCM 302) and is terminated by a half SYNCM symbol 304, which is preferably a repetition of the first half of SYNCM 302.
- the preamble is separated from the FCH by an overlap region 306.
- the example FCH includes 12 OFDM symbols, but this may vary with different band plans.
- the FCH is coherently modulated and contains information regarding the current frame, such as the type of frame, the tone map index, and the length of the frame.
- Each FCH symbol is preceded by a respective guard interval (GI).
- GI guard interval
- the FCH1 310 is preceded by respective GI 308, and each FCH symbol is separated by an overlap region.
- Symbols SI and S2 are inserted between the FCH and the payload data (DATA).
- Symbol S2 is similar to SYNCP 300, except that it includes a cyclic prefix, GI, and overlap regions.
- Symbol SI is an inverted version of S2 (-S2).
- the payload data follows symbols SI and SI and includes data in respective OFDM symbols.
- the first symbol includes overlap 312, GI 314 and data 316.
- FIG. 4 is a diagram of a circuit for preamble symbol generation according to a first embodiment.
- the circuit includes IFFT and parallel -to-serial (P/S) converter 215 from FIG. 2.
- Cyclic prefix circuit 216 appends a cyclic prefix from the end of the P/S converter output to the beginning of the serial output to complete the OFDM symbol.
- Preamble tones 1-36 are applied as inputs to the IFFT circuit.
- Multiplex circuit 400 is coupled to receive preamble tones 37-72 ( ⁇ /2- ⁇ ) and 36 data tones ( ⁇ - ⁇ /2) ⁇
- Multiplex circuit 400 selectively applies the 36 preamble tones or the 36 data tones to the IFFT circuit in response to a modulation control scheme (MCS) signal.
- MCS modulation control scheme
- the preamble tones are preferably contiguous within the OFDM symbol to provide a better correlation profile. This greatly increases data throughput when the PLC SNR is good.
- a lower data rate MCS may be selected for the frame of FIG. 3.
- 72 preamble tones may be required for synchronization detection.
- MCS has a low logic level, and multiplex circuit 400 applies 36 additional preamble tones ( ⁇ /2- ⁇ ) to the IFFT circuit. Therefore, sequential SYNCP symbols have a structure as illustrated in FIG. 5B.
- Each SYNCP OFDM symbol includes 72 preamble tones 504 and no data tones.
- a receiver In a first mode of operation, a receiver operates on a static allocation of data for each OFDM preamble symbol. This is preferably a default mode. In a second mode of operation, the receiver operates on a semi-persistent or adaptive allocation as determined by a received data frame. This mode is preferably adapted to the communication system SNR. This embodiment advantageously increases data throughput when the PLC SNR is good and reverts to normal data throughput in a high noise environment.
- FIG. 6 is a diagram of a circuit for preamble symbol generation according to a second embodiment.
- the circuit includes IFFT and parallel -to-serial (P/S) converter 215 and cyclic prefix circuit 216.
- Multiplex circuit 600 selectively applies the 36 preamble tones ( ⁇ - ⁇ /2) for odd-numbered symbols or 36 data tones ( ⁇ - ⁇ /2) for even-numbered symbols in response to control signal EVEN.
- multiplex circuit 602 selectively applies the 36 data tones for odd-numbered symbols or 36 preamble tones for even-numbered symbols in response to control signal EVEN.
- control signal EVEN has a low logic state.
- multiplex circuit 600 applies preamble tones ⁇ - ⁇ /2 to IFFT circuit 215, and multiplex circuit 602 applies data tones XI-XK/2 to IFFT circuit 215. Therefore, symbol 700 includes 36 preamble tones 702 at the upper frequency range and 36 data tones 704 at the lower frequency range.
- control signal EVEN has a high logic state.
- multiplex circuit 600 applies data tones ⁇ - ⁇ /2 to IFFT circuit 215, and multiplex circuit 602 applies preamble tones ⁇ - ⁇ /2 to IFFT circuit 215.
- symbol 706 includes 36 data tones 708 at the upper frequency range and 36 preamble tones 710 at the lower frequency range.
- a receiver operates on a static allocation of alternating preamble and data subcarriers in each OFDM preamble symbol. This is preferably a default mode.
- the receiver operates on a semi- persistent or adaptive allocation as determined by a received data frame. This mode is preferably adapted to the communication system S R and desired throughput. This embodiment advantageously improves frequency diversity gain by alternating preamble and data frequencies in adjacent OFDM symbols.
- FIG. 8 is a diagram of throughput gain as a function of payload size according to example embodiments.
- throughput gain increases from 19% to 34% as payload data increases from 30 to 70 bytes. Further increases in payload data size are accompanied by a gradual decrease in throughput gain. This is because additional data in the preamble becomes less significant as payload data (after FCH) in the frame increases. At 480 bytes of payload data, the throughput gain decreases to 14%.
