GB2561005A - Method and apparatus for transmitting signals over wire connections - Google Patents

Method and apparatus for transmitting signals over wire connections Download PDF

Info

Publication number
GB2561005A
GB2561005A GB1705283.8A GB201705283A GB2561005A GB 2561005 A GB2561005 A GB 2561005A GB 201705283 A GB201705283 A GB 201705283A GB 2561005 A GB2561005 A GB 2561005A
Authority
GB
United Kingdom
Prior art keywords
function
channel
channels
value
determined
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB1705283.8A
Other versions
GB201705283D0 (en
GB2561005B (en
Inventor
Al Rawi Anas
Horsley Ian
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
British Telecommunications PLC
Original Assignee
British Telecommunications PLC
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by British Telecommunications PLC filed Critical British Telecommunications PLC
Priority to GB1705283.8A priority Critical patent/GB2561005B/en
Publication of GB201705283D0 publication Critical patent/GB201705283D0/en
Publication of GB2561005A publication Critical patent/GB2561005A/en
Application granted granted Critical
Publication of GB2561005B publication Critical patent/GB2561005B/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/03Shaping networks in transmitter or receiver, e.g. adaptive shaping networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B3/00Line transmission systems
    • H04B3/02Details
    • H04B3/32Reducing cross-talk, e.g. by compensating
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B3/00Line transmission systems
    • H04B3/02Details
    • H04B3/04Control of transmission; Equalising
    • H04B3/06Control of transmission; Equalising by the transmitted signal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • H04L1/0033Systems modifying transmission characteristics according to link quality, e.g. power backoff arrangements specific to the transmitter
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/0202Channel estimation
    • H04L25/0224Channel estimation using sounding signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/0264Arrangements for coupling to transmission lines
    • H04L25/0272Arrangements for coupling to multiple lines, e.g. for differential transmission
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/03Shaping networks in transmitter or receiver, e.g. adaptive shaping networks
    • H04L25/03006Arrangements for removing intersymbol interference
    • H04L25/03343Arrangements at the transmitter end
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/14Two-way operation using the same type of signal, i.e. duplex
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/20Arrangements affording multiple use of the transmission path using different combinations of lines, e.g. phantom working

Abstract

A method and apparatus to transmit data over different channels from a transmitter 16, such as a DSLAM, to one or more receivers 51-53, each of which is connected via a respective wire connection 21-23. For each channel: (i) determine a value that is a function of a power mask, (ii) determine a value that is a function of an upper bound for a channel capacity, (iii) apply a third function to the values previously obtained at (i) and (ii) to determine a value for the transmission power of the channel. The function of (i) may additionally be a function of the ratio of the power coupling coefficient to a noise level on the channel. The method may be used for DSL configurations that utilise direct transmission channels over twisted metallic pairs (TMP) and indirect phantom channels that use different combinations of TMPs. The method provides a fast converging water-filling algorithm for performing equalisation on the communication channels. Transmission of data is optimised and the power budget matched to channel behaviours.

