WO2011138611A2 - Cable network device - Google Patents

Cable network device Download PDF

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Publication number
WO2011138611A2
WO2011138611A2 PCT/GB2011/050876 GB2011050876W WO2011138611A2 WO 2011138611 A2 WO2011138611 A2 WO 2011138611A2 GB 2011050876 W GB2011050876 W GB 2011050876W WO 2011138611 A2 WO2011138611 A2 WO 2011138611A2
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WO
WIPO (PCT)
Prior art keywords
input
output
network device
electrical communication
cable network
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.)
Ceased
Application number
PCT/GB2011/050876
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French (fr)
Other versions
WO2011138611A3 (en
Inventor
Dirk Jan Ariesen
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.)
Technetix Group Ltd
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Technetix Group Ltd
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Application filed by Technetix Group Ltd filed Critical Technetix Group Ltd
Priority to EP11723597.8A priority Critical patent/EP2567542B1/en
Publication of WO2011138611A2 publication Critical patent/WO2011138611A2/en
Publication of WO2011138611A3 publication Critical patent/WO2011138611A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N7/00Television systems
    • H04N7/16Analogue secrecy systems; Analogue subscription systems
    • H04N7/173Analogue secrecy systems; Analogue subscription systems with two-way working, e.g. subscriber sending a programme selection signal
    • H04N7/17309Transmission or handling of upstream communications
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B3/00Line transmission systems
    • H04B3/02Details
    • H04B3/46Monitoring; Testing
    • H04B3/48Testing attenuation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B3/00Line transmission systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H20/00Arrangements for broadcast or for distribution combined with broadcast
    • H04H20/65Arrangements characterised by transmission systems for broadcast
    • H04H20/76Wired systems
    • H04H20/77Wired systems using carrier waves
    • H04H20/78CATV [Community Antenna Television] systems
    • H04H20/79CATV [Community Antenna Television] systems using downlink of the CATV systems, e.g. audio broadcast via CATV network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04HBROADCAST COMMUNICATION
    • H04H60/00Arrangements for broadcast applications with a direct linking to broadcast information or broadcast space-time; Broadcast-related systems
    • H04H60/76Arrangements characterised by transmission systems other than for broadcast, e.g. the Internet
    • H04H60/81Arrangements characterised by transmission systems other than for broadcast, e.g. the Internet characterised by the transmission system itself
    • H04H60/93Wired transmission systems
    • H04H60/96CATV systems
    • H04H60/97CATV systems using uplink of the CATV systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N7/00Television systems
    • H04N7/10Adaptations for transmission by electrical cable
    • H04N7/102Circuits therefor, e.g. noise reducers, equalisers, amplifiers
    • H04N7/104Switchers or splitters

