WO1985003785A1 - Solid state key for controlling access to computer software - Google Patents

Solid state key for controlling access to computer software Download PDF

Info

Publication number
WO1985003785A1
WO1985003785A1 PCT/US1985/000275 US8500275W WO8503785A1 WO 1985003785 A1 WO1985003785 A1 WO 1985003785A1 US 8500275 W US8500275 W US 8500275W WO 8503785 A1 WO8503785 A1 WO 8503785A1
Authority
WO
WIPO (PCT)
Prior art keywords
password
computer
input
coupled
register
Prior art date
Application number
PCT/US1985/000275
Other languages
French (fr)
Inventor
William P. Cargile
Original Assignee
Gordian Systems, Inc.
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 Gordian Systems, Inc. filed Critical Gordian Systems, Inc.
Priority to DE8585901253T priority Critical patent/DE3569994D1/en
Priority to AT85901253T priority patent/ATE42844T1/en
Publication of WO1985003785A1 publication Critical patent/WO1985003785A1/en

Links

Classifications

    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07FCOIN-FREED OR LIKE APPARATUS
    • G07F7/00Mechanisms actuated by objects other than coins to free or to actuate vending, hiring, coin or paper currency dispensing or refunding apparatus
    • G07F7/08Mechanisms actuated by objects other than coins to free or to actuate vending, hiring, coin or paper currency dispensing or refunding apparatus by coded identity card or credit card or other personal identification means
    • G07F7/10Mechanisms actuated by objects other than coins to free or to actuate vending, hiring, coin or paper currency dispensing or refunding apparatus by coded identity card or credit card or other personal identification means together with a coded signal, e.g. in the form of personal identification information, like personal identification number [PIN] or biometric data
    • G07F7/1008Active credit-cards provided with means to personalise their use, e.g. with PIN-introduction/comparison system
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F21/00Security arrangements for protecting computers, components thereof, programs or data against unauthorised activity
    • G06F21/30Authentication, i.e. establishing the identity or authorisation of security principals
    • G06F21/31User authentication
    • G06F21/34User authentication involving the use of external additional devices, e.g. dongles or smart cards
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/00174Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys
    • G07C9/00309Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/20Individual registration on entry or exit involving the use of a pass
    • G07C9/21Individual registration on entry or exit involving the use of a pass having a variable access code
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/20Individual registration on entry or exit involving the use of a pass
    • G07C9/215Individual registration on entry or exit involving the use of a pass the system having a variable access-code, e.g. varied as a function of time
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/20Individual registration on entry or exit involving the use of a pass
    • G07C9/22Individual registration on entry or exit involving the use of a pass in combination with an identity check of the pass holder
    • G07C9/23Individual registration on entry or exit involving the use of a pass in combination with an identity check of the pass holder by means of a password
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07FCOIN-FREED OR LIKE APPARATUS
    • G07F7/00Mechanisms actuated by objects other than coins to free or to actuate vending, hiring, coin or paper currency dispensing or refunding apparatus
    • G07F7/08Mechanisms actuated by objects other than coins to free or to actuate vending, hiring, coin or paper currency dispensing or refunding apparatus by coded identity card or credit card or other personal identification means
    • G07F7/10Mechanisms actuated by objects other than coins to free or to actuate vending, hiring, coin or paper currency dispensing or refunding apparatus by coded identity card or credit card or other personal identification means together with a coded signal, e.g. in the form of personal identification information, like personal identification number [PIN] or biometric data
    • G07F7/1025Identification of user by a PIN code
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2211/00Indexing scheme relating to details of data-processing equipment not covered by groups G06F3/00 - G06F13/00
    • G06F2211/007Encryption, En-/decode, En-/decipher, En-/decypher, Scramble, (De-)compress
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/00174Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys
    • G07C9/00309Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks
    • G07C2009/00388Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks code verification carried out according to the challenge/response method
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/00174Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys
    • G07C9/00309Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks
    • G07C2009/00412Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks the transmitted data signal being encrypted
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/00174Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys
    • G07C9/00309Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks
    • G07C2009/0042Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks the transmitted data signal containing a code which is changed
    • G07C2009/00476Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks the transmitted data signal containing a code which is changed dynamically
    • G07C2009/005Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated with bidirectional data transmission between data carrier and locks the transmitted data signal containing a code which is changed dynamically whereby the code is a random code
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/00174Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys
    • G07C2009/00753Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated by active electrical keys
    • G07C2009/00769Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated by active electrical keys with data transmission performed by wireless means
    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07CTIME OR ATTENDANCE REGISTERS; REGISTERING OR INDICATING THE WORKING OF MACHINES; GENERATING RANDOM NUMBERS; VOTING OR LOTTERY APPARATUS; ARRANGEMENTS, SYSTEMS OR APPARATUS FOR CHECKING NOT PROVIDED FOR ELSEWHERE
    • G07C9/00Individual registration on entry or exit
    • G07C9/00174Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys
    • G07C9/00658Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated by passive electrical keys
    • G07C9/00674Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated by passive electrical keys with switch-buttons
    • G07C9/0069Electronically operated locks; Circuits therefor; Nonmechanical keys therefor, e.g. passive or active electrical keys or other data carriers without mechanical keys operated by passive electrical keys with switch-buttons actuated in a predetermined sequence

Definitions

  • This invention relates to apparatus for affording access to computer software only by authorized persons, and more particularly to apparatus physically independent of the computer equipment but capable of executing an algorithm that can also be executed by the computer equipment to afford access.