- Embodiments may be readily adapted to other frame structures.
- the number of used preamble symbol tones K may be more or less than 72.
- the IFFT samples may be more or less than 256.
- embodiments have specifically addressed addition of payload data to SYNCP symbols, payload data may also be added to SYNCM symbols or to frame symbols SI and S2 of the FCH.
- embodiments of FIGS. 4 and 6 may be combined to selectively include or omit data tones in response to a modulation control scheme, and the included data tones may alternate with preamble tones in alternating OFDM symbols.
- embodiments may be implemented in software, hardware, or a combination of both.
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Abstract
In described examples of a method of operating a communication system, the method includes forming a data frame having plural orthogonal frequency division multiplex (OFDM) symbols. A first set of preamble subcarriers (702) is allocated to at least one of the OFDM symbols (700). A second set of data subcarriers (704) is allocated to the at least one of the OFDM symbols.
Description
OPTIMIZED PHY FRAME STRUCTURE FOR OFDM BASED NARROWBAND PLC
[0001] This relates generally to power line communication (PLC), and more particularly to an optimized narrowband orthogonal frequency division multiplex (OFDM) based physical (PHY) frame structure.
BACKGROUND
[0002] Powerline communications (PLC) include systems for communicating data over the same medium that is used for transmitting electric power to residences, buildings and other premises. After being deployed, PLC systems may enable a wide array of applications, such as automatic meter reading and load control for utility-type applications, automotive uses such as charging electric cars, home automation for controlling appliances and lights, and computer networking for internet of things (IoT).
[0003] Various PLC standardizing efforts are currently being undertaken around the world, each with its own unique characteristics. Examples of competing PLC standards include the IEEE 1901.2, HomePlug AV and ITU-T G.hn (e.g., G.9960 and G.9961) specifications. Generally, PLC systems may be implemented differently, depending upon local regulations and characteristics of local power grids. For example, the U.S. FCC implementation of IEEE 1901.2 uses OFDM subcamers from 10 kHz to 490 kHz. CENELEC, the European standard, has various implementations using OFDM subcamers from 3 kHz to 148.5 kHz. ARIB, the Japanese standard, uses OFDM subcamers from 10 kHz to 450 kHz. For example, another standardization effort includes the Powerline-Related Intelligent Metering Evolution (PRIME) standard designed for OFDM-based (Orthogonal Frequency -Division Multiplexing) communications. The current or existing PRIME standard is the Draft Standard prepared by the PRIME Alliance Technical Working Group (PRIME R1.3E) and earlier versions thereof.
[0004] Current and next generation narrowband PLC standards are directed to multi-carrier based systems, such as orthogonal frequency division multiplexing (OFDM) to increase network throughput. OFDM uses multiple orthogonal subcamers to transmit data over frequency selective channels. A conventional OFDM structure for a data frame includes a preamble, followed by a
physical layer (PHY) header, a media access control (MAC) header, followed by a data payload. However, PLC channels are highly challenging environments for digital communication, because they suffer from periodic bursts of impulse noise, and the channel impulse response also varies over time.
[0005] A conventional synchronization preamble structure for a narrowband OFDM PLC standard, such as IEEE 1901.2 (G3), includes 8 SYNCP symbols followed by 1.5 SYNCM symbols. The synchronization symbols are typically transmitted at a higher (3 dB) rms voltage than the data payload, and no cyclic prefix is between adjacent symbols. Each SYNCP symbol is a known preamble sequence of different subcarriers phase shifted by a multiple of 71/8. Subcarriers of the SYNCM symbol are phase shifted by π with respect to SYNCP, so that SYNCM = -SYNCP. For example, a SYNCP symbol may be a chirp-like sequence of a specific binary sequence of Is and -Is or a constant amplitude, zero autocorrelation (CAZAC) sequence. The definition of the SYNCP symbol for the FCC band in IEEE P1901.2 is defined in section 6.6 for specific subcarriers or tones.
[0006] The preamble serves several purposes, including: (a) indicating to other nodes in the PLC network that a transmission is in progress; (b) determining the frame boundary between the preamble and the PHY header, and between the PHY header and the data payload; (c) determining accurate channel estimates; and (d) frequency offset compensation. SYNCM symbols help determine the frame boundary and indicate the end of the preamble sequence. The repetitive SYNCP symbols also assist in preamble detection, as receiver nodes are looking for the repetitive sequence of symbols in the PLC channel to determine whether a frame is on the powerline. Multiple SYNCP symbols help in obtaining more accurate channel estimates by averaging the channel estimates across multiple symbols to reduce noise. Improved channel estimates help in improving the header decoding performance when the header is coherently modulated with respect to the SYNCP preamble.
[0007] Although preceding approaches provide improvement and standardization in PLC operation, further improvements are possible. This is particularly true for high data rate PLC applications.