Description

(54) Title of the Invention: Method and apparatus for transmitting signals over wire connections
Abstract Title: Determining the optimum transmission power required for direct and indirect channels in a Digital Subscriber Line (DSL) system (57) A method and apparatus to transmit data over different channels from a transmitter 16, such as a DSLAM, to one or more receivers 51-53, each of which is connected via a respective wire connection 21-23. For each channel: (i) determine a value that is a function of a power mask, (ii) determine a value that is a function of an upper bound for a channel capacity, (iii) apply a third function to the values previously obtained at (i) and (ii) to determine a value for the transmission power of the channel. The function of (i) may additionally be a function of the ratio of the power coupling coefficient to a noise level on the channel. The method may be used for DSL configurations that utilise direct transmission channels over twisted metallic pairs (TMP) and indirect phantom channels that use different combinations of TMPs. The method provides a fast converging water-filling algorithm for performing equalisation on the communication channels. Transmission of data is optimised and the power budget matched to channel behaviours.
Fig. 1
Figure GB2561005A_D0001
At least one drawing originally filed was informal and the print reproduced here is taken from a later filed formal copy.
07 18
Figure GB2561005A_D0002
1/5
Figure GB2561005A_D0003
07 18
2/5
CM
Figure GB2561005A_D0004
07 18
3/5
Figure GB2561005A_D0005
824
Figure GB2561005A_D0006
07 18 s30
Figure GB2561005A_D0007
Figure GB2561005A_D0008
START
Figure GB2561005A_D0009
SET m =1
CALCULATE s m
jj
Figure GB2561005A_D0010
CALCULATE s64
07 18
Figure GB2561005A_D0011
HAS BEEN CALCULATED FOR EACH m ?
YES
Figure GB2561005A_D0012
Z-Z DO CURRENT VALUES OF SATISFY THIRD CRITERION ? YZ J’ J
DETERMINE m CORRESPONDING TO Ml NI Ml MU M SNR
Figure GB2561005A_D0013
FOR DETERMINED m. SET $ - έ - 0 JJ JJ
Figure GB2561005A_D0014
STOP ITERATION ALLOCATE POWERS
TRANSMIT SIGNALS s78
Figure GB2561005A_D0015
END
Application No. GB1705283.8
RTM
Date :26 September 2017
Intellectual
Property
Office
The following terms are registered trade marks and should be read as such wherever they occur in this document:
International Telecommunication Union (Page 1)
ITU (Page 1)
Intellectual Property Office is an operating name of the Patent Office www.gov.uk/ipo
METHOD AND APPARATUS FOR TRANSMITTING SIGNALS OVER WIRE CONNECTIONS
FIELD OF INVENTION
The present invention relates to a method and apparatus for transmitting data from a transmitter device to a plurality of receiver devices, and in particular to a method and apparatus for transmitting and receiving data signals over pairs of wires. Such methods include all of the various Digital Subscriber Line (DSL) methods as specified in various International Telecommunications Union (ITU) standards and as being further developed in the ITU at present. Typically each such pair of wires comprises a twisted metallic pair (usually copper) as commonly found within telephone access networks throughout the world.
BACKGROUND
DSL technology takes advantage of the fact that although a legacy twisted metallic pair (which was originally installed to provide merely a Plain Old Telephone Services (POTS) telephony connection) might only have been intended to carry signals using differential mode at frequencies of up to a few Kilohertz, in fact such a line can often reliably carry signals at much greater frequencies. Moreover, the shorter the line, the greater is the range of frequencies over which signals can be reliably transmitted (especially with the use of technologies such as Discrete Multi-Tone (DMT), etc.). Thus as access networks have evolved, telecommunications network providers have expanded their fibre optic infrastructure outwards towards the edges of the access network, making the lengths of the final portion of each connection to an end user subscriber (which is still typically provided by a metallic twisted pair) shorter and shorter, giving rise to correspondingly greater and greater bandwidth potential over the increasingly short twisted metallic pair connections without having to bear the expense of installing new optic fibre connections to each subscriber.
-2ln the separate field of wireless communication, as the frequency response of a given wireless channel varies aggressively, flat transmitting power spectral density (PSD) tends to become increasingly inefficient, for example since power density per Hertz does not fully compensate for associated channel loss at a given frequency. Subsequently, this degrades the efficiencies of system energy and the channel capacity. As a solution, so-called “water-filling/pouring” was first suggested by Claude Shannon in 1949. Since then, there have been a lot studies trying to derive the optimal solutions for various wireless channels.
SUMMARY OF INVENTION
The present inventors have realised that, as the bandwidth of DSL systems keep expanding, the encountered loss will tend to become steeper than earlier DSL generations. Thus, flat PSD will tend to become extremely inefficient. This may be due, for example, to non-optimal power allocation to some frequencies. Aspects of the present invention provide a fast converging analytical water-filling algorithm that tend to overcome this problem.
The present inventors have further realised that, unlike slow/fast time varying wireless channels, Twisted Metallic Pair (TMP) channels tend to be semi-static. Thus, variability of the frequency response of TMP channels over time tends to be negligible. The present inventors have further realised that, however, with TMP channels the loss across the system bandwidth tends to be much steeper compared to wireless channels, and, as a result, aggressive signal shaping of the channel frequency response for TMP channels can be avoided. The present inventors have realised that this can be exploited to minimise the complexity of any water-filling solution.
In a first aspect, the present invention provides a method of transmitting data from a transmitter device to one or more receiver devices, each of the one or more receiver devices being connected to the transmitter device via a respective wire connection, the transmitter device being operable to transmit signals onto the wire connections over one or more different channels. The
-3method comprises, for each of the one or more different channels: determining a value of a first function, the first function being a function of a power mask for transmitting the data over the one or more different channels; determining a value of a second function, the second function being a function of an upper bound for a channel capacity of the one or more channels; determining a value of a third function, the third function being a function of the value of the first function and the value of the second function; using the determined value of the third function, determining a transmission power for transmitting data along that channel; and transmitting, by the transmitter device, data over that channel to one or more of the receiver devices, the data being transmitted at the transmission power determined for that channel.
The first function may additionally be a function of a gain of the one or more channels, the gain of a channel being a ratio of a power coupling coefficient to a noise level on that channel. The first function may be /ζ , jj where:
Figure GB2561005A_D0016
id (In 2)
77, where: j is a channel index; pm is the power mask for transmitting the data over the one or more different channels; and /% is the gain of the jth channels.
The second function may additionally be a function of a gain of the one 20 or more channels, the gain of a channel being a ratio of a power coupling coefficient to a noise level on that channel. The second function may be Λ” , jj where:
Figure GB2561005A_D0017
Figure GB2561005A_D0018
jj
2*“ In 2
-4where: j is a channel index; is the upper bound for the channel capacity of the one or more channels; and is the gain of the jth channel.
The third function, Χΐ , may be a function selected from the group of
Figure GB2561005A_D0019
r Ίtn 'Ίm ί
Λ, -ιηβαη\λ{ ,/t2 where X? is the first function and Λ” is the second jd id id j,j j,j function.
The step of determining a transmission power for transmitting data over a channel may comprise determining the transmission power as a function of the value of the third function and a gain of the one or more channels, the gain of a channel being a ratio of a power coupling coefficient to a noise level on that channel.
A transmission power, , may be determined using:
Figure GB2561005A_D0020
where: j is a channel index; X? is the third function; and /N is the gain of the jth channel.
The one or more channels may comprise one or more channel selected from the group of channels consisting of: a direct channel, an indirect channel, a channel provided by a change over time of a potential difference between a pair of the wire connections, a phantom channel, a common mode channel.
An available spectrum for the transmission of the data over the one or more channels may comprise a plurality of tones. The steps of determining a value of a first function, determining a value of a second function, determining a value of a third function, and determining a transmission power may be performed for each tone, thereby to determine a transmission power for each
-5tone and for each of one or more of the channels. The step of transmitting may comprise, for one or more of the plurality of tones and for one or more of the channels, transmitting, by the transmitter device, data over that channel on that tone to one or more of the receiver devices, the data being transmitted at the transmission power determined for that channel and that tone.
The method may further comprise: iteratively performing steps (i) to (iii) until, at step (iii), it is determined that one or more criteria are satisfied, thereby determining, for each of the one or more different channels, a new transmission power for transmitting data over that channel, wherein: step (i) comprises determining a value of a fourth function, the fourth function being a function of a maximum power for transmitting the data over the one or more different channels; step (ii) comprises, using the determined value of the fourth function, determining, for each of the one or more different channels, a respective new transmission power for transmitting data along that channel; and step (iii) comprises determining whether or not the one or more determined new transmission powers satisfy one or more criteria; and for each of the one or more channels, switching from transmitting data over that channel at the transmission power determined for that channel to transmitting data over that channel at the new transmission power determined for that channel.
For second and subsequent iterations of steps (i) to (iii), the fourth function may be determined at step (i) by modifying a value of the fourth function of the preceding iteration.
In a further aspect, the present invention provides a transmitting device for transmitting data to one or more receiver devices, each of which is connected to the transmitter device via a respective wire connection, the transmitter device being operable to transmit signals onto the wire connections over one or more different channels. The transmitting device is configured to, for each of the one or more different channels: determine a value of a first function, the first function being a function of a power mask for transmitting the data over the one or more different channels; determine a value of a second function, the second function being a function of an upper bound for a channel capacity of the one or more channels; determine a value of a third function, the
-6third function being a function of the value of the first function and the value of the second function; using the determined value of the third function, determine a transmission power for transmitting data along that channel; and transmit data over that channel to one or more of the receiver devices, the data being transmitted at the transmission power determined for that channel.
In a further aspect, the present invention provides a program or plurality of programs arranged such that when executed by a computer system or one or more processors it/they cause the computer system or the one or more processors to operate in accordance with the method of any of preceding aspect.
In a further aspect, the present invention provides a machine readable storage medium storing a program or at least one of the plurality of programs according to the preceding aspect.
BRIEF DESCRIPTION OF THE DRAWINGS
In order that the present invention may be better understood, embodiments thereof will now be described with reference to the accompanying drawings in which:
Figure 1 is a schematic illustration (not to scale) of an example 20 broadband deployment;
Figure 2 is a schematic illustration (not to scale) showing further specific details of the broadband deployment;
Figure 3 is a process flow chart showing certain steps of a first bit and power allocation process;
Figure 4 is a process flow chart showing certain steps of a second bit and power allocation process; and
Figure 5 is a process flow chart showing certain steps of a third bit and power allocation process;
-7SPECIFIC DESCRIPTION OF EMBODIMENTS