  • Computer software whether in the form of an operating system program or an application, program, is typically stored in media that afford convenient access to a user. Exemplifying such media are main computer memory as well as peripherals such as magnetic disks, magnetic diskettes or magnetic tape. Software on such media requires substantial time and money to develop and it is desired in most cases to limit access to the software to only certain persons.
  • Another technique employed, particularly with respect to application software that is provided on magnetic diskettes, is to encode on the diskette a protective routine that causes the operating system to disable any copying facilities within it. This technique has had only moderate success in preventing unauthorized use or unauthorized copying because programs for disabling such protective routines are widely available.
  • the present invention is embodied in a device that is analogous to a key in that it is a small protable device that can be conveniently carried by the user and that can be employed to obtain access to computer software.
  • the key contains solid state or semiconductor electronic elements that can execute a prescribed algorithm to produce a code which the computer receives and affords access to the software if the code is correct.
  • a semiconductor key embodying the present invention includes a timer which produces a series of pulses at a repetition rate corresponding to the elapse of real time.
  • the timer produces one pulse per day.
  • the timer pulse changes the contents of a shift register, the output of the shift register being a predetermined function of the calendar date.
  • the device includes a character output display of a password which is a function of the previously mentioned function.
  • the user is first prompted by the computer to enter the current date.
  • the computer manipulates the current date by an algorithm corresponding to that in the key to produce the internal password.
  • the shift register within the key is pre-loaded at manufacturing time with a unique number so that the likelihood of two keys being the same unique numbers is insignificant. For example, if the size of the shift register in the key is 32 bits, a size easily achievable under the present state of the art, there are almost five billion bit combinations that can be produced. Because the key is active, i.e., because a continuous supply of power is necessary to • maintain the register state, disassembly of the key for the purposes of ascertaining the function is virtually impossible because in disassembly it is highly likely that power to the shift register would be interrupted.
  • an enhanced version of a software access key embodying the invention involves an extra step to produce a password for input bv the user.
  • the key contains a shift register whose state changes with elapsed real time.
  • the computer with which the key is adapted to cooperate is coded to generate a stimulus number which can be randomly generated and which is saved within the host computer.
  • the stimulus number is transmitted to the key without direct connection, one technique for so transmitting the stimulus number involves excitation of one or more predetermined sites on the video display of the host computer and providing in the key two or more photo-sensors which respond to the pattern of excitation of the sites.
  • the key includes circuitry for decoding the pattern of excitation at the display sites and generating a password from a combination of the decoded signal and the output of the above mentioned register that changes with real time.
  • the association between the password displayed to the user and the current date as manifested by the output of the timer within the key is even more tenuous and therefore more difficult, if not impossible, to display by reverse engineering.
  • An object of the invention is to provide a hardware device that must be employed to gain access to computer software. This object is achieved by producing and displaying a password which must be input by the user and by so arranging the circuitry in the key that it produces, each time the device is used, a different password in accordance with an algorithm that is virtually impossible to predict.
  • Another object of the invention is to provide a device of the type described above that is inexpensive, protable and longlasting.
  • a feature and advantage of the invention is that it employs digital techniques which afford exponential expansion of the number of possible combinations by merely extending by one or more bits the size of the numbers that the apparatus employs in producing a password.
  • Fig. 1 is a perspective of a computer access key embodying the invention with portions being broken away to reveal internal details.
  • Fig. 2 is a block diagram showing the interaction between a relatively uncomplex key in accordance with the invention and a computer containing code in accordance with the invention.
  • Fig. 3 is a block diagram similar to Fig. 2 but showing an enhanced key according to the invention.
  • Fig. 4 is a block diagram of exemplary circuitry within the key of Fig. 3.
  • Fig. 5 is a table showing logical states at various points in the circuit of Fig. 4 during a typical operating sequence.
  • Fig. 6 is a block diagram of a key showing various enhancements in accordance with the invention.
  • reference numberal 12 indicates a key embodying the present invention.
  • the key includes a housing of plastic of like imperforate material which is hollow so as to define a central cavity 14.
  • elements such as an integrated circuit device indicated fragmentarily at 16.
  • a display 18 formed of conventional numeric or alphanumeric display elements, there being four numeric displav elements in the embodiment shown in Fig. 1.
  • Such elements are typically liquid crystal display or LCD elements.