SUMMARY
[0008] In a first described example of a method of operating a communication system, the method includes forming a data frame having multiple orthogonal frequency division multiplex (OFDM) symbols. A first set of preamble subcarriers is allocated to at least one of the OFDM
symbols. A second set of data subcarriers is allocated to the at least one of the OFDM symbols.
[0009] In a second described example of a method of operating a communication system, the method includes receiving a data frame having multiple orthogonal frequency division multiplex (OFDM) symbols. A first set of preamble signals is received from at least one of the OFDM symbols. A second set of data signals is received from the at least one of the OFDM symbols. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] FIG. 1 is a diagram of a power line communication (PLC) environment of example embodiments.
[0011] FIG. 2 is a block diagram of an IEEE 1901.2 (G3) compatible device of example embodiments.
[0012] FIG. 3 is an IEEE 1901.2 (G3) compatible coherent frame structure of example embodiments.
[0013] FIG. 4 is a diagram of a circuit for preamble symbol generation according to a first embodiment.
[0014] FIG. 5 A is a diagram of sequential preamble symbols as generated by the circuit of FIG. 4, for a first logic level of a modulation control scheme (MCS) signal.
[0015] FIG. 5B is a diagram of sequential preamble symbols as generated by the circuit of FIG. 4, for a second logic level of the modulation control scheme (MCS) signal.
[0016] FIG. 6 is a diagram of a circuit for preamble symbol generation according to a second embodiment.
[0017] FIG. 7 is a diagram of sequential preamble symbols as generated by the circuit of FIG. 6, for respective odd and even preamble symbols.
[0018] FIG. 8 is a diagram of throughput gain as a function of payload size according to example embodiments.
DETAILED DESCRIPTION OF EXAMPLE EMB ODFMENT S
[0019] FIG. 1 depicts an electric power distribution system. Medium voltage (MV) power lines 103 from substation 101 typically carry voltage in the tens of kilovolts range. Transformer 104 steps the MV power down to low voltage (LV) power on LV lines 105, carrying voltage in the range of 100-240 VAC. Transformer 104 is typically designed to operate at very low frequencies in the range of 50-60 Hz. Transformer 104 does not typically allow high frequencies, such as signals greater than 100 kHz, to pass between LV lines 105 and MV lines 103. LV lines 105 feed power to customers via
meters 106a-n, which are typically mounted on the outside of residences 102a-n. Although referred to as residences, premises 102a-n may include any type of building, facility or location where electric power is received and/or consumed. A breaker panel, such as panel 107, provides an interface between meter 106n and electrical wires 108 within residence 102n. Electrical wires 108 deliver power to outlets 110, switches 111, and other electric devices within residence 102n.
[0020] The power line topology illustrated in FIG. 1 may be used for delivering high-speed communications to residences 102a-n. In some implementations, power line communication (PLC) modems or gateways 112a-n may be coupled to LV power lines 105 at meter 106a-n. PLC gateways 112a-n may be used for transmitting and receiving data signals over MV/LV lines 103/105. Such data signals may be used for supporting metering and power delivery applications, communication systems, high speed internet, telephony, video conferencing, and video delivery. By transporting telecommunications data signals over a power transmission network, installation of new cabling (to each subscriber 102a-n) is unnecessary. Thus, by using existing electrical distribution systems to carry data signals, significant cost savings are possible.
[0021] PLC modems or gateways 112a-n at residences 102a-n use the MV/LV power grid to carry data signals to and from PLC data concentrator 114 without requiring additional wiring. Concentrator 114 may be coupled to either MV line 103 or LV line 105. Modems or gateways 112a- n may support applications, such as high-speed broadband internet links, narrowband control applications, and low bandwidth data collection applications. For example, in a home environment, modems or gateways 112a-n may further enable home and building automation in heat and air conditioning, lighting and security. Also, PLC modems or gateways 112a-n may enable AC or DC charging of electric vehicles and other appliances. An example of an AC or DC charger is illustrated as PLC device 113. Outside the premises, power line communication networks may provide street lighting control and remote power meter data collection.
[0022] One or more data concentrators 114 may be coupled to control center 130, which may be a utility company, via network 120. For example, network 120 may include an internet protocol (IP) based network, a cellular network, a WiFi network or a WiMax network. Accordingly, control center 130 may be configured to collect power consumption information and other types of relevant information from gateways 112 and devices 113 through concentrator 114. Additionally, control center 130 may be configured to implement smart grid policies and other regulatory or commercial rules by communicating such rules to each gateway 112 or device 113 through concentrator 114.
[0023] In some embodiments, concentrator 114 may be a base node for a PLC domain, each such domain including downstream PLC devices that communicate with control center 130 through a respective concentrator 114. For example, in FIG. 1, devices 106a-n, 112a-n and 113 may all be considered part of the PLC domain that has data concentrator 114 as its base node. In other scenarios other devices may be used as the base node of a PLC domain. In a typical situation, multiple nodes may be deployed in a given PLC network, and at least a subset of those nodes may be tied to a common clock through a backbone, such as Ethernet or digital subscriber loop (DSL).