Definitions

  • This invention relates to a cable network device for use in cable television and data transmission networks.
  • the signal from the network provider is split many times to ensure each user is able to connect into the provider's network, with the last divider or tap unit connecting to a small number of users via individual taps.
  • Signal losses vary between different users, in part due to the length of cable connecting them to the tap unit, and these losses need to be compensated for so that each user has a similar quality signal.
  • different taps within a unit are associated with different attenuation levels but there are often issues with matching attenuations for signals are being sent to the user (downstream) or sent from the user (upstream) and with ensuring that both downstream and upstream signal quality is the same for each user.
  • a cable network device comprising an input connected to a plurality of outputs, connectable to equipment associated with a plurality of end users, wherein the input is connected to each output by first and second electrical communication paths, such that there are a plurality of first and second electrical communication paths, where downstream signals from the input to each output pass along the first electrical communication path and upstream signals from each output to the input pass along the second electrical communication path, and each second electrical communication path has the same attenuation as the other second electrical communication paths.
  • the attenuation level will vary so that the overall downstream attenuation for each user associated with an output port is kept constant when taking into account the attenuation from within the device and from cables attaching equipment to the outputs.
  • the attenuation along that path within the device will be equal to the attenuation demonstrated by all other second paths and similarly the overall upstream attenuation from the equipment to the input will be equal for each equipment user.
  • the downstream attenuation for all users is equal and also the upstream attenuation for all users is equal.
  • the upstream signals are low frequency, generally in the range 5 to 8MHz, and more preferably 5 to 65MHz, with the downstream signals having a higher frequency, typically in the range 80.6MHz up to 862MHz and beyond.
  • the input is connected to a plurality of tap elements, each tap element in communication with one output.
  • the tap elements allow the attenuation of the signal path to be adjusted.
  • Each tap element may communicate with an adjoining tap unit and one output such that the tap elements are arranged as a cascade with each output connected to one tap unit.
  • the input may be connected to a first filter or first filter means to separate electrical signals into high and low frequency bands, and so separate downstream signals to travel along the first electrical communication path.
  • the filter means may of preference be a dip lex filter. Depending on the direction of travel of electrical signals, the filter means will either separate or combine high and low frequency signal components.
  • Each output is desirably connected to a second filter or second filter means to separate out low frequency upstream signals passing from the output to the input so that they travel along the second electrical communication path.
  • the second filter means may of preference be a diplex filter.
  • the input may be connected by way of a splitter means or splitter to each second filter means.
  • the single splitter means combines the upstream signals from each output into one combined signal received by the input for transference to a network provider.
  • the input may be connected by way of a plurality of splitter means to each second filter means, each splitter means communicating with an adjoining splitter means and one output.
  • each splitter means communicating with an adjoining splitter means and one output.
  • the plurality of splitter means will split the downstream signal into separate signals for each user.
  • Figure 1 is a schematic diagram to illustrate downstream signal losses for a number of users within a cable network
  • Figure 2 is a schematic diagram to illustrate upstream signal losses
  • Figure 3 is a schematic diagram of a first embodiment of a cable network device in accordance with the present invention.
  • Figure 4 is a schematic diagram of a second embodiment.
  • FIG. 1 shows a schematic diagram of a last divider or tap in a CATV network 10 and illustrates the path of downstream signals from the network provider 10 to the user 20.
  • Tap unit 12 increases the isolation between the input 14 and output ports 16, 16', 16" and 16" ' and allows one to vary levels of attenuation for different ports. From this divider device 12, user homes 20, 20', 20" and 20" ', and consequently the appropriate user equipment in those homes, are connected to the external network 10 via coaxial cables 22, 22', 22" and 22" '.
  • each coaxial cable 22 varies depending on the length of the cable. The longer the cable, the greater the attenuation.
  • the insertion loss for each output port and the cable attenuation is shown by way of example. To offer every home the same level of attenuation and so ensure that signal quality is generally the same for each user, the longest cables will be connected to the taps with the lowest insertion loss. Thus longest cable 22 is connected to port 16 which has the lowest insertion loss of lOdB.