  • display 18 displays the password or a displayed character representation "1854.”
  • the top surface of key 12 is formed with a circular recess 20.
  • the bottom surface of the recess contains one or more contact points 22, or openings in alignment with contact points within cavity 14, for establishing electrical contact with the circuitry 16 within the key.
  • the contact points are employed when the key is set or initialized during manufacture to load a code or bit pattern that is unique to each user.
  • a disk shaped cover 24 is installed in recess 20 to insulate contacts 22.
  • Disk shaped cover 24 can be an adhesive backed label having an outer surface containing trademark or product identifying information.
  • Key 12 has a front face 26. Mounted within face 26 and accessible from the exterior of key are are sensors 28a, 28b, 28 ⁇ and 28d.
  • sensors 28a-28d are photoelectric diodes which respond to images formed on the video display screen D of the computer system containing software to which access is to be had.
  • a fragment of video display screen D is shown at reduced scale in Fig. 1.
  • predetermined sites S on the screen are excited in an appropriate time-space pattern to produce a signal that is received by key 12 by way of sensors 28a-28d.
  • the sensors and the sites on the computer video display exemplify an information transmission link that uses radiant energy and not direct connection between the key and the computer. Other useful forms of radiant energy are sonic energy or radio frequency energy.
  • Key 12 includes a crystal controlled pulse generator 30 that produces a series of timing pulses that count real time.
  • pulse generator 30 produces one pulse per day.
  • the timing pulses supplied by pulse generator 30 are coupled to a password generator 32.
  • the password generator produces a unique combination of binary digits depending on the number of date pulses that have been supplied to it by pulse generator 30 since initialization.
  • the binary bit pattern produced by password generator 32 is a function of the current date, referred to in this description and in Fig. 1 as f r (date) .
  • password generator 3? can be embodied in a shift register into which pulses from pulse generator 30 are introduced serially and which produces a bit pattern representing f' (date) at parallel outputs.
  • the specific number of bits produced by the password generator depends more on the number of keys that are to be distributed than circuit capabilities. Because the active components of key 12' are formed of large scale integrated circuits, a virtually unlimited number of bits can be provided in a very small volume.
  • a password display 18 which, in one device designed in accordance with the invention, is constituted by a plurality of LCDs.
  • a password display 18 which, in one device designed in accordance with the invention, is constituted by a plurality of LCDs.
  • key 12' produces on display 18 a number f' (date) that is a function of the date.
  • the function f* (date) be such that the relation between the number of date pulses coupled to password generator 32 and the bit pattern output by the password generator not be an inverse relation.
  • Reference numeral 34 indicates a computer containing a software program to which access is sought.
  • the computer can be mainframe, mini or micro and includes a video display screen on which user prompts, indicated at 36 and 38, can be displayed.
  • the computer also includes a keyboard to afford user input, indicated schematically at 40 and 42.
  • Computer 34 contains a stored seen number schematically represented at 44.
  • the value of the stored seed is representative of the number or state to which password generator 32 in the key has been initialized.
  • the value of the stored seed uniquely associates the key and the software program resident in computer 34.
  • the computer also includes code for executing a password-generating algorithm, indicated diagrammatically at 46, so that the computer can produce, from the combination of the current date input by the user to keyboard 40 and stored seed 44, a password f(date) which corresponds to the password produced in key 12' and displayed on display 18.
  • comparison logic indicated at 48 for comparing the password generated by password generator 46 and the password input by the user to keyboard 42.
  • Decision logic 49 determines subsequent action depending on whether correspondence between f(date) and f' (date) exists. Correspondence between the two passwords causes the protected software to run, indicated schematically at 50; inequality results in a screen prompt or message to the user, indicated at 52, and termination of the attempted access to the program, indicated at 54.
  • Equality between the functions f(date) and f* (date) is but one example of a predetermined or prescribed relationship between the functions. Another exemplary relationship involves using f(date) as an encryption key and f' (date) as a decryption key.
  • the operation of the system described to this point requires the user to activate computer 34 so that the video display requests the user via screen prompt 36 to input the current date to the computer.
  • the user's compliance with the screen prompt is schematically indicated at 56, and the date is typed into the computer via keyboard 40.
  • the date supplied to keyboard 40 is coupled to password generator 46 which, as alluded to previously, produces a password that is a function, f(date) , of the current date.
  • Such password is applied as one input to comparator 48.
  • Another consequence of a date in proper form being applied to the keyboard is that the computer produces via a control path 57 a second screen prompt, indicated at 38, which instructs the user to input the user's password.
  • the password is produced by key 12' and displayed on display 18.
  • the user's input of the password gleaned from display 18 is indicated schematically at 58, the password being typed into the computer keyboard at 42.
  • the password so typed in by the user is supplied as another input to comparator 48.