[0024] Still referring to FIG. 1, meter 106, gateways 112, PLC device 113 and data concentrator 114 may each be coupled to or otherwise include a PLC modem. The PLC modem may include transmitter and receiver circuitry to facilitate the device's connection to power lines 103, 105 and/or 108.
[0025] FIG. 2 is a block diagram of an example low cost, low power IEEE 1901.2 compatible device 200 that may be used in blocks 112a-n (FIG. 1) according to example embodiments. The diagram illustrates an OFDM transmitter 210 and receiver 220 for use in a power line communication node for PLC over a power line 202. As discussed hereinabove, the power line channel is very hostile. Channel characteristics and parameters vary with frequency, location, time and the type of equipment connected to it. The lower frequency regions from 10 kHz to 200 kHz used in G3 PLC and in IEEE 1901.2 are especially susceptible to interference. Furthermore, the power line is a very frequency selective channel. In addition to background noise, it is subject to impulsive noise often occurring at 50/60 Hz, and narrowband interference and group delays up to several hundred microseconds.
[0026] Preamble circuit 232 produces a preamble to synchronize each transmitted data frame with a receiving device. Preamble sequence allocator circuit 230 determines which tones in an OFDM symbol will be occupied by the preamble. Data 211 and a frame control header (FCH) 212 are provided by an application via a media access layer (MAC) of the communication protocol. Similar to the preamble sequence allocator circuit 230, data sequence allocator circuit 234 determines which tones in an OFDM symbol will be used by data circuit 211 or FCH circuit 212. An OFDM signal is generated by performing an inverse fast Fourier transform (IFFT) 215 on the complex valued signal points that are produced by differentially encoded phase modulation from forward error correction encoder 213 using Reed Solomon encoding. Tone mapping 214 is performed to allocate the signal points to individual subcarriers. An OFDM symbol is built by appending a cyclic prefix (CP) 216 to
the beginning of each block generated by IFFT 215. The length of a cyclic prefix is chosen, so that a channel group delay will not cause successive OFDM Symbols or adjacent sub-carriers to interfere. The OFDM symbols are then windowed 217 and impressed on power line 202 via analog front end (AFE) 218. AFE 218 provides isolation of transmitter 210 from the 50/60 Hz power line voltage.
[0027] Similarly, receiver 220 receives OFDM signals from power line 202 via AFE 221 that isolates receiver 220 from the 50/60 HZ power line voltage. OFDM demodulator 222 removes the CP, converts the OFDM signal to the frequency domain using a fast Fourier transform (FFT), and performs demodulation of the differential binary or quadrature phase shift keyed (DBPSK, DQPSK) symbols. FEC decoder 223 performs error correction using Reed Solomon decoding and then descrambles the symbols to produce received data 224. Frame control header 225 information is also produced by FEC decoder 220, as defined by the G3 and IEEE 1901.2 PLC standards. Similar to the transmitter 210, receiver 220 also has a preamble sequence allocator circuit 236 and data sequence allocator circuit 238 to indicate which tones are used for the preamble and which tones are used for data in any OFDM symbol.
[0028] A blind channel estimation technique may be used for link adaptation. Based on the quality of the received signal, the receiver decides on the modulation scheme to be used, as defined in the PLC standards. Moreover, the system may differentiate the subcamers with a bad signal to noise ratio (S R) and not transmit data on them.
[0029] Transmitter 210 and receiver 220 may be implemented using a digital signal processor (DSP) or another type of microprocessor that is executes control software instructions stored in memory. For example, the processor may perform operations, such as FEC encoding, mapping and OFDM modulation, demodulation and FEC decoding in software. In other embodiments, portions or all of the transmitter or receiver may be implemented with hardwired control logic. The analog front ends 218 and 221 require analog logic and isolation transformers that can withstand the voltage levels on the power line.
[0030] A G3 and IEEE 1901.2 PLC system is specified to have the ability to communicate in both low voltage (LV) power lines (typically 100-240 VAC) and medium voltage (MV) power lines up to approximately 12 kV by crossing LV/MV transformers. Accordingly, the receiver on the LV side must be able to detect the transmitted signal after it has been severely attenuated as a result of going through a MV/LV transformer. As the signal goes through the transformer, it is expected to experience overall severe attenuation in its power level and frequency-dependent attenuation that
attenuates higher frequencies. Both transmitter and receiver have mechanisms to compensate for this attenuation. The transmitter has the capability to adjust its overall signal level and to shape its power spectrum based on tone map information provided by a target receiver, while the receiver has both an analog and digital automatic gain control (AGC) to achieve enough gain to compensate for the overall attenuation.
