Local area network of serial intelligent cells

Information

  • Patent Grant
  • 8270430
  • Patent Number
    8,270,430
  • Date Filed
    Monday, November 6, 2006
    17 years ago
  • Date Issued
    Tuesday, September 18, 2012
    11 years ago
Abstract
A device for coupling signals between first and second coaxial cables, the first coaxial cable being connected to carry a first bi-directional digital data signal in a first digital data frequency band, and the second coaxial cable being connected to carry a second bi-directional digital data signal in a second digital data frequency band, and each of the coaxial cables being connected to carry, multiplexed with the respective digital data signal, an analog video signal in an analog video signal frequency band distinct from each of the first and second digital data frequency bands.
Description
FIELD AND BACKGROUND OF THE INVENTION

The present invention relates to local area networks and, more particularly, to local area network topologies based on serial intelligent cells.


Bus Topology


Most prior art local area networks (LAN) use a bus topology as shown by example in FIG. 1. A communication medium 102 is based on two conductors (usually twisted pair or coaxial cable), to which data terminal equipment (DTE) units 104, 106, 108, 110, and 112 are connected, via respective network adapters 114, 116, 118, 120, and 122. A network adapter can be stand-alone or housed within the respective DTE.


This prior art bus topology suffers from the following drawbacks:


1. From the point of view of data communication, the medium can vary significantly from one installation to another, and hence proper adaptation to the medium cannot always be obtained.


2. The bus topology is not optimal for communication, and hence:


a) the maximum length of the medium is limited;


b) the maximum number of units which may be connected to the bus is limited;


c) complex circuitry is involved in the transceiver in the network adapter;


d) the data rate is limited.


3. Terminators are usually required at the ends of the medium, thus complicating the installation.


4. Only one DTE can transmit at any given time on the bus, and all other are restricted to be listeners.


5. Complex arbitration techniques are needed to determine which DTE is able to transmit on the bus.


6. In case of short circuit in the bus, the whole bus malfunctions, and it is hard to locate the short circuit.


7. Addresses should be associated independently with any network adapter, and this is difficult to attain with bus topology.


Star Topology


A number of prior art network devices and interconnections summarized below utilize star topology.


The multiplexer is a common item of equipment used in communication, both for local area networks and wide-area networks (WAN's). It is used in order to provide access to a data communications backbone, or in order to allow sharing of bandwidth between multiple stations. As shown in FIG. 2, one side of a multiplexer 202 is usually connected to a single high data rate connection 204 (“highway”), but several such connections can also be used. The other side of multiplexer 202 has multiple low data rate connections 206, 208, 210, 212, and 214. The ellipsis . . . indicates that additional connections can be made. Each low data rate connection uses part of the bandwidth offered by the high data rate connection. These low data rate connections can be of the same type or different types, and can have different or identical data rates. The multiplexing technique most commonly used is time-domain multiplexing (TDM). However, frequency-domain multiplexing (FDM) is also used.


A popular multiplexer in use is the voice multiplexer, shown in FIG. 3. A pulse-code modulation (PCM) bus 304 handling 2.048 megabits per second, containing 30 channels of 64 kilobits per second is connected to one side of a PABX/PBX 302, and up to 30 telephone interfaces 308, 312, and 316 are connected to the other side via connections 306, 310, and 314. The ellipsis . . . indicates that additional connections can be made. In this configuration, each channel in the PCM bus can be switched or be permanently dedicated to a specific telephone line. An example of such system is disclosed in U.S. Pat. No. 3,924,077 to Blakeslee.


Similarly a small private branch exchange (PABX/PBX), as shown in FIG. 4, is widely used (usually in an office or business environment) where several outside lines 403, 404, and 405 are connected to one side of a PABX/PBX 402, and multiple telephones 408, 412, and 416 are connected to the other side via lines 406, 410, and 414, respectively. The ellipsis . . . indicates that additional connections can be made. The PABX/PBX connects an outside line to a requesting or requested telephone, and allows connection between telephones in the premises.


In the configurations described above, star topology is used in order to connect to the units to the multiplexer, which functions as the network hub. The disadvantages of star topology include the following:


1. A connection between each unit and the network hub is required, and the wiring required for this connection can involve a lengthy run.


Thus, when adding new unit, an additional, possibly lengthy, connection between the new unit and the network hub must be added.


2. No fault protection is provided: Any short circuit or open circuit will disrupt service to the affected units.


3. The multiplexer can impose extensive space and power requirements.


Computer Interfaces


Various interface standards have been established in order to allow interoperability between the PC (personal computer) or workstation and its various connected elements. These standards usually relate to both mechanical and electrical interfaces, and include industry standard architecture (ISA), extended industry standard architecture (EISA), Personal Computer Memory Card Industry Association (PCMCIA), intelligent drive electronics (IDE), small computer system interface (SCSI), and others. Each added hardware unit usually utilizes a specific software driver for interoperability with the specific platform. These protocols are applicable to small distances only, and allow units to be housed within or nearby the PC or workstation enclosures. For example, equipping a PC for video capture could involve a plug-in ISA card housed within the PC on the motherboard, a video camera connected to the card, and a software driver. This configuration does not allow remote video monitoring.


Relevant Prior Art


The use of the same wire pair or pairs for both power and data communication is well known, and is widely used in telecommunications, from “Plain Old Telephone Service” (“POTS”) to Integrated Services Digital Network (ISDN) and broadband services in the local-loop including other Digital Subscriber Line (xDSL) technologies. Such a concept is described, for example, in U.S. Pat. No. 4,825,349 to Marcel, describing using two pairs for such a scheme. A DC-to-DC converter for such DC feeding is described, for example, in U.S. Pat. No. 4,507,721 to Yamano et al.


The concept of power line communication (PLC) is also widely known. However, in most cases the connection is similar to a LAN environment, in which a single transmitter occupies the entire medium. Examples of such techniques include X-10 and the consumer electronics bus (CEBus, described in the EIA-600 standard). Much of this technology uses complex spread-spectrum techniques in order to accommodate problematic media (characterized by high amounts of noise and interference). Even with such improved technologies, however, the data rate obtained is relatively low.


Prior art in this field includes U.S. Pat. No. 5,684,826 to Ratner, U.S. Pat. No. 5,491,463 to Sargeant et al., U.S. Pat. No. 5,504,454 to Daggett et al., U.S. Pat. No. 5,351,272 to Abraham, U.S. Pat. No. 5,404,127 to Lee et al., U.S. Pat. No. 5,065,133 to Howard, U.S. Pat. No. 5,581,801 to Spriester et al., U.S. Pat. No. 4,772,870 to Reyes, and U.S. Pat. No. 4,782,322 to Lechner et al. Other patents can be found in U.S. Class 340/310 (sub-classes A/R and others) and International Class H04M 11/04.


The concept of using existing telephone wiring also for data communication is first disclosed in U.S. Pat. No. 5,010,399 to Goodman et al., where video signals superimposed over the telephone signals are used. However, the scheme used is of the bus type and has the drawbacks of that topology. Similarly, the idea of data transmission over a public switched telephone network (PSTN) using the higher frequency band is widely used in the xDSL systems, as is disclosed in U.S. Pat. No. 5,247,347 to Litteral et al. The patent discloses an asymmetric digital subscriber line (ADSL) system. However, only a single point-to-point transmission is described over the local-loop, and existing in-house wiring is not discussed, and thus this prior art does not disclose how to configure a full multipoint network. Multiplexing xDSL data and the POTS/ISDN data uses FDM principles, based on the fact that the POTS/ISDN services occupy the lower portion of the spectrum, allowing for the xDSL system to use the higher bandwidth.


A home bus network using dedicated wiring is disclosed in U.S. Pat. No. 4,896,349 to Kubo et al., and a home automation network based on a power line controller (PLC) is disclosed in U.S. Pat. No. 5,579,221 to Mun. U.S. Pat. No. 4,714,912 to Roberts et al. is the first to suggest communicating data over power lines not in bus topology but as ‘break-and-insert’. However, only single conductor is used, and the receivers are all connected again using a bus topology.


In addition, U.S. patent application Ser. No. 08/734,921, Israel Patent Application No. 119454, and PCT Patent Application No. PCT/IL97/00195 of the present inventor disclose a distributed serial control system of line-powered modules in a network topology for sensing and control. These documents, however, do not disclose a local area network for data communications.


The prior art documents mentioned above are representative examples in the field. Certain applications are covered by more than one issued patent.


There is thus a widely recognized need for, and it would be highly advantageous to have, a means of implementing a local area network for data communications which does not suffer from the limitations inherent in the current methods. This goal is met by the present invention.


SUMMARY OF THE INVENTION

The present invention is of a local area network for data communication, sensing, and control based on serially connected modules referred to as “serial intelligent cells” (SIC's). An example of a local area network of such devices according to the present invention is illustrated in FIG. 7, to which reference is now briefly made. In this example, SIC's 700, 702, 704, 706, and 708 are connected by one or more conducting wire pairs (such as a twisted pair 710). This allows chaining, such as SIC 700 to SIC 702 to SIC 704. However, SIC 700, SIC 706, and SIC 708, located at the ends are equipped with single connection. SIC 704 is equipped with three connections, and even more connections are possible. A SIC may be interfaced to one or more DTE's, as illustrated by a DTE 714 interfaced to SIC 700 and by DTE's 716 and 718 interfaced to SIC 704. SIC's need not have an interface, however, as is illustrated by SIC 706 and SIC 702. SIC 702, though, serves as a repeater, connecting SIC 700 and SIC 704. It is to be noted that the networks according to the present invention utilize electrically-conducting media to interconnect the SIC's. Each electrically-conducting medium connects exactly two SIC's into a communicating pair of SIC's which communicate bidirectionally and independently of other communicating pairs in the local area network. Electrically-conducting media are media which transmit signals by conducting electrical current or by propagating electrical potential from one point to another. Electrically-conducting media include, but are not limited to wires, twisted pair, and coaxial cable. But electrically-conducting media do not include media such as fiber optic lines, waveguides, microwave, radio, and infrared communication media.


As noted above, SIC's in a communicating pair communicate bidirectionally. For example, SIC 704 can initiate communication (as a sender) to SIC 702 (as a receiver), but SIC 704 can just as well initiate simultaneous communication (as a sender) to SIC 700 (as a receiver). Bidirectional communication can take place simultaneously, and herein is taken to be equivalent to “full duplex” communication. In addition, as noted above, the communication between the SIC's of a communicating pair is independent of the communication between the SIC's of any other communicating pair, in that these communications neither preclude nor affect one another in any way. Furthermore, every communication between SIC's is a “point-to-point communication”, which term herein denotes a communication that takes place between exactly one sender and exactly one receiver. This is in contrast to a bus-based communication, in which there are many (potential) receivers and many (potential) senders. Consequently, in the topology according to the present invention, there is automatically a termination in the physical layer at each end of a connection (a SIC), both simplifying the installation and insuring more reliable communication.


The topology according to the present invention is superior to the prior art bus topology in the following ways:


1. There is no physical limit to the number of SIC's which may be installed in the network, and hence no physical limit to the number of DTE's in the network.


2. Point-to-point communication allows higher data rates over greater distances.


3. Point-to-point communication requires less complex circuitry than bus circuitry.


4. Several SIC's can transmit and receive simultaneously. For example, SIC 700 can communicate with SIC 702 while SIC 704 communicates simultaneously with SIC 706.