In the below description, reference will be made to modes of communication. Herein, the term mode is used to indicate the nature of the manner in which signals are transmitted between transmitter and receiver. In particular, as will be appreciated by persons skilled in the art, there are three principal such modes of communication: differential mode, phantom mode, and common mode. In all three of these modes the signal is transmitted (excited) and received (observed) as the (changing) potential difference (voltage differential) between two voltages (or equivalently between one live voltage and one reference voltage). In the differential mode the signal is transmitted/observed as the difference in potential between two wires (typically between two wires of a twisted metallic pair). In the phantom mode at least one of the voltages is the average voltage of a pair of wires (note that such average can vary without impacting on a signal carried in the differential mode across that same pair of wires - in this sense the phantom mode can be orthogonal to signals carried in the differential mode if carefully chosen); the term pure phantom mode may be used to specify that both voltages being compared with each other are average voltages, each average voltage being the average or common voltage of at least one pair of wires. Second and higher order phantom modes can also be obtained by using the average voltage of two or more average voltages as one of the voltages to be compared, etc. Finally, the common mode refers to the case where one of the voltages being compared is the Earth or ground reference voltage (or something substantially similar for telecommunications purposes). Naturally, it is possible for various mixed modes to also be used for carrying signals. For example, one reference voltage could be a common ground and the other could be the average between the voltages of two wires in a twisted metallic pair (to generate a mixed mode of phantom and common modes). However, in general, reference to a differential mode in this specification is used to refer to a pure differential mode, i.e. it does not include any phantom or common mode component so a mode comprising a comparison between the voltage on a single wire and the average voltage
-8between the voltages of two other wires may be referred to as an impure phantom mode rather than a mixed phantom and differential mode, etc.
Phantom channels can be constructed from different combinations of TMPs. For instance, a first and a second TMP can together generate a single unique phantom channel which has a similar behaviour to that of each directly coupled differential mode channel formed across each pair in terms of channel directivity. However, phantom modes, as mentioned earlier, are due to the variation of the average voltages of the pairs. For more than two coupled pairs, the pairs may couple to each other in the phantom mode in various orthogonal and non-orthogonal manners, e.g. two distinct (but non-orthogonal) phantom mode channels may be exploited which share one common pair. Preferred embodiments of the invention select and construct only orthogonal phantom channels.
Reference is also made throughout the below description to direct and indirect coupling and direct and indirect channels. A direct channel is one in which the same physical medium and the same mode of transmission is used for both the transmission of the signal and for the reception of the signal. Thus a normal differential mode transmission across a single TMP from transmitter to receiver would constitute a direct (differential mode) channel between the transmitter and the receiver. By contrast, a channel in which the transmitter transmitted a signal onto a second TMP in differential mode but was received by a receiver from a first TMP in differential mode (the signal having crosstalked across from the second to the first pair) is an example of an indirect channel, as is a case in which a signal is transmitted by a transmitter in a phantom mode across the averages of the voltages of the wires in each of a first and second TMP and received (having crosstalked/mode converted) by a receiver connected to just the first TMP in differential mode.
Moreover, where there are multiple TMPs emanating from a single transmitter (e.g. an Access Node (AN) or Digital Subscriber Line Access
Multiplexor (DSLAM), etc.) in such a way that multiple direct and indirect channels are formed between the transmitter and multiple receivers, the set of twisted metallic channel pairs and their derivative channels (direct and indirect
-9and of various different modes) can be considered as forming a unified dynamic shared or composite channel over which a number of virtual channels may be overlaid (i.e. the virtual channels are overlaid over the underlying common shared channel). In this context, a virtual channel can be considered as an overlay channel by which data can be directed to individual receivers even though a single common underlying signal is transmitted onto the underlying common channel; this can be achieved for example by means of a suitable multiple access technique such as Frequency Division Multiple Access (FDMA), Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA) or simply be using suitable encryption techniques, etc.
Referring now to the Figures, Figure 1 is a schematic illustration (not to scale) of an example broadband deployment in which embodiments of a data transmission method may be employed.
In this example, the deployment comprises a Distribution Point Unit 15 (DPU) 10 which is connected to three user premises 31,32, 33 (which in this example are flats within a single building 30) via respective Twisted Metallic Pair (TMP) connections 21, 22, 23 which connect between an Access Node (AN) 16 (which may, for example, be a DSLAM) within the DPU 10 and respective Customer Premises Equipment (CPE) modems 51,52 via respective network termination points 41, 42 within the respective user premises 31, 32. The DPU 10 additionally includes an Optical Network Termination (ONT) device 14 which provides a backhaul connection from the DPU 10 to a local exchange building via an optical fibre connection such as a Passive Optic-fibre Network (PON) and a controller 12 which co-ordinates communications between the AN
16 and the ONT 14, and which may perform some management functions such as communicating with a remote Persistent Management Agent (PMA).
As will be apparent to a person skilled in the art, the illustrated deployment involving an optical fibre backhaul connection from a distribution point and a twisted metallic pair connection from the distribution point to the customer premises is a sort of deployment for which the G.FAST standard is intended to be applicable. In such a situation, the TMP connections may be as short as a few hundred metres or less, for example possibly a few tens of
-10metres only, and because of this it tends to be possible to use very high frequency signals (e.g. up to a few hundred Megahertz) to communicate over the short TMPs because the attenuation of high frequency signals is insufficient to prevent them from carrying useful information because of the shortness of the channels. However, at such high frequencies crosstalk can become a significant issue. This tends to be the case where the cross-talking channels travel alongside each other for part of their extent (as in the situation illustrated in Figure 1); however, cross-talk is also tends to be an issue at high frequencies (e.g. over 80 MHz) even where the channels only lie close to one another for a very small portion of their total extent (e.g. just when exiting the DPU 10). G.FAST proposes simply using vectoring techniques at all frequencies where there are cross-talking channels in order to mitigate against the cross-talk effects.
In some embodiments, by accessing at the DPU 10 (for example, at the
AN 16) phantom channels, it is possible to exploit signals transmitted onto phantom channels which will crosstalk onto the conventional differential mode channels associated with each of the end user receivers (the termination point and CPE modem combinations 41/51, 42/52, 43/53) and change the signals received (compared to a conventional case where the phantom channels are not exploited in this way). Since there are three TMP connections 21-23, there are 3 possible (first order, pure) phantom channels which could be exploited in this way, formed by using the differential voltage signal between: the average voltage of TMP 21 and that of TMP 22; the average voltage of TMP 21 and that of TMP 23; and the average of TMP 22 and that of TMP 23. However, since there is no possible set of two of these possible (first order, pure) phantom channels which does not include at least one common TMP, only one of these can be used at the same time without having non-orthogonal (and hence complexly interfering) phantom channels being used simultaneously. Thus the present embodiment includes a Phantom Channel - Multiple Optimisation
Problem device (PC-MOP) which, as is explained in greater detail below, acts to choose a single one out of the three possible phantom channels to use - the selection being performed such as to try to achieve a particular set of two (or
-11 more) objectives (e.g. to try to obtain the maximum benefit for two of the three receivers).
Figure 2 is a schematic illustration (not to scale) showing further details of the AN 16 and CPE modems 51, 52, 53 that allow for data transmission according to below described embodiments.
The AN 16 comprises first, second, and third Data Source, Data Encoder and Serial to Parallel converter (DSDESP) modules 1611, 1612 and 1613. These are essentially conventional functions within a DSL modem and will not be further described here except to point out that each one's output is a set of data values di - dM each of which can be mapped to both a set of one or more bits and to a point within a modulation signal constellation associated with a respective tone on which the data value is to be transmitted. For example, if a tone ti is determined to be able to carry 3 bits of data, a corresponding data value will be set to one of 23= 8 different values (e.g. to a decimal number between 0 and 7) each of which corresponds to a different constellation point within an associated signal constellation having 8 different constellation points. The data values for a single symbol can be thought of as forming a vector of data values (one for each data-carrying tone) and together carry the user data to be transmitted to the end user associated with a respective end user modem
51,52, 53 together with any overhead data (e.g. Forward Error Correction data etc.).
The data values leaving each DSDESP module 1611, 1612, 1613 are then passed (in an appropriate order) to respective Multiple bit level Quadrature Amplitude Modulation (M-QAM) modulators 1621, 1622, 1623 which convert each input data value to a respective complex number xj to x'M , x,' to x^, and a/ to xl each of which represents a complex point within a complex number constellation diagram. For example, a data value d\ = 7 (=111 in binary) might be mapped by the M-QAM modulator 1621 to the complex number 1-i for tone 1 where tone 1 has been determined (by say modem 51) to be able to carry 3 bits of data each.
-12 Each of these complex numbers x} to x‘M, xf to x2M, and xf to x3M is then entered into a vectoring precoder module 1630 (which in the present embodiment is a single common vectoring precoder module 1630) which performs a largely conventional vectoring operation in order to precode the transmissions to be sent using a combination of predetermined vectoring coefficients and information about the signals to be transmitted onto the other channels within the relevant vector group in a manner, which is well known to those skilled in the art, to compensate for the expected effects of cross-talk from the other channels in the vector group.
In some embodiments, the vectoring precoder module 1630 is operable to additionally precode the transmissions in such a way as to cause them to be pre-compensated for the expected crosstalk effects produced not only by the neighbouring channels operating in a direct differential mode (as per standard vectoring), but also for the effects of crosstalk coming from any signals being transmitted onto one or more phantom channels (or other channels which are not direct differential mode channels). In order to do this, the vectoring precoder module 1630 may receive information about channel estimations of the respective phantom channel(s) (or other channels which are not direct differential mode channels) and also information about any weighting values used to combine signals to be transmitted over the phantom channel(s) (or other channels which are not direct differential mode channels).
An ability of the vectoring precoder module 1630 to receive the weighting values and channel estimation values, which it may use to perform its precoding functions, is illustrated in Figure 2 by the line between the PC-MOP & MICOP &
MRC & Management entity module 1690 (which performs general management functions in addition to its specific functions described in greater detail below and, for brevity, may hereinafter be referred to either as the management entity or the PC-MOP module) and the vectoring precoder module 1630. In this embodiment, the PC-MOP module 1690 calculates appropriate values for the channel estimations and the weighting values required by the vectoring precoder module 1630 and the MICOP & MRC precoder module 1640. To do this, the PC-MOP module 1690 may use data reported back to it from the end
-13user modems 51, 52, 53. The processes and procedures for achieving this are largely conventional and well known to persons skilled in the art and so they are not discussed in great detail herein except to note that it may utilise a backward path from the user modems 51, 52, 53 to the AN 16. This may be achieved in practice in that the user modems 51, 52, 53 are transceivers capable of receiving and transmitting signals over the TMPs 21, 22, 23 as is the AN 16. The receiver parts of the AN 16 and the transmitter parts of the user modems 51, 52, 53 have simply been omitted from the drawings to avoid unnecessary complication of the figures and because these parts are entirely conventional and not directly pertinent to the present invention. Moreover, each of the user modems 51, 52, 53 may additionally contain a management entity responsible for performing various processing and communication functions. Any of a multitude of suitable techniques can be employed for obtaining data useful in generating channel estimations. For example, known training signals can be transmitted onto selected channels by the AN 16 during a special training procedure and the results of detecting these by the user modems 51, 52, 53 can be sent back to the AN 16 in a conventional manner. Additionally, special synchronisation symbols can be transmitted, interspersed with symbols carrying user data, at predetermined locations within a frame comprising multiple symbols (e.g. at the beginning of each new frame) and the results of attempting to detect these synchronisation symbols can also be sent back to the AN 16 to generate channel estimation values. As is known to persons skilled in the art, different synchronisation signals/symbols can be sent over different channels simultaneously and/or at different times etc. so that different channel estimations (including importantly indirect channels and indirect channels can be targeted and evaluated, etc.