[0031] FIG. 3 shows a coherent frame structure for communication between the network of FIG. 1 and the device of FIG. 2 according to example embodiments. The frame includes a preamble, a frame control header (FCH) and payload data. The preamble includes synchronization symbols (such as SYNCP 300 and SYNCM 302) and is terminated by a half SYNCM symbol 304, which is preferably a repetition of the first half of SYNCM 302. The preamble is separated from the FCH by an overlap region 306. The example FCH includes 12 OFDM symbols, but this may vary with different band plans. The FCH is coherently modulated and contains information regarding the current frame, such as the type of frame, the tone map index, and the length of the frame. Each FCH symbol is preceded by a respective guard interval (GI). For example, the FCH1 310 is preceded by respective GI 308, and each FCH symbol is separated by an overlap region. Symbols SI and S2 are inserted between the FCH and the payload data (DATA). Symbol S2 is similar to SYNCP 300, except that it includes a cyclic prefix, GI, and overlap regions. Symbol SI is an inverted version of S2 (-S2). The payload data follows symbols SI and SI and includes data in respective OFDM symbols. For example, the first symbol includes overlap 312, GI 314 and data 316.
[0032] FIG. 4 is a diagram of a circuit for preamble symbol generation according to a first embodiment. The circuit includes IFFT and parallel -to-serial (P/S) converter 215 from FIG. 2. Cyclic prefix circuit 216 appends a cyclic prefix from the end of the P/S converter output to the beginning of the serial output to complete the OFDM symbol. As discussed hereinabove, IEEE 1901.2 has specified 128 tones for FCC narrowband PLC. This requires a minimum of N = 256 IFFT samples. However, in this example embodiment, only K = 72 of these tones are used, and the remaining 56 tones at the ends of the IFFT are unused and set to zero. Preamble tones 1-36 (Ρι-Ρκ/2) are applied as inputs to the IFFT circuit. Multiplex circuit 400 is coupled to receive preamble tones 37-72 (Ρκ/2-Ρκ) and 36 data tones (Χι-Χκ/2)· Multiplex circuit 400 selectively applies the 36 preamble tones or the 36 data tones to the IFFT circuit in response to a modulation control scheme (MCS) signal.
[0033] Operation of the circuit of FIG. 4 is described with reference to FIGS. 5A-5B. When the
PLC signal-to-noise ratio (SNR) is good, a high data rate MCS may be selected for the frame of FIG. 3. In this case, 36 preamble tones are sufficient for synchronization detection at a receiver (FIG. 2). Thus, MCS has a high logic level, and multiplex circuit 400 applies 36 data tones to the IFFT circuit. Therefore, sequential SYNCP symbols have a structure as illustrated in FIG. 5A, where the vertical axis is subcarrier frequency, and the horizontal axis is time. Each SYNCP OFDM symbol includes 36 preamble tones 500 and 36 data tones 502. The preamble tones are preferably contiguous within the OFDM symbol to provide a better correlation profile. This greatly increases data throughput when the PLC SNR is good. When the PLC signal-to-noise ratio (SNR) is compromised by noise, a lower data rate MCS may be selected for the frame of FIG. 3. In this case, 72 preamble tones may be required for synchronization detection. Thus, MCS has a low logic level, and multiplex circuit 400 applies 36 additional preamble tones (Ρκ/2-Ρκ) to the IFFT circuit. Therefore, sequential SYNCP symbols have a structure as illustrated in FIG. 5B. Each SYNCP OFDM symbol includes 72 preamble tones 504 and no data tones. In a first mode of operation, a receiver operates on a static allocation of data for each OFDM preamble symbol. This is preferably a default mode. In a second mode of operation, the receiver operates on a semi-persistent or adaptive allocation as determined by a received data frame. This mode is preferably adapted to the communication system SNR. This embodiment advantageously increases data throughput when the PLC SNR is good and reverts to normal data throughput in a high noise environment.
[0034] FIG. 6 is a diagram of a circuit for preamble symbol generation according to a second embodiment. The circuit includes IFFT and parallel -to-serial (P/S) converter 215 and cyclic prefix circuit 216. Multiplex circuit 600 selectively applies the 36 preamble tones (Ρι-Ρκ/2) for odd-numbered symbols or 36 data tones (Χι-Χκ/2) for even-numbered symbols in response to control signal EVEN. Likewise, multiplex circuit 602 selectively applies the 36 data tones for odd-numbered symbols or 36 preamble tones for even-numbered symbols in response to control signal EVEN.