5. There is no need for arbitration, allowing more efficient utilization of the network. Furthermore, priorities can be assigned to each SIC or, alternatively, to each specific message to allow the data routing to take care of priorities.


6. Addresses may be assigned by the network.


7. In the case of failure of any conductor or SIC, the network can sense the fault immediately, and the specific location of the fault (up to the specific SIC pair) is easily obtained.


Therefore, according to the present invention there is provided a local area network for data communication, sensing, and control including a plurality of serial intelligent cells interconnected exclusively by electrically-conducting media into at least one communicating pair, wherein: (a) each of the electrically-conducting media interconnects no more than two of the serial intelligent cells; (b) each of the communicating pair includes one of the electrically-conducting media and exactly two of the serial intelligent cells; (c) each of the communicating pair engages in a communication exclusively over the electrically-conducting media; and (d) each of the communicating pair engages in the communication bidirectionally and independently of the communication of any other of the communicating pair.





BRIEF DESCRIPTION OF THE DRAWINGS

The invention is herein described, by way of example only, with reference to the accompanying drawings, wherein:



FIG. 1 shows a common prior art LAN bus topology.



FIG. 2 shows a typical prior art multiplexer.



FIG. 3 shows a prior art voice multiplexer (star topology).



FIG. 4 shows a prior art voice exchange configuration (star topology).



FIG. 5 is a block diagram of a SIC for control applications according to the present invention.



FIG. 6 is a block diagram of a SIC for data communications according to the present invention.



FIG. 7 shows a LAN topology utilizing the devices of the present invention.



FIG. 8 shows an alternative LAN topology utilizing the devices of the present invention.



FIG. 9 shows a SIC-based multiplexer-PABX/PBX according to the present invention.



FIG. 10 shows a local area network according to the present invention used as a computer bus extender.





DESCRIPTION OF THE PREFERRED EMBODIMENTS

The principles and operation of a local area network according to the present invention may be better understood with reference to the drawings and the accompanying description.



FIG. 5 is a block diagram of a representative SIC 500 for use in control applications. A first line interface 502 is a first port for connecting to the previous SIC to receive incoming electrical power and local area network data over electrically-conducting medium 503, which may optionally be connected to an electrical power main 501, so that SIC 500 may be powered from electrical power main 501. Line interface 502 may include the connector, fuse, lightning arrester and other protection such as noise filters, etc. The incoming power/data signal is fed to a first power/data splitter/combiner 504, which de-couples the (high frequency alternating current) data signal from the power. Such a power/data splitter/combiner 504 (denoted for brevity in FIG. 5 as “P/D s/c”) can be implemented by methods well-known in the art, such as using a center-tap transformer, or alternatively with active components. The data signal is fed to a first modem 506 allowing bidirectional communication, while the power is fed to a power supply 520. The above scheme assumes that both power and data are carried by the same network wires (line-powering). FIG. 5 illustrates the case where the SIC is line-powered by alternating current (for example, by the electrical power main), in which case power/data splitter/combiner 504 is an AC power/data splitter/combiner, which separates a low-frequency alternating current power from the higher-frequency data signal. Otherwise, in the case where the SIC is line-powered by direct current, power/data splitter/combiner 504 is a DC power/data splitter/combiner, which separates direct current power from the data signal. In some cases the line-powering method is not used. For example, power can be carried by dedicated lines routed in conjunction with the data wiring. Alternatively, the SIC can be locally powered by a local power-supply. In both cases, the power/data splitter/combiner is not required, and the power lines are directly connected to the SIC power-supply, while the data connects directly to the modems. Parts of the SIC are shown optionally housed within an electrical outlet 524, such that connections to the local area network as well as to the electrical power mains may be made from electrical outlet 524. Electrical power from electrical outlet 524 can be fed to an optional electrical appliance 525. In addition, SIC 500 contains an optional electrical power main feed 505 which can also power electrical appliances or other devices.


Power-supply 520 provides the required voltages for the SIC and payload operation, and also outputs the power to a second Power/data splitter/combiner 510, for coupling to the next SIC. Communication with the next (fed) SIC is performed via a second modem 512 connected to a second line interface 514 via power/data splitter/combiner 510, similar to power/data splitter/combiner 504 as previously described. Line interface 514 feeds to electrically-conducting medium 515, which connects to the next SIC. Modems 506 and 512 can be standard RS-485, RS-232, or any simple similar data interface transceiver. Alternatively, a complex transceiver can be used for achieving long ranges or high-speed operation. CPU and firmware contained in a control block 522 control and monitor the unit operation and communication, as well as control the payload through a payload interface 508 interfacing with a payload illustrated by a sensor/actuator 509. For example, interface 508 can implement a 4-20 ma standard interface. In a similar way, SIC 500 can be used for communication over the power line. To do this, payload interface 508 is replaced by a communication port and sensor/actuator 509 will be replaced by a DTE.


A SIC for use in data communications as shown in FIG. 6 is substantially similar to that used in control applications as shown in FIG. 5, but has some specific differences as noted. Also illustrated in FIG. 6 is the case where the local area network data is carried over electrically-conducting media which are part of the telephone wiring of a building. A SIC 600 has a first line interface 602 as a first port for connecting to the previous SIC to receive incoming power, local area network data, and telephony data via an electrically-conducting medium 603. Line interface 602 may include the connector, fuse, lightning arrester and other protection such as noise filters, etc. The incoming power/telephony/data signal is fed to a first telephony/data splitter/combiner 604 (denoted for brevity in FIG. 6 as “T/D s/c”), which de-couples the local area network data from the power and telephony data. Such a telephony/data splitter/combiner 604 can be implemented by methods well-known in the art, such as using a high-pass/low pass filter, or alternatively with active components. The local area network data signal is fed to a first modem 606 allowing bidirectional communication, while the power (DC) is fed to a power supply 620, and the telephony data is fed to power/telephone interface 624.


Power-supply 620 provides the required voltages for the SIC and payload operation, and also outputs the power to a second telephony/data splitter/combiner 610, for coupling to the next SIC. Communication with the next (fed) SIC is performed via a second modem 612 connected to a second line interface 614 via telephony/data splitter/combiner 610, similar to telephony/data splitter/combiner 604 as previously described. Line interface 614 connects to an electrically-conducting medium 615, which connects to the next SIC. Modems 606 and 612 can be standard RS-485, RS-232 or any simple similar data interface transceiver. Alternatively, a complex transceiver can be used for achieving long ranges or high-speed operation. CPU and firmware contained in a control block 622 control and monitor the unit operation and communication, as well as control the payload through a payload interface 608 interfacing with a payload 609, which may include sensors and actuators. For example, interface 608 can implement a 4-20 ma standard interface. SIC 600 also includes an optional power/telephone interface 624, contained for example in a telephone outlet 625, as well as one or more communications interfaces, such as a communication interface 626 connected to a DTE 628.


In the case of DC line feeding, the power supply may be equipped with a line reversal function (for example, a diode-based bridge) in order to accommodate a possible wire reversal.


Note that a SIC can be implemented as single device with all component parts contained within one enclosure, but does not necessarily have to be so implemented. In the case of a SIC used for data communications or control applications, the hardware may be optionally divided between the SIC module and the DTE/Payload units. In the case of a SIC used for telephone applications, the hardware may optionally be divided between the SIC, the DTE payload unit, and the telephone outlet, such as telephone outlet 625, which allows connections to both telephone services (such as through a telephone 623) and the local area network (such through DTE 628). Telephone outlet 625 may be a wall outlet or jack. All or part of the SIC may be housed within a telephone outlet such as telephone outlet 625, if desired. Furthermore, for SIC's used only as repeaters, a payload interface is not necessary.


Power/data splitter/combiner 510 (FIG. 5) can use various techniques known in the art. Coupling can be implemented, for example, as disclosed in U.S. Pat. No. 4,745,391 to Gajjar. Power-supply 520 (FIG. 5) can be connected to the network using dedicated adapter or via specific SIC. The payload can also be connected using standard Ethernet or other LAN interface, hence emulating the network using the SIC's. This configuration makes use of standard interfaces, but operates at higher throughput and data-rates than a conventional LAN.


SIC Addressing


A SIC can include an address. Addresses of SIC's on the network can be assigned via automatic assignment by the local area network itself by algorithms known in the art, for example as disclosed in U.S. Pat. No. 5,535,336 to Smith et al. Addresses can also be assigned via manual assignment, such as by the setting of mechanical switches on the SIC unit. Addresses can also be determined by the DTE connected to the SIC, either by means of higher layers as done in most LAN systems, or physically be means of the connection to the SIC (such as by address lines).


SIC Powering


A SIC can receive electrical power locally, via a power source located near the SIC. However, one power source may be used to power some or all the SIC's in the local area network using dedicated power lines. These lines can be routed with the data communication wires. Alternatively, the same electrically-conducting media (the data communication wires) can be used to carry both electrical power and local area network data to the SIC's, by means of techniques well-known in the art, for example as in telephone systems. In such a case, a unit is required for coupling the power supply to the local area network. This can make use of a SIC (such as SIC 706 in FIG. 7) or in a specific dedicated module. Since electrical power is typically distributed at low frequencies (e.g., 60 Hertz), whereas local area network data is typically at a much higher frequency, electrical power can be combined with local area network data using frequency-domain multiplexing. A SIC can therefore be powered from the electrical power mains, and can also deliver electrical power, as illustrated in FIG. 5 and detailed herein above.


The DTE's, sensors, and actuators connected to the SIC's can also be locally powered from the SIC's, or can use the same power resources via the same channels as the SIC's. Part or all of a SIC can be housed within an electrical outlet so that the electrical outlet allows connection to the local area network as well as to electrical power.


Control


Although mainly intended to be used as communication network, the system according to the present invention can also be used as a platform to implement a sensing, control, and automation system. This is achieved by adding to one or more of the SIC's interfaces to sensors or actuators. The signals received by the sensors are transmitted over the network via logic contained in the SIC's or in the DTE's, which thereupon operate the relevant actuators. This automation function can be monitored by one or more of the DTE's.


The operation of the control may be associated with data communicated over the network (for example, sensing the availability of power to a DTE) or may be independent of it, to allow control decisions to be made locally.


DTE Interface


The DTE interface can be a proprietary interface or any standard serial or parallel interface, such as ITU-T V.35, ITU-T V.24, etc. In addition, a telephone interface (POTS) or ISDN may be used. This can suit intercom or PBX applications.


Fault Protection


The SIC topology described above can be modified to allow for single failure correction. In such a case, the SIC's are connected in a network with redundant paths, such as a circular topology as shown in FIG. 8. In this example, a SIC 800 is connected to a SIC 802, which is in turn connected to a SIC 804, which is in turn connected to a SIC 806, which is in turn connected to SIC 800. When connected in such configuration, any single failure in any conductor, such as in conductor pair 810, will not effect the system operation, as data routing from any SIC to any other SIC can be achieved via an alternate path. The term “circular topology” herein denotes the topology of any local area network of SIC's according to the present invention which contains at least two communication paths between two different SIC's. For example, in FIG. 8, there are two communication paths from SIC 800 to SIC 804: one communication path is from SIC 800 to SIC 802 to SIC 804, and the other path is from SIC 800 to SIC 806 to SIC 804. Circular topology provides redundant communication paths that increase the immunity of the local area network to communication faults. It should be noted that the circular topology according to the present invention, as shown in FIG. 8, differs significantly from the well-known “Token Ring topology” of the prior art, as discussed following.