In this embodiment, the output from the vectoring precoder module 1630 is a set of further modified complex numbers xj to xlM, x2 to x2M, and xf to x3m . These complex numbers are then passed to a Mixed-Integer Convex Optimisation Problem and Maximal Ratio Combiner (MICOP and MRC) precoder module 1640 (hereinafter referred to as the MICOP and MRC precoder module 1640) which, in the present embodiment, uses weighting
-14values together with channel estimation values provided to it by the PC-MOP module 1690 to calculate, from the modified complex numbers received from the vectoring pre-coder module 1640 (and the weighting values and channel estimation values from the PC-MOP module 1690), further modified (or further pre-distorted) values for the complex numbers to be passed to the IFFTs 16511652. Thus, MICOP and MRC precoder module 1640 modifies the received numbers xj to xlM, x2 to x2M, and x3 to x3M to generate corresponding further modified complex numbers x} to x^, x to x2M, and xf to x3M which form (ultimately) the signals to be used in driving the respective TMPs 21, 22, 23 in direct differential mode. Also, the MICOP and MRC precoder module 1640 may additionally generate a new set of complex numbers x/ to x^ for forming (ultimately) the signals to be used to drive a (single ended) phantom mode channel to be accessed via the MPAD module described below. Any appropriate way of doing this may be performed. For example, the method of transmitting data in differential and phantom modes that is described in WO 2016/139156 A1, which is incorporated herein in its entirety, may be implemented. Once these values have been calculated by the MICOP and MRC precoder 1640 they are passed to the respective IFFT modules 1651-1654, with super-script 1 values going to IFFT 1651, superscript 2 values going to IFFT
1652, and so on. The next two steps of the processing are conventional and not relevant to the present invention. Thus, each set of generated values (e.g. x} to xlM) is formed by the respective IFFT module into a quadrature time domain signal in the normal manner in Orthogonal Frequency Division Multiplexing (OFDM)/DMT systems. The time domain signals are then processed by a suitable Analogue Front End (AFE) module 1661 to 1664 again in any suitable such manner including any normal conventional manner. After processing by the AFE module 1650, the resulting analogue signals are passed to a Multiple Phantom Access device (MPAD) module 1670. In overview, the MPAD module 1670 provides switchable access to centre taps of any of the TMPs such that any of the possible phantom channels associated with the connected channels can be driven by the incoming signal arriving from AFE 1664 as well as directly
-15passing on the signals from AFE's 1661-1663 directly to TMPs 21-23 for driving in the normal direct differential mode.
During transmission over the TMP connections 21,22, 23 the signals will be modified in the normal way according to the channel response of the channel and due to external noise impinging onto the connections. In particular, there will typically be cross-talking (including, for example, far-end cross-talking) between the three direct channels (the direct channels being one from the transmitter 16 to the modems 41-43 via the TMPs 21-23) and the phantom channel. However, the effect of the precoding is to largely precompensate for the effects of the cross talk. Additionally, the targeted receivers may benefit from increased SNR of the received signal destined for them arriving via cross talk from the phantom channel.
After passing over the TMP connections 21, 22, 23 the signals are received by the modems 41-43 at a respective Analogue Front End (AFE) module 5150, 5250, 5350 which performs the usual analogue front end processing. The thus processed signals are then each passed to a respective Fast Fourier Transform (FFT) module 5140, 5240, 5340 which performs the usual conversion of the received signal from the time domain to the frequency domain. The signals leaving the FFT modules 5140, 5240, 5340, τί to ylM , yf to y2M , and yf to y3M, are then each passed, in the present embodiment, to a respective Frequency domain EQualiser (FEQ) module 5130, 5230, 5330. The operation of such frequency domain equaliser modules 5130, 5230, 5330 is well-known in the art and will not therefore be further described herein. It should be noted however, that any type of equalisation could be performed here, such as using a simple time-domain linear equalizer, a decision feedback equaliser, etc. For further information on equalisation in OFDM systems, the reader is referred to: Zero-Forcing Frequency- Domain Equalization for Generalized DMT Transceivers with Insufficient Guard Interval, by Tanja Karp, Steffen Trautmann, Norbert J. Fliege, EURASIP Journal on Applied Signal Processing
2004:10,1446-1459.
-16Once the received signal has passed through the AFE, FFT and FEQ modules, the resulting signals xj to 4 > * to *1> ancl t0 *m tencl t0 be similar to the complex numbers xj to xlM, x2 to x2M, and xf to x3M originally output by the M-QAM modules 1621-1623, except that there may be some degree of error resulting from imperfect equalisation of the channel and the effect of external noise impinging onto the channels during transmission of the signals between the AN 16 and the modems 51, 52, 53. This error will in general differ from one receiving modem to the next. This can be expressed mathematically as xlm = x'm+e'm etc. Provided the error however is sufficiently small the signal should be recoverable in the normal way after processing by the M-QAM demodulator modules 5120-5320 where a corresponding constellation point is selected for each value x‘m depending on its value (e.g. by selecting the constellation point closest to the point represented by the value x‘m unless trellis coding is being used, etc.). The resulting values d[ to dlM, d2 to d2M, and d^ to d3M should mostly correspond to the data values d\ to dlM, d2 to d2M, and d3 to d3M originally entered to the corresponding M-QAM modules 1621, 1622, 1623 respectively within the AN 16. These values are then entered into a respective decoder (and received data processing) module 5110, 5210 and 5230 which reassembles the detected data and performs any necessary forward error correction etc. and then presents the recovered user data to whichever service it is addressed to in the normal manner, thus completing the successful transmission of this data.
Following now from the above overview of Figure 2, a more detailed explanation is provided of the non-conventional elements within the embodiment illustrated in Figure 2 and described briefly above.
The MPAD 1670 is a component configured to determine, for each of the TMPs 21, 22, 23, and for each tone on which data is transmitted on the TMPs 21, 22, 23, a bit and power allocation with which to transmit data signals. In particular, the MPAD 1670 is configured to determine bit and power allocation
-17such that the maximum capacities of the channels (i.e. the maximum transmission bit rates) are substantially achieved.
Apparatus, including the MPAD 1670, for implementing the above arrangement, and performing the method steps to be described later below, may be provided by configuring or adapting any suitable apparatus, for example one or more computers or other processing apparatus or processors, and/or providing additional modules. The apparatus may comprise a computer, a network of computers, or one or more processors, for implementing instructions and using data, including instructions and data in the form of a computer program or plurality of computer programs stored in or on a machine readable storage medium such as computer memory, a computer disk, ROM, PROM etc., or any combination of these or other storage media.
What follows is a mathematical explanation of the functioning of certain elements of the above described system. This mathematical explanation is useful in the understanding of the embodiments of methods of determining the transmission powers for transmitting signals on the TMPs 21, 22, 23, which embodiments are described in more detail later below with reference to Figures 3 to 5.
Considering a system comprising a bundle of k TMPs and/or phantom channels, the full transmission characteristics for a single frequency of the channel may be represented as:
4,1 4,2 ' '' 4,it _ ^2,1 ^2,2 ’ ’ ’ ^2,Λ Ϋ4-,1 4t,2 ’ ’ ’ ^k.k y where A , indicates a channel transfer function, a value of which is ’ 'J dependent on crosstalk transmissions from the jth TMP/phantom channel onto the ith TMP/phantom channel. In other words, h{j is a measure of the electromagnetic coupling of the jth channel to the ith channel. For example, hi} may be indicative of the extent of coupling between the jth channel and the ith
-18channel. Values of ht j may be dependent on an attenuation on the amplitude of signals on the ith channel caused by the jth channel. Values of hi} may be dependent on a delay and/or phase shift on the phase of signals on the ith channel caused by the jth channel.
In this embodiment, the channel transfer matrix H is known i.e.
measured. For example, the channel transfer matrix H may be determined using known channel estimation techniques.
Values of hi} may be measured, for example, using test signals, by the
MPAD 1670. Measurement of the Rvalues may comprise, or be regarded as equivalent to, measuring one or more of the following parameters selected from the group of parameters consisting of: a channel response of the ith channel under conditions in which the jth channel (e.g. only the jth channel) is transmitting crosstalk interference onto the ith channel, an impulse response of the ith channel under conditions in which the jth channel (e.g. only the jth channel) is transmitting crosstalk interference onto the ith channel, and a frequency response of the ith channel under conditions in which the jth channel (e.g. only the jth channel) is transmitting crosstalk interference onto the ith channel.
The bundle of k TMPs and/or phantom channels may be contained in a common binder.
In this example, there is little to no interaction between different TMPs/phantom channels, for example as a result of the above described vectoring process. Thus, the non-diagonal element of Hare relatively small compared to the diagonal elements of //and can therefore be assumed to be zero.
As mentioned above, in operation, the MPAD 1670 determines a bit and power allocation for the TMPs/phantom channels to attempt to achieve maximum channel capacity.
The maximum capacity of a channel (which may also be referred to as 30 Shannon’s capacity limit) is expressed as:
Figure GB2561005A_D0021
where: C is the maximum capacity of the channel (in bits/second) for the given channel; B is the bandwidth of the channel (in Hertz); S is the signal power (in Watts); and N is the noise power (in Watts). The ratio S/N is called the
Signal to Noise Ratio (SNR).
Thus, the bit and power allocation problem that is solved by the MPAD 1670 is that of, for each of the j TMPs/phantom channels, maximising the following objective function:
Figure GB2561005A_D0022
(1) where: j is an index for the different the TMPs/phantom channels, j=1, ...k;
m is a frequency index for the M different tones, m=1 is a binary allocation factor, where = 1 if transmission power is allocated to the jth TMP/phantom channel for the mth tone, and = 0 if transmission power is not allocated to the jth TMP/phantom channel for the mth tone;
5% is a power level for transmission on the jth TMP/phantom channel and mth tone; and /% is a channel gain of the jth TMP/phantom channel for the mth tone, . being a ratio of power coupling coefficient to the noise level, i.e.
(
Figure GB2561005A_D0023
where n.. is a noise level on the jth
TMP/phantom channel for given tone m. The channel gain /% can also include other factors, for example one or more factors selected from the
-20group of factors consisting of: coding gain, margin, gap value, and deterministic noise signals.
In this embodiment, the above objective function (equation (1)) is optimised with respect to the following constraints:
M m—l (3) S7j-P>n’ (4) b < pm log, min · h J & < b„ (5)
7.7 J where: PT is the maximum transmitting power (also known as the
Aggregate Transmit power (ATP)) permitted for the bundle of k TMPs and/or phantom channels;
pm is a transmission power mask for tone m. In this embodiment, the power mask is an upper threshold for power for signal transmission at tone m above which power value transmission is not permitted. The transmission power mask(s) may be set, for example, by an official regulatory body;
Z?min is a lower bound for the channel capacity. In this embodiment, Z?min is set to zero (0). However, in other embodiments, b^ may have a different appropriate value;
b^ is an upper bound for the channel capacity. In this embodiment, b^ is a bit limit for the TMPs and/or phantom channels.
Values for Z?min and/or may result from hardware limitations.
The above objective function (equation (1)) is a concave objective function that is to be maximised subject to the constraints in equations (2)-(5).
-21 Since the objective function (equation (1)) is concave, its optimisation is tractable. The optimisation of the objective function (equation (1)) proceeds with the Lagrangian as follows:
£ =ΣρΖlf’f.
m,j α/ς^-^Ί-Σα/ςλ,-1] (δ) \ m J m \ j J
-ΣΡ < m m ] | j-j/j-j
V
P jj j
( A / s m Ί
ΣΑ- Pm - y Bm / , p·' max /yi°g2 | ! j.j/j.j — b max
k j jj m I j
f
Pl lo§2 1 + J-J ' J’J — b min
- Pj,j J
nm nm ftm ·> Ί Li 1 P L j 1 P™ , and βζ are Lagrangian multipliers.
To solve (6) and to show its optimality, in this embodiment the Karush Kuhn Tucker (KKT) conditions are satisfied. These conditions are as follows:
1. Feasibility of the primal constraints as well as the multipliers, i.e.