[0035] Operation of the circuit of FIG. 6 is described with reference to FIG. 7. For odd-numbered symbol 700 (Symbol 1), control signal EVEN has a low logic state. Thus, multiplex circuit 600 applies preamble tones Ρι-Ρκ/2 to IFFT circuit 215, and multiplex circuit 602 applies data tones XI-XK/2 to IFFT circuit 215. Therefore, symbol 700 includes 36 preamble tones 702 at the upper frequency range and 36 data tones 704 at the lower frequency range. For even-numbered symbol 706 (Symbol 2), control signal EVEN has a high logic state. Thus, multiplex circuit 600 applies data
tones Χι-Χκ/2 to IFFT circuit 215, and multiplex circuit 602 applies preamble tones Ρι-Ρκ/2 to IFFT circuit 215. Therefore, symbol 706 includes 36 data tones 708 at the upper frequency range and 36 preamble tones 710 at the lower frequency range. In a first mode of operation, a receiver operates on a static allocation of alternating preamble and data subcarriers in each OFDM preamble symbol. This is preferably a default mode. In a second mode of operation, the receiver operates on a semi- persistent or adaptive allocation as determined by a received data frame. This mode is preferably adapted to the communication system S R and desired throughput. This embodiment advantageously improves frequency diversity gain by alternating preamble and data frequencies in adjacent OFDM symbols.
[0036] FIG. 8 is a diagram of throughput gain as a function of payload size according to example embodiments. In the foregoing embodiment, throughput gain increases from 19% to 34% as payload data increases from 30 to 70 bytes. Further increases in payload data size are accompanied by a gradual decrease in throughput gain. This is because additional data in the preamble becomes less significant as payload data (after FCH) in the frame increases. At 480 bytes of payload data, the throughput gain decreases to 14%.
[0037] Embodiments may be readily adapted to other frame structures. For other applications, the number of used preamble symbol tones K may be more or less than 72. Likewise, the IFFT samples may be more or less than 256. Although embodiments have specifically addressed addition of payload data to SYNCP symbols, payload data may also be added to SYNCM symbols or to frame symbols SI and S2 of the FCH. Moreover, embodiments of FIGS. 4 and 6 may be combined to selectively include or omit data tones in response to a modulation control scheme, and the included data tones may alternate with preamble tones in alternating OFDM symbols. Furthermore, embodiments may be implemented in software, hardware, or a combination of both.
[0038] Modifications are possible in the described embodiments, and other embodiments are possible, within the scope of the claims
Claims
1. A method of operating a communication system, comprising:
forming a data frame having plural orthogonal frequency division multiplex (OFDM) symbols;
allocating a first set of preamble subcamers to at least one of the OFDM symbols; and allocating a second set of data subcamers to the at least one of the OFDM symbols.
2. The method of claim 1, wherein the communication system is a power line communication system.
3. The method of claim 1, wherein the allocating data subcamers in the at least one of the OFDM symbols is a static allocation.
4. The method of claim 1, wherein the allocating data subcamers in the at least one of the OFDM symbols is an adaptive allocation as signaled by a received frame.
5. The method of claim 1, comprising:
including K preamble subcamers in each of the OFDM symbols in response to a first control signal, where K is a positive integer; and
including K/2 preamble subcamers and K/2 data subcamers in each OFDM symbol in response to a second control signal.
6. The method of claim 1, comprising:
including K/2 first preamble subcamers and K/2 second data subcamers in each even-numbered OFDM symbol; and
including K/2 first data subcamers and K/2 second preamble subcarriers in each odd-numbered OFDM symbol.
7. The method of claim 1, wherein the second set of data subcamers is allocated to preamble SYNCP and SYNCM OFDM symbols.
8. The method of claim 1, wherein the preamble subcamers of the first set are contiguous within the at least one of the OFDM symbols.
9. A method of operating a communication system, comprising:
receiving a data frame having plural orthogonal frequency division multiplex (OFDM) symbols;
receiving a first set of preamble signals from at least one of the OFDM symbols; and
receiving a second set of data signals from the at least one of the OFDM symbols.
10. The method of claim 9, wherein the communication system is a power line communication system.
11. The method of claim 9, wherein the receiving preamble and data signals in the at least one of the OFDM symbols is in response to a static allocation.
12. The method of claim 9, wherein the receiving preamble and data signals in the at least one of the OFDM symbols is in response to adaptive allocations as signaled by a received frame.
13. The method of claim 9, comprising:
converting K preamble signals in each of the OFDM symbols to K respective subcamers in response to a first modulation control scheme, where K is a positive integer; and
converting K/2 preamble signals and K/2 data signals in each OFDM symbol into K/2 respective preamble subcamers and K/2 respective data subcamers in response to a second modulation control scheme.
14. The method of claim 9, comprising:
converting K/2 first preamble signals and K/2 first data signals to K respective subcamers in each even-numbered OFDM symbol; and
converting K/2 second data signals and K/2 second preamble signals to the K respective subcamers in each odd-numbered OFDM symbol.
15. The method of claim 9, wherein the second set of data subcamers is received in preamble SYNCP and SYNCM OFDM symbols.
16. The method of claim 9, wherein the second set of data subcamers is received in at least one frame control header OFDM symbol.