Although circular topology as defined herein can be superficially similar to the Token Ring topology, there are major differences between them. One difference is in the data framing. The Token Ring uses the same frame structure throughout all communication links in the network, and this requires that the same framing must be recognized by all the cells in the network. In the SIC network according to the present invention, however, each communication link (between any two connected SIC's) is totally independent from all other network communication. Hence, a first SIC can communicate with a second SIC using one type of frame structure and protocol, while the same first SIC can communicate with a third SIC using a different type of frame structure and protocol.


In addition, in a Token Ring network, there is single direction of data flow at any given time from a single transmitter to one or more receivers, and usually, the direction of data flow is constant. The SIC network according to the present invention, however, does not impose any limitation on the data flow in any of the communication links. Full duplex, half duplex or unidirectional communication is possible, and can even vary from link to link throughout the network. This allows the SIC network to support two independent communication routes simultaneously, provided different segments are used. In FIG. 8, for example, SIC 800 can communicate with SIC 802 while SIC 804 simultaneously communicates different data with SIC 806. This capability is not supported by any of the other network configurations.


The above differences affect, for example, the vulnerability of the respective networks to faults. In case of single break or short-circuit anywhere in the medium, the Token Ring network will collapse, disabling any further communication in the system. As another example, in the network disclosed in U.S. Pat. No. 4,918,690 to Markkula et al. (hereinafter referred to as “Markkula”), this fault affects the physical layer by disabling the media's signal-carrying capability. The Token Ring network will not function at all since the data layer functionality based on unidirectional transmission will not be supported. In contrast, however, a SIC network according to the present invention, will continue to function fully, except for the specific faulty link itself. All other links continue to function normally. Furthermore, the ability to localize the fault is not easily performed either in a Token Ring network or in the Markkula network. In the SIC network according to the present invention, however, it is simple and straightforward to trace the fault to the affected link.


Data Distribution Over Electrical Power Lines


An important configuration for a network according to the present invention uses the electrical power wiring of a building as a communication media. This can be used, for example, to implement an inexpensive ‘home LAN’. Typical house mains have a connection to single feeder with numerous distribution points and outlets. The principles according to the present invention specify a SIC to be located within each outlet and at each distribution point. This will allow SIC-based communications network, where communication takes place between each pair of SIC's connected via the wiring. In such a case it is also expected that the mains will also be used to power the SIC's. Aside from using the same wiring media, the electrical distribution and the communication system sharing the same mains can be totally decoupled.


Another configuration involves adding the SIC to the Mains wiring at points distinguished from the mains outlets. The preferred embodiment, however, consists of using the outlets points for both the electrical supply and the DTE connection points. This involves replacing all electrical outlets and distribution points with ‘smart’ outlets, having both electrical connections and a communications jack. In addition, such unit may include visual indicators (e.g. LED's) to show the communication status, and may also include switches or other means to determine the outlet address. Such a communication system could be used for applications associated with power distribution, as for example to control the load connected to a specific outlet, for remote on/off operation of appliances, timing of operations, delayed start, disconnection after pre-set time period, and so forth. Such a communication system could also be used to monitor the power consumed by specific outlets, such as for Demand Side Management (DSM) or Automatic Meter Reading (AMR), allowing remote meter reading.


The above described topology may also apply to existing wiring. One common example may be power wiring to consumers located in different locations. Such wiring typically relies on bus topology with taps. In order to use SIC technology, the wiring must be broken, and a SIC installed between both ends.


In a similar manner, a communication network employing the electrical power wiring of vehicles and vessel can be implemented, such as for aircraft, ships, trains, buses, automobiles, and so forth.


Implementing a Local Communication/Telephone System using SIC's


In this application, existing telephone wiring (either POTS or ISDN) is used as the electrically-conducting media for the local area network, and is used for both local area network data communication and for telephony. The term “telephony” herein denotes any telephone or telephonic communication, including both including voice (POTS) and data (ISDN). Telephone outlets are usually connected in point-to-point topology without a distribution point. To set up a network, each outlet is replaced with SIC-based outlet. If there are distribution points, these distribution points must also be SIC equipped. This configuration results in a high-performance LAN between the telephone outlets. Aside from sharing the same media, the local area network can be decoupled from the telephone system. Alternatively, the local area network and the telephone system can be combined, such that telephony is digitally integrated into the local area network data.


The outside telephone service can be treated according to one of the following alternatives:


1. No telephone support. In this configuration, the connection to the network (usually to the public network) is cut, and the network is fully internal, with no external telephone service.


2. Telephone as Payload. In this configuration, the telephone capability is retained, and telephony data may be integrated into the data communication of the local area network. One of the SIC's (usually the one closest to a public telephone network interface) or other dedicated module interconnects (via the communication interface for example) to the network interface (NI). This unit emulates a telephone interface to the NI, so that public network operation is transparent and continues to perform as normal. However, the signals associated with the telephone interface, either the voice itself and the control/signaling (on hook/off hook, ringing, etc.) are digitized and transmitted in the network as data stream, as part of the communication taking place in the network. In the SIC's interfaced to telephones, these signals are converted back to analog (or in any original form) and thus can be used with standard telephones. In this case, telephone functionality is fully retained. However, failure in the communication network may result in loss of the telephone service. This can be improved by means of a system which disconnects the SIC's circuitry and restores the original wiring routing (this can be easily implemented by relays, which bypass the SIC's upon failure detection, manual intervention, or other relevant occasion).


3. Communication over POTS or ISDN. In this method, the electrically-conducting media interconnecting SIC's is the telephone wiring of a building. This method involves the known mechanism ‘POTS Splitting’, currently used in conjunction with xDSL technologies. This requires a filter which separates the low-frequency portion of the spectrum (usually carrying the POTS associated signals and power) from the high-frequency portion of the spectrum (used for communication). In such an application, the AC/DC units in the SIC are replaced with such POTS splitter modules. The low-frequency band (POTS related) is passed transparently (similar to the power pass), and branched to the telephone jack. The high-frequency band is used for the communication between the SIC's. This combining of high-frequency local area network communication on the same electrically-conducting media with low-frequency telephony data is a form of frequency-domain multiplexing.


In the latter two alternatives, each in-wall telephone outlet is replaced with a SIC based outlet having both a telephone jack and one (or more) communication jacks.


Computer Bus Extender


The SIC network can be used as a computer bus extender, such as an ‘ISA bus extenders’, as illustrated in FIG. 10. In this configuration, a SIC 1006 is equipped with a computer bus connector 1004 which is connected, for example, to one of the ISA bus slots in a computer 1002, to transport data between the local area network and computer 1002. Another SIC 1010, remotely located, also has a computer bus connector 1012, such as an ISA bus extender. This allows for a transparent ISA bus capability, where the ISA bus data will be transported in both directions over electrically-conducting medium 1008. The ellipses ( . . . ) indicate that additional SIC's and electrically-conducting media may be present in the local area network between SIC 1006 and SIC 1010. Shown as an example, a video frame grabber card 1014 is plugged into computer bus connector 1012, and a video camera 1016 is connected to video frame grabber card 1014. Normally, video frame grabber card 1014 is plugged directly into an ISA bus slot, such as in computer 1002. Here, however, the local area network acts as a bus extender so that video frame grabber 1014 and video camera 1016 can be located remotely from computer 1002. The normal software driver for the ISA bus slot in computer 1002 can used, since computer 1002 is unaware of the fact that only ISA emulation is taking place. This way, the capability of having general remote PC components and peripherals can be easily achieved. This configuration features the above-described advantages, and this method can be used to attain various goals, such as fault protection. Similarly, this method can be used to connect several units remotely to a computer, using different ports in the computer.


Implementing Multiplexers and PABX/PBX Functionality


A network of SIC's may be used to implement a multiplexer or a PABX/PBX functionality, as illustrated in FIG. 9. In this example, a SIC 900 is connected to a high data rate connection, such as PCM bus 916, while SIC 902 and SIC 906 are connected to telephones 908, 910, and 912. SIC 904 functions as a repeater in this example.


In this example, the local area network functions as a multiplexer, wherein the bandwidth of the high data rate connection (PCM bus 916) is multiplexed through SIC 900 to SIC 902 and SIC 906, each of which may use a different portion of the bandwidth of the high data rate connection (PCM bus 916). Moreover, by the addition of telephones 908, 910, and 912, the local area network of FIG. 9 functions as a voice multiplexer.


Other Applications of the Invention


A number of applications of the present invention have been discussed above. Additional applications include, but are not limited to: intercom, PABX/PBX, security systems, video surveillance, entertainment broadcasting services, time (clock) distribution, and audio/video signal distribution. The networks implemented by the present invention can extend locally within a single building or over a neighborhood.


While the invention has been described with respect to a limited number of embodiments and applications, it will be appreciated that many variations, modifications and other applications of the invention may be made.

