WO2000057375A1 - Security systems - Google Patents

Security systems Download PDF

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Publication number
WO2000057375A1
WO2000057375A1 PCT/GB2000/000920 GB0000920W WO0057375A1 WO 2000057375 A1 WO2000057375 A1 WO 2000057375A1 GB 0000920 W GB0000920 W GB 0000920W WO 0057375 A1 WO0057375 A1 WO 0057375A1
Authority
WO
WIPO (PCT)
Prior art keywords
control unit
home control
security
code
remote operations
Prior art date
Application number
PCT/GB2000/000920
Other languages
French (fr)
Inventor
Stephen Michael Reeder
David William Bradley
Original Assignee
British Telecommunications Public Limited Company
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by British Telecommunications Public Limited Company filed Critical British Telecommunications Public Limited Company
Priority to CA002367094A priority Critical patent/CA2367094A1/en
Priority to AU31786/00A priority patent/AU3178600A/en
Priority to EP00909506A priority patent/EP1166244A1/en
Publication of WO2000057375A1 publication Critical patent/WO2000057375A1/en

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Classifications

    • GPHYSICS
    • G08SIGNALLING
    • G08BSIGNALLING OR CALLING SYSTEMS; ORDER TELEGRAPHS; ALARM SYSTEMS
    • G08B13/00Burglar, theft or intruder alarms
    • G08B13/02Mechanical actuation
    • G08B13/14Mechanical actuation by lifting or attempted removal of hand-portable articles
    • G08B13/1409Mechanical actuation by lifting or attempted removal of hand-portable articles for removal detection of electrical appliances by detecting their physical disconnection from an electrical system, e.g. using a switch incorporated in the plug connector
    • G08B13/1418Removal detected by failure in electrical connection between the appliance and a control centre, home control panel or a power supply
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/50Network services
    • H04L67/52Network services specially adapted for the location of the user terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/12Protocols specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks

Definitions

  • the present invention relates to security systems and more particularly to security systems for protecting electrical or electronic apparatus.
  • the Assignee of the present invention disclosed a security system for protecting electrical appliances, in which appliances fitted with a security module, preferably during manufacture, were responsive to the connection of mains electrical power to forward a signal by way of the mams electrical connection to a security unit.
  • the security unit was connected to both the mams power supply and to a telephone line at the premises.
  • the security unit On receipt of signalling from an appliance, the security unit established a telephone call to a remote operations centre which, based on the calling line identity (CLI) of the customer's line returned a security code.
  • CLI calling line identity
  • the returned security code was then transmitted by the domestic security unit to the requesting apparatus which, provided a correct code was received, allowed connection of electrical power through to operational circuits. If an incorrect code or no code was returned, power to operational circuits was denied.
  • the term "security aware apparatus" as used herein means any energy consuming device including means responsive to an interruption of power to effect, on reconnection of power, a requirement for receipt of signals characterising a locational identity or an apparatus identity and including means responsive to receipt of signals characterising an incorrect code, or to the expiry of a period of time during which no such characterising signals are received, to effect temporary inoperabihty of the device until receipt of signals characterising a correct code.
  • a security system comprising a home control unit coupled to receive signals from associated security aware apparatus and including communication means to communicate with a remote operations centre and to receive from the remote operations centre in respect of the or each associated security aware apparatus at least one release code to effect a response to requesting security aware apparatus, the home control unit including means responsive to signals from a global positioning satellite system to determine its location and, on communicating with the remote control centre, to forward signals characterising the determined location whereby the remote operations centre determines from the location the or each release code to be transmitted to the home control unit.
  • the home control unit includes a data store in which release codes for the or each of the associated security aware apparatus is stored, on first connection of a security aware apparatus to the system, the home control unit responding to signals requesting a code transmitted therefrom by communicating a respective identity code received from the transmitting apparatus and the locational data to the remote operations centre, the remote operations centre returning at least one respective code for retransmission to the requesting apparatus.
  • the data store may be volatile whereby on disconnection of mains electrical power from the home control unit all stored codes are lost, the home control unit, on re-connection of power, communicating with the remote operations centre for downloading of all data whereby if the home control unit is moved to a different location the remote operations centre downloads different release codes or downloads no codes.
  • the home control unit may, in addition to transmitting location data to the remote operations centre, transmit a unit identity code unique to the home control unit whereby home control units removed to an unauthorised location may be traced.
  • Communication between the home control unit and the remote operations centre may be by PSTN telephony, radio transmission using direct communication or by way of low earth orbiting satellite, radio transmission using GSM standards and cellular networks or by connectionless communication such as by way of internet communication or electronic mail messaging.
  • the home control unit may include means to receive signals from security aware apparatus by data messages superimposed on a mams electrical power line, by low power radio communication which may use DECT (digital cordless telephony) protocols or by connectionless communication. Transmitting means for returning release codes to security aware apparatus may also use data messages superimposed on a mains electrical power line, by low power radio communication or by connectionless communication using internet or intranet facilities.
  • DECT digital cordless telephony
  • security aware apparatus comprising a data store for holding at least one code unique to the location of the apparatus, processor means responsive to connection of electrical power to cause transmission of signals characterising a code request, transmitting means for transmitting the code request and receiving means for receiving a response to the code request, the processing means being responsive to an incorrect code or, if previously coded, expiry of a predetermined time period without receiving a code, to cause temporary inoperabihty of the apparatus, the transmitting means including a low power radio transmitter.
  • the radio transmissions are compatible with DECT protocols and transmission standards.
  • the receiving means may comprise a low power radio receiver which may operate in accordance with DECT protocols and standards.
  • Figure 1 is a schematic representation of at least a part of the security system
  • Figure 2 is a block schematic diagram of a typical security module of protected apparatus
  • Figure 3 shows at least a part of one of the security units of Figure 1 .
  • Figure 4 is a schematic representation of a data stored by protected apparatus.
  • Figures 5a to 5e show signalling interchange between the security control unit of Figure 1 and the appliance and a remote operations centre where a remote operations centre is provided;
  • Figure 6 shows data which may be stored at a remote location or in a home control unit
  • Figure 7 shows data which may be stored in a home control unit responsive to a remote operations centre
  • Figures 8, 9 and 1 0 is a flow chart showing a process control of the protected apparatus of Figure 2;
  • Figures 1 1 , 1 2 and 1 3 shows part of a flow chart for the processor of a home control unit of Figure 1 which is responsive to a remote operations centre;
  • Figures 1 a and 14b show a flow chart of a remote operations centre (where provided) ;
  • Figure 1 5 is a schematic diagram showing a number of alternative ways of communicating between a home control unit and a remote operations centre;
  • Figure 1 6 is a block schematic diagram showing various methods of determining location of a home control unit
  • Figure 1 7 is a schematic diagram of security aware apparatus having a DECT interface for communicating with a home control unit
  • Figure 1 8 is a schematic diagram showing a part of a home control unit with a DECT interface for communicating with security aware apparatus of Figure 1 7;
  • Figure 1 9 is a schematic diagram showing a modification to include a TCP/IP interface for communication by internet or intranet;
  • Figure 20 shows an adapted home control unit for use with the apparatus of Figure 1 9;
  • Figure 21 is a block schematic diagram of secure premises having stand alone security unit
  • Figure 22 to 25 are flow charts of the operation of a processor in the security unit of Figure 21 ;
  • Figures 26A to E are signalling charts showing signalling between the security unit of Figure 21 and a domestic appliance;
  • FIG 27 is a schematic representation of a data store of the security unit of Figure 21 .
  • the system previously disclosed, included within domestic premises 1 , the boundary of which is indicated by a dotted line 3, a home control unit 2 containing security features for the premises 1 .
  • Various versions of the home control unit 2 are described hereinafter, some of which may be "stand alone” applications but most of which will communicate with a remote security centre.
  • the home control unit 2 communicates with security aware electrical appliances, one of which is indicated at 5. Communication between the home control unit and electrical appliance 5 may be in a number of ways, again hereinafter described, but basically security aware electrical appliance 5 requires a dedicated release code to be transmitted to it each time mains electrical power from a supply line 6 is disconnected and reconnected. If a security aware electrical appliance does not receive its release code then a processor, preferably integrated with power supply or other circuitry, prohibits or disconnects electrical supply to operation circuits of the apparatus.
  • the electrical appliance 5 is modified by incorporating a switch 1 8 between a power supply 1 2 of the apparatus and operational circuits 1 7. It will be appreciated that the switch 1 8 is shown purely for ease of description and it may be incorporated into the power supply 1 2.
  • the apparatus also includes a process control 1 5, a data store 1 6 and, in the particular version shown here, a frequency shift key interface (FSK) 1 4 for communicating across the electrical supply line 6 with a home control unit.
  • FSK frequency shift key interface
  • FIG 3 shows the essential components of the home control unit 2, these being a processor 23, data store 24 and a corresponding FSK communications interface 25 connected to the supply line 6.
  • the process control unit 1 5 consults the associated data store 1 6 to determine whether the apparatus has previously been connected in a security aware environment. If it has been so previously connected then, referring additionally to Figure 4, an appliance unlock code 26 will be stored, the process control therefore causes signalling to be applied to the supply line 6 by way of the interface 14, which identifies, for example by use of a manufacturer reference, manufacturers equipment reference and electronic serial number, the specific piece of electrical apparatus which has been connected.
  • the home control unit of figure 3 detects the presence of the signalling and via its own FSK interface 25 compares the received security code with information in its own data store 24 which may be, depending on the type of centre, a volatile store. Having compared the equipment serial number with its own data, the processor recovers from its data store the appropriate unlock code for the particular appliance and causes this code to be transmitted by way of the FSK interface 25 back to the electricity supply line 6 and thence through FSK interface 14 to the appliances own processor 1 5. Assuming that the codes are compatible the processor control 1 5 either now permits power to be connected to the operational circuits or, in an alternative mode of operation, does not effect power disconnection.
  • the process control unit 1 5, (Fig 2) which may be integral with the power supply 1 2 or may be a part of the operational circuitry shown at 17, is arranged to determine as hereinafter described whether power should be supplied or denied to other operational circuits 1 7 this capability being generally indicated by switch means 1 8. It will be appreciated that the process for denying power from the switched mode power supply 1 2 would not be so simple as a switch 1 8 which could be easily circumvented and will actually be better protected such that in order to overcome the security arrangements it will be necessary to replace the entire power supply unit or substantial components thereof.
  • the process control 1 5 has access to data held in a data store 1 6 the purpose of which will become apparent.
  • the data store 1 6 is a non-volatile storage element capable of holding an appliance identity, the location identity, one or more unlocking codes and a blanking code as indicated in Figure 4
  • the location code is a 64 bit code unique to the property in which the appliance is installed and which is derived from the CLI and by the remote operations centre of Figure 1 when a customer subscribes to the service.
  • the or each unlocking code is a 24 bit code one of which is unique to the customer premises 3.
  • a further unlock code of 24 bits may be provided in a more complex arrangement, the further 24 bit unlock code being unique to the particular electrical apparatus 5.
  • a unique code for the apparatus 5 is provided this will be generated on the first occasion in which the appliance 5 is plugged into the electricity supply and will be received in response to a request to the remote operation centre 4 as hereinafter described or by stand-alone home control unit.
  • the home control processor includes the same functionality which performs in a similar manner. Where there are substantial differences in operation these may be specifically considered - for example in one case providing a special plug in module for effecting appliance code blanking - or will be apparent.
  • the 24 bit blanking code is unique to the appliance and, as in the unique unlock code, is generated by the remote operations centre 4 in response to receipt of a request from the apparatus 5.
  • the purpose of the codes is firstly to locate the apparatus, that is to say the 64 bit appliance location code is unique to the home control unit 2 in a customer premises 3 and, once a security aware apparatus 5 is aware of its location, each time it is connected or disconnected from the mains electricity supply 6 its process controller 1 5 causes FSK interface 1 4 to transmit the location information and request an unlock code.
  • a unique unlock code for the appliance i.e. the 24 bit unlock code (if any) uniquely provided by the remote operations centre 4 or will be returned by the home control unit 2 to the appliance.
  • the home control unit 2 will only recognise its own location code. Where only house codes are in use the home control unit 2 will return the 24 bit house unlock code by way of the electricity supply line and the FSK interface 14.
  • power is denied to the operational circuits.
  • power may be supplied to the operational circuitry for a pre-determined period, say 1 5 minutes, prior to closing down, to give sufficient time for an appropriate release code to be received.
  • the blanking code which is unique to an electrical appliance and which is known only to the particular appliance 5 and to the remote operations centre 4 (except in the case of stand-alone operation) is used to permit the bona fide transfer of security aware apparatus between locations or upon sale of the equipment.
  • a timer "load broadcast cover” timer 302 is started by process controller 1 5 which now waits to receive a broadcast message by way of the FSK interface 14.
  • the purpose of the broadcast timer is to cover the eventuality where a major power disruption has resulted in a number of security aware appliances in the same customer premises 3 having a reconnection of electricity supply at the same time. If a catastrophic domestic electricity failure has occurred then, as hereinafter described, the home control unit 2 will also have lost electrical power.
  • the process controller now goes into an interruptible state 303 to wait for the broadcast message.
  • the processor 1 5 will leave the wait broadcast message state 303 in response to one of two events, a first of which is that the broadcast timer set at step 302 will expire and the path indicated at 304 will now be followed.
  • an unlock request is sent through FSK interface 1 4 to the electricity supply line 6.
  • the unlock request comprises the 64 bit house code as stored in the data store 1 6 and/or the apparatus identity 27,28.
  • an unlock timer is loaded as indicated at step 306 and the processor 1 5 waits for an unlock message hereinafter described with reference to Figure 8A.
  • a broadcast message will be received as indicated at step 308, the broadcast message being expected to be a 24 bit house unlock code.
  • This code is compared at step 309 with the house code stored in the data store 1 6 of the appliance 5 and as indicated at step 31 0 if the code is correct the power supply 1 2 is allowed into normal operation through a power up routine described hereinafter with reference to Figure 9.
  • step 31 1 If an incorrect code is received and the system lock flag of the data store 1 6 is set to indicate that the particular piece of apparatus 5 is security aware, that is it has previously been connected then the process controller 1 5 causes the power supply 1 2 to power down in known manner so that power will not be supplied to the operational circuits 1 7 of the particular apparatus 5. If at step 31 1 the system lock is not found to be armed then at step 31 3 an unlock request will be broadcast in the same manner as at step 305 and an unlock hold timer will be commenced at step 31 6.
  • the wait unlock response state 400 into which the processor 1 5 has been placed may be left as a result of either the unlock hold timer expiring 401 , an unlock response 402, a system lock enable response 403 or a blanking instruction 404.
  • the unlock hold timer expires as indicated at step
  • the system lock flag in the associated data store 1 6 is interrogated at step 406. If the system lock is not in the enabled state, that is to say the apparatus 5 has not previously been coded from the remote operations centre 4 or a subsequent blanking operation has been carried out then the process controller 1 5 goes into the power up mode. If however the system lock is armed and no unlock response is received then the process controller will enter the power down state and as indicated in Figure 1 0 will lock to that state until such time as the apparatus is disconnected from the electrical supply 6 and reconnected in a bone fide situation. If now the response to the unlock request is an unlock code as indicated at
  • the unlock code is compared at step 407 with data held in the data store 1 6 and if the code is correct, then at step 408 the normal power up function occurs. Again if the code received is incorrect then the stable power down state 600 will be adopted. Note that if individual appliance codes are being used the apparatus will only unlock to its unique code once the broadcast timer has expired. If only house codes are in use then the house code and the blanking code is unique. The appliance code and blanking code will not be identical or related to each being individually randomly generated by the remote operations centre if appropriate as hereinafter described.
  • step 403 if a system lock enable is received in response to the unlock request then at step 409 the system lock flag is interrogated to determine whether it was previously armed and if so this would indicate that the unit has been incorrectly plugged to a home control unit which has no previous record of this particular piece of apparatus 5 and therefore the system enters the power down state 600. If however the system lock is not armed then the unlock and blanking codes including the house code and separate apparatus unlock code, if applicable, are received and stored at step 410 after which at step 41 1 the system lock enable is set in the data store 1 6 and a system lock enabled message is transmitted and power up state 500 is entered.
  • a system lock enable response should only be received when the apparatus is first plugged to a home with home control unit facilities or after the blanking field has been correctly activated as a result of an unlock response transmitted incorporating a blank instruction at step 404.
  • the blanking instruction is received from the remote operations centre 4 and blanking instruction will only be transmitted under specific circumstances which a known owning customer will request.
  • the blanking code On receipt of a blanking instruction the blanking code is compared at step 41 2 and provided that it is correct as indicated at step 41 3 then at step 414 all of the code fields in the data store 1 6 are blanked and the system lock enable flag is reset so that the apparatus is now in condition for transfer to other premises.
  • the system Once the blanking of the data store 1 6 has been completed then the system will enter the power up state 500 in the normal manner. If however at step 41 3 an incorrect blanking code is received in response to the unlock request then the system enters the power down stable state 600.
  • FIG. 9 show the two stable states of piece of apparatus 5 being respectively the power up state 500 and a power down state 600. In the power down state 600 the apparatus is effectively disabled and none of the operational circuits 1 7 will receive power. Where apparatus includes an appropriate display unit then as the microprocessor locks to prevent the apparatus functioning it may display an appropriate message such as system lock.
  • the power supply 1 2 will be supplying current to the operational circuits 1 7 in known manner but the process control 1 5 continues to monitor the FSK interface 14 for any false system lock enable states input.
  • the system lock enable message includes the electronic serial number of the apparatus which prevents false triggering to any given system lock enable message
  • step 503 will store the unlock and blanking code fields received and will enable the system lock at step 504 and send an acknowledgement.
  • the system then returns to the power up stable state 500.
  • a security aware appliance 5 is controlled by messages transmitted by a process controller 1 5 through an FSK interface 14 to the electricity supply line 6, the FSK interface 14 also receiving messages whether directly from a home control unit 2 or from a remote operations centre 4 by way of a home control unit 2 for use by the process controller 1 5.
  • the message format and messages transmitted by the appliance 5 are summarised in the following table:
  • Equipment Type 64 bit field characterising the manufacturer and product uniquely. First 1 6 bits identify the manufacturer and will be controlled and issued by a remote operations centre body. The latter 48 bits are manufacturer allocated apparatus and model identities and will be entered into the system data store of a security aware apparatus during manufacture. Electronic Serial Number 64 bit field uniquely identifying this product from other equipment of the same type (as identified by the previous field)
  • Unlock Code ( 1 1 24 bit field carrying the unlock code for the property
  • Unlock code (2) 24 bit field carrying a unique unlock code for the particular apparatus (if used) generated by the security provider (remote operations centre) as per appliance basis
  • the home control unit 2 will include programmable storage for holding the access code (telephone number, Internet Address, E-mail Address) to the remote operator centre 4. Assuming that there are items in the list, as indicated at step 804, the house unlocking code is broadcast at step 805 for comparison in individual appliances 5 as described hereinbefore with reference to Figure 8.
  • the home control unit will move to its normal mam state 900 which is its primary stable state at all times when power is connected.
  • the FSK interface 25 of Figure 3 monitors the electricity power line 6 for an unlock code request received from one of the security aware appliances 5 in the customer premises 3.
  • the received appliance identity code is compared with the data held in the data store 24 to determine whether the equipment is currently listed as present and if so interrogates a blanking field associated with the particular piece of apparatus to determine whether that field is set, this occurs at step 903.
  • the blanking field for a piece of apparatus will only be enabled if the customer has previously had an interchange with the remote operations centre 4 to request removal of a piece of equipment from the list.
  • the blanking instruction arises as a result either of the customer keying a special code in to the control centre or by plugging a special module in to provide supply line signals to the control centre.
  • the processor 23 looks at the appropriate unlock code for the requesting apparatus (or the house code where individual unlock codes are not in use), at step 904, and uses the FSK interface 25 to transmit the unlock response (namely the unlock code) at step 905 prior to returning to its normal state.
  • step 902 if the apparatus 5 forwarding the request is not present in the equipment list held in the data store 24, this will indicate that the appliance 5 has not previously been plugged into a system in the customer premises 3.