2. The gradient of the Lagrangian (equation (6)) with respect to 5, and the gradient of the Lagrangian (equation (6)) with respect to p both become zero.
Differentiating the Lagrangian (equation (6)) with respect to 5, i.e. d-C/d s = 0, and rearranging for 5 gives the optimal power formula:
}-} d-C/d p = /1 _ Rm — Rm λ \ max min / 1 jj i i 1 min jj (ΩΛ>+Ο1η2 γ' (Watt/Hz) (7) ' .1-.1
Differentiating the Lagrangian (equation (6)) with respect to p, i.e.
P
0, and rearranging for
-22 gives:
j, j (1-C.-CJ log;
Ϋ (\- β ~ β )’ / 77V r max f'·' mm / JJ id id 1
_ 1*2(Ω„+Ο _ In 2 / .(1- Bm - Bm ) / / / V.·1 /-'max /-'mm / J,J id id
(8)
What will now be described with reference to Figure 3 is an embodiment 5 of determining a bit and power allocation for the TMPs/phantom channels which tends to achieve substantially maximum channel capacity. In this embodiment, this method is performed by the MPAD 1670. However, in other embodiments, bit and power allocation is performed by a different entity instead of or in addition to the MPAD 1670.
Figure 3 is a process flow chart showing certain steps of an embodiment of the bit and power allocation process.
In this embodiment, = 0. Thus, also β™„ = 0. However, in some id embodiments, Z?min may have a different, non-zero value. Also, in some embodiments, may have a different, non-zero value.
id
The process shown in Figure 3 and described in more detail below is described as being performed for the jth TMPs/phantom channel. It will be appreciated by those skilled in the art however, that the process shown in Figure 3 and described in more detail later below is, in practice, performed for more than one (and preferably, each) of the different TMPs/phantom channels, j=1,...k, such that maximum channel capacity on the k bundled TMPs tends to be achieved. Also, the process shown in Figure 3 and described in more detail below for each of the different TMPs/phantom channels j may be performed in parallel, partially in parallel, or in series.
At step s2, for each tone m, β™Ά and 77” . are initialised to zero, and pd id is initialised to one. That is to say:
-23^=1At step s4, for the jth channel, a value of ΩΛ7. is computed. In this embodiment, ΩΛ7. is computed by using equations (7) and (2), with the parameters initialised as in step s2. In particular, equation (7) is plugged into 5 equation (2) to give:
P ln2 + V A vm f > j,j J (9) where: M is the number of different tones; and
Δζ is a frequency spacing between adjacent tones.
In this embodiment, the value of Ω7 7. is computed using a measured value of /z7.7..
At step s6, for each tone m, a value for ηη is computed. In this embodiment, ηη is computed by using equation (7) and the value for Ω computed at step s4. In particular, equation (7) is set equal to pm (i.e. the transmission power mask for tone m), and the rearranged for ηη to give:
______j’j (In 2)(1+ ^.) (10)
At step s8, for each tone m, a value for βΣ is computed. In this j’j embodiment, βΣ is computed using equation (7) and the equation j’j i°g2(i+<X·) ^max In particular, equation (7) is plugged into 1°§2(l+ si,j7hj) = ^max and rearranged for βΣ to give:
-24Bm =1 max
Υΐ,>
(11)
At step s10, for each tone m, a value for is computed. In this embodiment, is computed by using equation (4) and the values for Ω;d,
77”, and βΣ computed at steps s4, s6, and s8 respectively.
At step s12, for each tone m, it is determined whether or not the calculated value of for that tone m satisfies a first criterion. In this embodiment, the first criterion is:
i°g2(i + %r,)>o (12)
At step s14, for each tone m for which 5% satisfies the first criterion (i.e.
that satisfies log2(l + s%/%)>() in this embodiment), the values for 5% and of that tone are maintained.
At step s15, for each tone m for which 5% fails to satisfy the first criterion (i.e. for which, in this embodiment, log2(l + 5%/%)<0 (and in practice =0)), the values for 5% and of that tone are zeroed. That is to say, step s15 comprises setting 5% = = 0 for each tone m for which log2(l + 5%/%)<0.
At step s16, for each tone m for which 5% satisfies the first criterion (i.e. that satisfies log2(l + 5%/%)>0 in this embodiment), it is determined whether or the calculated value of 5% for that tone m satisfies a second criterion. In this embodiment, the second criterion is:
i°g2(i+Y-X)^ (13)
-25If, at step s16, it is determined that all of the s/ values which satisfy the first criterion (equation (12)) also satisfy the second criterion (equation (13)), then the method proceeds to step s22. Step s22 will be described in more detail later below, after a description of method steps s18 to s20.
However, if, at step s16, it is determined that not all of the sP values which satisfy the first criterion (equation (12)) also satisfy the second criterion (equation (13)), then the method proceeds to step s18.
At step s18, it is determined whether or not the current values of s/ satisfy a third criterion. In this embodiment, the third criterion is:
M
Figure GB2561005A_D0024
m—l
If, at step s18, it is determined that the third criterion (equation (14)) is satisfied, then the method proceeds to step s22. Step s22 will be described in more detail later below, after a description of method steps s20.
In some embodiments, equation (14) is deemed to be satisfied if
M a X 1 m
2-, sjJ is within a predetermined tolerance range of PT, for example within m=l
10’3 or 10’4 of PT.
If, at step s18, it is determined that the third criterion (equation (14)) is
M not satisfied (i.e. it is determined instead that > pt \ then the method m—l proceeds to step s20.
At step s20, for each tone m, the value of Ω is increased. In some embodiments, for one or more of the tones m, Ω is increased by ί(Ω). By way of example, ί(Ω) may be equal to about Ω/20, Ω/10, or Ω/5. In some embodiments, Ω is increased by a predetermined value. In some embodiments, for each tone m, the value of Ω is decreased instead of being increased.
-26After step s20, the method proceeds back to step s6, at which point the values for 77A are updated, in turn leading to revised/updated values for s^ and p^j Thus, the process of Figure 3 is an iterative process that iterates until either: 1) it is determined at step s16 that every tone m which did satisfy the first 5 criterion also satisfies the second; or 2) it is determined at step s18 that the third criterion is satisfied.
Returning now the case where either 1) it is determined at step s16 that every tone m which did satisfy the first criterion (equation (12)) also satisfies the second criterion (equation (13)); or 2) it is determined at step s18 that the third criterion (equation (14)) is satisfied, the method proceeds to step s22.
At step s22, the iterative process of steps s6 to s20 is stopped. Also, each tone m (m = 1,...,M) for the jth TMP/phantom channel is allocated its respective current power value . It is worth noting that some tones may be not allocated any power, i.e. due to and for those tones having been set to zero.
At step s24, the AN 16 transmits signals in accordance with power values allocated at step s22. For example, for each tone m, the AN 16 may transmit a signal having transmission power at tone m along the jth TMP/phantom channel.
As noted earlier above, the process shown in Figure 3 and described in more detail above may be, in practice, performed for each of the different channels, j=1,...k. Thus, at step s24, for one or more of the tones m, and for one or more of the j TMPs and/or phantom channels, the AN 16 may transmit a signal having transmission power at tone m along the jth channel. For example, at step s24, for each tone m (m = 1, ..., M), and for each channel j (j=1,...,k), the AN 16 may transmit a signal having transmission power at that tone m along the that channel.
Thus, an embodiment of the bit and power allocation process is provided.
-27Advantageously, the method shown in Figure 3 and described in more detail above tends to ensure that multiple paths between the AN 16 and the CPE modems 51, 52, 53 are jointly optimised. Thus, the overall channel capacity tends to be optimised.
A further advantage provided by the method shown in Figure 3 and described in more detail above is that convergence to an optimal solution for the objective function (equation (1)) tends to be faster compared to conventional “water-filling” algorithms. For example, use of above equation (9) for Ω tends to provide that the starting point for the iterative optimisation process begins closer to a solution compared to conventional techniques. In some embodiments, Ω may be bi-sectioned, which tends to ensure that the total power constraint is unviolated. For example, Ω\ can be bi-sectioned by a variable step size to ensure the algorithm iterates in one direction (filling the constraints rather decreasing). To ensure this, a scaling factor of <1 can be multiplied by Ω%, and then Ω% may be iteratively increased using, for example, the bi-section method, back-tacking or line-search until convergence. Thus, the time taken to find optimal bit and power allocation tends to be reduced.
What will now be described, with reference to Figure 4, is a processes that may be used in conjunction with (e.g. in parallel, partially in parallel, or in series) the embodiment shown in Figure 3 and described in more detail earlier above.
The process shown in Figure 4 and described in more detail later below may be used to initialise transmission of signals between the AN 16 and the CPE modems 51,52, 53, e.g. while the process of Figure 3 is being performed.
The process shown in Figure 4 and described in more detail later below tends to produce a suboptimal solution for the objective function (equation (1)), but tends to provide a solution in a shorter time than the process shown in Figure 3 and described above. Thus, in some embodiments, transmission of signals between the AN 16 and the CPE modems 51,52, 53 may be initially performed using values calculated using the process shown in Figure 4 and described in more detail later below, before switching to the optimal values calculated using
-28than the embodiment of Figure 3, once those optimal values have been calculated.
Figure 4 is a process flow chart showing certain steps of a further embodiment of a bit and power allocation process.
In this embodiment, b^ = 0. Thus, also β™„ = 0. However, in some j’j embodiments, b^ may have a different, non-zero value. Also, in some embodiments, βΐ may have a different, non-zero value. For instance, if j’j nm nm b < /’minthen ™n =1 ancl /^”7 =° forcing the power allocation to become zero.
The process shown in Figure 4 and described in more detail below is 10 described as being performed for the jth TMPs/phantom channel. It will be appreciated by those skilled in the art however, that the process shown in Figure 4 and described in more detail later below is, in practice, performed for more than one (and preferably, each) of the different TMPs/phantom channels, j=1,...k. Where the process shown in Figure 4 is performed for each of multiple different TMPs/phantom channels j, those processes may be performed in parallel, partially in parallel, or in series.
At step s30, the tone index m is initialised to 1, i.e. m=1.
At step s32, for tone m, βΣ and 7”, are initialised to zero, and /?”, is initialised to one. That is to say:
βΖ=η^ = θ jj J
Pl=^
At step s34, for tone m, a value of a first function, Z , is computed. In jj this embodiment, the first function is:
Λ” = /(/>/> J jj
-29In this embodiment, 2f is computed by using equation (7), with the jj parameters initialised as in step s32, and with set to pm. In particular, equation (7), with the parameters initialised as in step s32 and with sL set equal to pm is rearranged for Ω to give:
% =
7.7 (15) (In 2)
P 4
7/// m r
u2 jj
At step s36, for tone m, a value of a second function, 2” , is computed.
In this embodiment, the second function is:
The computed value of 2£ may be considered to be a second estimate jj of the parameter Ω. In this embodiment, λξ is computed by using equations jj (7) and (13), with the parameters initialised as in step s32. In particular, equation (7) with the parameters initialised as in step s32, is plugged into equation (13) and rearranged for Ω to give:
Figure GB2561005A_D0025
Figure GB2561005A_D0026
(16)
At step s38, for tone m, a value of a third function, 2” is computed. In jj this embodiment, the third function is:
< =max{2T }
7.7 7.7 7.7 (17)
However, in other embodiments the third function is a different function,
e.g. a different function of the first and second functions, 2/1 and 2” . For jj jj
-30/]ffl · r r^ffi λ ffi η example, the third function Λ may be Λ =min{zl ,Z2 } Or i, j id id id
X -meanW ,Z2 }.
id id id
At step s40, for tone m, a value for sX is computed. In this embodiment, s'”j is computed as follows:
(In 2)/ζ γΤ (18) id
At step s42, it is determined whether or not a value of sX has been computed for each tone m = 1,...,M.
If, at step s42, it is determined that a value of sH has not been computed for each tone m = 1,...,M, the method proceeds to step s44.
However, if, at step s42, it is determined that a value of sH has been computed for each tone m = 1,...,M, the method proceeds to step s46.
At step s44, the tone index m is incremented by 1, i.e. m = m+1.
After step s44, the methods proceeds back to step s32, thereby to determine a value of sH for the updated tone value.
Returning now to the case where, at step s42, it is determined that a value of sX has been computed for each tone m = 1,...,M, at step s46 it is determined whether or not the determined values for , m=1 ,.,.,Μ satisfy the third criterion (i.e. equation 14), which is described in more detail earlier above with reference to step s18 of Figure 3.
In this embodiment, at step s46, if it is determined that the third criterion (equation (14)) is satisfied, then the method proceeds to step s52. Step s52 will be described in more detail later below, after a description of method steps s48 and s50.
-31 However, if, at step s46, it is determined that the third criterion (equation
M (14)) is not satisfied (i.e. it is determined instead that > pt \ then the m—1 method proceeds to step s48.
At step s48, the value of m that gives m -jn min log.
m id J is determined. This determined value of m is denoted m.
In other words, the tone m that corresponds to the minimum signal-tonoise ratio (SNR) is determined.