17 A power line communication (PLC) circuit, comprising:
an inverse fast Fourier transform (IFFT) circuit coupled to receive a first plurality of preamble subcamers;
a multiplex circuit coupled to receive a second plurality of preamble subcamers at a respective first plurality of input terminals and a plurality of data subcamers at a respective plurality of second input terminals; and
a control terminal of the multiplex circuit arranged to receive a control signal to selectively apply one of the second plurality of preamble subcamers and the plurality of data subcamers to the IFFT circuit.
18. The PLC circuit of claim 17, comprising a parallel -to-serial circuit arranged to convert the IFFT output signals to a serial data stream.
19. The PLC circuit of claim 17, comprising a cyclic prefix circuit arranged to append a plurality of signals from an end of the serial data stream to a front of the serial data stream.
20. The PLC circuit of claim 17, comprising:
a receiver circuit coupled to receive a plurality of orthogonal frequency division multiplex (OFDM) symbols from the IFFT circuit; and
a synchronization detection circuit arranged to synchronize the receiver circuit with the OFDM symbols in response to one of the first plurality the preamble subcamers and the first and second plurality of preamble subcamers.
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| US62/133,537 | 2015-03-16 | ||
| US14/925,598 US9692484B2 (en) | 2015-03-16 | 2015-10-28 | Optimized PHY frame structure for OFDM based narrowband PLC |
| US14/925,598 | 2015-10-28 |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2021035652A1 (en) * | 2019-08-29 | 2021-03-04 | 华为技术有限公司 | Communication method, communication apparatus, and system |
Families Citing this family (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107240247B (en) * | 2017-07-14 | 2023-08-29 | 杭州钛比科技有限公司 | Ammeter data acquisition system based on NB-IoT |
| US10732212B2 (en) * | 2017-11-01 | 2020-08-04 | Sun Digital Systems Inc | Impedance isolated lower voltage and wired data communication network |
| CN108206546B (en) * | 2017-12-29 | 2021-10-22 | 安德里茨(中国)有限公司 | Method for adjusting unit to pass through vibration region in AGC system |
| CN108566230B (en) * | 2018-03-02 | 2020-03-10 | 珠海格力电器股份有限公司 | Carrier channel control method and device |
| CN112787790B (en) * | 2021-01-18 | 2022-09-06 | 国网湖南省电力有限公司 | Frequency hopping multi-carrier communication method of power communication system |
| CN116888897B (en) * | 2021-03-05 | 2026-03-17 | 华为技术有限公司 | Methods, apparatus and systems for power line communication for the Internet of Things |
| CN113258959B (en) * | 2021-04-21 | 2022-10-18 | 北京智芯微电子科技有限公司 | Method and device for determining and aggregating qualified subcarriers of nodes of field area network |
| CN114584179B (en) * | 2022-03-02 | 2023-07-04 | 重庆邮电大学 | Method for eliminating pulse interference in PLC time domain |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2007148584A1 (en) * | 2006-06-19 | 2007-12-27 | Ntt Docomo, Inc. | Device and method for performing communication in a variable band |
| WO2008011889A1 (en) * | 2006-07-24 | 2008-01-31 | Siemens Aktiengesellschaft | Method and modem for subsea power line communication |
| WO2009036216A2 (en) * | 2007-09-14 | 2009-03-19 | Qualcomm Incorporated | Multiplexed beacon symbols for a wireless communication system |
| WO2009151155A2 (en) * | 2008-06-12 | 2009-12-17 | Panasonic Corporation | Communication apparatus, communication method, and integrated circuit |
Family Cites Families (23)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP3513465B2 (en) * | 2000-02-22 | 2004-03-31 | シャープ株式会社 | Wireless communication transmitter and wireless communication receiver |
| KR100548311B1 (en) * | 2002-06-07 | 2006-02-02 | 엘지전자 주식회사 | Transmission Diversity Device and Method in Mobile Communication System |
| KR20040029253A (en) * | 2002-09-30 | 2004-04-06 | 삼성전자주식회사 | Apparatus for generating preamble sequence in communication system using orthogonal frequency division multiplexing scheme and method thereof |
| JP2006503514A (en) * | 2002-11-30 | 2006-01-26 | サムスン エレクトロニクス カンパニー リミテッド | Apparatus and method for generating preamble sequence in orthogonal frequency division multiplexing communication system |
| US7444134B2 (en) * | 2004-02-13 | 2008-10-28 | Broadcom Corporation | Device and method for transmitting long training sequence for wireless communications |
| KR20060008576A (en) * | 2004-07-21 | 2006-01-27 | 삼성전자주식회사 | Multi-carrier transmission system and method for performing adaptive modulation using known cyclic prefix |