  • the processor 23 therefore causes the establishing of a call through the networks as previously referenced and using the modem 22 interchanges with the remote operations centre 4 data identifying an equipment code request, at step 906, which request includes some identification of the apparatus plugged in, for example the manufacturing code, type and serial number as previously described.
  • Causing the modem 22 to forward this information results in a response from the operations centre including an unlock code and blanking code which at step 909 is transmitted by way of the FSK interface 25 to the electricity supply line 6 for receipt by the process control 1 5 via FSK interface 1 4 of Figure 2 causing the appropriate response of Figure 8 i.e. the unlock response chain beginning at step 403 to be followed.
  • step 910 a timer is started awaiting the return of a system lock enable hereinafter described with reference to Figure 1 2.
  • the home control unit 2 is in the system lock confirm state 970 it will only leave after if the timer, set at step 91 0, expires as indicated at step 971 in which case it repeats the transmit of system lock enable at step 972 and recommences the timer or on receipt of a system lock enable message as transmitted at step 41 1 of Figure 8. Note that if the system lock is armed, as indicated at step 409 of Figure 8 in the particular piece of apparatus, then it is likely that the entire system installed in the customer premises 3 will lock up until such time as the appliance 5 is disconnected from the system.
  • step 974 the list in the data store 24 is marked accordingly at step 975 and the system returns to its main state 900 after transmitting a confirmation message to the remote operations centre 4 (if appropriate) .
  • step 903 if as hereinbefore referred the blanking field has been enabled as a result of a customer application to the remote operations centre 4 (or direct instruction as referred to above), then after step 903 a timer is loaded at step 91 1 , following which the unlock and blanking codes are transmitted by way of the FSK interface 25 of Figure 3 to the electricity supply line 6 this being received by the appropriate FSK interface 14 of Figure 2 in apparatus to be blanked.
  • a blank covering timer is loaded at step 91 3 after which the equipment enters a wait blank response state at 920 ( Figure 1 3). If the blank covering timer expires 921 ( Figure 1 3) prior to receipt of a response from the apparatus 5 which is to be blanked then the system simply returns to the mam state since this would indicate that an incorrect code has been identified at step 41 2 of Figure 8.
  • the remote operations centre is aware that adjacent properties or properties likely to share a common electricity supply such as in households divided into apartments but having separate telephone line 7 and home control units 2, three bits of the message type will be used to identify messages directed to a particular home control unit 2, and the home control unit 2 will use the particular message type on first set up to program a communications channel identified by those first three bits to security aware appliances in particular premises.
  • Intelligence may be built into the remote operations centre 4 enabling the system to cause blanking of apparatus wrongly allocated to a particular home control unit and subsequent correction when the blanked apparatus is reconnected.
  • the message formats and messages incoming and outgoing to and from the home control unit 2 are as shown in Table 2 in which the remote operations centre 4 is identified by the legend ROC and a piece of electrical apparatus 5 is identified as SWA.
  • Message Type 8 bit field indicating the type of message being sent
  • Message Reference 8 bit field used to link a series of message exchanges into a session
  • Equipment type 64 bit field characterising the manufacturer and product uniquely, first 1 6 bits characterising the manufacturer and will be controlled and issued by the remote operations centre, the latter 48 bits being under manufacturer control Equipment Serial Number 64 bit field uniquely identifying the product from other equipment of the same type.
  • Appliance Location Code 64 bit field uniquely identifying the security provider (first 24 bits identifying the remote operations centre) and the property within the domain, that is the customer premises 3 identified by the latter 40 bits
  • Unlock Code 24 bit field carrying the unlock code for the property (house code) or the unlock code for the apparatus within the property as appropriate
  • the remote operation main control state 81 on receipt of an incoming call signalling by way of a connected modem will indicate the request which has been received from the home control unit 2 of a customer premises 3
  • the most likely input from a home control unit 2 is that shown in 81 1 that is to say a modem signal requesting an equipment list from the ROC.
  • the CLI or other locational data will provide line identity to the processor as indicated at step 81 2 and the processor will compare the requesting line identity with a list of registered line identities held in a data store. If at step 81 3 a registered line identity or location code is found then the equipment list for that location together with the house code and individual equipment unlocking codes (if appropriate) and any blanking information are retrieved from the data storage unit at step 814 This information is then passed by way of the modem at step 81 5 for use by the home control unit 2 as indicated in Figure 1 1 .
  • step 81 3 a request has been received from an unregistered line or location at step 81 6 the interchange of data with the remote customer is terminated and the line identity and any further information received in the equipment list request are recorded in an operations and maintenance exception log which may be used to determine attempted fraudulent use of the system or to identify the location of a potentially stolen control centre unit 2.
  • any blanking code request is returned to the home control unit for use at step 903 of figure 1 1 A.
  • the blanking field together with the stored blanking code for a particular piece of equipment will only be present as a result of either the action of control centre staff in response to a customer's request or as a result of a controlled access using multifrequency tones by way of the telephone line to provide personal identification numbers (PIN) or other security so that the customer can request blanking of one or more pieces of security aware apparatus 5.
  • PIN personal identification numbers
  • the system now waits either for an equipment store confirm message from the home control unit 2 as indicated at figure 1 2 in which case as indicated at step 828 on detection of the equipment store confirm the equipment cover timer is stopped at step 829 and the appropriate list for the registered line identity is updated in the data storage unit with the identity of the new piece of equipment together with it's appropriate blanking and unlock codes as generated previously. If however, the equipment cover timer expires as indicated at step 830 then the system at step 831 restarts the timer and makes a further attempt at step 832 to forward the equipment code response to the home control unit 2.
  • the final incoming signal from a home control unit 2 at a customer premises 3 is that of an HCC blank complete detected at steps 835 which comes back as a result of blanking being completed at a home control unit as indicated at steps 924 and 925 of figure 1 3.
  • steps 835 On receipt of the HCC blank complete indication from a home control unit 2 to the location is collected at step 836 and at step 837 the usual check is made to ensure that this is from a valid location.
  • steps 81 6 and 81 7 in which the modem exchange is terminated and the line identity and other information recorded in an exception log is provided for non-registered locations.
  • a HCC blank response is transmitted at step 840 which response may include a revised complete equipment list for the given location if required.
  • a further advantage of the present invention is the ability to identify from a stored location code that is the house location code, of a piece of apparatus the origin of a wrongly located appliance. Thus, security forces or police might be provided with repatriation units whereby recovered apparatus can be identified.
  • the remote operations centre 4 receives a repatriation location request 850 the repatriation line identity is collected from the CLI interface 32 and the usual check to ensure that the line is registered as a repatriation line is carried out at step 852.
  • the exchange of data via the modem 33 is terminated and the line identity and other information concerning the transaction is transferred to the exception log at step 81 7.
  • the equipment location code received is used to look up in the data store address details for the original source of the apparatus 853 which information is transmitted by way of the modem at step 854 to the repatriation equipment.
  • the system may be adapted to receive the manufacturers code, equipment type and serial number from the security aware apparatus being installed at the customer premises 3. This information may be used to access manufacturers databases or distributors databases to ensure that the equipment is of a bona fide origin.
  • Bona fide registered equipment repairers may be permitted to receive on a single call an unlocking code for a piece of security aware apparatus but would not be allowed to receive a blanking code such that so long as the apparatus remained in the possession of the repairer it could be unlocked for the purposes of repair but could not be blanked for onward distribution.
  • Timed locking of apparatus could also be provided such that if customer premises were not being occupied or parents wish to restrict access to particular pieces of equipment then temporary locking could be provided on request.
  • any request for an equipment list arising from the designated premises if the home control unit 2 detected a request from a piece of apparatus not included in the list might include a return list indicating that the apparatus was to remain locked. Release of the locked apparatus could only occur on a subsequent request for an equipment list after the expiry time set for unlocking.
  • Table 3 The following message formats shown in Table 3 apply at the remote operations centre.
  • Equipment Stored Incoming message type equipment type, electronic mail
  • Equipment Code Outgoing message type appliance location code
  • Response unlock code blanking code
  • checksum HCC Blank Response Outgoing message type checksum
  • Repatriation Location Outgoing message type, owner's name, [1 ..3] Response address line, telephone number, checksum
  • Message Type 8 bit field indicating the type of message being sent
  • Message Reference 8 bit field used to link a series of message exchanges in to a session
  • Equipment Type 64 bit field characterising the manufacturer and product uniquely First 1 6 bits characterise the manufacturer under control of a central domain. The later 48 bits are under manufacturer control.
  • Number of entries 1 6 bit field indicating the number of appliances protected at the selected property
  • a home control unit 2 communicates with a remote operations centre 4 by way of a telephone line.
  • the remote operations centre 4 utilising CLI to determine the location of the requesting home control unit and to base transfer of information thereon.
  • a number of home control units operate in a similar manner to that previously described carrying the functions of list creation and maintenance and code control for release of apparatus connected within the home.
  • the home control unit 41 may communicate directly with the remote operations centre 4 by way of radio frequency signals or microwave signals.
  • the home control unit may be connected to a transmitting aerial while the home control unit 4 has a receiving aerial 46.
  • the home control unit may have its identity burnt into a storage medium.
  • a home control unit 42 may communicate with the remote operations centre by way of a low earth orbital satellite system such as indicated by transmission dish 47 and receiver 48 at the remote operations centre 4. In this case signals from the home control unit to the remote operations centre are reflected by a low earth orbital satellite 49. Again the identity of the home control unit 42 may be burnt into the system or may be, as hereinafter described, determined by other means.
  • the home control unit 43 is connected by way of a GSM system 50 to a cellular switching system 51 , which communicates with the remote operations centre 4.
  • the GSM identity of the home control unit transmission system is known to the cellular switching system and therefore a CLI can be provided the remote operations centre.
  • Further alternative coding of the home control unit identity may be provided in addition to the cellular switching system identity or the alternative location methods hereinafter described may be used.
  • SIM subscriber identity module
  • home control unit 44 is shown as being connected, for example, by way of an internet service provider link 71 and the internet or world-wide web 52 to the remote operations centre by way of an internet point of presence 53. Again such a connectionless kind of communication either in real time or by way of electronic mail communication will allow transfer of data between the remote operations centre and the home control unit 44.
  • an e-mail message for example could be generated comprising the coded information from a stealth aware appliance to be transmitted by way of connectionless messaging to the remote operations centre where a return e-mail can be generated and sent back to the home control unit 44.
  • e-mail messaging capability could be built into stealth aware appliance 5 for example, so that in the absence of a home control unit 44 direct communication between a stealth aware appliance and the remote operations centre could be established, the remote operations centre being responsive to a serial identity in electronic form from the appliance to return appropriate unlock and blanking codes as required.
  • the remote operations centre being responsive to a serial identity in electronic form from the appliance to return appropriate unlock and blanking codes as required.
  • Figure 1 5 the difficulty of identifying with certainty the presence of a home control unit with a built in serial number and tying it to a particular location has been noted.
  • Figure 1 6 to which reference is now made, alternative positional location systems may be used.
  • GPS global positioning systems
  • a home control unit or a directly communicating self-aware apparatus with a GPS unit, as shown in the home control unit 54, as GPS 55 permits the near exact location of the requesting home control unit to be identified by use of t ⁇ angulation from two or three GPS satellites representatively shown at 56.
  • the home control processor prior to communicating with a remote operations centre the home control processor will utilise the GPS 55 to determine its co-ordinates and these co-ordinates are transmitted in the message to the remote operations centre 4.
  • the remote operations centre 4 need not even be in the same country or connected to the same network as the home control unit since the data store at the remote operations centre in respect of the particular home control unit will be based on its GPS identity.
  • the home control unit 43 (of Figure 1 5) location of the home control unit is possible by use of a t ⁇ angulation system of the cellular switching system 51 .
  • comparison of time delay in signalling between the transmitting aerial 50 of the home control unit 43 and a number of cellular operator receiving sites, schematically represented at 57, allows calculation of the location of the home control unit.
  • further locational detail can be obtained and passed to the remote operations centre 4.
  • unit identity module 59 which may be used in place of or in addition to each of the locational identity methods of CLI, radio signal t ⁇ angulation and GPS transmissions.
  • a home control unit and a remote operations centre 4 direct communication by way of the mams power line, for example by means of a locational chip built into an electricity meter connected to the mains electricity distribution network could be used.
  • a service provider potentially for example electricity distribution companies, could provide a control centre with which communication over the electricity supply using known protocols could be used to transfer data to and from a remote operations centre. This may be advantageous, for example in apartment blocks where an electricity substation within the block could provide service to all of the apartments connected thereto. The full functionality of the remote operations centre would thus be provided monitoring signals on a loop distribution for unit identity and code requests.
  • a DECT interface 60 transmits the requests as previously described, such requests arising from the reconnection of the switch mode power supply 1 2 and this communication is received on a corresponding DECT unit 63 incorporated in the home control unit 2.
  • the signalling is received by way of schematically represented aerial 62 which will also transmit the return information to the apparatus 5 by way of its DECT interface 60.
  • DECT interface 60 shows a modification of apparatus 5 and home control unit
  • the remote operations centre In return at step 81 5 the remote operations centre returns signalling which is either an empty equipment list 803 or, as indicated in Figure 5B, a list containing apparatus identities and codings. As indicated in Figure 5B, an unlock code is broadcast (805 of Figure 1 1 ) received by security aware apparatus at 308.
  • Figure 5E shows a sequence of events leading to blanking of an appliance.
  • the customer will have communicated as indicated with the remote operations centre to request blanking of appliance. Subsequent to this the customer will cause the home control unit to reset either by disconnecting power or by use of a reset button which will cause the home control unit to contact the remote operations centre with a request equipment list message (802-81 1 ) which will result in an equipment list being returned (81 5-803) to the home control unit with the blanking field of the appropriate appliance set.
  • a request equipment list message 802-81 1
  • the home control unit assumes disconnection of house power supply, it will broadcast the general unlock code at 805.
  • an unlock request will be transmitted by the appliance controller to the home control unit received at 901 .
  • This will result in a blank instruction being returned at step 91 2 from the home control unit which, as shown Figure 8A at step 404, will result in a system lock disabled response at 41 5 indicating that blanking has been completed.
  • an home control unit blank complete message is transmitted to the remote operations centre at 924 resulting in an home control unit blank response being transmitted back to the home control unit from the remote operations centre at 840.
  • FIG 21 shows the component parts of a security system using security aware appliances 5 of exactly the same form as hereinbefore described, but arranged to operate without use of a remote operations centre.
  • the security aware appliance 5 is connected to the mains electricity supply 6 within or connected to which is a security unit 72 either in the form of a plug in module or built in in some way to the electricity supply system as, for example, a dummy power socket or built into the premises electricity metering appliance.
  • a security unit 72 either in the form of a plug in module or built in in some way to the electricity supply system as, for example, a dummy power socket or built into the premises electricity metering appliance.
  • two special units a blanking key unit 74 and a memory unit 75 the function of which is noted hereinafter.
  • a back-up security unit 73 may be provided which shadows the output of the security unit 72 since there is no other central store of unlocking and blanking coding for appliances 5 connected to this kind of system.
  • the security units 72, 73 comprise the same components effectively as shown in Figure 3, but may additionally include the unit id 59 of Figure 1 6 or a GPS unit 55 which could be used by the stand alone control unit in generating codes and which, unless previously blanked, could result in the security unit not functioning if it is moved from its known GPS location.
  • the unit when the unit is first connected to power, as indicated in Figure 22 at 610, it will broadcast an unlock code at 61 1 before entering its main state at 700.
  • the broadcast unlock code 61 1 is always broadcast if ever power is disconnected from the security unit 72 and then reconnected.
  • the function of the unlock code is as hereinbefore described to permit equipment connected to the system to receive power on reconnection after a mains failure. This avoids multiple unlock requests being transmitted simultaneously from reconnected apparatuses.
  • the processor of the security unit 72 enters its mam state 700 ( Figure 23) awaiting an unlock request from secure apparatus.
  • the system checks at 702 to determine whether the item transmitting the request has an entry in the data store shown in Figure 27. If there is no entry for the requesting equipment, as indicated at 702, then at 706 unlock and blanking codes are created using, for example, a random number generation program and these unlock codes and blanking codes are stored at 708 in the equipment list of Figure 27 and the number of appliances in the list is updated.
  • a system lock enable message is transmitted to the security aware appliance and a system lock enable timer is set at 710.
  • the system then awaits a system lock confirm as indicated at 770 of Figure 24 and, assuming system lock enabled message is received from the security aware appliance 5 at step 774 returns to the main state of Figure 23.
  • step 702 where the requesting equipment appears to be in the list a check is carried out to determine whether the memory key 75 has been inserted and has transmitted an unlock request with a memory key identity. If the memory key has been inserted then the list (data store Figure 27) of the security unit 72 is dumped using the same transmission method as is used to the security aware appliances.
  • the memory key may either be stored in a safe place by the occupier of the premises 3 or may be used to dump the list to an operations centre either by direct transfer or by telephonic transfer.
  • an equipment code covering timer is loaded at 71 1 and a blanking instruction including the blanking code is transmitted at 71 2.
  • a timer is started at 71 3 and the system now waits for the blank response to come from the security aware appliance 5 at step 720.
  • the processor of the security unit 72 will return to its main state without taking further action. If however the blank response is received, as indicated at step 722, then the particular appliance is removed from the list and the number of appliances in the list updated accordingly.
  • the backup unit 73 may function in the same way as the memory key 75 in that the security unit may periodically do a list dump to the backup unit so that the data storage in each of the units is comparable.
  • the blanking key 74 may include coding so that only a blanking key relating to the particular security unit 72 can ever be used with the particular security unit to blank security aware appliances 5.
  • Figure 26A where on connection of mams power ( Figure 22 610) a broadcast unlock code is transmitted for receipt by the appliance controller so that if a complete domestic mams failure has occurred then this will be received as indicated in Figure 8, 308, in exactly the same manner as for other home control units using the remote operations centre.
  • Figure 23 and also to Figure 8 when an unlock request is transmitted by a security aware appliance 5 as indicated at 305, then as shown in Figure 26B if the apparatus is not currently in the equipment list then a system lock enable message will be created at 709 for reception as indicated at 403 of Figure 8A. This will result in a system lock enable message being returned at 41 1 to enable the home control unit 72 to add the apparatus tot he list.
  • an unlock response 705 is returned as shown in Figure 26C.
  • the security unit 72 may communicate with security aware appliances in any of the appropriate manners previously determined including but not limited to FSK signalling across a mains electricity supply, low powered radio signalling or DECT signalling. Intranet communication may also be used.