  • the comparator 48 supplies signal to decision logic 49, and if the password f(date) generated within the computer by password generator 46 corresponds to the password f' (date) input at keyboard 42, the software program is caused to run as at 50, that is, the user is afforded access to the software program. If the comparison fails, decision logic 49 causes creation of a screen prompt indicated at 52 informing the user that access to the computer software is denied.
  • the number stored in password generator 32 is stored in a dynamic shift register so that attempted disassembly of the key, which would almost inevitably entail interruption of battery power to the shift register, will destroy the number or state within password generator 32.
  • f' (date) between the date and the password displayed by display 18 is not an inverse function, a person obtaining possession of key 12' cannot derive the function f' (date) from observing a sequence of passwords displayed on display 18.
  • a diskette cannot be conveniently employed to decode the seed or the function f' (date) . Such is the case because the seed can be embedded in data or code. ithin the diskette at a different location from the logic that is called to effect password generation in response to keyboard input of the current date. Thus a significant degree of security is afforded.
  • key 12 includes a pulse generator 60 which is substantially identical to pulse generator 30 described above in connection with Fig. 2 in that pulse generator 60 produces pulses at a rate depending on the elapse of real time, for example one pulse per day.
  • the output of pulse generator 60 is coupled to a baseword generator 62.
  • Baseword generator 62 is similar in many respects to password generator 32 described in connection with Fig. 2.
  • Baseword generator 62 is typically embodied in a shift register having a serial input and plural parallel outputs.
  • Pulses from pulse generator 60 are coupled to the serial input and the combination of the bit states at parallel output forms a number that is a function, g' (date) , of elapsed time, i.e., the total number of pulses that have been produced by pulse generator 60 since initialization.
  • Baseword generator 62 is initialized at the time of manufacture with a unique bit pattern; because the baseword generator is typically embodied in a silicon chip, the possible number of unique bit patterns is virtually unlimited.
  • the parallel outputs of baseword generator are coupled as one input to a password generator 64.
  • the other input of password generator 64 is supplied form a stimulus number input 66 via sensors 28a-28d.
  • Password generator 64 produces an output that is a function of both the baseword, in turn a function of the date, and the stimulus number, such function being referred to herein as h 1 (date, sti ) , "stim" being an abbreviation for stimulus number.
  • the output of password generator 64 is a plurality of bit states in parallel and selected ones of the bits are made accessible to the user via display 18 to which the password generator output is coupled.
  • Key 12 is adapted for use with a computer system 68 which is similar to that described above in connection with Fig. 2.
  • Computer 68 also contains software capable of executing an algorithm somewhat different from that described previously.
  • Computer 68 has a keyboard; the user of the key supplies to the computer from the keyboard the current date as indicated at 69 and 70 and the password as indicated at 71 and 72.
  • Computer 68 also has a display screen D (Fig. 1) , such as a video display, for prompting -li ⁇ the user, screen prompts being illustrated in Fig. 3 at 74, 76 and 78.
  • the computer or the program loaded thereinto has a stored seed, indicated at 80, which is uniquely associated with the state at which baseword generator is initialized at manufacturing time so that key 12 and the medium in which the stored seed exists are uniquely associated throughout the useful life of the apparatus.
  • Computer 68 also includes software code so that the computer can function as a baseword generator 82 and produce a baseword that is a function, g(date) of both the date input by the user to keyboard 70 and the stored seed 80.
  • the output of baseword generator 62 in key 12 and the output of baseword generator 82 in computer 68 bear a prescribed relationship to one another, typically equality.
  • the stimulus number produced by stimulus number generator 86 is utilized in two ways. First the stimulus number is saved as one input to a password generator 88.
  • the stimulus number is processed by the computer to produce a time-space pattern on screen sites S for transmission of information that can b « sensed by sensors 28a-28d.
  • the user can place key 12 adjacent the computer display such that sensors 28a-28d are excited by radiation from the screen sites so that a signal representative of the output of -stimulus number generator 86 is applied to password generator 64 in the key.
  • Password generator 88 produces a function h(date, stim) which bears a prescribed relationship to the password produced by password generator 64, equalitv being the typical relationship.
  • the password displayed on display 18 is input to computer 68, element 71 representing the user's input and element 72 representing reception at the computer keyboard of the password.
  • the password input by the user and the password generated by password generator 88 are compared by the computer which is coded so as to form a comparator 92.
  • There is decision logic 94 within computer 68 and if correspondence between the computer generated password and the user input password is detected, the software program to which access is to be controlled is run as indicated at 96. If, to the contrary, lack of correspondence between the two passwords is detected, a screen message is produced, as indicated at 78, and access to the software program is denied, indicated at 98.
  • Fig. 4 discrete logical elements are shown solely for the purpose of illustration, because the preferred embodiment of the invention incorporates the circuit functions within one or more silicon chips.
  • Fig. 4 at the upper portion thereof, are four data type flip-flops 100a, 100b, 100c and lOOd.
  • the flip-flops form a shift register having four outputs identified at 102a, 102b, 102c and 102d.