At step s50, the power allocation factor corresponding to the determined 10 tone m is set equal to zero and/or the power allocated to the determined tone
-m _q m _q m is set equal to zero. In other words, Pjj — u and/or s — u.
After step s50, the method returns to step s46 whereat the third criterion (equation 14) is retested.
Returning now to the case where, at step s46, it is determined that the 15 third criterion (equation (14)) is satisfied, then at step s52, each tone m (m=1,...,M) for the jth TMP/phantom channel is allocated its respective current power value .
At step s54, the AN 16 transmits signals in accordance with power values allocated at step s52. For example, for each tone m, the AN 16 may transmit a signal having transmission power at tone m along the jth TMP/phantom channel.
As noted earlier above, the process shown in Figure 4 and described in more detail above may be, in practice, performed for each of the different TMPs/phantom channels, j=1,...k. Thus, at step s54, for one or more of the tones m, and for one or more of the j TMPs and/or phantom channels, the AN
-3216 may transmit a signal having transmission power 5% at tone m along the jth
TMP/phantom channel. For example, at step s54, for each tone m (m = 1, ..., M), and for each TMP and/or phantom channel j (j=1,...,k), the AN 16 may transmit a signal having transmission power 5% at tone m along the jth
TMP/phantom channel.
Thus, an embodiment of a further bit and power allocation process is provided.
Advantageously, the method shown in Figure 4 and described in more detail above tends to provide for rapid initialising of signal transmission between the AN 16 and the CPE modems 51, 52, 53. While in some cases, the signal powers determined using the process of Figure 4 may be sub-optimal compared to those determined by the process shown in Figure 3, the process of Figure 4 is nevertheless beneficial as it tends to be performable in relatively shorter time. Thus, the bit and power allocations determined using the process of Figure 4 may be implemented for signal transmission while the iterative process of Figure 3 is being performed, to allow signal transmission between the AN 16 and the CPE modems 51,52, 53 to begin earlier.
Furthermore, the method shown in Figure 4 and described in more detail above tends to provide a solution for the objective function (equation (1)) in shorter time relative to conventional “water-filling” algorithms.
In the method shown in Figure 4 and described in more detail above, bandwidth adjustment is performed to ensure that the ATP is satisfied, by gradually reducing the number of the allocated tones.
What will now be described, with reference to Figure 5, is a second 25 process that may be used in conjunction with (e.g. in parallel, partially in parallel, or in series) the embodiments shown in Figures 3 and 4 and described in more detail earlier above. In some embodiments, the process described in more detail later below with reference to Figure 5 is used in conjunction with (e.g. in parallel, partially in parallel, or in series) the process shown in Figure 4 and described in more detail earlier above.
-33The process shown in Figure 5 and described in more detail later below may be used to initialise transmission of signals between the AN 16 and the CPE modems 51,52, 53, e.g. while the process of Figure 3 is being performed. The process shown in Figure 5 and described in more detail later below tends to produce a suboptimal solution for the objective function (equation (1)), but tends to provide a solution in a shorter time than the embodiment of Figure 3. Thus, in some embodiments, transmission of signals between the AN 16 and the CPE modems 51,52, 53 may be initially performed using values calculated using the process shown in Figure 5 and described in more detail later below, before switching to the optimal values calculated using than the embodiment of Figure 3, once those optimal values have been calculated.
Figure 5 is a process flow chart showing certain steps of a further embodiment of a bit and power allocation process.
The process shown in Figure 5 and described in more detail below is described as being performed for the jth TMPs/phantom channel. It will be appreciated by those skilled in the art however, that the process shown in Figure 5 and described in more detail later below is, in practice, performed for more than one (and preferably, each) of the different TMPs/phantom channels, j=1,...k. Where the process shown in Figure 5 is performed for each of multiple different TMPs/phantom channels j, those processes may be performed in parallel, partially in parallel, or in series.
At step s60, the tone index m is initialised to 1, i.e. m=1.
At step s62, for tone m, a value of a power function, , is computed. In this embodiment, the power function, , is determined based on equation (13). In particular, sT in equation (13) is set to be equal to sT and then rearranged for ?T to give:
b, max
Figure GB2561005A_D0027
(19)
-34At step s64, for each tone m, a value for is computed. In this embodiment, 5% is computed as follows:
5,.=nun{pm,5,,} (20)
At step s66, it is determined whether or not a value of has been computed for each tone m = 1,...,M.
If, at step s66, it is determined that a value of 5% has not been computed for each tone m = 1,...,M, the method proceeds to step s68.
However, if, at step s66, it is determined that a value of 5% has been computed for each tone m = 1,...,M, the method proceeds to step s70.
At step s68, the tone index m is incremented by 1, i.e. m = m+1.
After step s68, the methods proceeds back to step s62, thereby to determine a value of 5% for the updated tone value.
Returning now to the case where, at step s66, it is determined that a value of 5% has been computed for each tone m = 1,...,M, at step s70 it is determined whether or not the determined values for 5% , m=1 ,.,.,Μ satisfy the third criterion (i.e. equation 14), which is described in more detail earlier above with reference to step s18 of Figure 3.
In this embodiment, at step s70, if it is determined that the third criterion (equation (14)) is satisfied, then the method proceeds to step s76. Step s76 will be described in more detail later below, after a description of method steps s72 and s74.
-35However, if, at step s70, it is determined that the third criterion (equation
M (14)) is not satisfied (i.e. it is determined instead that > pt \ then the m—1 method proceeds to step s72.
At step s72, the value of m that gives min log.
i m jn A + -j’j 'jj m
id J is determined. This determined value of m is denoted m.
In other words, the tone m that corresponds to the minimum signal-tonoise ratio (SNR) is determined.
At step s74, the power allocation factor corresponding to the determined 10 tone m is set equal to zero and/or the power allocated to the determined tone
-m _q m _q m is set equal to zero. In other words, Pjj — u and/or s — u.
After step s74, the method returns to step s70 whereat the third criterion (equation 14) is retested.
Returning now to the case where, at step s70, it is determined that the 15 third criterion (equation (14)) is satisfied, then at step s76, each tone m (m1,...,M) for the jth TMP/phantom channel is allocated its respective current power value sU.
At step s78, the AN 16 transmits signals in accordance with power values allocated at step s76. For example, for each tone m, the AN 16 may transmit a signal having transmission power at tone m along the jth TMP/phantom channel.
As noted earlier above, the process shown in Figure 5 and described in more detail above may be, in practice, performed for each of the different TMPs/phantom channels, j=1,...k. Thus, at step s78, for one or more of the tones m, and for one or more of the j TMPs and/or phantom channels, the AN
-3616 may transmit a signal having transmission power sT at tone m along the jth
TMP/phantom channel. For example, at step s78, for each tone m (m = 1, ..., M), and for each TMP and/or phantom channel j (j=1,...,k), the AN 16 may transmit a signal having transmission power sT at tone m along the jth
TMP/phantom channel.
Thus, a further embodiment of a bit and power allocation process is provided.
Advantageously, the method shown in Figure 5 and described in more detail above tends to provide for rapid initialising of signal transmission between the AN 16 and the CPE modems 51, 52, 53. While in some cases, the signal powers determined using the process of Figure 5 may be sub-optimal compared to those determined by the process shown in Figure 3 and/or the process shown in Figure 4, the process of Figure 5 is nevertheless beneficial as it tends to be performable in relatively shorter time. Thus, the bit and power allocations determined using the process of Figure 5 may be implemented in signal transmission while the process of Figure 3 (and/or the process of Figure 4) is being performed, to allow signal transmission between the AN 16 and the CPE modems 51,52, 53 to begin earlier.
Furthermore, the method shown in Figure 5 and described in more detail above tends to provide a solution for the objective function (equation (1)) in shorter time relative to conventional “water-filling” algorithms.
In the method shown in Figure 5 and described in more detail above, bandwidth adjustment is performed to ensure that the ATP is satisfied, by gradually reducing the number of the allocated tones.
The above described methods and apparatus advantageously tend to provide fast converging “water filling” algorithms for performing equalisation on communication channels. Advantageously, the solutions provided by the above described algorithms tend to shape the transmitted signals according to the channel response to improve data transmission, e.g. to maximise the delivered data. Also, the above described methods and apparatus tend to take into
-37account the maximum available power and the hardware limitations in transceiver design.
The above described methods and apparatus advantageously tend to provide improved use of power budget, and also match the power budget to channel behaviour.
Advantageously, it tends to be possible to tune the gap between the more optimal solution (provided by the process described above with reference to Figure 3) and the relatively suboptimal solutions (provided by the processes described above with reference to Figures 4 and 5) to meet the a specified performance and to account for system complexity design
Advantageously, it tends to be possible to implement the above described methods and apparatus for G.fast and XG.fast at all frequencies.
Advantageously, any complex functionality for implementing certain preferred embodiments of the invention can reside solely in the access network (e.g. at an AN or DSLAM, etc.) rather than requiring any special Customer Premises Equipment (CPE), in certain preferred embodiments of the invention.
It should be noted that certain of the process steps depicted in the flowcharts of Figures 3 to 5 and described above may be omitted or such process steps may be performed in differing order to that presented above and shown in Figures 3 to 5. Furthermore, although all the process steps have, for convenience and ease of understanding, been depicted as discrete temporallysequential steps, nevertheless some of the process steps may in fact be performed simultaneously or at least overlapping to some extent temporally.
It should be noted that the described embodiments are couched in terms of the downstream direction of data only (i.e. from an Access Node/DSLAM to Customer Premises Equipment (CPE) devices). However, in a practical implementation the transmitter of the above embodiments (e.g. the Access Node) also, naturally, functions as a receiver for upstream transmissions from the various CPE devices (which are also therefore in practice operating as transceivers rather than just receivers). Embodiments of the invention may operate in an entirely conventional manner in the upstream direction.
-38In the above embodiments, the DPU is connected to three user premises via respective TMP connections which connect between the AN within the DPU and respective CPE modems within the respective user premises. However, in other embodiments, the DPU is connected to a different number of user premises (e.g. more than three) via respective one or more TMP connections. In some embodiments, the DPU is connected to a different number of CPE modems via respective one or more TMP connections. In some embodiments, one or more user premises comprises multiple CPE modems.
In the above embodiments, the first criterion is:
log2(l + sX',)>0.
However, in other embodiments, the first criterion is a different criterion, or is an equivalent criterion expressed in a different way. By way of example, an alternative first criterion is:
where e, may be non zero. For example e, may be a positive value, e.g. a small value such as less than or equal to 10’2, less than or equal to 10’3, or less than or equal to 10’4. In some embodiments, e, is a constant value. In some embodiments, e1 is a variable that may be dependent on one or more parameters of the broadband deployment.
In the above embodiments, the second criterion is:
log2(l + ixJ<Aal
However, in other embodiments, the second criterion is a different criterion, or is an equivalent criterion expressed in a different way. By way of example, an alternative second criterion is:
log2 (l + ) < bam - ε2
-39where ε2 may be non zero. For example may be a positive value, e.g. a small value such as less than or equal to 10’2, less than or equal to 10’3, or less than or equal to 10'4. In some embodiments, ε2 is a constant value. In some embodiments, ε2 is a variable that may be dependent on one or more parameters of the broadband deployment.
In the above embodiments, the third criterion is:
M m=l
However, in other embodiments, the third criterion is a different criterion, or is an equivalent criterion expressed in a different way. By way of example, an alternative third criterion is:
M
Σ SJ5 - PT ~£3 m—l where ε3 may be non zero. For example ε3 may be a positive value, e.g. a small value such as less than or equal to 10’2, less than or equal to 10’3, or less than or equal to 10’4. In some embodiments, ε3 is a constant value. In some embodiments, ε3 is a variable that may be dependent on one or more parameters of the broadband deployment.