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Abstract

In a security system in which home control units communicate with a remote operations centre to receive coded information characterising release signals for security aware apparatus, the home control unit is responsive to signals from global positioning satellite system (GPS signals) to determine its location. The locational data may then be transmitted to the remote operations centre by direct radio communication (45), by communication by way of low earth orbital satellites (49), by communication through a GSM cellular switching centre (51) or by way of connectionless communication using the internet (52) or electronic mail messaging systems.

Description

SECURITY SYSTEMS
The present invention relates to security systems and more particularly to security systems for protecting electrical or electronic apparatus. In published European patent application number 675626 the Assignee of the present invention disclosed a security system for protecting electrical appliances, in which appliances fitted with a security module, preferably during manufacture, were responsive to the connection of mains electrical power to forward a signal by way of the mams electrical connection to a security unit. The security unit was connected to both the mams power supply and to a telephone line at the premises. On receipt of signalling from an appliance, the security unit established a telephone call to a remote operations centre which, based on the calling line identity (CLI) of the customer's line returned a security code. The returned security code was then transmitted by the domestic security unit to the requesting apparatus which, provided a correct code was received, allowed connection of electrical power through to operational circuits. If an incorrect code or no code was returned, power to operational circuits was denied.
In published PCT patent applicant number GB98/00337 (publication number W098 36391 ) the Assignee disclosed an improvement to the system the earlier invention, in which a volatile data store held codes for each of a number of appliances whereby only upon first connection of a new appliance or following a mains failure would it be necessary to generate a telephone call to the remote operations centre. Thus by providing a volatile data store for holing apparatus codes, application across the mains supply by a piece of apparatus requesting identity could be responded to locally.
Each of the above patent applications relies upon a modern telecommunications switching network in which CLI is available. It will be appreciated that some networks are unable to generate CLI and/or do not pass CLI across to other networks. For the avoidance of doubt, the term "security aware apparatus" as used herein means any energy consuming device including means responsive to an interruption of power to effect, on reconnection of power, a requirement for receipt of signals characterising a locational identity or an apparatus identity and including means responsive to receipt of signals characterising an incorrect code, or to the expiry of a period of time during which no such characterising signals are received, to effect temporary inoperabihty of the device until receipt of signals characterising a correct code. According to the present invention there is provided a security system comprising a home control unit coupled to receive signals from associated security aware apparatus and including communication means to communicate with a remote operations centre and to receive from the remote operations centre in respect of the or each associated security aware apparatus at least one release code to effect a response to requesting security aware apparatus, the home control unit including means responsive to signals from a global positioning satellite system to determine its location and, on communicating with the remote control centre, to forward signals characterising the determined location whereby the remote operations centre determines from the location the or each release code to be transmitted to the home control unit.
Preferably the home control unit includes a data store in which release codes for the or each of the associated security aware apparatus is stored, on first connection of a security aware apparatus to the system, the home control unit responding to signals requesting a code transmitted therefrom by communicating a respective identity code received from the transmitting apparatus and the locational data to the remote operations centre, the remote operations centre returning at least one respective code for retransmission to the requesting apparatus.
The data store may be volatile whereby on disconnection of mains electrical power from the home control unit all stored codes are lost, the home control unit, on re-connection of power, communicating with the remote operations centre for downloading of all data whereby if the home control unit is moved to a different location the remote operations centre downloads different release codes or downloads no codes.
The home control unit may, in addition to transmitting location data to the remote operations centre, transmit a unit identity code unique to the home control unit whereby home control units removed to an unauthorised location may be traced.
Communication between the home control unit and the remote operations centre may be by PSTN telephony, radio transmission using direct communication or by way of low earth orbiting satellite, radio transmission using GSM standards and cellular networks or by connectionless communication such as by way of internet communication or electronic mail messaging.
The home control unit may include means to receive signals from security aware apparatus by data messages superimposed on a mams electrical power line, by low power radio communication which may use DECT (digital cordless telephony) protocols or by connectionless communication. Transmitting means for returning release codes to security aware apparatus may also use data messages superimposed on a mains electrical power line, by low power radio communication or by connectionless communication using internet or intranet facilities.
According to a feature of the invention there is provided security aware apparatus comprising a data store for holding at least one code unique to the location of the apparatus, processor means responsive to connection of electrical power to cause transmission of signals characterising a code request, transmitting means for transmitting the code request and receiving means for receiving a response to the code request, the processing means being responsive to an incorrect code or, if previously coded, expiry of a predetermined time period without receiving a code, to cause temporary inoperabihty of the apparatus, the transmitting means including a low power radio transmitter. Preferably, the radio transmissions are compatible with DECT protocols and transmission standards.
The receiving means may comprise a low power radio receiver which may operate in accordance with DECT protocols and standards.
A security system in accordance with the invention and security aware apparatus in accordance with the feature of the invention will now be described by way of example only with reference to the accompanying drawings of which:
Figure 1 is a schematic representation of at least a part of the security system;
Figure 2 is a block schematic diagram of a typical security module of protected apparatus;
Figure 3 shows at least a part of one of the security units of Figure 1 . Figure 4 is a schematic representation of a data stored by protected apparatus. Figures 5a to 5e show signalling interchange between the security control unit of Figure 1 and the appliance and a remote operations centre where a remote operations centre is provided;
Figure 6 shows data which may be stored at a remote location or in a home control unit;
Figure 7 shows data which may be stored in a home control unit responsive to a remote operations centre;
Figures 8, 9 and 1 0 is a flow chart showing a process control of the protected apparatus of Figure 2; Figures 1 1 , 1 2 and 1 3 shows part of a flow chart for the processor of a home control unit of Figure 1 which is responsive to a remote operations centre;
Figures 1 a and 14b show a flow chart of a remote operations centre (where provided) ;
Figure 1 5 is a schematic diagram showing a number of alternative ways of communicating between a home control unit and a remote operations centre;
Figure 1 6 is a block schematic diagram showing various methods of determining location of a home control unit;
Figure 1 7 is a schematic diagram of security aware apparatus having a DECT interface for communicating with a home control unit; Figure 1 8 is a schematic diagram showing a part of a home control unit with a DECT interface for communicating with security aware apparatus of Figure 1 7;
Figure 1 9 is a schematic diagram showing a modification to include a TCP/IP interface for communication by internet or intranet;
Figure 20 shows an adapted home control unit for use with the apparatus of Figure 1 9;
Figure 21 is a block schematic diagram of secure premises having stand alone security unit;
Figure 22 to 25 are flow charts of the operation of a processor in the security unit of Figure 21 ; Figures 26A to E are signalling charts showing signalling between the security unit of Figure 21 and a domestic appliance; and
Figure 27 is a schematic representation of a data store of the security unit of Figure 21 . Referring first to Figure 1 , the system, previously disclosed, included within domestic premises 1 , the boundary of which is indicated by a dotted line 3, a home control unit 2 containing security features for the premises 1 . Various versions of the home control unit 2 are described hereinafter, some of which may be "stand alone" applications but most of which will communicate with a remote security centre.
The home control unit 2 communicates with security aware electrical appliances, one of which is indicated at 5. Communication between the home control unit and electrical appliance 5 may be in a number of ways, again hereinafter described, but basically security aware electrical appliance 5 requires a dedicated release code to be transmitted to it each time mains electrical power from a supply line 6 is disconnected and reconnected. If a security aware electrical appliance does not receive its release code then a processor, preferably integrated with power supply or other circuitry, prohibits or disconnects electrical supply to operation circuits of the apparatus. Thus referring to Figure 2 the electrical appliance 5 is modified by incorporating a switch 1 8 between a power supply 1 2 of the apparatus and operational circuits 1 7. It will be appreciated that the switch 1 8 is shown purely for ease of description and it may be incorporated into the power supply 1 2. The apparatus also includes a process control 1 5, a data store 1 6 and, in the particular version shown here, a frequency shift key interface (FSK) 1 4 for communicating across the electrical supply line 6 with a home control unit.
Figure 3 shows the essential components of the home control unit 2, these being a processor 23, data store 24 and a corresponding FSK communications interface 25 connected to the supply line 6. basically, as discussed in the aforementioned published patent application, on connection of an electricity supply by way of power input 1 1 to the apparatus 5, the process control unit 1 5 consults the associated data store 1 6 to determine whether the apparatus has previously been connected in a security aware environment. If it has been so previously connected then, referring additionally to Figure 4, an appliance unlock code 26 will be stored, the process control therefore causes signalling to be applied to the supply line 6 by way of the interface 14, which identifies, for example by use of a manufacturer reference, manufacturers equipment reference and electronic serial number, the specific piece of electrical apparatus which has been connected. The home control unit of figure 3 detects the presence of the signalling and via its own FSK interface 25 compares the received security code with information in its own data store 24 which may be, depending on the type of centre, a volatile store. Having compared the equipment serial number with its own data, the processor recovers from its data store the appropriate unlock code for the particular appliance and causes this code to be transmitted by way of the FSK interface 25 back to the electricity supply line 6 and thence through FSK interface 14 to the appliances own processor 1 5. Assuming that the codes are compatible the processor control 1 5 either now permits power to be connected to the operational circuits or, in an alternative mode of operation, does not effect power disconnection. Various features of the security applied to electrical appliances in different ways and of different home control units will become apparent from the description hereinafter. However, which ever kind of communication between security aware apparatus and a home control unit and/or with a remote security centre is used the common feature is that apparatus removed from its authorised location will cease to function. Provision is made, as disclosed herein, for legitimate transfer of ownership and/or removal of security aware apparatus between premises. Thus only unauthorised removal of electrical appliances results in failure.
Turning then to Figure 8, we will now consider in brief the manner in which the security process within a security aware appliance functions The process control unit 1 5, (Fig 2) which may be integral with the power supply 1 2 or may be a part of the operational circuitry shown at 17, is arranged to determine as hereinafter described whether power should be supplied or denied to other operational circuits 1 7 this capability being generally indicated by switch means 1 8. It will be appreciated that the process for denying power from the switched mode power supply 1 2 would not be so simple as a switch 1 8 which could be easily circumvented and will actually be better protected such that in order to overcome the security arrangements it will be necessary to replace the entire power supply unit or substantial components thereof. The process control 1 5 has access to data held in a data store 1 6 the purpose of which will become apparent. The data store 1 6 is a non-volatile storage element capable of holding an appliance identity, the location identity, one or more unlocking codes and a blanking code as indicated in Figure 4 Generally speaking the location code is a 64 bit code unique to the property in which the appliance is installed and which is derived from the CLI and by the remote operations centre of Figure 1 when a customer subscribes to the service.
The or each unlocking code is a 24 bit code one of which is unique to the customer premises 3. A further unlock code of 24 bits may be provided in a more complex arrangement, the further 24 bit unlock code being unique to the particular electrical apparatus 5. Where a unique code for the apparatus 5 is provided this will be generated on the first occasion in which the appliance 5 is plugged into the electricity supply and will be received in response to a request to the remote operation centre 4 as hereinafter described or by stand-alone home control unit. Throughout the present specification, wherever a stand-alone home control unit is provided rather than the more secure arrangement of a remote operation centre it may be assumed that the home control processor includes the same functionality which performs in a similar manner. Where there are substantial differences in operation these may be specifically considered - for example in one case providing a special plug in module for effecting appliance code blanking - or will be apparent.
The 24 bit blanking code is unique to the appliance and, as in the unique unlock code, is generated by the remote operations centre 4 in response to receipt of a request from the apparatus 5.
The purpose of the codes is firstly to locate the apparatus, that is to say the 64 bit appliance location code is unique to the home control unit 2 in a customer premises 3 and, once a security aware apparatus 5 is aware of its location, each time it is connected or disconnected from the mains electricity supply 6 its process controller 1 5 causes FSK interface 1 4 to transmit the location information and request an unlock code. A unique unlock code for the appliance i.e. the 24 bit unlock code (if any) uniquely provided by the remote operations centre 4 or will be returned by the home control unit 2 to the appliance. Note that the home control unit 2 will only recognise its own location code. Where only house codes are in use the home control unit 2 will return the 24 bit house unlock code by way of the electricity supply line and the FSK interface 14.
If neither the appliance code nor the house code is received by the process controller 1 5 then power is denied to the operational circuits. In practice, power may be supplied to the operational circuitry for a pre-determined period, say 1 5 minutes, prior to closing down, to give sufficient time for an appropriate release code to be received.