  • the state of the flip-flops lOOa-lOOd, and therefore the bit pattern appearing at outputs 102a-102d, remains constant throughout the life of the key, and after initialization uniquely identifies a single user.
  • four flip-flops provide only sixteen combinations of unique numbers or functions it is reiterated that Fig. 4 is for the purpose of illustration and is not for the purpose of limitation.
  • the state of flip-flops lOOa-lOOd defines the function g' referred to previously in connection with element 62 of Fig. 3 to which the timing pulses from pulse generator 60 are subjected to produce the baseword g' (date) .
  • Parallel outputs 102a-102d are connected as inputs to respective AND gates 104a, 104b, 104c and 104d.
  • the outputs of AND gates 104a-104d are gated to the input of respective data type flip-flops 106a, 106b, 106 ⁇ and 106d.
  • Flip-flops 106a-106d have clock inputs to which the output of pulse generator 60 is coupled; in F-ig. 4 pulse generator 60 is shown as a crystal controlled oscillator that constitutes a system clock 60a which produces system clock pulses at a relatively high rate and a divider circuit 60b which divides the relatively high frequency pulses produced by the system clock so that the output of the divide circuit provides a pulse at a repetition rate of one per day.
  • Divide circuit 60b is coupled to the clock inputs of flip-flops 106a-106d through an AND age 107 and an OR gate 108.
  • Each AND gate 104a-104d includes a second input to which is coupled the Q output of flip-flop 106d.
  • the outputs of AND gates 104a-104d thus depend on the state of flip-flop 106d and the states of respective flip-flops lOOa-lOOd.
  • the D inputs of flip-flops 106b-106d are supplied through respective XOR gates 109b, 109c and 109d which have one input coupled to respective AND gates 104b-104d and another input coupled to the output of the preceding flip-flop, namely: 106a-106 ⁇ , respectively.
  • the input to flip-flop 106a is supplied by AND gate 104a through AND gate 110 and an OR gate 112. After initialization during manufacture, AND gate 110 is continuously enabled so that during the life of key 12 operation occurs as though AND gate 104a were directly connected to the D input of flip-flop 106a.
  • Flip-flops lOOa-lOOd together with AND gates 104a-104d and XOR gates 109b-109d cooperate to produce the function g' (date) .
  • flip-flops 106a-106d have respective outputs 114a-114d the bit pattern of which corresponds to the baseword, g' (date) .
  • the bit pattern appearing on outputs 114a-114d changes once each dav to a number that is the function of the number of pulses supplied by divider circuit 60b and the state stored in flip-flops lOOa-lOOd.
  • the baseword is coupled to a password generator 64 which includes data type flip-flops 116a, 116b, 116c and 116d.
  • a password generator 64 which includes data type flip-flops 116a, 116b, 116c and 116d.
  • the output of XOR gate 118a is coupled to the D input of flip-flop 116b, the output of XOR gate 118b is coupled to the D input of flip-flop 116c, the output of XOR gate 118c is coupled to the D input of flip-flop 116d and the output of XOR gate 118d is coupled to the D input of flip-flop 116a through an XOR gate 120.
  • To the other input of XOR gate 120 via a circuit path 122 is coupled the stimulus number received by sensors 28a-28d and indicated in Fig. 3 at 66.
  • Buffer register 124 is a FIFO register.
  • the register has a plurality of data inputs one of which is shown coupled to the output of sensor 28a and a clock input shown coupled to the output of sensor 28b.
  • the buffer register has a Q output, on which data appears, and a clock output.
  • Sync detector 126 is a well known circuit which detects a prescribed pattern and number of signals supplied to it from buffer register 124 to ascertain when a data signal, in contrast to noise or the like, has been applied to the sensors. When ascertainment of data signals is made, sync detector supplies via a circuit path 128 an enable signal to input register 124. In response to receipt of an enable signal, the input register supplies data to XOR gate 120 via circuit path 122.
  • Sync detector and counter 126 includes a counter which counts a prescribed number of pulses (four in the exemplary circuit of Fig.
  • Initialization occurs either at the time of manufacture or at some subsequent time when the key is to be introduced into commerce in combination with a specific computer software program to which access is to be limited.
  • Such inputs have been previously identified in connection with Fig. 1 as contact points 22.
  • One initialization input 22a a data input, is coupled directly to the D input of flip-flop 100a.
  • a second initialization input 22b, a clock input is coupled to the clock inputs of flip-flops 106a-106d through a gating circuit.
  • a third initialization input 22c is directly coupled to one input of each of two AND gates 136 and 137 and is coupled through an inverter 138 to one input of each of two AND gates 107 and 110.
  • the other input of AND gate 136 is coupled to the Q output of flip-flop lOOd.
  • the other input of AND gate 137 is coupled to clock input 22b.
  • the outputs of AND gates 110 and 136 constitute the inputs to OR gate 112. During initialization only AND gates 136 and 137 are active because the load enable signal applied to initialization input 22c and.inverted by inverter 138, disables AND gates 107 and 110.