Claims
  • 1. A service outlet for configuring a local area network, the network including a service wiring carrying frequency multiplexed service and data signals, the service outlet comprising: a wiring connector to connect said outlet to the service wiring;a modem coupled to said wiring connector for data signal communication with the service wiring;a data interface coupled to said modem for connecting to a data processing unit, said data interface being configured for bidirectional data communication between said modem and the data processing unit; anda single enclosure housing said wiring connector, said modem and said data interface, and wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet,wherein said outlet is wall mountable and is addressable in the local area network.
  • 2. The outlet according to claim 1, wherein: the service wiring is one of: a twisted wire pair; a coaxial cable; and telephone wiring; andsaid modem is configured to transmit data signals to, and receiving data signals from, the service wiring.
  • 3. The outlet according to claim 1, wherein: the service wiring is powerline wiring; andsaid modem is configured to transmit data signals to, and receiving data signals from, the powerline wiring.
  • 4. The outlet according to claim 3, wherein the service signal includes a telephone signal.
  • 5. The outlet according to claim 1, wherein: the service signal includes a power signal;the service wiring is powerline wiring; andsaid modem is configured to transmit data signals to, and receiving data signals from, the powerline wiring.
  • 6. The outlet according to claim 1, further comprising a service connector coupled to said wiring connector and operative for connecting to a service appliance.
  • 7. The outlet according no claim 1 further comprising a filter coupled between said wiring connector and said modem, the filter operative to pass only the data signal.
  • 8. The outlet according to claim 1, wherein the outlet address is manually assigned.
  • 9. The outlet according to claim 1, wherein the outlet address is automatically assigned.
  • 10. The outlet according to claim 1, wherein the outlet address is assigned by a data unit connected no said outlet.
  • 11. A device for configuring a network, the network including a service wiring carrying frequency multiplexed service and data signals, the service signal including a power signal, and the device comprising: a wiring connector to connect said device to the service wiring;a modem coupled to said wiring connector for data signal communication with the service wiring;a data interface coupled to said modem for connecting to a data unit, said data interface being configured for bidirectional data communication between said modem and the data unit; anda single enclosure housing said wiring connector, said modem and said data interface, and wherein said single enclosure is constructed to have at least one of the following:a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet,wherein said device is addressable.
  • 12. The device according to claim 11, wherein: the service wiring is one of: a twisted wire pair; a coaxial cable; and telephone wiring; andsaid modem is configured to transmit data signals to, and receiving data signals from, the service wiring.
  • 13. The device according to claim 11, wherein the device is at least in part housed within a service outlet.
  • 14. The device according to claim 11, wherein: the service wiring is powerline wiring; andsaid modem is configured to transmit data signals to, and receiving data signals from, the powerline wiring.
  • 15. The device according to claim 11, wherein the service signal includes a telephone signal.
  • 16. The device according to claim 11, further comprising a service connector coupled to said wiring connector and operative for connecting to a service appliance.
  • 17. The device according to claim 11, further comprising a filter coupled between said wiring connector and said modem, the filter operative to pass only the data signal.
  • 18. The device according to claim 11, wherein the device address is manually assigned.
  • 19. The device according to claim 11, wherein the device address is automatically assigned.
  • 20. The device according to claim 11, wherein the device address is assigned by a data unit connected to said device.
  • 21. A system for configuring a data network, the system comprising: a service wiring carrying frequency multiplexed service and data signals; andat least two devices each connected to the service wiring, each couplable to a data unit, and each operative to establish data signal communication between the data unit and the service wiring,wherein at least one of said devices is attachable to a wall, andwherein at least one of the devices is addressable.
  • 22. The system according to claim 21, wherein the service wiring is one of: a twisted wire pair; a coaxial cable; telephone wiring; and powerline wiring.
  • 23. The system according to claim 21, wherein the service signal includes at least one of a power signal and a telephone signal.
  • 24. The system according to claim 21, wherein at least one of said devices is at least in part integrated into an outlet.
  • 25. The system according to claim 21, wherein at least one of said devices further comprises a service connector coupled to the service wiring and operative for connecting to a service appliance.
  • 26. The system according to claim 21, wherein information carried by the data signal is used to control the service signal.
  • 27. The system according to claim 21, wherein the data signal is used to monitor the service signal.
  • 28. The system according to claim 21, wherein at least two of the devices are addressable.
  • 29. The system according to claim 21, and a single enclosure enclosing at least one of said devices, wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet; wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 30. An outlet for coupling digital data carried over local area network (LAN) wiring to at least one data unit, the wiring having at least two conductors that simultaneously carry a bidirectional serial digital data signal containing the digital data and a DC power signal over the same conductors, said outlet comprising: a wiring connector to connect to the LAN wiring;a first LAN transceiver coupled to said wiring connector and operative for transmitting and receiving the bidirectional serial digital data signal over the LAN wiring;a DC to DC converter coupled between said wiring connector and said first LAN transceiver to be fed from the DC power signal carried over the LAN wiring and to supply DC power to said first LAN transceiver;a first data port coupled to said first LAN transceiver for bidirectional communication of the serial digital data signal with the at least one data unit;a visual indicator to indicate a status, said visual indicator connected to said DC to DC converter to be supplied with power from the DC power signal; anda single enclosure housing said wiring connector, said first LAN transceiver, said visual indicator, said DC to DC converter and said first data port,wherein said enclosure is dimensioned to be mountable into a standard wall outlet receptacle or a wall outlet opening, said outlet is addressable in the LAN, and at least part of the digital data contained in the digital data signal is transparently passed between the at least one data unit and the LAN wiring.
  • 31. The outlet according to claim 30, further operative for wired connection to the at least one data unit, wherein: said first data port comprises a LAN connector for wired connection to a data unit;said outlet further comprises, in said single enclosure, a second LAN transceiver connected between said first LAN transceiver and said LAN connector;
  • 32. The outlet according to claim 31, wherein said second LAN transceivers is operative to conduct full-duplex point-to-point communication with a single other mating transceiver.
  • 33. The outlet according to claim 30, wherein: the at least one data unit includes first and second data units; the LAN wiring carries time multiplexed first and second digital data signals; said outlet is further operative to couple each of the first and second digital data signals to a respective one of the first and second data units; said first data port is couplable to the first data unit; and said outlet further comprises: a second data port to enable bidirectional serial digital data communicating with the second data unit; and a time multiplexer/demultiplexer coupled between said first LAN transceiver, said first data port and said second data port, said time multiplexer/demultiplexer being operative to pass the first digital data signal between said wiring connector and the first data unit and to pass the second digital data signal between said wiring connector and the second data unit.
  • 34. The outlet according to claim 30, wherein said outlet has one of: a manually assigned address; an automatically assigned address; and an address assigned by a data unit connected to said outlet.
  • 35. The outset according to claim 30, wherein said first LAN transceiver is operative to conduct bidirectional communication with one or more substantially similar transceivers over the LAN wiring.
  • 36. The outlet according to claim 30, wherein said first LAN transceiver is operative to conduct full-duplex point-to-point communication with a single mating transceiver over the LAN wiring.
  • 37. The outlet according to claim 30, wherein the serial digital data signal conforms to an Ethernet standard.
  • 38. The outlet according to claim 30, further comprising firmware and a processor executing said firmware, wherein said processor is connected to said DC to DC converter to be supplied with power from the DC cower signal, and wherein the serial digital data signal is couplable to said processor via said wiring connector.
  • 39. The outlet according to claim 30, wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet; wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 40. The outlet according to claim 30, wherein said outlet is pluggable into an existing outlet or attachable to an existing outlet.
  • 41. The outlet according to claim 30, further comprising a separator to separate the digital data signal from the DC power signal, connected between said wiring connector, said DC to DC converter and said first LAN transceiver.
  • 42. The outlet according to claim 41, wherein said separator means separator is based on one or more center-tapped transformers connected to substantially transparently pass the digital data signal.
  • 43. An outlet for coupling digital data to a first data unit, the digital data being carried over wiring having at least two conductors that simultaneously carry the digital data in a bidirectional serial digital data signal and a DC power signal over the same conductors, said outlet comprising: a wiring connector to connect to the wiring;a modem coupled to said wiring connector and operative for transmitting and receiving the bidirectional serial digital data signal over the wiring;a LAN connector to connect to the first data unit;a LAN transceiver connected between said LAN connector and said modem for full-duplex point-to-point serial digital data communication with said first data unit;a DC to DC converter coupled between said wiring connector, said modem and said LAN transceiver to be supplied with power from the DC power signal and to supply DC power to said modem and said LAN transceiver;a visual indicator to indicate a status, connected to said DC to DC converter to be supplied with power from the DC power signal; anda single enclosure housing said wiring connector, said modem, said LAN transceiver, said visual indicator and said DC to DC converter,wherein: said enclosure is dimensioned to be mountable into a standard wall outlet receptacle or a wall outlet opening; said outlet is addressable in a LAN; and at least part of the digital data is transparently passed between the first data unit and the wiring.
  • 44. The outlet according to claim 43, wherein: the wiring is connected to carry time multiplexed first and second digital data signals; said outlet is further operative to respectively couple the first digital data signal to the first data unit and to couple the second digital data signal to a second data unit; said first LAN connector and said LAN transceiver are connected to communicate with the first data unit; and said outlet further comprises: a second LAN connector to connect to the second data unit;a second LAN transceiver connected between said second LAN connector and said modem for full-duplex point-to-point serial digital data communicating with the second data unit; and a time multiplexer/demultiplexer coupled between said modem, said first LAN transceiver and said second LAN transceiver, said time multiplexer/demultiplexer being operative to pass the first digital data signal between said wiring connector and the first data unit and to pass the second digital data signal between said wiring connector and the second data unit.
  • 45. The outlet according to claim 43, wherein said outlet has one of: a manually assigned address; an automatically assigned address; and an address assigned by a data unit connected to the outlet.
  • 46. The outlet according to claim 43, wherein the serial digital data signal conforms to an Ethernet standard.
  • 47. The outlet according to claim 43, further comprising firmware and a processor executing said firmware, wherein said processor is connected to said DC to DC converter to be supplied with power from the DC power signal, and wherein the serial digital data signal is couplable to said processor via said wiring connector.
  • 48. The outlet according to claim 43, wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet; wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 49. The outlet according to claim 43, wherein said outlet is pluggable into an existing outlet or attachable to an existing outlet.
  • 50. The outlet according to claim 43, further comprising a separator to separate the digital data signal from the DC power signal, connected between said wiring connector, said DC to DC converter and said modem.
  • 51. The outlet according to claim 50, wherein the digital data signal and the DC power signal are carried using frequency division multiplexing wherein the digital data signal is carried in a frequency band higher than DC, and said outlet further comprises: a high pass filter connected between aid wiring connector and said modem for substantially passing only the digital data signal and substantially blocking the DC power signal; anda low pass filter connected between said wiring connector and said DC to DC converter for substantially passing only the DC power signal.
  • 52. The outlet according no claim 43, wherein the wiring consists of a single wire pair, and said modem is operative to transmit and receive over the single wire pair.
  • 53. The outlet according to claim 52, wherein wiring consists of a single analog telephone wire pair, and said modem is operative to transmit and receive over the single telephone wire pair.
  • 54. An outlet for coupling digital data carried over local area network (LAN) wiring to at least one data unit, the wiring having at least two conductors that simultaneously carry a bidirectional serial digital data signal containing the digital data and a DC power signal over the same conductors, said outlet comprising: a wiring connector to connect to the LAN wiring;a first LAN transceiver coupled to said wiring connector and operative for transmitting and receiving the bidirectional serial digital data signal over the LAN wiring;a DC to DC converter coupled between said wiring connector and said first LAN transceiver to be supplied with power from the DC power signal carried over the LAN wiring and for supplying DC power to said outlet;a first data port coupled to said first LAN transceiver for bidirectional serial digital data communication with the at least one data unit;a visual indicator to indicate a status connected to said DC to DC converter to be supplied with power from the DC power signal; anda single enclosure dimensioned to be mountable into a standard wall outlet receptacle or a wall outlet opening, said single enclosure housing said wiring connector, said visual indicator, said first LAN transceiver, said DC to DC converter and said first data port,wherein at least part of the digital data is transparently passed between the at least one data unit and the LAN wiring.
  • 55. The outlet according to claim 54 further operative for wired connection to the at least one data unit, wherein said first data port comprises a LAN connector for wired connection to the at least one data unit, and said outlet further comprises, in said single enclosure, a second LAN transceiver connectable between the first LAN transceiver and said LAN connector, said second LAN transceiver being operative for full-duplex packet-based point-to-point serial digital data communication with the at least one data unit, and wherein said second LAN transceiver is further connected to be supplied with power from said DC to DC converter.
  • 56. The outlet according to claim 55, wherein said first and second LAN transceivers are operative to conduct full-duplex point-to-point communication with a respective single other mating transceiver.
  • 57. The outlet according to claim 54, wherein the at least one data unit includes first and second data units, the wiring is connectable to carry time multiplexed first and second digital data signals, and said outlet is further operative to couple each of the first and second digital data signals to a respective one of the first and second data units, said first data port is couplable to the first data unit, and said outlet further comprises: a second data port to enable bidirectional serial digital data communicating with the second data unit; and a time multiplexer/demultiplexer couplable between the first LAN transceiver, said first data port and said second data port, said time multiplexer/demultiplexer being operative to pass the first digital data signal between said wiring connector and the first data unit and to pass the second digital data signal between said wiring connector and the second data unit.
  • 58. The outlet according to claim 54, wherein said outlet is addressable in a LAN and said outlet has an address that is manually assigned, or automatically assigned, or assigned by a data unit connected to said outlet.