| WO2006036053A2 (en) * | 2004-09-30 | 2006-04-06 | Lg Electronics Inc. | Method of transmitting data and estimating channel informatio in ofdm/ofdma mobile communications system |
| KR100668662B1 (en) * | 2005-08-19 | 2007-01-12 | 한국전자통신연구원 | Method and apparatus for estimating signal-to-interference and noise ratio using preamble in OPDM |
| CA2657171A1 (en) * | 2006-07-28 | 2008-01-31 | Qualcomm Incorporated | Data encoding method and apparatus for flash-type signaling |
| US7778151B2 (en) * | 2006-10-03 | 2010-08-17 | Texas Instruments Incorporated | Efficient scheduling request channel for wireless networks |
| EP2122876B1 (en) * | 2007-01-18 | 2016-04-06 | Apple Inc. | Method and apparatus for reducing probability of detection, improving jamming resistance and security for broadband wireless systems |
| WO2010093204A2 (en) * | 2009-02-12 | 2010-08-19 | Lg Electronics Inc. | Method for transmitting signal on bandwidth request channel at mobile station, mobile station apparatus using the same, method for performing bandwidth request procedure at base station, and base station apparatus using the same |
| US8649443B2 (en) * | 2009-04-28 | 2014-02-11 | Texas Instruments Incorporated | OFDM-lite architecture for HomePlug |
| US20110043340A1 (en) * | 2009-08-19 | 2011-02-24 | Texas Instruments Incorporated | Concatenated Repetition Code with Convolutional Code |
| US8483741B1 (en) * | 2010-05-03 | 2013-07-09 | Qualcomm Incorporated | Mitigation of inter-network interference to enable channel reuse |
| US9000897B2 (en) * | 2010-09-14 | 2015-04-07 | Texas Instruments Incorporated | Systems and methods for implementing application profiles and device classes in power line communication (PLC) environments |
| US9100102B2 (en) * | 2011-01-11 | 2015-08-04 | Texas Instruments Incorporated | Method to use a preamble with band extension in power line communications |
| US9137624B2 (en) * | 2011-03-04 | 2015-09-15 | Lg Electronics Inc. | Method and device for performing ranging in a wireless communication system |
| US8792567B2 (en) * | 2011-06-17 | 2014-07-29 | Texas Instruments Incorporated | Preamble sequence extension |
| US20130051320A1 (en) * | 2011-08-25 | 2013-02-28 | Texas Instruments Incorporated | Channel Estimation using Pilot-Based Symbols |
| US20130101055A1 (en) * | 2011-10-21 | 2013-04-25 | Texas Instruments Incorporated | Sub-Band Power Scaling Reporting and Sub-Band Transmit Power Estimation |
| US9413575B2 (en) * | 2013-03-15 | 2016-08-09 | Echelon Corporation | Method and apparatus for multi-carrier modulation (MCM) packet detection based on phase differences |
| US9258829B1 (en) * | 2014-09-30 | 2016-02-09 | Texas Instruments Incorporated | System and method for collision rate reduction in MIMO narrowband power line communications |
-
2015
- 2015-10-28 US US14/925,598 patent/US9692484B2/en active Active
-
2016
- 2016-03-16 WO PCT/US2016/022658 patent/WO2016149381A1/en not_active Ceased
-
2017
- 2017-05-22 US US15/601,063 patent/US10425127B2/en active Active
-
2019
- 2019-08-13 US US16/539,368 patent/US10879958B2/en active Active
-
2020
- 2020-12-21 US US17/128,336 patent/US11431381B2/en active Active
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2007148584A1 (en) * | 2006-06-19 | 2007-12-27 | Ntt Docomo, Inc. | Device and method for performing communication in a variable band |
| WO2008011889A1 (en) * | 2006-07-24 | 2008-01-31 | Siemens Aktiengesellschaft | Method and modem for subsea power line communication |
| WO2009036216A2 (en) * | 2007-09-14 | 2009-03-19 | Qualcomm Incorporated | Multiplexed beacon symbols for a wireless communication system |
| WO2009151155A2 (en) * | 2008-06-12 | 2009-12-17 | Panasonic Corporation | Communication apparatus, communication method, and integrated circuit |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2021035652A1 (en) * | 2019-08-29 | 2021-03-04 | 华为技术有限公司 | Communication method, communication apparatus, and system |
| CN114175827A (en) * | 2019-08-29 | 2022-03-11 | 华为技术有限公司 | Communication method, communication device and system |
| CN114175827B (en) * | 2019-08-29 | 2023-12-29 | 华为技术有限公司 | Communication method, communication device and system |
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| US20170257144A1 (en) | 2017-09-07 |
| US11431381B2 (en) | 2022-08-30 |
| US10425127B2 (en) | 2019-09-24 |
| US20160277070A1 (en) | 2016-09-22 |
| US9692484B2 (en) | 2017-06-27 |
| US10879958B2 (en) | 2020-12-29 |
| US20190363754A1 (en) | 2019-11-28 |
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