Claims (14)

1. A method of transmitting data from a transmitter device to one or more receiver devices, each of the one or more receiver devices being connected to the transmitter device via a respective wire connection, the transmitter device
5 being operable to transmit signals onto the wire connections over one or more different channels, the method comprising, for each of the one or more different channels:
determining a value of a first function, the first function being a function of a power mask for transmitting the data over the one or more different channels;
10 determining a value of a second function, the second function being a function of an upper bound for a channel capacity of the one or more channels;
determining a value of a third function, the third function being a function of the value of the first function and the value of the second function;
using the determined value of the third function, determining a
15 transmission power for transmitting data along that channel; and transmitting, by the transmitter device, data over that channel to one or more of the receiver devices, the data being transmitted at the transmission power determined for that channel.
20
2. The method according to claim 1, wherein, the first function is additionally a function of a gain of the one or more channels, the gain of a channel being a ratio of a power coupling coefficient to a noise level on that channel.
25
3. The method according to claim 2, wherein, the first function is A/1 , j-j where:
-41 7.7 (In 2)
Pm +
7.7 J where: j is a channel index;
pm is the power mask for transmitting the data over the one or more different channels; and
5 /N is the gain of the jth channels.
4. The method according to any of claims 1 to 3, wherein, the second function is additionally a function of a gain of the one or more channels, the gain of a channel being a ratio of a power coupling coefficient to a noise level on that
10 channel.
5. The method according to claim 4, wherein, the second function is Λ” , jj where:
2*“ In 2
15 where: j is a channel index;
bwx is the upper bound for the channel capacity of the one or more channels; and /N is the gain of the jth channel.
20
6. The method according to any of claims 1 to 5, wherein, the third function,
Λ” , is a function selected from the group of functions consisting of jj
-42 im _ r dm dm η dm _ · r dm dm η dm r dm dm η
Ζ, = max{z, ,/½ 1, A =111111(2, ,z2 }, anc| = mean\\ ,/½ },
7.7 7.7 7.7 7.7 7.7 7.7 7.7 7.7 7.7 where Λ” is the first function and Λ” is the second function.
jj jj
7. The method according to any of claims 1 to 6, wherein the step of 5 determining a transmission power for transmitting data over a channel comprises determining the transmission power as a function of the value of the third function and a gain of the one or more channels, the gain of a channel being a ratio of a power coupling coefficient to a noise level on that channel.
10
8. The method according to any of claims 1 to 7, wherein a transmission power, sF, is determined using:
J'J (In 2)/T jj where: j is a channel index;
Λ” is the third function; and jj
15 /A is the gain of the jth channel.
9. The method according to any of claims 1 to 8, wherein the one or more channels comprises one or more channel selected from the group of channels consisting of: a direct channel, an indirect channel, a channel provided by a
20 change over time of a potential difference between a pair of the wire connections, a phantom channel, a common mode channel.
10. The method according to any of claims 1 to 9, wherein:
-43an available spectrum for the transmission of the data over the one or more channels comprises a plurality of tones;
the steps of determining a value of a first function, determining a value of a second function, determining a value of a third function, and determining a
5 transmission power are performed for each tone, thereby to determine a transmission power for each tone and for each of one or more of the channels; and the step of transmitting comprises, for one or more of the plurality of tones and for one or more of the channels, transmitting, by the transmitter
10 device, data over that channel on that tone to one or more of the receiver devices, the data being transmitted at the transmission power determined for that channel and that tone.
11. A method according to any of claims 1 to 10, further comprising:
15 iteratively performing steps (i) to (iii) until, at step (iii), it is determined that one or more criteria are satisfied, thereby determining, for each of the one or more different channels, a new transmission power for transmitting data over that channel, wherein:
step (i) comprises determining a value of a fourth function, the
20 fourth function being a function of a maximum power for transmitting the data over the one or more different channels;
step (ii) comprises, using the determined value of the fourth function, determining, for each of the one or more different channels, a respective new transmission power for transmitting data along that
25 channel; and step (iii) comprises determining whether or not the one or more determined new transmission powers satisfy one or more criteria; and for each of the one or more channels, switching from transmitting data over that channel at the transmission power determined for that channel to
-44transmitting data over that channel at the new transmission power determined for that channel.
12. The method according to claim 11, wherein, for second and subsequent
5 iterations of steps (i) to (iii), the fourth function is determined at step (i) by modifying a value of the fourth function of the preceding iteration.
13. A transmitting device for transmitting data to one or more receiver devices, each of which is connected to the transmitter device via a respective
10 wire connection, the transmitter device being operable to transmit signals onto the wire connections over one or more different channels, the transmitting device configured to, for each of the one or more different channels:
determine a value of a first function, the first function being a function of a power mask for transmitting the data over the one or more different channels;
15 determine a value of a second function, the second function being a function of an upper bound for a channel capacity of the one or more channels;
determine a value of a third function, the third function being a function of the value of the first function and the value of the second function;
using the determined value of the third function, determine a
20 transmission power for transmitting data along that channel; and transmit data over that channel to one or more of the receiver devices, the data being transmitted at the transmission power determined for that channel.
25
14. A program or plurality of programs arranged such that when executed by a computer system or one or more processors it/they cause the computer system or the one or more processors to operate in accordance with the method of any of claims 1 to 12.
-4515. A machine readable storage medium storing a program or at least one of the plurality of programs according to claim 14.
Intellectual
Property
Office
Application No: GB1705283.8 Examiner: Mr Jonathan Richards
GB1705283.8A 2017-03-31 2017-03-31 Method and apparatus for transmitting signals over wire connections Expired - Fee Related GB2561005B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
GB1705283.8A GB2561005B (en) 2017-03-31 2017-03-31 Method and apparatus for transmitting signals over wire connections