  • an enable singal is first applied to load enable input 22 ⁇ .
  • the enable singal is a voltage level that corresponds to a logical 1.
  • a serial bit pattern is then applied to data input 22a and a clock pulse signal, at a rate substantially in excess of that produced by divider circuit 60b, is applied to clock input 22c-until flip-flops lOOa-lOOd are loaded with the desired permanent bit pattern and flip-flops 106a-106d are loaded with an initial bit pattern. Thereafter connections to initialization inputs 22a, 22b and 22c are broken and the key is ready for use.
  • bit pattern loaded into flip-flops lOOa-lOOs is 0101
  • bit pattern initially loaded into flip-flops 106a-106d is 1100. Because flip-flops 116a-116d are reset prior to each introduction of a stimulus number, their respective Q outputs are set to a logical 0 state.
  • the output of password generator 64 is constituted by the outputs of flip-flops 116 ⁇ and 116d which are coupled to display 18.
  • the outputs of all flip-flops constituting password generator 64 are defined by the following equations:
  • Q(t) represents the state of the indicated parameter before a clock pulse is supplied by buffer register 124 to the flip-flops
  • the parameter Q(t+1) represents the state after such clock pulse
  • the parameter stim represents the value of a bit in the stimulus number by sensors 28a-28d and processed by buffer register 124.
  • rows 140 show a typical number permanently stored in the shift register constituted by flip-flops lOOa-lOOd.
  • Rows 142 show the number stored in the shift register constituted by flip-flops 106a-106d immediately after initialization, i.e., during day 0 in the operating life of the key.
  • Rows 144 show that upon reset, the output of password generator 64, constituted by flip-flops 116a-116d, is constituted by all logical 0s.
  • the next group 146 of four rows shows the outputs of flip-flops 116a-116d as each digit of a stimulus number 1110 is detected by sensors 28a-?8d, processed by buffer register 124, and supplied to password generator 64 via circuit path 122.
  • display 18 displays a number representative of binary 11 and indicated at 18...
  • Row group 148 shows the processing of a subsequent stimulus number, in this case 0100.
  • the password displayed to the user by display 18 is representative of binary 10, indicated at 18,,.
  • Rows 150 show the state of flip-flops 106a-106d at day 1. If during day 1 the user wishes to use the device and if a stimulus number 1111 is produced by the computer system and received by sensors 28a-28d, indicated at row group 152, display 18 will display a number representative of binary 11, indicated at 18 3 in Fig. ' 5.
  • the sequence of operation described above demonstrates that the password displayed to the user changes on a daily basis and changes for each stimulus number received from the computer system with which the device is used. Because the relation between the number permanently stored in flip-flops lOOa-lOOd and the password characters displayed to the user is not an inverse relation, it is virtually impossible for even. the legitimate possessor of the key to deduce the permanently stored number of the function or algorithm that is employed to generate the displayed password characters.
  • 3A Compute internal baseword from date and stored seed; 3B) Generate stimulus number; 3C) Transmit stimulus number to user and save stimulus number; 3D) Compute internal password from internal baseword and saved stimulus number;
  • Fig. 6 which produces an output each day or like constant time interval.
  • the timing pulse is coupled to baseword generator 62 where it is used as previously described.
  • the baseword generated by baseword generator 62 is coupled to a password generator 64.
  • password generator 64 Also coupled to password generator 64 is a stimulus number input from the video display via sensors 28a-28d, reception and processing of the stimulus number being indicated at 66.
  • Password generator 64 - produces a password that is displayed to the user on display 18 and the user inputs the password to the computer to obtain access to the protected software within the computer.
  • a usage counter 200 is typically loaded at initialization time with a number equal to the authorized number of uses of the software. Each time a stimulus number is received and processed, as at 66, a pulse is applied to the usage counter via a signal path 202 to decrement the counter. When the counter is ultimately decremented tq 0 the counter produces a disable signal on a signal path 204. The disable signal is coupled to password generator 64, and when the disable signal occurs, password generator 64 is disabled.
  • Usage counter has an initialization input 22d so that at the time of initialization, the number of times for authorized usage can be loaded into the counter. Input 22d is accessible from a contact point 22 (Fig. 1) .
  • Another technique for limiting the usage of the software program is to place a time limit on the usage rather than a usage limit.
  • a time limit counter 206 which is loaded to some initial count indicating the number of days of authorized usage, there being an initialization input 22e for this purpose.
  • a timing pulse from pulse generator 60 is supplied via a signal path 208 to time limit counter 206 each time a pulse is produced by pulse generator 60, e.g. one pulse per day.
  • a disable signal is produced on signal path 204 which disables password generator 64 and prevents further access to the program.
  • a power supply in the form of a battery 210 is shown in Fig. 6.
  • a battery 210 is shown in Fig. 6.