  • the total insertion loss from the input of the tap unit to every home is equalised and in this illustrative example is 26dB.
  • FIG. 3 A block diagram of network device 24 in accordance with the present invention is shown in Figure 3.
  • the device behaves as a tap unit in the downstream frequency area and as a splitter with equal attenuation for the upstream signals.
  • the connected homes have equal attenuation levels on the downstream and also equal levels on the upstream. This gives a serious improvement on the noise-floor of the individual connections.
  • diplex filter 26 is connected to input 14 and separates the high frequency downstream signals from the low frequency upstream signals.
  • the high frequency signal path is connected to taps 28, 28', 28" and 28 ' "which are in turn connected to the high pass side of diplex filters 30, 30', 30", and 30" ' associated with each output port 16, 16', 16" and 16" '.
  • the low pass side of filter 26 is connected to splitter 32 which in turn is connected to the low pass side of each output diplex filter 30, 30', 30", and 30" '. In this way, paths for the high and low frequency signals are separated.
  • downstream signals are received at input 14 and pass through the high frequency side of filter 26 to reach taps 28, 28', 28" and 28" 'and so pass to output diplex filters 30, 30', 30", and 30" '. From these diplex filters, the signal goes to output ports 16, 16', 16" and 16"' and is received by individual users.
  • These downstream signals have different attenuation levels as provided by circuitry associated with the tap ports so as to overcome the different cable lengths associated with each user.
  • the upstream signal received from each user is received from outputs 16, 16', 16" and 16" ' proceeds through the low frequency side of diplex filters 30, 30', 30" and 30" ' to splitter 32 which combines the upstream signals from all users.
  • the combined signal is passed to the low frequency side of diplex filter 26 connected to input 14, and sent from input 14 to the network provider 10.
  • the present invention can also be used to create level optimisation and so improve the noise level of tap banks. This is particularly useful with the implementation of Docsis 3.0 (a telecommunications standard for data transfer) and channel banding where the level of the upstream signals are reduced. These reductions cause signal level issues from homes to the input of a tapbank. As explained previously, the upstream signal is not so affected by cable loss and as such, not by the cable length. Therefore this will create attenuation differences between the homes and the input of the tap bank. To overcome that problem, different steps (small) on the splitters are preferable. The embodiment of Figure 4 allows one to address both these issues, creating small level steps and reducing the total loss.
  • Docsis 3.0 a telecommunications standard for data transfer
  • downstream and upstream signals are separated within the device by use of a dip lex filter 26 connected to input 14 and output diplex filters 30, 30', 30", 30'", 30"", 30 v connected to six outputs 16, 16', 16", 16"', 16"", 16 v .
  • the downstream path follows a cascade of splitters. One port of each splitter is connected to the next splitter while the other port goes to a main splitter 41 via the output diplex filter.
  • the upstream signal from the main splitters 41, 4 ⁇ , 41", 4 ⁇ ", 41"", 4 is first split from the downstream signal by each output diplex filter.
  • the upstream signal follows a cascade of taps until all upstream signals are combined in a common signal.
  • the upstream paths between the low frequency side of diplex filters 26 and 30, 30', 30", 30"', 30"", 30 v are connected to taps 42, 44, 46, 48 and 50 such that each upstream signal in turn passes to a tap where it joins with another upstream signal from another output until at final tap 42 all upstream signals are carried together in a common signal ready to enter diplexer 26 and pass upstream from input 14 to the service provider.
  • each upstream signal in turn is fed into a preceding signal until all upstream signals are carried together.
  • tap 42 can be set at 2dB, tap 44 at 4dB, tap 46 at 6dB, tap 48 at 8dB and tap 50 at lOdB.
  • the tap values are chosen to have the wanted differences between the ports while the total insertion loss is as low as possible.
  • the total insertion loss of the upstream signal is much lower than for conventional tap units, with the added noise optimized and the total loss much lower.
  • the downstream signal is split using a plurality of cascaded splitters 52, 54, 56, 58, 60 to create 4dB level steps.
  • One output from each splitter is connected to the high pass side of an associated output filter and the second output is connected to the input of a successive splitter until the downstream signal is split into substantially equal components for each output.
  • the attenuation levels in to out for downstream signals will be 15dB for port 16, 19dB for port 16', 23dB for port 16", 27dB for port 16"', 31dB for port 16"" and 31dB for port 16 v .
  • the 4dB steps compensate for the different cable lengths to the home with long cables mounted on ports with high levels and short cable on ports with low levels, as discussed previously. Total insertion loss from the input of the network device to every home can thus be equalized and by way of example will be set to 26dB.