The blanking code, which is unique to an electrical appliance and which is known only to the particular appliance 5 and to the remote operations centre 4 (except in the case of stand-alone operation) is used to permit the bona fide transfer of security aware apparatus between locations or upon sale of the equipment.
Referring to Figure 8, the operation of the process control function of the security aware apparatus of Figure 2 will now be described. On connection of power 301 by way of the electricity supply line 6 then a timer "load broadcast cover" timer 302 is started by process controller 1 5 which now waits to receive a broadcast message by way of the FSK interface 14. The purpose of the broadcast timer is to cover the eventuality where a major power disruption has resulted in a number of security aware appliances in the same customer premises 3 having a reconnection of electricity supply at the same time. If a catastrophic domestic electricity failure has occurred then, as hereinafter described, the home control unit 2 will also have lost electrical power. This will result, in the case of a volatile store type home control unit, in an application by the home control unit 2 to the remote operations centre 4 for a reload and the home control unit 2 then causes the broadcast of the 24 bit house unlock code. Returning to Figure 3, the process controller now goes into an interruptible state 303 to wait for the broadcast message. The processor 1 5 will leave the wait broadcast message state 303 in response to one of two events, a first of which is that the broadcast timer set at step 302 will expire and the path indicated at 304 will now be followed. Once the broadcast timer expires as indicated at step 305 an unlock request is sent through FSK interface 1 4 to the electricity supply line 6. Note that the unlock request comprises the 64 bit house code as stored in the data store 1 6 and/or the apparatus identity 27,28. Once the unlock request has been transmitted then an unlock timer is loaded as indicated at step 306 and the processor 1 5 waits for an unlock message hereinafter described with reference to Figure 8A. Returning now to the previous stable state, that is to say the wait broadcast message state 303, if as a result of catastrophic power failure a system restart has been required then a broadcast message will be received as indicated at step 308, the broadcast message being expected to be a 24 bit house unlock code. This code is compared at step 309 with the house code stored in the data store 1 6 of the appliance 5 and as indicated at step 31 0 if the code is correct the power supply 1 2 is allowed into normal operation through a power up routine described hereinafter with reference to Figure 9. If an incorrect code is received and the system lock flag of the data store 1 6 is set to indicate that the particular piece of apparatus 5 is security aware, that is it has previously been connected then the process controller 1 5 causes the power supply 1 2 to power down in known manner so that power will not be supplied to the operational circuits 1 7 of the particular apparatus 5. If at step 31 1 the system lock is not found to be armed then at step 31 3 an unlock request will be broadcast in the same manner as at step 305 and an unlock hold timer will be commenced at step 31 6.
Turning now to Figure 8A the wait unlock response state 400 into which the processor 1 5 has been placed may be left as a result of either the unlock hold timer expiring 401 , an unlock response 402, a system lock enable response 403 or a blanking instruction 404. Thus if the unlock hold timer expires as indicated at step
401 the system lock flag in the associated data store 1 6 is interrogated at step 406. If the system lock is not in the enabled state, that is to say the apparatus 5 has not previously been coded from the remote operations centre 4 or a subsequent blanking operation has been carried out then the process controller 1 5 goes into the power up mode. If however the system lock is armed and no unlock response is received then the process controller will enter the power down state and as indicated in Figure 1 0 will lock to that state until such time as the apparatus is disconnected from the electrical supply 6 and reconnected in a bone fide situation. If now the response to the unlock request is an unlock code as indicated at
402 the unlock code is compared at step 407 with data held in the data store 1 6 and if the code is correct, then at step 408 the normal power up function occurs. Again if the code received is incorrect then the stable power down state 600 will be adopted. Note that if individual appliance codes are being used the apparatus will only unlock to its unique code once the broadcast timer has expired. If only house codes are in use then the house code and the blanking code is unique. The appliance code and blanking code will not be identical or related to each being individually randomly generated by the remote operations centre if appropriate as hereinafter described.
At step 403, if a system lock enable is received in response to the unlock request then at step 409 the system lock flag is interrogated to determine whether it was previously armed and if so this would indicate that the unit has been incorrectly plugged to a home control unit which has no previous record of this particular piece of apparatus 5 and therefore the system enters the power down state 600. If however the system lock is not armed then the unlock and blanking codes including the house code and separate apparatus unlock code, if applicable, are received and stored at step 410 after which at step 41 1 the system lock enable is set in the data store 1 6 and a system lock enabled message is transmitted and power up state 500 is entered. A system lock enable response should only be received when the apparatus is first plugged to a home with home control unit facilities or after the blanking field has been correctly activated as a result of an unlock response transmitted incorporating a blank instruction at step 404. The blanking instruction is received from the remote operations centre 4 and blanking instruction will only be transmitted under specific circumstances which a known owning customer will request.
On receipt of a blanking instruction the blanking code is compared at step 41 2 and provided that it is correct as indicated at step 41 3 then at step 414 all of the code fields in the data store 1 6 are blanked and the system lock enable flag is reset so that the apparatus is now in condition for transfer to other premises. Once the blanking of the data store 1 6 has been completed then the system will enter the power up state 500 in the normal manner. If however at step 41 3 an incorrect blanking code is received in response to the unlock request then the system enters the power down stable state 600.
Note that once a correctly identified blanking instruction has been received the appliance is deregistered from the home control unit list at the remote operations centre 4 (if any) which will cause the home control unit 2 of the customer premises 3 to be updated as hereinafter described. De-registration may be performed in the home control unit 2 on receipt of the system lock disabled message transmitted by the FSK interface 14 at step 41 5. Figures 9 and 10 show the two stable states of piece of apparatus 5 being respectively the power up state 500 and a power down state 600. In the power down state 600 the apparatus is effectively disabled and none of the operational circuits 1 7 will receive power. Where apparatus includes an appropriate display unit then as the microprocessor locks to prevent the apparatus functioning it may display an appropriate message such as system lock. In the power up mode 500, the power supply 1 2 will be supplying current to the operational circuits 1 7 in known manner but the process control 1 5 continues to monitor the FSK interface 14 for any false system lock enable states input. Note that the system lock enable message includes the electronic serial number of the apparatus which prevents false triggering to any given system lock enable message
Thus if a system lock enable is received at step 501 the process controller
1 5 checks to determine whether the system lock is already armed in the data store
1 6 and if not at step 503 will store the unlock and blanking code fields received and will enable the system lock at step 504 and send an acknowledgement. The system then returns to the power up stable state 500.
Summarising then the operation of a security aware appliance 5 is controlled by messages transmitted by a process controller 1 5 through an FSK interface 14 to the electricity supply line 6, the FSK interface 14 also receiving messages whether directly from a home control unit 2 or from a remote operations centre 4 by way of a home control unit 2 for use by the process controller 1 5. The message format and messages transmitted by the appliance 5 are summarised in the following table:
TABLE 1
Figure imgf000013_0001
Figure imgf000014_0001
The parameters used (and hence stored in the data store 1 6 of the security aware appliance 5) are as follows*
Message Type 8 bit field indicating the type of message being sent
Message Reference 8 bit field used to link a series of message exchanges into a session
Equipment Type 64 bit field characterising the manufacturer and product uniquely. First 1 6 bits identify the manufacturer and will be controlled and issued by a remote operations centre body. The latter 48 bits are manufacturer allocated apparatus and model identities and will be entered into the system data store of a security aware apparatus during manufacture. Electronic Serial Number 64 bit field uniquely identifying this product from other equipment of the same type (as identified by the previous field)
Unlock Code ( 1 1 24 bit field carrying the unlock code for the property
(normally generated by the remote operations centre 4 on a per property basis)
Unlock code (2) 24 bit field carrying a unique unlock code for the particular apparatus (if used) generated by the security provider (remote operations centre) as per appliance basis
Blanking Code 24 bit field carrying a blanking code for the appliance
(generated by the security provider on a per appliance basis) checksum 1 6 bit checksum allowing detection of potential message corruption
Having considered the components and action of a security aware apparatus 5, consideration will now be given to the home control unit 2 of Figure 1 in a customer premises 3. Turning now to Figure 1 1 , on first connection of mains power to the electricity supply line 6 and on each subsequent connection of power to the home control unit 2 the processor 23 causes a connection to be established by the tone generator 22 through a telecommunications network (PSTN, Internet, radio system, cellular network) to the remote operations centre 4. A modem request for an equipment list is then transmitted and the remote operations centre 4 using locational data of the customer premises 3 responds with an equipment list as hereinafter described. In effect the equipment list identifies each apparatus registered as present together with its individual unlocking code (if any) and the house code previously mentioned. Thus in a single modem exchange as indicated at 801 the request is transmitted at 802 and an equipment list is received at 803 after which the network connection is released.
Note that if at any time power to the system fails data held identifying the house code and apparatus is immediately lost from the data store 24 and on reconnection the process is carried out again. In this way, even if the home control unit 2 is stolen along with property in the customer premises 3 it will not be useable to provide unlocking codes for the appliances 5. However, the home control unit 2 will include programmable storage for holding the access code (telephone number, Internet Address, E-mail Address) to the remote operator centre 4. Assuming that there are items in the list, as indicated at step 804, the house unlocking code is broadcast at step 805 for comparison in individual appliances 5 as described hereinbefore with reference to Figure 8.
If however the list is empty the home control unit will move to its normal mam state 900 which is its primary stable state at all times when power is connected.
Turning now to Figure 1 1 A, the FSK interface 25 of Figure 3 monitors the electricity power line 6 for an unlock code request received from one of the security aware appliances 5 in the customer premises 3. On receipt of an unlock request, as indicated at step 901 , the received appliance identity code is compared with the data held in the data store 24 to determine whether the equipment is currently listed as present and if so interrogates a blanking field associated with the particular piece of apparatus to determine whether that field is set, this occurs at step 903. For the avoidance of doubt it is noted that the blanking field for a piece of apparatus will only be enabled if the customer has previously had an interchange with the remote operations centre 4 to request removal of a piece of equipment from the list. In a stand alone control centre arrangement the blanking instruction arises as a result either of the customer keying a special code in to the control centre or by plugging a special module in to provide supply line signals to the control centre.
In the normal course of events the blanking field will not be enabled and the processor 23 looks at the appropriate unlock code for the requesting apparatus (or the house code where individual unlock codes are not in use), at step 904, and uses the FSK interface 25 to transmit the unlock response (namely the unlock code) at step 905 prior to returning to its normal state.
Returning to step 902, if the apparatus 5 forwarding the request is not present in the equipment list held in the data store 24, this will indicate that the appliance 5 has not previously been plugged into a system in the customer premises 3. The processor 23 therefore causes the establishing of a call through the networks as previously referenced and using the modem 22 interchanges with the remote operations centre 4 data identifying an equipment code request, at step 906, which request includes some identification of the apparatus plugged in, for example the manufacturing code, type and serial number as previously described. Causing the modem 22 to forward this information results in a response from the operations centre including an unlock code and blanking code which at step 909 is transmitted by way of the FSK interface 25 to the electricity supply line 6 for receipt by the process control 1 5 via FSK interface 1 4 of Figure 2 causing the appropriate response of Figure 8 i.e. the unlock response chain beginning at step 403 to be followed.
Note that the codes and the equipment are added to the list in the data store 24. Now at step 910, a timer is started awaiting the return of a system lock enable hereinafter described with reference to Figure 1 2.
Once the home control unit 2 is in the system lock confirm state 970 it will only leave after if the timer, set at step 91 0, expires as indicated at step 971 in which case it repeats the transmit of system lock enable at step 972 and recommences the timer or on receipt of a system lock enable message as transmitted at step 41 1 of Figure 8. Note that if the system lock is armed, as indicated at step 409 of Figure 8 in the particular piece of apparatus, then it is likely that the entire system installed in the customer premises 3 will lock up until such time as the appliance 5 is disconnected from the system.
However if the system lock enable signal is returned, as indicated at step 974, then the list in the data store 24 is marked accordingly at step 975 and the system returns to its main state 900 after transmitting a confirmation message to the remote operations centre 4 (if appropriate) .
Returning now to Figure 1 1 A and particularly to step 903, if as hereinbefore referred the blanking field has been enabled as a result of a customer application to the remote operations centre 4 (or direct instruction as referred to above), then after step 903 a timer is loaded at step 91 1 , following which the unlock and blanking codes are transmitted by way of the FSK interface 25 of Figure 3 to the electricity supply line 6 this being received by the appropriate FSK interface 14 of Figure 2 in apparatus to be blanked. A blank covering timer is loaded at step 91 3 after which the equipment enters a wait blank response state at 920 (Figure 1 3). If the blank covering timer expires 921 (Figure 1 3) prior to receipt of a response from the apparatus 5 which is to be blanked then the system simply returns to the mam state since this would indicate that an incorrect code has been identified at step 41 2 of Figure 8.