  • 59. The outlet according to claim 54, wherein the serial digital data signal conforms to an Ethernet standard.
  • 60. The outlet according to claim 54, further comprising firmware and a processor executing said firmware, wherein said processor is connected to said DC to DC converter to be supplied with power from the DC power signal, and the serial digital data signal is coupled to said processor via said wiring connector.
  • 61. The outlet according to claim 54, wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet; wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 62. The outlet according to claim 54, wherein said outlet is pluggable into an existing outlet or attachable to an existing outlet.
  • 63. The outlet according to claim 54, further comprising a separator connected between said wiring connector, said DC to DC converter and said first data port for separating the digital data signal from the DC power signal.
  • 64. The outlet according to claim 63, wherein said separator is based on one or more center-tapped transformers connected to substantially transparently pass the digital data signal.
  • 65. An outlet for coupling a data unit and an analog unit to wiring that simultaneously carries a bidirectional serial digital data signal multiplexed with an analog signal, the outlet comprising: a wiring connector operative to connect said outlet to the wiring;a data interface connector coupled to said wiring connector and connectable to the data unit, for coupling the serial digital data signal to the data unit;an analog connector coupled to said wiring connector and connectable to the analog unit, for coupling the analog signal to the analog unit; anda single enclosure dimensioned to be mountable into a standard outlet receptacle or opening, said single enclosure housing said wiring connector.
  • 66. The outlet according to claim 65, wherein the wiring is one of: a twisted wire pair, a coaxial cable, a telephone wire-pair and powerline wiring, and said wiring connector is adapted to connect to the wiring.
  • 67. The outlet according to claim 65, further comprising at least one active device, and wherein said outlet further comprises a power supply connected to said at least one active device for DC powering said at least one active device, said power supply having a connection point for connecting to a power source, and said outlet further comprises a visual indicator coupled to said power supply for indicating a status.
  • 68. The outlet according to claim 67 further comprising a power connector connectable to the power source, and wherein said connection point is coupled no said power connector for powering the power supply from the power source.
  • 69. The outlet according to claim 67 wherein the wiring further simultaneously carries a power signal, and wherein said connection point is coupled to said wiring connector for supplying power to said outlet from the power signal.
  • 70. The outlet according to claim 67 wherein said power supply comprises an AC/DC converter or a DC/DC converter.
  • 71. The outlet according to claim 67 further comprising a power connector coupled to said power supply and connectable to a device for DC powering the device.
  • 72. The outlet according to claim 65, wherein: the analog signal and the digital data signal are carried frequency multiplexed;the digital data signal is carried in a frequency band distinct from, and higher than, the analog signal, and said outlet further comprises:a high pass filter coupled between said wiring connector and said data interface connector for passing only the digital data signal; anda low pass filter coupled between said wiring connector and said analog connector for passing only the analog signal.
  • 73. The outlet according to claim 65, wherein said outlet is further addressable in a network.
  • 74. The outlet according to claim 73, wherein said outlet has a manually assigned address.
  • 75. The outlet according to claim 73, wherein said outlet has an automatically assigned address.
  • 76. The outlet according to claim 73, wherein said outlet has an address assigned by a data unit connected to the outlet.
  • 77. The outlet according to claim 65, further comprising a transceiver coupled between said wiring connector and said standard data interface connector, said transceiver being operative to effect full-duplex serial digital data communication over the wiring.
  • 78. The outlet according to claim 77, wherein said transceiver is operative to bidirectionally communicate with one or more identical transceivers over the wiring.
  • 79. The outlet according to claim 77, wherein said transceiver is operative to bidirectionally communicate point-to-point with only a single mating transceiver over the wiring.
  • 80. The outlet according to claim 65, wherein said communication with the data unit conforms to an Ethernet protocol.
  • 81. The outlet according to claim 65, wherein said least one parameter if the outlet is configurable by a connected data unit.
  • 82. The outlet according to claim 65 further comprising firmware and a processor executing said firmware, the processor coupled to the wiring connector to control the outlet.
  • 83. The outlet according to claim 65, wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet; wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 84. An outlet for coupling a data unit and a powered unit to wiring composed of at least two conductors and simultaneously carrying bidirectional serial digital data and power signals, said outlet comprising: a wiring connector operative to connect said outlet to the wiring;a data connector coupled to said wiring connector and connectable to a data unit, for coupling the serial digital data signal to the data unit;a power connector coupled to said wiring connector and connectable to a powered unit, for powering the powered unit by the power signal; anda single enclosure housing said wiring connector, said data connector and said power connector,wherein said enclosure is dimensioned to be mountable into a standard outlet receptacle or opening, and the outlet is further addressable in the network, and wherein said outlet further comprises at least one active device, and wherein said outlet further comprises a power supply connected to said at least one active device for DC powering said at least one active device, said power supply being coupled to said wiring connector for being powered by the power signal, and said outlet further comprises a visual indicator coupled to said power supply for indicating a status.
  • 85. The outlet according to claim 84, wherein the wiring is one of: a twisted wire pair; a coaxial cable; a telephone wire pair; and powerline wiring, and said wiring connector is adapted to connect to the wiring.
  • 86. The outlet according to claim 84 wherein said power supply comprises an AC/DC converter.
  • 87. The outlet according to claim 84 wherein said power supply comprising a DC/DC converter.
  • 88. The outlet according to claim 84 wherein the digital data and power signals are each carried over distinct and dedicated wires.
  • 89. The outlet according to claim 84 wherein the digital data and power signals are multiplexed and carried over the same conductors.
  • 90. The outlet according to claim 89 further comprising a data/power splitter having first, second and third ports, wherein only power is passed from said first port to said second port and the digital data signal is passed between said first and third ports.
  • 91. The outlet according to claim 90 further wherein said data/power splitter is based on a split-tapped transformer.
  • 92. The outlet according to claim 84, wherein the outlet address is manually assigned.
  • 93. The outlet according to claim 84, wherein the outlet address is automatically assigned.
  • 94. The outlet according to claim 84, wherein the outlet address is assigned by a data unit connected to the outlet.
  • 95. The outlet according to claim 84, further comprising a transceiver coupled between said wiring connector and data connector, for conducting the serial digital data signal over the wiring.
  • 96. The outlet according to claim 95, wherein said transceiver is operative to bidirectionally communicate with one or more identical transceivers over the wiring.
  • 97. The outlet according to claim 95, wherein said transceiver is operative to perform bidirectional point-to-point communication with only a single mating transceiver over the wiring.
  • 98. The outlet according to claim 84, further comprising a transceiver coupled between said wiring connector and said data connector, said transceiver being operative to perform full-duplex digital data communication with the data unit.
  • 99. The outlet according to claim 84, wherein communication with said data unit is Ethernet based.
  • 100. The outlet according to claim 84, wherein au least one parameter of the outlet is configurable by a connected data unit.
  • 101. The outlet according to claim 84 further comprising firmware and a processor executing said firmware, said processor being coupled to said wiring connector for coupling to the serial digital data.
  • 102. The outlet according to claim 84 wherein the wiring is a powerline wiring, the power signal is an AC power signal, and said power connector is an AC power connector.
  • 103. The outlet according to claim 84 wherein the wiring comprises at least one twisted pair and wherein the power signal is a DC power signal.
  • 104. The outlet according to claim 84, wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 105. An outlet for coupling a data unit and an analog telephone set to wiring that simultaneously carries a bidirectional serial digital data signal multiplexed with a telephone signal, the outlet comprising: a wiring connector operative to connect said outlet to the wiring;a data interface connector coupled to said wiring connector and connectable to the data unit, for coupling the serial digital data signal to the data unit;a telephone connector coupled to said wiring connector and connectable to the analog telephone set, for coupling the telephone signal to the telephone set; anda single enclosure housing said wiring connector, said data interface connector and said telephone connector,wherein said enclosure is dimensioned to be mountable into a standard outlet receptacle or opening, and said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 106. The outlet according to claim 105, wherein the wiring is one of: a twisted wire pair, a coaxial cable, a telephone wire-pair and powerline wiring, and said wiring connector is adapted to connect to the wiring.
  • 107. The outlet according to claim 105, further comprising at least one active device, and wherein said outlet further comprises a power supply connected to said at least one active device for DC powering said at least one active device, said power supply having a connection point to connect to a power source, and said outlet further comprises a visual indicator coupled to said power supply for indicating a status.
  • 108. The outlet according to claim 107 further comprising a power connector connectable to the power source, and wherein said connection point is coupled to said power connector for supplying power to said outlet from the power source.
  • 109. The outlet according to claim 107 wherein the wiring further simultaneously carries a power signal, and wherein said connection point is coupled to said wiring connector for supplying power to said outlet from the power signal.
  • 110. The outlet according to claim 107 wherein said power supply comprises an AC/DC converter or a DC/DC converter.
  • 111. The cutlet according to claim 107 further comprising a cower connector coupled to said connection point and connectable to a device for DC powering the device.
  • 112. The outlet according to claim 105, wherein at least one parameter of the outlet is configurable by a connected data unit.
  • 113. A device for configuring a network, the network including a service wiring carrying frequency multiplexed service and data signals, the device comprising: a wiring connector to connect said device to the service wiring;a modem coupled to said wiring connector for data signal communication with the service wiring; anda data interface coupled to said modem for connecting to a data unit, said data interface being configured for bidirectional data communication between said modem and the data unit,wherein said device is addressable, and the service signal includes a power signal, and said device further comprises a service connector coupled to said wiring connector and operative for connecting to a service appliance, and wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 114. A device for configuring a network, the network including a service wiring carrying frequency multiplexed service and data signals, the device comprising: a wiring connector to connect said device to the service wiring;a modem coupled to said wiring connector for data signal communication with the service wiring; anda data interface coupled to said modem for connecting to a data unit, said data interface being configured for bidirectional data communication between said modem and the data unit,wherein said device is addressable, and the service signal includes a power signal, and said device further comprises a filter coupled between said wiring connector and said modem, the filter operative to pass only the data signal, and wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 115. A device for configuring a network, the network including a service wiring carrying frequency multiplexed service and data signals, the device comprising: a wiring connector to connect said device to the service wiring;a modem coupled to said wiring connector for data signal communication with the service wiring; anda data interface coupled to said modem for connecting to a data unit, said data interface being configured for bidirectional data communication between said modem and the data unit,wherein said device is addressable, and the service signal includes a power signal, and said device further comprises a single enclosure housing said wiring connector, said modem and said data interface, and wherein said single enclosure is constructed to have at least one of the following: a form substantially similar to that of a standard outlet;wall mounting elements substantially similar to those of a standard wall outlet;a shape allowing direct mounting in an outlet opening or cavity; anda form to substitute for a standard outlet.
  • 116. A device that configures a local area network, the device comprising: first and second ports each providing an interface to a respective one of first and second signal paths;first and second data couplers each coupled to a respective one of said first and second ports, and each having a data signal port operative to pass only a data signal;first and second modems each coupled to said data signal port of a respective one of said first and second data couplers, and said first and second modems configured to enable full duplex data signal communication with a respective one of said first and second signal paths;at least one data interface connector coupled to at least one of said modems and operative to establish a data signal connection with a data terminal equipment unit;first and second power couplers each coupled to a respective one of said first and second ports, and each having a respective one of first and second power signal ports, each signal port being operative to pass only a power signal, and the second power signal port being coupled to the first power signal port; anda power supply coupled to the first power signal port and to at least one of said modems to be powered by the power signal and to power said modem,wherein the device is configured to allow the communication of a data signal over the first signal path to be independent of the communication of a data signal over the second signal path.
  • 117. The device according to claim 116 further comprising a power connector connectable to a power source for receiving power from the power source.
  • 118. The device according to claim 116 wherein the power signal is a direct current signal.
  • 119. The device according to claim 116 wherein the device has an address.
  • 120. The device according to claim 119 wherein the address is assigned by a data terminal equipment unit connectable to the device.
  • 121. The device according to claim 116 wherein the device is addressable in the local area network.
  • 122. The device according to claim 116 wherein at least one of the couplers comprises a center tap transformer.
  • 123. The device according to claim 116 wherein at least some of the couplers include center tap transformers.
  • 124. A device that couples a digital data signal to a data unit, the device comprising: a coaxial connector capable of connecting the device to a coaxial cable;a filter having a data signal port and coupled to said coaxial connector, said filter configured to act upon a frequency multiplexed analog service signal plus digital data signal received by the device, and pass only a digital data signal via said data signal port;a modem coupled to said data signal port to enable full duplex digital data signal communication with one or more additional modems over the coaxial cable;a data connector to connect to the data unit;a data transceiver coupled between said data connector and said modem, said data transceiver operative to effect full-duplex serial digital data communication with the data unit;a power port connectable to a power signal;a power supply coupled between said power port and said modem to provide DC powering of said modem from said power signal; anda single enclosure housing said filter, said power supply, said modem and said data connector,wherein the device is addressable in the local area network.
  • 125. The device according to claim 124 wherein the device has an automatically assigned address.
  • 126. The device according to claim 124 wherein the device has an address assigned by a data terminal equipment unit connectable to the device.
  • 127. The device according to claim 124 wherein the device is at least in part housed in an outlet.
  • 128. The device according to claim 124 further comprising a second data connector coupled to said modem for connecting to a second data unit for bidirectional communication with the second data unit.
Parent Case Info