Landscapes

  • Engineering & Computer Science (AREA)
  • Signal Processing (AREA)
  • Multimedia (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Two-Way Televisions, Distribution Of Moving Picture Or The Like (AREA)
  • Cable Transmission Systems, Equalization Of Radio And Reduction Of Echo (AREA)
  • Small-Scale Networks (AREA)

Abstract

There is provided a cable network device (24) comprising an input (14) connected to a plurality of outputs (16, 16', 16'' and 16'''), wherein the input (14) is connected to each output (16, 16', 16'' and 16''') by first and second electrical communication paths, where downstream signals from the input (14) to each output pass along the first electrical communication path and upstream signals from each output to the input (14) pass along the second electrical communication path, and each second electrical communication path has the same attenuation as the other second electrical communication paths. Input (14) is connected to a diplex filter (26) to separate electrical signals into high and low frequency bands and each output is connected to a second filter (30) to separate out upstream signals.

Description

Title: Cable Network Device Field of the invention
This invention relates to a cable network device for use in cable television and data transmission networks.
Background to the invention
In cable networks supplying a large number of users, the signal from the network provider is split many times to ensure each user is able to connect into the provider's network, with the last divider or tap unit connecting to a small number of users via individual taps. Signal losses vary between different users, in part due to the length of cable connecting them to the tap unit, and these losses need to be compensated for so that each user has a similar quality signal. To do this, different taps within a unit are associated with different attenuation levels but there are often issues with matching attenuations for signals are being sent to the user (downstream) or sent from the user (upstream) and with ensuring that both downstream and upstream signal quality is the same for each user.
Summary of the invention
In accordance with one aspect of the present invention there is provided a cable network device comprising an input connected to a plurality of outputs, connectable to equipment associated with a plurality of end users, wherein the input is connected to each output by first and second electrical communication paths, such that there are a plurality of first and second electrical communication paths, where downstream signals from the input to each output pass along the first electrical communication path and upstream signals from each output to the input pass along the second electrical communication path, and each second electrical communication path has the same attenuation as the other second electrical communication paths.
For each first electrical communication path or downstream path, typically the attenuation level will vary so that the overall downstream attenuation for each user associated with an output port is kept constant when taking into account the attenuation from within the device and from cables attaching equipment to the outputs. For each second electrical communication path or upstream path, the attenuation along that path within the device will be equal to the attenuation demonstrated by all other second paths and similarly the overall upstream attenuation from the equipment to the input will be equal for each equipment user. Thus with such a device with separated downstream and upstream paths within the device the downstream attenuation for all users is equal and also the upstream attenuation for all users is equal.
Typically the upstream signals are low frequency, generally in the range 5 to 8MHz, and more preferably 5 to 65MHz, with the downstream signals having a higher frequency, typically in the range 80.6MHz up to 862MHz and beyond.
Preferably the input is connected to a plurality of tap elements, each tap element in communication with one output. The tap elements allow the attenuation of the signal path to be adjusted. Each tap element may communicate with an adjoining tap unit and one output such that the tap elements are arranged as a cascade with each output connected to one tap unit.
The input may be connected to a first filter or first filter means to separate electrical signals into high and low frequency bands, and so separate downstream signals to travel along the first electrical communication path. The filter means may of preference be a dip lex filter. Depending on the direction of travel of electrical signals, the filter means will either separate or combine high and low frequency signal components.
Each output is desirably connected to a second filter or second filter means to separate out low frequency upstream signals passing from the output to the input so that they travel along the second electrical communication path. Again the second filter means may of preference be a diplex filter.
The input may be connected by way of a splitter means or splitter to each second filter means. The single splitter means combines the upstream signals from each output into one combined signal received by the input for transference to a network provider. By having such a direct connection, with the upstream signal bypassing the tap elements, and so separated from the downstream signal, the upstream low frequency signal follows a separate electrical path to the low frequency signal and reaches the input without being routed through the tap elements.
Alternatively the input may be connected by way of a plurality of splitter means to each second filter means, each splitter means communicating with an adjoining splitter means and one output. In this arrangement, the plurality of splitter means will split the downstream signal into separate signals for each user.
The invention will now be described, by way of example, with reference to the accompanying drawings, in which:
Figure 1 is a schematic diagram to illustrate downstream signal losses for a number of users within a cable network;
Figure 2 is a schematic diagram to illustrate upstream signal losses;
Figure 3 is a schematic diagram of a first embodiment of a cable network device in accordance with the present invention; and
Figure 4 is a schematic diagram of a second embodiment.
Description
Where a cable television (CATV) or other data and information provider supplies a large number of premises with data, the signal path must be split many times to ensure each user is able to connect into the provider's network. Figure 1 shows a schematic diagram of a last divider or tap in a CATV network 10 and illustrates the path of downstream signals from the network provider 10 to the user 20. Tap unit 12 increases the isolation between the input 14 and output ports 16, 16', 16" and 16" ' and allows one to vary levels of attenuation for different ports. From this divider device 12, user homes 20, 20', 20" and 20" ', and consequently the appropriate user equipment in those homes, are connected to the external network 10 via coaxial cables 22, 22', 22" and 22" '. The attenuation of each coaxial cable 22 varies depending on the length of the cable. The longer the cable, the greater the attenuation. The insertion loss for each output port and the cable attenuation is shown by way of example. To offer every home the same level of attenuation and so ensure that signal quality is generally the same for each user, the longest cables will be connected to the taps with the lowest insertion loss. Thus longest cable 22 is connected to port 16 which has the lowest insertion loss of lOdB. The total insertion loss from the input of the tap unit to every home is equalised and in this illustrative example is 26dB.