However, if the correct blanking code has been transmitted to a piece of electrical apparatus 5 then a blank response, transmitted at step 41 5 of Figure 8, will be received as indicated at step 922 of Figure 1 3. Once the blank response has been received from the piece of apparatus indicating that the security aware apparatus concerned is now clear for transfer to other premises it is removed at step 923 from the list held in the data store 24 and a call is established by way of the network to the remote operations centre 4. In the case of stand alone apparatus, once blanking has occurred then the apparatus is simply removed from the home control unit listing. In a single modem interchange the processor 23 causes the transmission of a message indicating that the blanking function has been completed and will receive from the remote operations centre a revised listing for storage in the volatile data store first acknowledging that blank response has been acknowledged. This occurs at steps 924 and 925 of Figure 1 3. If the remote operations centre is aware that adjacent properties or properties likely to share a common electricity supply such as in households divided into apartments but having separate telephone line 7 and home control units 2, three bits of the message type will be used to identify messages directed to a particular home control unit 2, and the home control unit 2 will use the particular message type on first set up to program a communications channel identified by those first three bits to security aware appliances in particular premises. Intelligence may be built into the remote operations centre 4 enabling the system to cause blanking of apparatus wrongly allocated to a particular home control unit and subsequent correction when the blanked apparatus is reconnected. Thus, for example, if a domestic power failure occurs in one property subsequent reconnection will cause the home control unit 2 to broadcast its own house code but apparatus connected on the same power circuit will time out and request a code through the adjacent home control unit 2. This may be identified to cause reallocation.
The situation mentioned is thought unlikely where correct balancing of local power supplies occurs. Suitable inductive correction in mains electricity meters should avoid such problems being significant.
The message formats and messages incoming and outgoing to and from the home control unit 2 are as shown in Table 2 in which the remote operations centre 4 is identified by the legend ROC and a piece of electrical apparatus 5 is identified as SWA.
TABLE 2
Figure imgf000018_0001
Figure imgf000019_0001
Figure imgf000020_0001
The parameters used in the above are as follows:
Message Type 8 bit field indicating the type of message being sent Message Reference 8 bit field used to link a series of message exchanges into a session
Equipment type 64 bit field characterising the manufacturer and product uniquely, first 1 6 bits characterising the manufacturer and will be controlled and issued by the remote operations centre, the latter 48 bits being under manufacturer control Equipment Serial Number 64 bit field uniquely identifying the product from other equipment of the same type.
Appliance Location Code 64 bit field uniquely identifying the security provider (first 24 bits identifying the remote operations centre) and the property within the domain, that is the customer premises 3 identified by the latter 40 bits
Unlock Code 24 bit field carrying the unlock code for the property (house code) or the unlock code for the apparatus within the property as appropriate
Blanking code 24 bit field carrying the blanking code for the appliance generated by the operations centre on a per appliance basis
Number of Entries 1 6 bit field indicating the number of appliances protected at customer premises 3
Checksum 1 6 bit checksum indicating potential message corruption. Referring now to figure 14 the remote operations centre for use by the systems herein described is fully described in the previously referenced PCT application. However, for the completeness operational flow charts of the centre are included in this specification. Multiple instances of the ROC main state which is the sole state of the remote operations control centre 4 may be running at any time to handle a multiplicity of calls which may arrive by way of the telephone lines, electronic mail message, internet communication or cellular communication or by way of an electrical distribution system. Considering just a single instance of the operation of the remote operation main control state 81 0, on receipt of an incoming call signalling by way of a connected modem will indicate the request which has been received from the home control unit 2 of a customer premises 3 The most likely input from a home control unit 2 is that shown in 81 1 that is to say a modem signal requesting an equipment list from the ROC.
The CLI or other locational data will provide line identity to the processor as indicated at step 81 2 and the processor will compare the requesting line identity with a list of registered line identities held in a data store. If at step 81 3 a registered line identity or location code is found then the equipment list for that location together with the house code and individual equipment unlocking codes (if appropriate) and any blanking information are retrieved from the data storage unit at step 814 This information is then passed by way of the modem at step 81 5 for use by the home control unit 2 as indicated in Figure 1 1 .
If however, at step 81 3 a request has been received from an unregistered line or location at step 81 6 the interchange of data with the remote customer is terminated and the line identity and any further information received in the equipment list request are recorded in an operations and maintenance exception log which may be used to determine attempted fraudulent use of the system or to identify the location of a potentially stolen control centre unit 2. As has been mentioned at step 814 any blanking code request is returned to the home control unit for use at step 903 of figure 1 1 A. The blanking field together with the stored blanking code for a particular piece of equipment (or for all of the equipment at a designated location) will only be present as a result of either the action of control centre staff in response to a customer's request or as a result of a controlled access using multifrequency tones by way of the telephone line to provide personal identification numbers (PIN) or other security so that the customer can request blanking of one or more pieces of security aware apparatus 5. Considering now an equipment code request from a home control unit 2, when the request is noted as indicated at 820 the locational data is obtained at step 822 and as previously described is compared with valid location or line identities in the data store. (Step 823). Again an invalid line identity will be handled in the same manner as steps 81 6 and 81 7 while on receipt of a valid identification the location code for the particular customer premises 3 is loaded from the data store and random blanking codes and/or unlocking codes dedicated to the particular piece of equipment are generated at step 825 and temporarily stored. An equipment cover timer is loaded at step 826 and at step 827 the code response is transmitted by way of the modem 33 to the home control unit. The system now waits either for an equipment store confirm message from the home control unit 2 as indicated at figure 1 2 in which case as indicated at step 828 on detection of the equipment store confirm the equipment cover timer is stopped at step 829 and the appropriate list for the registered line identity is updated in the data storage unit with the identity of the new piece of equipment together with it's appropriate blanking and unlock codes as generated previously. If however, the equipment cover timer expires as indicated at step 830 then the system at step 831 restarts the timer and makes a further attempt at step 832 to forward the equipment code response to the home control unit 2.
The final incoming signal from a home control unit 2 at a customer premises 3 is that of an HCC blank complete detected at steps 835 which comes back as a result of blanking being completed at a home control unit as indicated at steps 924 and 925 of figure 1 3. On receipt of the HCC blank complete indication from a home control unit 2 to the location is collected at step 836 and at step 837 the usual check is made to ensure that this is from a valid location. Again steps 81 6 and 81 7 in which the modem exchange is terminated and the line identity and other information recorded in an exception log is provided for non-registered locations.
Once the check on the identity has been completed, the appropriate record is located in the data store and the particular piece of equipment is deleted from the equipment list at step 839. A HCC blank response is transmitted at step 840 which response may include a revised complete equipment list for the given location if required.
A further advantage of the present invention is the ability to identify from a stored location code that is the house location code, of a piece of apparatus the origin of a wrongly located appliance. Thus, security forces or police might be provided with repatriation units whereby recovered apparatus can be identified.
Thus, if the remote operations centre 4 receives a repatriation location request 850 the repatriation line identity is collected from the CLI interface 32 and the usual check to ensure that the line is registered as a repatriation line is carried out at step 852.
If the line is not registered for repatriation identity purposes the exchange of data via the modem 33 is terminated and the line identity and other information concerning the transaction is transferred to the exception log at step 81 7. Assuming that the repatriation location request originates from a valid location as identified at step 852, the equipment location code received is used to look up in the data store address details for the original source of the apparatus 853 which information is transmitted by way of the modem at step 854 to the repatriation equipment. While not included in the flowcharts of Figure 1 3 it will be appreciated that more complex functions are readily provided by the system. Thus for example when an equipment code is required at step 820 the system may be adapted to receive the manufacturers code, equipment type and serial number from the security aware apparatus being installed at the customer premises 3. This information may be used to access manufacturers databases or distributors databases to ensure that the equipment is of a bona fide origin.
Bona fide registered equipment repairers may be permitted to receive on a single call an unlocking code for a piece of security aware apparatus but would not be allowed to receive a blanking code such that so long as the apparatus remained in the possession of the repairer it could be unlocked for the purposes of repair but could not be blanked for onward distribution.
Timed locking of apparatus could also be provided such that if customer premises were not being occupied or parents wish to restrict access to particular pieces of equipment then temporary locking could be provided on request. Thus any request for an equipment list arising from the designated premises, if the home control unit 2 detected a request from a piece of apparatus not included in the list might include a return list indicating that the apparatus was to remain locked. Release of the locked apparatus could only occur on a subsequent request for an equipment list after the expiry time set for unlocking. The following message formats shown in Table 3 apply at the remote operations centre.
Table 3
Message Name Direction Parameters
Request Equipment Incoming message type, checksum List
Equipment Code Incoming message type, equipment type, electronic Required serial number, checksum
HCC_Blank Complete Incoming message type, equipment type, electronic serial number, checksum
Equipment Stored Incoming message type, equipment type, electronic
Confirm serial number, checksum
Repatriation Location Incoming message type, appliance location code, Request equipment type, electronic serial number, checksum
Receive Equipment Outgoing message type, number of entries, appliance List location code, unlock code, ROC Phone number 1 , ROC Phone number 2, [ 1 .. number of entries] (equipment type, electronic serial number) , checksum
Equipment Code Outgoing message type, appliance location code, Response unlock code, blanking code, checksum HCC Blank Response Outgoing message type, checksum
Repatriation Location Outgoing message type, owner's name, [1 ..3] Response address line, telephone number, checksum
The parameters used in the above are as follows:
Message Type 8 bit field indicating the type of message being sent Message Reference 8 bit field used to link a series of message exchanges in to a session
Equipment Type 64 bit field characterising the manufacturer and product uniquely First 1 6 bits characterise the manufacturer under control of a central domain. The later 48 bits are under manufacturer control.
Electronic serial Number 64 bit field uniquely identifying this product from other equipment of the same type.
Appliance location Code 64 bit field uniquely identifying the remote operations centre (first 24 bits) central domain controlled) and the property (later 40 bits under control of the remote operations centre)
Unlock code 24 bit field carrying the unlock code for the property
(generated by the remote operations centre on a per property basis); or 24 bit field carrying an unlock code specific to the equipment (generated by the remote operations centre)
Blanking code 24 bit field carrying blanking code for the appliance generated by the remote operations centre on a per appliance basis
Number of entries 1 6 bit field indicating the number of appliances protected at the selected property
Owners name 20 ASCII characters Address line 20 ASCII 2 characters Checksum 1 6 bit checksum indicating potential message corruption
Turning now to Figure 1 5, as previously mentioned, a home control unit 2 (of Figure 1 ) communicates with a remote operations centre 4 by way of a telephone line. The remote operations centre 4 utilising CLI to determine the location of the requesting home control unit and to base transfer of information thereon. In the present invention a number of home control units operate in a similar manner to that previously described carrying the functions of list creation and maintenance and code control for release of apparatus connected within the home. In a further development the home control unit 41 may communicate directly with the remote operations centre 4 by way of radio frequency signals or microwave signals. Thus as indicated at 45 the home control unit may be connected to a transmitting aerial while the home control unit 4 has a receiving aerial 46. In this case the home control unit may have its identity burnt into a storage medium. This is not however a preferred solution since if the home control unit 41 was stolen with the equipment in the house, it would be possible for an unauthorised user to operate stolen apparatus. Nevertheless, once the remote operations centre 4 is aware of the theft of a home control unit box, including a burnt in identity, it would thereafter decline to provide information to the calling home control. As an alternative to the communication method of home control unit 41 , a home control unit 42 may communicate with the remote operations centre by way of a low earth orbital satellite system such as indicated by transmission dish 47 and receiver 48 at the remote operations centre 4. In this case signals from the home control unit to the remote operations centre are reflected by a low earth orbital satellite 49. Again the identity of the home control unit 42 may be burnt into the system or may be, as hereinafter described, determined by other means.
In yet a further communications method the home control unit 43 is connected by way of a GSM system 50 to a cellular switching system 51 , which communicates with the remote operations centre 4. In this case the GSM identity of the home control unit transmission system is known to the cellular switching system and therefore a CLI can be provided the remote operations centre. Further alternative coding of the home control unit identity may be provided in addition to the cellular switching system identity or the alternative location methods hereinafter described may be used.
One potential advantage of using modifiable home control identities might be the use of an insertable subscriber identity module (SIM) card which may allow the user to transfer to an alternative home and/or to take the SIM card out of the home control unit 43 when not in use, for example when premises are to vacated for a period of time.
Finally, home control unit 44 is shown as being connected, for example, by way of an internet service provider link 71 and the internet or world-wide web 52 to the remote operations centre by way of an internet point of presence 53. Again such a connectionless kind of communication either in real time or by way of electronic mail communication will allow transfer of data between the remote operations centre and the home control unit 44. Thus for each of the functions required to be carried out by a home control unit an e-mail message, for example could be generated comprising the coded information from a stealth aware appliance to be transmitted by way of connectionless messaging to the remote operations centre where a return e-mail can be generated and sent back to the home control unit 44.