This is a continuation of copending parent application Ser. No. 10/793,769, filed on Mar. 10, 2004, which is a division of application Ser. No. 10/178,223, filed Jun. 25, 2002, now U.S. Pat. No. 7,016,368, which itself is a continuation of patent application Ser. No. 09/123,486, filed Jul. 28, 1998, now U.S. Pat. No. 6,480,510, issued Nov. 12, 2002.

US Referenced Citations (666)
Number Name Date Kind
2568342 Koehler et al. Sep 1951 A
2680162 Brehm et al. Jun 1954 A
3406344 Hopper Oct 1968 A
3511936 Saltzberg May 1970 A
3529088 Hauer Sep 1970 A
3539727 Pasternack Nov 1970 A
3651471 Hasselwood et al. Mar 1972 A
3699523 Percher Oct 1972 A
3723653 Tatsuzawa Mar 1973 A
3806814 Forbes Apr 1974 A
3835334 Notteau Sep 1974 A
3836888 Boenke et al. Sep 1974 A
3870822 Matthews Mar 1975 A
3872253 Jurschak Mar 1975 A
3873771 Kleinerman et al. Mar 1975 A
3875339 Gruen et al. Apr 1975 A
3922490 Pettis Nov 1975 A
3924077 Blakeslee Dec 1975 A
3937889 Bell, III et al. Feb 1976 A
3968333 Simokat et al. Jul 1976 A
3975594 Guntersdorfer Aug 1976 A
3992589 Kuegler Nov 1976 A
4008369 Theurer et al. Feb 1977 A
4035838 Bassani et al. Jul 1977 A
4054910 Chou et al. Oct 1977 A
4058678 Dunn et al. Nov 1977 A
4063220 Metcalfe et al. Dec 1977 A
4171467 Evenchik Oct 1979 A
4173714 Bloch et al. Nov 1979 A
4197431 Vis Apr 1980 A
4206320 Keasler et al. Jun 1980 A
4232200 Hestad et al. Nov 1980 A
4241243 Ball Dec 1980 A
4254305 Treiber Mar 1981 A
4302629 Foulkes et al. Nov 1981 A
4303993 Panepinto, Jr. et al. Dec 1981 A
4328579 Hashimoto et al. May 1982 A
4332980 Reynolds et al. Jun 1982 A
4339816 Reed Jul 1982 A
4373117 Pierce Feb 1983 A
4378470 Murto et al. Mar 1983 A
4387271 Artom Jun 1983 A
4388489 Wigan et al. Jun 1983 A
4393508 Boudault Jul 1983 A
4395590 Pierce Jul 1983 A
4413229 Grant Nov 1983 A
4415774 Driver Nov 1983 A
4417099 Pierce Nov 1983 A
4425642 Moses et al. Jan 1984 A
4431869 Sweet Feb 1984 A
4433212 Moses et al. Feb 1984 A
4442320 James et al. Apr 1984 A
4442540 Allen Apr 1984 A
4443662 Nakhla Apr 1984 A
4449218 Strehl May 1984 A
4456985 Carsten et al. Jun 1984 A
4456986 Carsten et al. Jun 1984 A
4459434 Benning et al. Jul 1984 A
4484185 Graves Nov 1984 A
4485400 Lemelson et al. Nov 1984 A
4493948 Sues et al. Jan 1985 A
4500751 Darland et al. Feb 1985 A
4506387 Walter Mar 1985 A
4507721 Yamano et al. Mar 1985 A
4509211 Robbins Apr 1985 A
4510493 Bux et al. Apr 1985 A
4521881 Stapleford et al. Jun 1985 A
4523307 Brown et al. Jun 1985 A
4528422 Cupani Jul 1985 A
4543450 Brandt Sep 1985 A
4546212 Crowder, Sr. Oct 1985 A
4551721 Kozlik Nov 1985 A
4561020 Matsuda Dec 1985 A
4564940 Yahata Jan 1986 A
4577311 Duquesne et al. Mar 1986 A
4577314 Chu et al. Mar 1986 A
4578533 Pierce Mar 1986 A
4578535 Simmons Mar 1986 A
4578540 Borg et al. Mar 1986 A
4580291 Ab Der Halden Apr 1986 A
4583214 Miyashita et al. Apr 1986 A
4584690 Cafiero et al. Apr 1986 A
4592069 Redding May 1986 A
4593389 Wurzburg et al. Jun 1986 A
4597077 Nelson et al. Jun 1986 A
4604741 Barsellotti Aug 1986 A
4608686 Barsellotti Aug 1986 A
4639714 Crowe Jan 1987 A
4642607 Strom et al. Feb 1987 A
4644526 Wu Feb 1987 A
4646289 Tsiakas et al. Feb 1987 A
4646296 Bartholet et al. Feb 1987 A
4649551 Sander et al. Mar 1987 A
4656655 Hashimoto Apr 1987 A
4665516 Middleton et al. May 1987 A
4670870 Hewinson et al. Jun 1987 A
4670874 Sato et al. Jun 1987 A
4672602 Hargrave et al. Jun 1987 A
4672605 Hustig et al. Jun 1987 A
4677646 Dodds et al. Jun 1987 A
4679227 Hughes-Hartogs Jul 1987 A
4691344 Brown et al. Sep 1987 A
4709412 Seymour et al. Nov 1987 A
4714912 Roberts et al. Dec 1987 A
4724435 Moses et al. Feb 1988 A
4731821 Jackson, III Mar 1988 A
4733380 Havira Mar 1988 A
4733389 Puvogel Mar 1988 A
4742538 Szlam May 1988 A
4745391 Gajjar May 1988 A
4754326 Kram et al. Jun 1988 A
4755792 Pezzolo et al. Jul 1988 A
4757495 Decker et al. Jul 1988 A
4757497 Beierle et al. Jul 1988 A
4761646 Choquet et al. Aug 1988 A
4764922 Dieter et al. Aug 1988 A
4766402 Crane Aug 1988 A
4768110 Dunlap et al. Aug 1988 A
4768206 Van Gerwen Aug 1988 A
4769837 McCormick et al. Sep 1988 A
4772870 Reyes Sep 1988 A
4776006 Comerford et al. Oct 1988 A
4780757 Bryer et al. Oct 1988 A
4780758 Lin et al. Oct 1988 A
4782322 Lechner et al. Nov 1988 A
4785448 Reichert et al. Nov 1988 A
4785472 Shapiro Nov 1988 A
4789895 Mustafa et al. Dec 1988 A
4789994 Randall et al. Dec 1988 A
4799213 Fitzgerald Jan 1989 A
4803719 Ulrich Feb 1989 A
4807225 Fitch Feb 1989 A
4813066 Holtz et al. Mar 1989 A
4814941 Speet et al. Mar 1989 A
4815106 Propp et al. Mar 1989 A
4821319 Middleton et al. Apr 1989 A
4825349 Marcel Apr 1989 A
4825435 Amundsen et al. Apr 1989 A
4837799 Prohs et al. Jun 1989 A
4839743 Best et al. Jun 1989 A
4849811 Kleinerman Jul 1989 A
4866602 Hall Sep 1989 A
4872197 Pemmaraju Oct 1989 A
4882747 Williams Nov 1989 A
4885747 Foglia Dec 1989 A
4885766 Yasuoka et al. Dec 1989 A
4888795 Ando et al. Dec 1989 A
4890316 Walsh et al. Dec 1989 A
4893326 Duran et al. Jan 1990 A
4896349 Kubo Jan 1990 A
4901218 Cornwell Feb 1990 A
4901342 Jones Feb 1990 A
4918688 Krause et al. Apr 1990 A
4918690 Markkula, Jr. et al. Apr 1990 A
4922503 Leone May 1990 A
4924492 Gitlin et al. May 1990 A
4932022 Keeney et al. Jun 1990 A
4932047 Emmons et al. Jun 1990 A
4937811 Harris Jun 1990 A
4939728 Markkula, Jr. et al. Jul 1990 A
4945404 Miller Jul 1990 A
4947483 Dirr Aug 1990 A
4947484 Twitty et al. Aug 1990 A
4949187 Cohen Aug 1990 A
4953160 Gupta Aug 1990 A
4954886 Elberbaum Sep 1990 A
4955048 Iwamura et al. Sep 1990 A
4969136 Chamberlain et al. Nov 1990 A
4969147 Markkula, Jr. et al. Nov 1990 A
4973954 Schwarz Nov 1990 A
4975896 D'Agosto, III et al. Dec 1990 A
4975903 Wakerly et al. Dec 1990 A
4975906 Takiyasu et al. Dec 1990 A
4979028 Minematsu et al. Dec 1990 A
4985892 Camarata Jan 1991 A
4989081 Miyagawa et al. Jan 1991 A
4996709 Heep et al. Feb 1991 A
5010399 Goodman et al. Apr 1991 A
5014308 Fox May 1991 A
5018138 Twitty et al. May 1991 A
5025443 Gupta Jun 1991 A
5032819 Sakuragi et al. Jul 1991 A
5033062 Morrow et al. Jul 1991 A
5034883 Donaldson et al. Jul 1991 A
5034948 Mizutani et al. Jul 1991 A
5036513 Greenblatt Jul 1991 A
5051822 Rhoades Sep 1991 A
5063563 Ikeda et al. Nov 1991 A
5065133 Howard Nov 1991 A
5068890 Nilssen Nov 1991 A
5089886 Grandmougin Feb 1992 A
5090052 Nakajima et al. Feb 1992 A
5095417 Hagiwara et al. Mar 1992 A
5095497 Aman et al. Mar 1992 A
5113498 Evan et al. May 1992 A
5125077 Hall Jun 1992 A
5136580 Videlock et al. Aug 1992 A
5144544 Jenneve et al. Sep 1992 A
5148144 Sutterlin et al. Sep 1992 A
5150365 Hirata et al. Sep 1992 A
5157711 Shimanuki Oct 1992 A
5175764 Patel et al. Dec 1992 A
5179586 Lee Jan 1993 A
5181240 Sakuragi et al. Jan 1993 A
5210788 Nilssen May 1993 A
5216704 Williams et al. Jun 1993 A
5220561 Nuhn et al. Jun 1993 A
5220597 Horiuchi Jun 1993 A
5224154 Aldridge et al. Jun 1993 A
5247347 Litteral et al. Sep 1993 A
5255267 Hansen et al. Oct 1993 A
5257006 Graham et al. Oct 1993 A
5274631 Bhardwaj Dec 1993 A
5283637 Goolcharan Feb 1994 A
5289359 Ziermann Feb 1994 A
5289461 De Nijs Feb 1994 A
5297141 Marum Mar 1994 A
5311114 Sambamurthy et al. May 1994 A
5311518 Takato et al. May 1994 A
5311593 Carmi May 1994 A
5323461 Rosenbaum et al. Jun 1994 A
5341370 Nuhn et al. Aug 1994 A
5343240 Yu Aug 1994 A
5343514 Snyder Aug 1994 A
5347549 Baumann Sep 1994 A