For upstream signals passing from user 20 to network provider 10, different losses are seen, see Figure 2. The attenuation from cables 22, 22', 22" and 22' " for the lower frequency upstream signals is not as much as for the higher frequency downstream signals. Therefore the attenuation levels arriving at tap ports 16, 16', 16" and 16" 'are almost of equal value. As these upstream signals pass through tap unit 12, the attenuation within the tap is added to the attenuation of the signal received from the user 20. This results in different attenuation levels for the upstream signals. Thus the insertion loss from home 20 to the input of the tap for the upstream is 16dB, for home 20' is 18dB, home 20" is 20dB and home 20"' is 22dB. This means a level inequality of 6dB which has a serious impact on the ingress/noise levels on the upstream.
One way to overcome this issue for the upstream signals is to use a splitter with equal attenuation for each port, however this then means the downstream attenuation levels vary which is not correct for the downstream.
A block diagram of network device 24 in accordance with the present invention is shown in Figure 3. The device behaves as a tap unit in the downstream frequency area and as a splitter with equal attenuation for the upstream signals. The connected homes have equal attenuation levels on the downstream and also equal levels on the upstream. This gives a serious improvement on the noise-floor of the individual connections.
Within the device 24, diplex filter 26 is connected to input 14 and separates the high frequency downstream signals from the low frequency upstream signals. The high frequency signal path is connected to taps 28, 28', 28" and 28 ' "which are in turn connected to the high pass side of diplex filters 30, 30', 30", and 30" ' associated with each output port 16, 16', 16" and 16" '. The low pass side of filter 26 is connected to splitter 32 which in turn is connected to the low pass side of each output diplex filter 30, 30', 30", and 30" '. In this way, paths for the high and low frequency signals are separated.
In use within a cable/data network, the downstream signals are received at input 14 and pass through the high frequency side of filter 26 to reach taps 28, 28', 28" and 28" 'and so pass to output diplex filters 30, 30', 30", and 30" '. From these diplex filters, the signal goes to output ports 16, 16', 16" and 16"' and is received by individual users. These downstream signals have different attenuation levels as provided by circuitry associated with the tap ports so as to overcome the different cable lengths associated with each user.
The upstream signal received from each user is received from outputs 16, 16', 16" and 16" ' proceeds through the low frequency side of diplex filters 30, 30', 30" and 30" ' to splitter 32 which combines the upstream signals from all users. The combined signal is passed to the low frequency side of diplex filter 26 connected to input 14, and sent from input 14 to the network provider 10. By separating the upstream signals from the downstream signals, and routing the upstream signals separately, one can avoid adding unequal losses to the upstream signal and ensure that the losses upstream are substantially equal for all users. By continuing to route the downstream signal through tap elements, the downstream attenuation can be adjusted to compensate for cable length and other factors and ensure that the downstream attenuation for all users is also substantially identical. The device 24 thus provides for optimal downstream and upstream attenuation.
The present invention can also be used to create level optimisation and so improve the noise level of tap banks. This is particularly useful with the implementation of Docsis 3.0 (a telecommunications standard for data transfer) and channel banding where the level of the upstream signals are reduced. These reductions cause signal level issues from homes to the input of a tapbank. As explained previously, the upstream signal is not so affected by cable loss and as such, not by the cable length. Therefore this will create attenuation differences between the homes and the input of the tap bank. To overcome that problem, different steps (small) on the splitters are preferable. The embodiment of Figure 4 allows one to address both these issues, creating small level steps and reducing the total loss.
In the network device 40 of Figure 4, again the downstream and upstream signals are separated within the device by use of a dip lex filter 26 connected to input 14 and output diplex filters 30, 30', 30", 30'", 30"", 30v connected to six outputs 16, 16', 16", 16"', 16"", 16v. The downstream path follows a cascade of splitters. One port of each splitter is connected to the next splitter while the other port goes to a main splitter 41 via the output diplex filter.
The upstream signal from the main splitters 41, 4 Γ, 41", 4Γ", 41"", 4 is first split from the downstream signal by each output diplex filter. The upstream signal follows a cascade of taps until all upstream signals are combined in a common signal. In this embodiment the upstream paths between the low frequency side of diplex filters 26 and 30, 30', 30", 30"', 30"", 30v are connected to taps 42, 44, 46, 48 and 50 such that each upstream signal in turn passes to a tap where it joins with another upstream signal from another output until at final tap 42 all upstream signals are carried together in a common signal ready to enter diplexer 26 and pass upstream from input 14 to the service provider. Thus each upstream signal in turn is fed into a preceding signal until all upstream signals are carried together.
Each tap has losses from in to out and so the tap levels are adjusted to ensure the attenuation for each upstream signal is the same. Thus by way of example, tap 42 can be set at 2dB, tap 44 at 4dB, tap 46 at 6dB, tap 48 at 8dB and tap 50 at lOdB. The tap values are chosen to have the wanted differences between the ports while the total insertion loss is as low as possible. The total insertion loss of the upstream signal is much lower than for conventional tap units, with the added noise optimized and the total loss much lower.
For the downstream path from the high pass side of filter 26 to output filters 30, 30', 30", 30"', 30"", 30v, the downstream signal is split using a plurality of cascaded splitters 52, 54, 56, 58, 60 to create 4dB level steps. One output from each splitter is connected to the high pass side of an associated output filter and the second output is connected to the input of a successive splitter until the downstream signal is split into substantially equal components for each output. If one has six output ports as shown, and of course any number of output ports can be included, the attenuation levels in to out for downstream signals will be 15dB for port 16, 19dB for port 16', 23dB for port 16", 27dB for port 16"', 31dB for port 16"" and 31dB for port 16v. The 4dB steps compensate for the different cable lengths to the home with long cables mounted on ports with high levels and short cable on ports with low levels, as discussed previously. Total insertion loss from the input of the network device to every home can thus be equalized and by way of example will be set to 26dB.