In a still further development of this mode of operation, e-mail messaging capability could be built into stealth aware appliance 5 for example, so that in the absence of a home control unit 44 direct communication between a stealth aware appliance and the remote operations centre could be established, the remote operations centre being responsive to a serial identity in electronic form from the appliance to return appropriate unlock and blanking codes as required. In each of the scenarios of Figure 1 5 the difficulty of identifying with certainty the presence of a home control unit with a built in serial number and tying it to a particular location has been noted. Thus in Figure 1 6, to which reference is now made, alternative positional location systems may be used. For example, it is known that global positioning systems (GPS) using a number of satellites with a fairly simple module can locate a unit to an accuracy of less than 30 metres on a global basis. With more sophisticated systems location to a little as three metres is possible. Thus providing a home control unit or a directly communicating self-aware apparatus with a GPS unit, as shown in the home control unit 54, as GPS 55 permits the near exact location of the requesting home control unit to be identified by use of tπangulation from two or three GPS satellites representatively shown at 56. thus, prior to communicating with a remote operations centre the home control processor will utilise the GPS 55 to determine its co-ordinates and these co-ordinates are transmitted in the message to the remote operations centre 4. This enables a secure home control unit 54 to be used where CLI, for example, is not a practicality or where e-mail messaging, internet communication, or non-locational radio communication with the remote operations centre 4 is in use. In this case, the remote operations centre 4 need not even be in the same country or connected to the same network as the home control unit since the data store at the remote operations centre in respect of the particular home control unit will be based on its GPS identity.
In the case of the home control unit 43 (of Figure 1 5) location of the home control unit is possible by use of a tπangulation system of the cellular switching system 51 . As described in published patent application number 824840 comparison of time delay in signalling between the transmitting aerial 50 of the home control unit 43 and a number of cellular operator receiving sites, schematically represented at 57, allows calculation of the location of the home control unit. Thus in addition to the security of the SIM in the home control unit 43, further locational detail can be obtained and passed to the remote operations centre 4. Finally, for completeness and as previously mentioned, the home control unit
58 shows a unit identity module 59 which may be used in place of or in addition to each of the locational identity methods of CLI, radio signal tπangulation and GPS transmissions.
In a further alternative communication between a home control unit and a remote operations centre 4, direct communication by way of the mams power line, for example by means of a locational chip built into an electricity meter connected to the mains electricity distribution network could be used. Thus a service provider, potentially for example electricity distribution companies, could provide a control centre with which communication over the electricity supply using known protocols could be used to transfer data to and from a remote operations centre. This may be advantageous, for example in apartment blocks where an electricity substation within the block could provide service to all of the apartments connected thereto. The full functionality of the remote operations centre would thus be provided monitoring signals on a loop distribution for unit identity and code requests. Again, where a communal operations centre in an apartment block is in use it may be possible to have direct communication between an apparatus 5 and the operation centre directly by way of the electricity supply line. Having considered alternatives for communication between a remote operations centre and a home control unit alternative communication techniques between apparatus 5 and the home control unit 4 now fall to be considered.
In a first alternative development, referring to Figures 1 7 and 1 8, in place of the FSK interface ( 14 of Figure 2) digital electronic cordless telephone protocols (DECT) as used for communication between telephone handsets and base stations in domestic premises may be provided. Thus, a DECT interface 60 transmits the requests as previously described, such requests arising from the reconnection of the switch mode power supply 1 2 and this communication is received on a corresponding DECT unit 63 incorporated in the home control unit 2. The signalling is received by way of schematically represented aerial 62 which will also transmit the return information to the apparatus 5 by way of its DECT interface 60. It will be appreciated that other low power communications techniques could be used, for example low power radio frequency in other forms than coded in accordance with DECT protocols could be used. Figures 1 9 and 20 show a modification of apparatus 5 and home control unit
2 in which the FSK interface in the apparatus 5 is replaced by a TCP/IP interface which may generate electronic messages for transmission either by way of an intranet connection 66 to a corresponding TCP/IP interface 65 of the home control unit or may communicate directly with a remote operations centre by way of the internet 67. It will be appreciated that where TCP/IP interface communication using an intranet between security aware apparatus 5 and a home control unit 2 is in use, then all of the other options for communication between the home control unit 2 of Figure 20 and the remote operations centre 4 are still available.
It will also be noted that the use of GPS directly in security aware apparatus 5 would enable e-mail messaging directly to the internet in a secure manner since even if the internet address of either home control unit or the security aware apparatus is changed, the transmitted data will reflect the true location of the requesting apparatus. Having considered various hardware aspects of the apparatus, consideration is now given to the signalling interchange between an appliance, a home control unit and a remote operations centre where such is provided. Referring then to Figure 5 and also to Figures 1 1 and 1 4 hereinbefore described, in Figure 5A is shown signalling from the home control unit to the remote operations centre request equipment list 802 received by the remote operations centre as indicated at step 81 1 . In return at step 81 5 the remote operations centre returns signalling which is either an empty equipment list 803 or, as indicated in Figure 5B, a list containing apparatus identities and codings. As indicated in Figure 5B, an unlock code is broadcast (805 of Figure 1 1 ) received by security aware apparatus at 308.
Moving now to Figure 5C and referring additionally to Figure 8, on first connection of the apparatus or on connection of uncoded security aware apparatus, when the broadcast timer has expired an unlock request is sent at step 305. In Figure 5C if the requesting equipment is not in the list then an equipment code required message is sent 906 to the remote operations centre, which is received at step 820 (Figure 14B) resulting in an equipment code response being transmitted to the home control unit at step 826. When received in the home control unit 907 this results in a system lock enable being transmitted 909 back to the requesting apparatus, received at 403 of Figure 8A and ultimately results in a response of system lock enabled to the home control unit at 41 1 received (Figure 1 2 at 974) in the home control unit which transmits an equipment store confirm message to the remote operations centre at 975. The remote operations centre uses the equipment stored confirm message received at 828 as a confirmation that the equipment has been coded. Turning to Figure 5D, if the equipment, which sends an unlock request at
305 is in the list as indicated at 902 then, assuming the blanking field is not enabled, an unlock response is sent at 905 which is received at 402 of Figure 8.
Figure 5E shows a sequence of events leading to blanking of an appliance. In this case the customer will have communicated as indicated with the remote operations centre to request blanking of appliance. Subsequent to this the customer will cause the home control unit to reset either by disconnecting power or by use of a reset button which will cause the home control unit to contact the remote operations centre with a request equipment list message (802-81 1 ) which will result in an equipment list being returned (81 5-803) to the home control unit with the blanking field of the appropriate appliance set. Immediately on receipt of the equipment list, because the list is not empty and the home control unit assumes disconnection of house power supply, it will broadcast the general unlock code at 805. Subsequently, when the customer unplugs the particular appliance or at least disconnects mains power and then causes its reconnection, as previously described at step 305, an unlock request will be transmitted by the appliance controller to the home control unit received at 901 . This will result in a blank instruction being returned at step 91 2 from the home control unit which, as shown Figure 8A at step 404, will result in a system lock disabled response at 41 5 indicating that blanking has been completed. As shown in Figure 1 3, once a blank response is received at 922, an home control unit blank complete message is transmitted to the remote operations centre at 924 resulting in an home control unit blank response being transmitted back to the home control unit from the remote operations centre at 840. Figure 21 shows the component parts of a security system using security aware appliances 5 of exactly the same form as hereinbefore described, but arranged to operate without use of a remote operations centre. Thus, as shown in figure 21 to which reference is now made, the security aware appliance 5 is connected to the mains electricity supply 6 within or connected to which is a security unit 72 either in the form of a plug in module or built in in some way to the electricity supply system as, for example, a dummy power socket or built into the premises electricity metering appliance. Also shown are two special units, a blanking key unit 74 and a memory unit 75 the function of which is noted hereinafter.
As an alternative to the use of a memory unit 75 as hereinafter referenced, a back-up security unit 73 may be provided which shadows the output of the security unit 72 since there is no other central store of unlocking and blanking coding for appliances 5 connected to this kind of system. Thus, if a failure of a security unit occurred it could render all appliances in security aware premises 3 to be rendered unserviceable. The security units 72, 73 comprise the same components effectively as shown in Figure 3, but may additionally include the unit id 59 of Figure 1 6 or a GPS unit 55 which could be used by the stand alone control unit in generating codes and which, unless previously blanked, could result in the security unit not functioning if it is moved from its known GPS location.
As with the home control unit 2 of Figure 1 , when the unit is first connected to power, as indicated in Figure 22 at 610, it will broadcast an unlock code at 61 1 before entering its main state at 700. The broadcast unlock code 61 1 is always broadcast if ever power is disconnected from the security unit 72 and then reconnected. The function of the unlock code is as hereinbefore described to permit equipment connected to the system to receive power on reconnection after a mains failure. This avoids multiple unlock requests being transmitted simultaneously from reconnected apparatuses.
Once the unlock code has been broadcast then the processor of the security unit 72 enters its mam state 700 (Figure 23) awaiting an unlock request from secure apparatus. Thus turning to Figure 23, on receipt of an unlock request at 701 , the system checks at 702 to determine whether the item transmitting the request has an entry in the data store shown in Figure 27. If there is no entry for the requesting equipment, as indicated at 702, then at 706 unlock and blanking codes are created using, for example, a random number generation program and these unlock codes and blanking codes are stored at 708 in the equipment list of Figure 27 and the number of appliances in the list is updated. At 709 a system lock enable message is transmitted to the security aware appliance and a system lock enable timer is set at 710. The system then awaits a system lock confirm as indicated at 770 of Figure 24 and, assuming system lock enabled message is received from the security aware appliance 5 at step 774 returns to the main state of Figure 23.
Should the system lock enable timer expire, as indicated at 771 , then the system lock enable message is again transmitted at 772 and the system lock enable timer reloaded at 773, the control unit looping back to await system lock confirm.
In the absence of a system lock confirm being received within a predetermined (heartbeat) time period may result in the apparatus being deleted from the equipment list or marked as unresponsive in the equipment list so that the processor of the home control unit 2 can return to its mam state to monitor for other equipments.
Returning now to Figure 23 and in particular step 702 where the requesting equipment appears to be in the list a check is carried out to determine whether the memory key 75 has been inserted and has transmitted an unlock request with a memory key identity. If the memory key has been inserted then the list (data store Figure 27) of the security unit 72 is dumped using the same transmission method as is used to the security aware appliances. The memory key may either be stored in a safe place by the occupier of the premises 3 or may be used to dump the list to an operations centre either by direct transfer or by telephonic transfer.
Assuming that the memory key 75 has not been inserted, a check is now carried out to determine whether the unlock request has occurred while the blanking key 74 is also connected to the system. If the blanking key is not present then the unlock code for the particular appliance is located at 704 and an unlock response is transmitted at 705 prior to the unit returning to the mam state 700.
If an appliance is disconnected and reconnected and the blanking key is inserted either directly to the security unit or by way of the mams electricity supply, then an equipment code covering timer is loaded at 71 1 and a blanking instruction including the blanking code is transmitted at 71 2. A timer is started at 71 3 and the system now waits for the blank response to come from the security aware appliance 5 at step 720. Referring then to Figure 25 briefly, if the blank covering timer expires without response from the security aware appliance 5 then the processor of the security unit 72 will return to its main state without taking further action. If however the blank response is received, as indicated at step 722, then the particular appliance is removed from the list and the number of appliances in the list updated accordingly.
The backup unit 73 may function in the same way as the memory key 75 in that the security unit may periodically do a list dump to the backup unit so that the data storage in each of the units is comparable. The blanking key 74 may include coding so that only a blanking key relating to the particular security unit 72 can ever be used with the particular security unit to blank security aware appliances 5.
Thus considering the signalling interchanges between the home control and appliances reference is made to Figure 26, the first being Figure 26A where on connection of mams power (Figure 22 610) a broadcast unlock code is transmitted for receipt by the appliance controller so that if a complete domestic mams failure has occurred then this will be received as indicated in Figure 8, 308, in exactly the same manner as for other home control units using the remote operations centre. Turning again to Figure 23 and also to Figure 8, when an unlock request is transmitted by a security aware appliance 5 as indicated at 305, then as shown in Figure 26B if the apparatus is not currently in the equipment list then a system lock enable message will be created at 709 for reception as indicated at 403 of Figure 8A. This will result in a system lock enable message being returned at 41 1 to enable the home control unit 72 to add the apparatus tot he list.
If as indicated at 702 the equipment is present in the data store, then an unlock response 705 is returned as shown in Figure 26C.
Now as shown in Figure 26D, in the case where at 703 a blanking key is present, then on receipt of the unlock request a blank instruction will be sent to the particular appliances once it is plugged back in or has mains reconnected thereto. As indicated in Figure 8A the unlock and blanking codes fields are reset and a system lock disabled (blank response) is transmitted at 41 5.
It is here noted that the security unit 72 may communicate with security aware appliances in any of the appropriate manners previously determined including but not limited to FSK signalling across a mains electricity supply, low powered radio signalling or DECT signalling. Intranet communication may also be used.