5351272 Abraham Sep 1994 A
5353334 O'Sullivan Oct 1994 A
5356311 Liu Oct 1994 A
5363432 Martin et al. Nov 1994 A
5379005 Aden et al. Jan 1995 A
5391932 Small et al. Feb 1995 A
5400068 Ishida et al. Mar 1995 A
5404127 Lee et al. Apr 1995 A
5406249 Pettus Apr 1995 A
5406260 Cummings et al. Apr 1995 A
5408260 Arnon Apr 1995 A
5410343 Coddington et al. Apr 1995 A
5414708 Webber et al. May 1995 A
5420572 Dolin, Jr. et al. May 1995 A
5420578 O'Brien et al. May 1995 A
5420886 Ohmori May 1995 A
5421030 Baran May 1995 A
5422929 Hurst et al. Jun 1995 A
5424710 Baumann Jun 1995 A
5428682 Apfel Jun 1995 A
5440335 Beveridge Aug 1995 A
5446905 Koshiishi Aug 1995 A
5452289 Sharma et al. Sep 1995 A
5454008 Baumann et al. Sep 1995 A
5461671 Sakuragi et al. Oct 1995 A
5463616 Kruse et al. Oct 1995 A
5467384 Skinner, Sr. Nov 1995 A
5471190 Zimmermann Nov 1995 A
5475687 Markkula, Jr. et al. Dec 1995 A
5483574 Yuyama Jan 1996 A
5487066 McNamara et al. Jan 1996 A
5491463 Sargeant et al. Feb 1996 A
5499241 Thompson et al. Mar 1996 A
5504454 Daggett et al. Apr 1996 A
5528507 McNamara et al. Jun 1996 A
5530748 Ohmori Jun 1996 A
5535336 Smith et al. Jul 1996 A
5539805 Bushue et al. Jul 1996 A
5544164 Baran Aug 1996 A
5544243 Papadopoulos Aug 1996 A
5546385 Caspi et al. Aug 1996 A
5548592 Komarek et al. Aug 1996 A
5548614 Stoll et al. Aug 1996 A
5550836 Albrecht et al. Aug 1996 A
5553063 Dickson Sep 1996 A
5553138 Heald et al. Sep 1996 A
5568547 Nishimura Oct 1996 A
5570085 Bertsch Oct 1996 A
5574748 Vander Mey et al. Nov 1996 A
5579221 Mun Nov 1996 A
5581801 Spriester et al. Dec 1996 A
5583934 Zhou Dec 1996 A
5587692 Graham et al. Dec 1996 A
5594726 Thompson et al. Jan 1997 A
5594732 Bell et al. Jan 1997 A
5608792 Laidler Mar 1997 A
5610916 Kostreski et al. Mar 1997 A
5610922 Balatoni Mar 1997 A
5621455 Rogers et al. Apr 1997 A
5625863 Abraham Apr 1997 A
5646983 Suffern et al. Jul 1997 A
5651696 Jennison Jul 1997 A
5652893 Ben-Meir et al. Jul 1997 A
5659608 Stiefel Aug 1997 A
5671220 Tonomura Sep 1997 A
5675375 Riffee Oct 1997 A
5682423 Walker Oct 1997 A
5684826 Ratner Nov 1997 A
5696790 Graham et al. Dec 1997 A
5706007 Fragnito et al. Jan 1998 A
5706157 Galecki et al. Jan 1998 A
5708701 Houvig et al. Jan 1998 A
5712614 Patel et al. Jan 1998 A
5742527 Rybicki et al. Apr 1998 A
5748634 Sokol et al. May 1998 A
5754539 Metz et al. May 1998 A
5757803 Russell et al. May 1998 A
5774789 Van Der Kaay et al. Jun 1998 A
5777769 Coutinho Jul 1998 A
5778303 Shinozaki et al. Jul 1998 A
5787115 Turnbull et al. Jul 1998 A
5796739 Kim Aug 1998 A
5799069 Weston et al. Aug 1998 A
5801635 Price Sep 1998 A
5802173 Hamilton-Piercy et al. Sep 1998 A
5802283 Grady et al. Sep 1998 A
5805053 Patel et al. Sep 1998 A
5805597 Edem Sep 1998 A
5805806 McArthur Sep 1998 A
5812786 Seazholtz et al. Sep 1998 A
5815681 Kikinis Sep 1998 A
5818710 LeVan Suu Oct 1998 A
5818725 McNamara et al. Oct 1998 A
5818821 Schurig Oct 1998 A
5822677 Peyrovian Oct 1998 A
5822678 Evanyk Oct 1998 A
5835005 Furukawa et al. Nov 1998 A
5841360 Binder Nov 1998 A
5841840 Smith et al. Nov 1998 A
5841841 Dodds et al. Nov 1998 A
5842032 Bertsch Nov 1998 A
5844596 Goodman Dec 1998 A
5844888 Markkula et al. Dec 1998 A
5845190 Bushue et al. Dec 1998 A
5845201 Funke et al. Dec 1998 A
5848054 Mosebrook et al. Dec 1998 A
5848150 Bingel Dec 1998 A
D404721 Tennefoss et al. Jan 1999 S
D405422 Tennefoss et al. Feb 1999 S
5878047 Ganek et al. Mar 1999 A
5878133 Zhou et al. Mar 1999 A
5884086 Amoni et al. Mar 1999 A
5886732 Humpleman Mar 1999 A
5892792 Walley Apr 1999 A
5896443 Dichter Apr 1999 A
5896556 Moreland et al. Apr 1999 A
5903213 Hodge et al. May 1999 A
5912895 Terry et al. Jun 1999 A
5917624 Wagner Jun 1999 A
5929896 Goodman Jul 1999 A
5930340 Bell Jul 1999 A
5938757 Bertsch Aug 1999 A
5940400 Eastmond et al. Aug 1999 A
5949473 Goodman Sep 1999 A
5949476 Pocock et al. Sep 1999 A
5960066 Hartmann et al. Sep 1999 A
5963539 Webber, Jr. et al. Oct 1999 A
5963595 Graham et al. Oct 1999 A
5963844 Dail Oct 1999 A
5982784 Bell Nov 1999 A
5990577 Kamioka et al. Nov 1999 A
5991831 Lee et al. Nov 1999 A
5991885 Chang et al. Nov 1999 A
5994998 Fisher et al. Nov 1999 A
5995598 Berstis Nov 1999 A
5999612 Dunn et al. Dec 1999 A
6002722 Wu Dec 1999 A
6005873 Amit Dec 1999 A
6009465 Decker et al. Dec 1999 A
6009479 Jeffries Dec 1999 A
6011794 Mordowitz et al. Jan 2000 A
6026078 Smith Feb 2000 A
6026150 Frank Feb 2000 A
6038425 Jeffrey Mar 2000 A
6052380 Bell Apr 2000 A
6061357 Olshansky et al. May 2000 A
6061392 Bremer et al. May 2000 A
6064673 Anderson et al. May 2000 A
6069588 O'Neill, Jr. May 2000 A
6069899 Foley May 2000 A
6081519 Petler Jun 2000 A
6081533 Laubach et al. Jun 2000 A
6087860 Liu et al. Jul 2000 A
6088368 Rubinstain et al. Jul 2000 A
6094441 Jung et al. Jul 2000 A
6107912 Bullock et al. Aug 2000 A
6108330 Bhatia et al. Aug 2000 A
6109959 Burlinson et al. Aug 2000 A
6111764 Atou et al. Aug 2000 A
6112232 Shahar et al. Aug 2000 A
6115468 DeNicolo Sep 2000 A
6115755 Krishan Sep 2000 A
6123577 Contois et al. Sep 2000 A
6130893 Whittaker et al. Oct 2000 A
6130896 Lueker et al. Oct 2000 A
6137865 Ripy et al. Oct 2000 A
6141356 Gorman Oct 2000 A
6144292 Brown Nov 2000 A
6151480 Fischer et al. Nov 2000 A
6157645 Shobatake Dec 2000 A
6157716 Ortel Dec 2000 A
6167120 Kikinis Dec 2000 A
6175556 Allen, Jr. et al. Jan 2001 B1
6175860 Gaucher Jan 2001 B1
6178455 Schutte et al. Jan 2001 B1
6181783 Goodman Jan 2001 B1
6185284 Goodman Feb 2001 B1
6188557 Chaudhry Feb 2001 B1
6192399 Goodman Feb 2001 B1
6195339 Erite et al. Feb 2001 B1
6202211 Williams, Jr. Mar 2001 B1
6205495 Gilbert et al. Mar 2001 B1
6208637 Eames Mar 2001 B1
6212227 Ko et al. Apr 2001 B1
6212274 Ninh Apr 2001 B1
6215789 Keenan et al. Apr 2001 B1
6216160 Dichter Apr 2001 B1
6218930 Katzenberg et al. Apr 2001 B1
6219409 Smith et al. Apr 2001 B1
6227499 Jennison et al. May 2001 B1
6236653 Dalton et al. May 2001 B1
6236664 Erreygers May 2001 B1
6236718 Goodman May 2001 B1
6240166 Collin et al. May 2001 B1
6243413 Beukema Jun 2001 B1
6243446 Goodman Jun 2001 B1
6246748 Yano Jun 2001 B1
6252754 Chaudhry Jun 2001 B1
6252957 Jauregui et al. Jun 2001 B1
6256518 Buhrmann Jul 2001 B1
6282075 Chaudhry Aug 2001 B1
6282189 Eames Aug 2001 B1
6292467 Keller Sep 2001 B1
6292517 Jeffress et al. Sep 2001 B1
6295356 De Nicolo Sep 2001 B1
6310894 Counterman Oct 2001 B1
6317884 Eames et al. Nov 2001 B1
6320866 Wolf et al. Nov 2001 B2
6320900 Liu Nov 2001 B1
6324268 Balachandran et al. Nov 2001 B1
6349133 Matthews et al. Feb 2002 B1
6364535 Coffey Apr 2002 B1
6370149 Gorman et al. Apr 2002 B1
6383076 Tiedeken May 2002 B1
6389125 Ubowski May 2002 B1
6393050 Liu May 2002 B1
6396391 Binder May 2002 B1
6408351 Hamdi et al. Jun 2002 B1
6414952 Foley Jul 2002 B2
6418558 Roberts et al. Jul 2002 B1
6424661 Bentley Jul 2002 B1
6427237 Aranguren et al. Jul 2002 B1
6430199 Kerpez Aug 2002 B1
6433672 Shirmard Aug 2002 B1
6434123 Park Aug 2002 B1
6448899 Thompson Sep 2002 B1
6449318 Rumbaugh Sep 2002 B1
6449348 Lamb et al. Sep 2002 B1
6470053 Liu Oct 2002 B1
6473495 Willer Oct 2002 B1
6473608 Lehr et al. Oct 2002 B1
6480510 Binder Nov 2002 B1
6481013 Dinwiddie et al. Nov 2002 B1
6483902 Stewart et al. Nov 2002 B1
6493875 Eames et al. Dec 2002 B1
6510204 De Clercq et al. Jan 2003 B2
6518724 Janik Feb 2003 B2
6522662 Liu Feb 2003 B1