  • Such battery is also provided for the key shown in the other figures but it is not shown in the other figures in the interest of simplicity and clarity. Suffice it to say that the battery is connected to each of the elements within the circuit, the connections being indicated by an input lead having a plus sign, "+,” adjacent the distal end thereof.
  • the present invention provides a device that affords securitv against unauthorized access to computer software programs. Because the date represented by the cumulative number of pulses produced since initialization and the stimulus number are each modified according to one or more functions in producing a password visible to the user and because each function is not palpable, ascertainment of the password by reverse engineering or like analysis is so difficult as to be virtually impossible.
  • the device is highly protable, convenient to use and relatively inexpensive to produce. In addition use of the device is convenient because no connection to or modification of the computer system is required.

Abstract

A semiconductor device (12) that functions as a key (12) to control access to a software program resident in a computer (68). The device (12) includes a continuously running pulse generator (60) that produces an output representative of real time, a shift register permanently storing a unique number and circuitry (64) for executing an algorithm that combines real time and the permanently stored unique number to produce a password (18). The password (18) is input to the computer (68). The computer (68) is coded to execute an equivalent algorithm to produce a password (88) within the computer (68). The two passwords are compared and access to the computer program is afforded only if they bear a prescribed relationship. The computer (68) can be coded to produce on the video display (74, 76) thereof a time-space pattern on the computer video display (74, 76, 78), circuitry (86) for deriving the stimulus number therefrom, and circuitry (88, 66) for processing the stimulus number so that the password (18) displayed by the key (12) is a function of the value of the stimulus number. The computer (68) executes a similar procedure on the stimulus number so that access to the software program is afforded only if correspondence exists between the user input password (18) and the password (88) generated in the computer (68).

Description

SOLID STATE KEY FOR CONTROLLING ACCESS TO COMPUTER SOFTWARE
Background of the Invention
This invention relates to apparatus for affording access to computer software only by authorized persons, and more particularly to apparatus physically independent of the computer equipment but capable of executing an algorithm that can also be executed by the computer equipment to afford access.
Description of the Prior Art
Computer software, whether in the form of an operating system program or an application, program, is typically stored in media that afford convenient access to a user. Exemplifying such media are main computer memory as well as peripherals such as magnetic disks, magnetic diskettes or magnetic tape. Software on such media requires substantial time and money to develop and it is desired in most cases to limit access to the software to only certain persons.
Numerous techniques for limiting access to computer software are practiced. In multiuser systems it is typical for each user to have an identification code and/or a password which the user must enter before gaining access to the system. Security of the software can be compromised when an authorized user reveals his or her identification code and/or password to unauthorized persons or the access code is discovered by a persistent hacker.
Another technique employed, particularly with respect to application software that is provided on magnetic diskettes, is to encode on the diskette a protective routine that causes the operating system to disable any copying facilities within it. This technique has had only moderate success in preventing unauthorized use or unauthorized copying because programs for disabling such protective routines are widely available.
Although the above described techniques and the copyright laws have impeded unauthorized use and/or copying of computer software, the creators of software continue to experience losses as a result of the activities of unprincipled copiers. This has impeded the creation of software and the allocation of resources necessary to the creation of software.
Summary of the Invention
The present invention is embodied in a device that is analogous to a key in that it is a small protable device that can be conveniently carried by the user and that can be employed to obtain access to computer software. The key contains solid state or semiconductor electronic elements that can execute a prescribed algorithm to produce a code which the computer receives and affords access to the software if the code is correct.
A semiconductor key embodying the present invention includes a timer which produces a series of pulses at a repetition rate corresponding to the elapse of real time. In the specific embodiments described hereinafter in more detail, the timer produces one pulse per day. The timer pulse changes the contents of a shift register, the output of the shift register being a predetermined function of the calendar date. The device includes a character output display of a password which is a function of the previously mentioned function. When the user inputs the displayed password to a computer program to practice the invention the computer affords access to the software if the password is equal to a number generated within the computer.
In order for the software in the computer to be able to produce an internal password for comparison with the user input password, the user is first prompted by the computer to enter the current date. The computer manipulates the current date by an algorithm corresponding to that in the key to produce the internal password.
An important aspect of the invention is that the shift register within the key is pre-loaded at manufacturing time with a unique number so that the likelihood of two keys being the same unique numbers is insignificant. For example, if the size of the shift register in the key is 32 bits, a size easily achievable under the present state of the art, there are almost five billion bit combinations that can be produced. Because the key is active, i.e., because a continuous supply of power is necessary to maintain the register state, disassembly of the key for the purposes of ascertaining the function is virtually impossible because in disassembly it is highly likely that power to the shift register would be interrupted.