Claims

1 . A security system comprising a home control unit coupled to receive signals from associated security aware apparatus and including communication means to communicate with a remote operations centre and to receive from the remote operations centre in respect of the or each associated security aware apparatus at least one release code to effect a response to requesting security aware apparatus, the home control unit including means responsive to signals from a global positioning satellite system to determine its location and, on communicating with the remote control centre, to forward signals characterising the determined location whereby the remote operations centre determines from the location the or each release code to be transmitted to the home control unit.
2. A security system as claimed in claim 1 , in which the home control unit includes a data store in which release codes for the or each of the associated security aware apparatus is stored, on first connection of a security aware apparatus to the system, the home control unit responding to signals requesting a code transmitted therefrom by communicating a respective identity code received from the transmitting apparatus and the locational data to the remote operations centre, the remote operations centre returning at least one respective code for retransmission to the requesting apparatus.
3. A security system as claimed in claim 2, in which the data store is volatile whereby on disconnection of mams electrical power from the home control unit all stored codes are lost, the home control unit being responsive to reconnection of power to communicate with the remote operations centre for downloading of stored data whereby if the home control unit is moved to another location the remote operations centre downloads different release codes or downloads no codes.
4. A security system as claimed in any preceding claim, in which the home control unit in addition to transmitting location data to the remote operations centre includes means for storing a unique identity code for the unit, the unit identity code being transmitted with the location data whereby a home control unit removed to an unauthorised location may be traced.
5. A security system as claimed in any preceding claim, in which the home control unit communicates with the remote operations centre by way of a telecommunications network, the home control unit on first connection of power or reconnection of power or when requiring to communicate for other reasons effecting a telephone call to the remote operations centre.
6. A security system as claimed in any one of claims 1 to 4, in which communication between the home control unit and the remote operations centre is by way of radio transmission.
7. A security system as claimed in claim 6, in which the radio transmissions between the remote operations centre and the home control unit is by way of low earth orbiting satellite communications.
8. A security system as claimed in claim 6, in which the radio transmission uses GSM standards and protocols and communication between the remote operations centre and the home control unit is by way of a cellular telephony network.
9. A security system as claimed in any of claims 1 to 4, in which communication between the home control unit and the remote operations centre is by way of connectionless communication.
10. A security system as claimed in claim 9, in which communication between the home control unit and the remote operations centre uses internet protocols.
1 1 . A security system as claimed in claim 9, in which communication between the home control unit and the remote operations centre is by way of electronic mail messaging, mail messages from the home control unit including the locational data.
1 2. A security system as claimed in any preceding claim, in which the home control unit includes receiving means to receive signals from security aware apparatus, the receiving means monitoring for signals defining data messages superimposed on a mains electrical power line.
1 3. A security system as claimed in any one of claims 1 to 1 1 , in which the home control unit includes a receiving means to receive signals from security aware apparatus, the receiving means comprising a low power radio communications receiver.
14. A security system as claimed in claim 1 3, in which the low power radio communications uses DECT protocols and standards.
1 5. A security system as claimed in any one of claims 1 to 1 1 , in which communication between security aware apparatus and the home control unit is by way of connectionless communication.
1 6. A security system as claimed in any preceding claim, in which the home control unit includes transmitting means for returning release codes to security aware apparatus, the transmitting means superimposing signalling characterising the data messages on a mains electrical power line.
1 7. A security system as claimed in any one of claims 1 to 1 5, including transmitting means for returning release codes to security aware apparatus, the transmitting means being a low powered radio communication transmitter.
1 8. A security system as claimed in claim 1 7, in which the low powered radio communication uses DECT standards and protocols.
1 9. A security system as claimed in any one of claims 1 to 1 5, including transmitting means for returning release codes to security aware apparatus, the transmitting means using connectionless communication to forward messages to the security aware apparatus.
20. A home control unit for use in a security system as claimed in any preceding claim.
21 . Security aware apparatus comprising a data store for holding at least one code unique to the location of the apparatus, processor means responsive to connection of electrical power to cause transmission of signals characterising a code request, transmitting means for transmitting the code request and receiving means for receiving a response to the code request, the processing means being responsive to an incorrect or, f previously coded, expiry of a predetermined time period without receiving a code to cause a temporary inoperability of the apparatus, the transmitting means including a low power radio transmitter.
22. Security aware apparatus as claimed in claim 21 , in which the radio transmissions use DECT protocols and transmission standards.
23. Security aware apparatus as claimed in claim 21 or claim 22, in which the receiving means comprises a low power radio receiver.
24. Security aware apparatus as claimed in claim 23, in which the low power radio receiver operates in accordance with DECT protocols and standards.
25. Security aware apparatus for use in a security system as claimed in any one of claims 1 to 20.
PCT/GB2000/000920 1999-03-19 2000-03-14 Security systems WO2000057375A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
CA002367094A CA2367094A1 (en) 1999-03-19 2000-03-14 Security systems
AU31786/00A AU3178600A (en) 1999-03-19 2000-03-14 Security systems
EP00909506A EP1166244A1 (en) 1999-03-19 2000-03-14 Security systems

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP99302149.2 1999-03-19
EP99302149 1999-03-19

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WO2002049270A2 (en) * 2000-12-11 2002-06-20 Horst Ziegler Method for managing a plurality of components for the control of buildings and/or consumption metering in buildings
WO2003046856A1 (en) * 2001-11-24 2003-06-05 Roke Manor Research Limited Improvements in or relating to theft deterrent systems
GB2388232A (en) * 2002-04-30 2003-11-05 Matsushita Graphic Communic Security system using identification codes
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WO2012055858A1 (en) 2010-10-26 2012-05-03 Somfy Sas Method of operating a mobile control unit of a home-automation installation
WO2012055856A1 (en) 2010-10-26 2012-05-03 Somfy Sas Method of operating a home-automation installation
WO2012055857A1 (en) 2010-10-26 2012-05-03 Somfy Sas Method of operating a mobile control unit of a home-automation installation
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Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002049270A2 (en) * 2000-12-11 2002-06-20 Horst Ziegler Method for managing a plurality of components for the control of buildings and/or consumption metering in buildings
WO2002049270A3 (en) * 2000-12-11 2002-11-07 Horst Ziegler Method for managing a plurality of components for the control of buildings and/or consumption metering in buildings
WO2003046856A1 (en) * 2001-11-24 2003-06-05 Roke Manor Research Limited Improvements in or relating to theft deterrent systems
GB2388232A (en) * 2002-04-30 2003-11-05 Matsushita Graphic Communic Security system using identification codes
GB2388232B (en) * 2002-04-30 2006-02-01 Matsushita Graphic Communic Security system
WO2004077371A1 (en) * 2003-02-25 2004-09-10 Deninvent Aps Electric or electronic apparatus including a switch-on circuit
WO2011106755A3 (en) * 2010-02-26 2012-01-12 Digital Authentication Technologies, Inc. Location-aware security and access system
WO2012055858A1 (en) 2010-10-26 2012-05-03 Somfy Sas Method of operating a mobile control unit of a home-automation installation
WO2012055856A1 (en) 2010-10-26 2012-05-03 Somfy Sas Method of operating a home-automation installation
WO2012055857A1 (en) 2010-10-26 2012-05-03 Somfy Sas Method of operating a mobile control unit of a home-automation installation
US9122256B2 (en) 2010-10-26 2015-09-01 Somfy Sas Method of operating a mobile control unit of a home-automation installation
US10416622B2 (en) 2010-10-26 2019-09-17 Somfy Sas Method of operating a home-automation installation
US8983449B1 (en) 2011-09-26 2015-03-17 Klone Mobile, LLC End user controlled temporary mobile phone service device swapping system and method
EP2645347A1 (en) * 2012-03-30 2013-10-02 TELEFONAKTIEBOLAGET LM ERICSSON (publ) Apparatus and method for supporting theft protection

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