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB1705283.8A GB2561005B (en) 2017-03-31 2017-03-31 Method and apparatus for transmitting signals over wire connections

Publications (3)

Publication Number Publication Date
GB201705283D0 GB201705283D0 (en) 2017-05-17
GB2561005A true GB2561005A (en) 2018-10-03
GB2561005B GB2561005B (en) 2020-08-19

Family

ID=58682785

Family Applications (1)

Application Number Title Priority Date Filing Date
GB1705283.8A Expired - Fee Related GB2561005B (en) 2017-03-31 2017-03-31 Method and apparatus for transmitting signals over wire connections

Country Status (1)

Country Link
GB (1) GB2561005B (en)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6292559B1 (en) * 1997-12-19 2001-09-18 Rice University Spectral optimization and joint signaling techniques with upstream/downstream separation for communication in the presence of crosstalk
US20010055332A1 (en) * 2000-02-17 2001-12-27 Sadjadpour Hamid R. Method and apparatus for minimizing near end cross talk due to discrete multi-tone transmission in cable binders
US20100067544A1 (en) * 2002-04-01 2010-03-18 At&T Intellectual Property I, L.P. Multiuser Allocation Method for Maximizing Transmission Capacity

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1492261B1 (en) * 2003-06-25 2007-09-26 Alcatel Lucent Power control method for remotely deployed communication service
CN101174855B (en) * 2006-11-01 2012-06-20 华为技术有限公司 Spectrum management method and apparatus

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6292559B1 (en) * 1997-12-19 2001-09-18 Rice University Spectral optimization and joint signaling techniques with upstream/downstream separation for communication in the presence of crosstalk
US20010055332A1 (en) * 2000-02-17 2001-12-27 Sadjadpour Hamid R. Method and apparatus for minimizing near end cross talk due to discrete multi-tone transmission in cable binders
US20100067544A1 (en) * 2002-04-01 2010-03-18 At&T Intellectual Property I, L.P. Multiuser Allocation Method for Maximizing Transmission Capacity

Also Published As

Publication number Publication date
GB201705283D0 (en) 2017-05-17
GB2561005B (en) 2020-08-19

Similar Documents

Publication Publication Date Title
EP3577888B1 (en) Method and apparatus for transmitting signals over a wire connection
US8270523B2 (en) Crosstalk control method and apparatus using a bandwidth-adaptive precoder interface
US7957477B2 (en) Systems and methods for MIMO precoding in an xDSL system
US10998933B2 (en) Method and apparatus for transmitting signals over wire connections
EP3707824B1 (en) Method and apparatus for transmitting data in a communication system
JP5498585B2 (en) Crosstalk control method and crosstalk control apparatus using bandwidth adaptive precoder interface
GB2561010A (en) Method and apparatus for transmitting signals over wire connections
EP3577775B1 (en) Method and apparatus for transmitting signals over wire connections
EP3577889B1 (en) Method and apparatus for transmitting signals over wire connections
GB2561005A (en) Method and apparatus for transmitting signals over wire connections
GB2561007A (en) Method and apparatus for transmitting signals over wire connections
WO2018178188A1 (en) Method and apparatus for operating communication system
US11005527B2 (en) Method and apparatus for transmitting signals over wire connections
GB2561008A (en) Method and apparatus for operating communication system
GB2569991A (en) Method and apparatus for transmitting data in a communication system

Legal Events

Date Code Title Description
PCNP Patent ceased through non-payment of renewal fee

Effective date: 20220331