6522728 Willer Feb 2003 B1
6522730 Timm et al. Feb 2003 B1
6522731 Matsumoto Feb 2003 B2
6526581 Edson Feb 2003 B1
6532279 Goodman Mar 2003 B1
6532280 McDonald Mar 2003 B1
6535587 Kobayashi Mar 2003 B1
6539011 Keenan et al. Mar 2003 B1
6541878 Diab Apr 2003 B1
6542585 Goodman Apr 2003 B2
6549616 Binder Apr 2003 B1
6556581 He et al. Apr 2003 B1
6560319 Binder May 2003 B1
6560333 Consiglio et al. May 2003 B1
6563816 Nodoushani et al. May 2003 B1
6567981 Jeffrey May 2003 B1
6570890 Keenan et al. May 2003 B1
6574242 Keenan et al. Jun 2003 B1
6574313 Chea, Jr. et al. Jun 2003 B1
6577631 Keenan et al. Jun 2003 B1
6577882 Roos Jun 2003 B1
6580254 Schofield Jun 2003 B2
6580710 Bowen et al. Jun 2003 B1
6580785 Bremer et al. Jun 2003 B2
6584197 Boudreaux, Jr. et al. Jun 2003 B1
6587454 Lamb Jul 2003 B1
6587473 Terry et al. Jul 2003 B2
6587479 Bianchi et al. Jul 2003 B1
6587560 Scott et al. Jul 2003 B1
6601097 Cheston et al. Jul 2003 B1
6603808 Anne et al. Aug 2003 B1
6616005 Pereira et al. Sep 2003 B1
6640308 Keyghobad et al. Oct 2003 B1
6650662 Arnaud et al. Nov 2003 B1
6653932 Beamish et al. Nov 2003 B1
6658098 Lamb et al. Dec 2003 B2
6658108 Bissell et al. Dec 2003 B1
6665404 Cohen Dec 2003 B2
6678321 Graham et al. Jan 2004 B1
6678721 Bell Jan 2004 B1
6681013 Miyamoto Jan 2004 B1
6690677 Binder Feb 2004 B1
6690792 Robinson et al. Feb 2004 B1
6693916 Chaplik et al. Feb 2004 B1
6697358 Bernstein Feb 2004 B2
6701406 Chang et al. Mar 2004 B1
6704824 Goodman Mar 2004 B1
6710704 Fisher et al. Mar 2004 B2
6711138 Pai et al. Mar 2004 B1
6721365 Yin et al. Apr 2004 B1
6721419 Stell et al. Apr 2004 B1
6721790 Chen Apr 2004 B1
6732315 Yagil et al. May 2004 B2
6735217 Webber, Jr. et al. May 2004 B1
6738382 West et al. May 2004 B1
6738597 Jeung et al. May 2004 B1
6747859 Walbeck et al. Jun 2004 B2
6748078 Posthuma Jun 2004 B1
6754186 Bullman Jun 2004 B1
6763097 Vitenberg Jul 2004 B1
6763109 Hoskins Jul 2004 B1
6771750 Nayler et al. Aug 2004 B1
6771773 Hanrieder et al. Aug 2004 B1
6771774 Phan et al. Aug 2004 B1
6773632 Marshall et al. Aug 2004 B1
6775299 Olson et al. Aug 2004 B1
6778549 Keller Aug 2004 B1
6778646 Sun Aug 2004 B1
6785296 Bell Aug 2004 B1
6795539 Culli et al. Sep 2004 B2
6815844 Kovarik Nov 2004 B2
6819760 Nayler Nov 2004 B1
6831975 Easwaran et al. Dec 2004 B1
6831976 Comerford et al. Dec 2004 B1
6836546 Willer Dec 2004 B1
6839345 Lu et al. Jan 2005 B2
6842459 Binder Jan 2005 B1
6847718 Hiraoka Jan 2005 B1
6854895 Coffey et al. Feb 2005 B2
6856799 Ritter Feb 2005 B1
6862353 Rabenko et al. Mar 2005 B2
6864798 Janik Mar 2005 B2
6865193 Terk Mar 2005 B2
6868072 Lin et al. Mar 2005 B1
6868265 Zodnik Mar 2005 B2
6880020 Rubinstein et al. Apr 2005 B1
6889095 Eidson et al. May 2005 B1
6904134 Jeon et al. Jun 2005 B2
6909725 Chow Jun 2005 B1
6917681 Robinson et al. Jul 2005 B2
6922407 Wu Jul 2005 B2
6925089 Chow et al. Aug 2005 B2
6934754 West et al. Aug 2005 B2
6937056 Binder Aug 2005 B2
6941364 Kim et al. Sep 2005 B2
6943683 Perret Sep 2005 B2
6947736 Shaver et al. Sep 2005 B2
6961303 Binder Nov 2005 B1
6963559 Elo Nov 2005 B2
6967952 Akers et al. Nov 2005 B1
6973394 Jaeger et al. Dec 2005 B2
6989733 Simonsen et al. Jan 2006 B2
6996213 De Jong Feb 2006 B1
6996729 Volkening et al. Feb 2006 B2
6998964 Lomax, Jr. et al. Feb 2006 B2
7003102 Kiko Feb 2006 B2
7009946 Kardach Mar 2006 B1
7016377 Chun et al. Mar 2006 B1
7053501 Barrass May 2006 B1
7054303 Miyazaki et al. May 2006 B2
7079647 Tomobe Jul 2006 B2
7095848 Fischer et al. Aug 2006 B1
7095849 Smith et al. Aug 2006 B2
7099368 Santhoff et al. Aug 2006 B2
7099707 Amin et al. Aug 2006 B2
7106721 Binder Sep 2006 B1
7113574 Haas et al. Sep 2006 B1
7142560 Mansfield Nov 2006 B2
7142563 Lin Nov 2006 B1
7149474 Mikhak Dec 2006 B1
7154996 Strauss Dec 2006 B2
7292600 Binder Nov 2007 B2
7653033 Beach et al. Jan 2010 B2
7769030 Binder Aug 2010 B2
7830858 Binder Nov 2010 B2
7852874 Binder Dec 2010 B2
20010039660 Vasilevsky et al. Nov 2001 A1
20020006137 Rabenko et al. Jan 2002 A1
20020015489 Ben-David Feb 2002 A1
20020021465 Moore et al. Feb 2002 A1
20020031114 Terry et al. Mar 2002 A1
20020039388 Smart et al. Apr 2002 A1
20020057581 Nadav May 2002 A1
20020059634 Terry et al. May 2002 A1
20020064039 Clodfelter May 2002 A1
20020069417 Kliger et al. Jun 2002 A1
20020076038 Barrese et al. Jun 2002 A1
20020097821 Hebron et al. Jul 2002 A1
20020104009 Zodnik Aug 2002 A1
20020110236 Karnad Aug 2002 A1
20020116720 Terry et al. Aug 2002 A1
20020118676 Tonnby et al. Aug 2002 A1
20020128009 Boch et al. Sep 2002 A1
20020144159 Wu et al. Oct 2002 A1
20020150155 Florentin et al. Oct 2002 A1
20020159402 Binder Oct 2002 A1
20020166124 Gurantz et al. Nov 2002 A1
20020166125 Fulmer Nov 2002 A1
20020174423 Fifield et al. Nov 2002 A1
20020176567 Chen et al. Nov 2002 A1
20020180592 Gromov Dec 2002 A1
20020194383 Cohen et al. Dec 2002 A1
20020194605 Cohen et al. Dec 2002 A1
20020198952 Bell Dec 2002 A1
20030016794 Brothers Jan 2003 A1
20030061522 Ke et al. Mar 2003 A1
20030062990 Schaeffer et al. Apr 2003 A1
20030066082 Kliger et al. Apr 2003 A1
20030099228 Alcock May 2003 A1
20030107269 Jetzt Jun 2003 A1
20030112965 McNamara et al. Jun 2003 A1
20030133476 Stone et al. Jul 2003 A1
20030146765 Darshan et al. Aug 2003 A1
20030151695 Sahlin et al. Aug 2003 A1
20030154273 Caveney Aug 2003 A1
20030154276 Caveney Aug 2003 A1
20030206623 Deichstetter et al. Nov 2003 A1
20030207696 Willenegger et al. Nov 2003 A1
20030207697 Shpak Nov 2003 A1
20040013098 Tseng et al. Jan 2004 A1
20040073597 Caveney Apr 2004 A1
20040083262 Trantow Apr 2004 A1
20040090984 Saint-Hilaire et al. May 2004 A1
20040107299 Lee et al. Jun 2004 A1
20040107445 Amit Jun 2004 A1
20040121648 Voros Jun 2004 A1
20040136384 Cho Jul 2004 A1
20040147232 Zodnik Jul 2004 A1
20040198236 Paine et al. Oct 2004 A1
20040204040 Heijnen Oct 2004 A1
20040268160 Atkinson et al. Dec 2004 A1
20050038875 Park Feb 2005 A1
20050047379 Boyden et al. Mar 2005 A1
20050053087 Pulyk Mar 2005 A1
20050073968 Perlman Apr 2005 A1
20050076148 Chan Apr 2005 A1
20050086389 Chang Apr 2005 A1
20050086694 Hicks et al. Apr 2005 A1
20050125083 Kiko Jun 2005 A1
20050136972 Smith et al. Jun 2005 A1
20050152306 Bonnassieux et al. Jul 2005 A1
20050152337 Wurtzel et al. Jul 2005 A1
20050177640 Rubinstein et al. Aug 2005 A1
20060153169 Koifman et al. Jul 2006 A1
20060193310 Landry et al. Aug 2006 A1
20060193313 Landry et al. Aug 2006 A1
20060215680 Camagna Sep 2006 A1
20060238250 Camagna et al. Oct 2006 A1
20060251094 Van Vleck et al. Nov 2006 A1
20060251159 Huotari et al. Nov 2006 A1
20060251179 Ghoshal Nov 2006 A1
20060280197 Stone Dec 2006 A1
20060291493 Schley-May et al. Dec 2006 A1
Foreign Referenced Citations (16)
Number Date Country
33 29 336 Dec 1983 DE
0241152 Oct 1987 EP
1343253 Sep 2003 EP
2368979 May 2002 GB
56-87192 Jul 1981 JP
57-204655 Dec 1982 JP
58-206257 Dec 1983 JP
7-336379 Dec 1995 JP
09-84146 Mar 1997 JP
9623377 Aug 1996 WO
WO 9623377 Aug 1996 WO
WO 9750193 Dec 1997 WO
WO 9802985 Jan 1998 WO
WO 0143238 Jun 2001 WO
WO 02091652 Nov 2002 WO
WO 02102019 Dec 2002 WO
Related Publications (1)
Number Date Country
20070183447 A1 Aug 2007 US
Divisions (1)
Number Date Country
Parent 10178223 Jun 2002 US
Child 10793769 US
Continuations (2)
Number Date Country
Parent 10793769 Mar 2004 US
Child 11593084 US
Parent 09123486 Jul 1998 US
Child 10178223 US