Claims

Claims
1. A cable network device comprising an input connected to a plurality of outputs, wherein the input is connected to each output by first and second electrical communication paths, where downstream signals from the input to each output pass along the first electrical communication path and upstream signals from each output to the input pass along the second electrical communication path, with each second electrical communication path having the same attenuation as the other second electrical communication paths.
2. A cable network device according to claim 1, wherein the input is connected to a plurality of tap elements, each tap element in communication with one output.
3. A cable network device according to claim 2, wherein the tap elements each communicate with an adjoining tap unit and one output.
4. A cable network device according to any one of the preceding claims, wherein the input is connected to a first filter means for separating electrical signals into high and low frequency bands.
5. A cable network device according to any of the preceding claims, wherein each output is connected to a second filter means to separate out upstream signals.
6. A cable network device according to claim 5, wherein the input is connected by way of a splitter means to each second filter means.
7. A cable network device according to claim 5, wherein the input is connected by way of a plurality of splitter means to each second filter means, each splitter means communicating with an adjoining splitter means and one output.
8. A cable network device according to any of the preceding claims, wherein the first and second electrical communication paths are separated.
9. A cable/data network incorporating one or more cable network devices in accordance with any of claims 1 to 8.
PCT/GB2011/050876 2010-05-05 2011-05-05 Cable network device Ceased WO2011138611A2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
EP11723597.8A EP2567542B1 (en) 2010-05-05 2011-05-05 Cable network device

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GBGB1007457.3A GB201007457D0 (en) 2010-05-05 2010-05-05 Cable network device
GB1007457.3 2010-05-05

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WO2011138611A3 WO2011138611A3 (en) 2012-06-07

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Publication number Publication date
GB201107455D0 (en) 2011-06-15
EP2567542A2 (en) 2013-03-13
WO2011138611A3 (en) 2012-06-07
TW201212562A (en) 2012-03-16
GB2480150B (en) 2016-01-06
GB201007457D0 (en) 2010-06-16
GB2480150A (en) 2011-11-09
EP2567542B1 (en) 2016-08-03

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