An enhanced version of a software access key embodying the invention, which is even more difficult for unauthorized persons to decode, involves an extra step to produce a password for input bv the user. As in the version to which reference has been previously made, the key contains a shift register whose state changes with elapsed real time. The computer with which the key is adapted to cooperate is coded to generate a stimulus number which can be randomly generated and which is saved within the host computer. The stimulus number is transmitted to the key without direct connection, one technique for so transmitting the stimulus number involves excitation of one or more predetermined sites on the video display of the host computer and providing in the key two or more photo-sensors which respond to the pattern of excitation of the sites. The key includes circuitry for decoding the pattern of excitation at the display sites and generating a password from a combination of the decoded signal and the output of the above mentioned register that changes with real time. In practicing the invention employing the enhanced version, the association between the password displayed to the user and the current date as manifested by the output of the timer within the key is even more tenuous and therefore more difficult, if not impossible, to display by reverse engineering.
An object of the invention is to provide a hardware device that must be employed to gain access to computer software. This object is achieved by producing and displaying a password which must be input by the user and by so arranging the circuitry in the key that it produces, each time the device is used, a different password in accordance with an algorithm that is virtually impossible to predict.
Another object of the invention is to provide a device of the type described above that is inexpensive, protable and longlasting. The advent of large scale integrated circuit technology, such as manifested in existent wristwatches and the like, permits a key in accordance with the invention to b produced at a moderate cost, particularly when compared to the cost of many software programs.
A feature and advantage of the invention is that it employs digital techniques which afford exponential expansion of the number of possible combinations by merely extending by one or more bits the size of the numbers that the apparatus employs in producing a password.
The foregoing, together with other objects, features and advantages, will be more apparent after referring to the following specification and the accompanying drawings.
Brief Description of the Drawings
Fig. 1 is a perspective of a computer access key embodying the invention with portions being broken away to reveal internal details.
Fig. 2 is a block diagram showing the interaction between a relatively uncomplex key in accordance with the invention and a computer containing code in accordance with the invention. Fig. 3 is a block diagram similar to Fig. 2 but showing an enhanced key according to the invention.
Fig. 4 is a block diagram of exemplary circuitry within the key of Fig. 3.
Fig. 5 is a table showing logical states at various points in the circuit of Fig. 4 during a typical operating sequence.
Fig. 6 is a block diagram of a key showing various enhancements in accordance with the invention.
Detailed Description of the Preferred Embodiments
Referring more particularly to the drawings, reference numberal 12 indicates a key embodying the present invention. The key includes a housing of plastic of like imperforate material which is hollow so as to define a central cavity 14. Within cavity 14 are elements, such as an integrated circuit device indicated fragmentarily at 16. Accessible from the exterior of the imperforate housing is a display 18 formed of conventional numeric or alphanumeric display elements, there being four numeric displav elements in the embodiment shown in Fig. 1. Such elements are typically liquid crystal display or LCD elements. In the specific example seen in Fig. 1 display 18 displays the password or a displayed character representation "1854." The top surface of key 12 is formed with a circular recess 20. The bottom surface of the recess contains one or more contact points 22, or openings in alignment with contact points within cavity 14, for establishing electrical contact with the circuitry 16 within the key. The contact points are employed when the key is set or initialized during manufacture to load a code or bit pattern that is unique to each user. After the key has been so set, a disk shaped cover 24 is installed in recess 20 to insulate contacts 22. Disk shaped cover 24 can be an adhesive backed label having an outer surface containing trademark or product identifying information. Key 12 has a front face 26. Mounted within face 26 and accessible from the exterior of key are are sensors 28a, 28b, 28σ and 28d. In the specific embodiment shown in the drawings sensors 28a-28d are photoelectric diodes which respond to images formed on the video display screen D of the computer system containing software to which access is to be had. A fragment of video display screen D is shown at reduced scale in Fig. 1. As will be described subsequently, predetermined sites S on the screen are excited in an appropriate time-space pattern to produce a signal that is received by key 12 by way of sensors 28a-28d. The sensors and the sites on the computer video display exemplify an information transmission link that uses radiant energy and not direct connection between the key and the computer. Other useful forms of radiant energy are sonic energy or radio frequency energy.
Referring to Fig. 2, there is a key 12' which is somewhat less complex than that shown in Fig. 1 in that key 12' is not equipped with sensors 28a-28d. Key 12 includes a crystal controlled pulse generator 30 that produces a series of timing pulses that count real time. In one device designed in accordance with the invention, pulse generator 30 produces one pulse per day. The timing pulses supplied by pulse generator 30 are coupled to a password generator 32. The password generator produces a unique combination of binary digits depending on the number of date pulses that have been supplied to it by pulse generator 30 since initialization. Thus the binary bit pattern produced by password generator 32 is a function of the current date, referred to in this description and in Fig. 1 as fr (date) .
As will be described in more detail hereinafter in connection with the embodiment of Figs. 3 and 4, password generator 3? can be embodied in a shift register into which pulses from pulse generator 30 are introduced serially and which produces a bit pattern representing f' (date) at parallel outputs. The specific number of bits produced by the password generator depends more on the number of keys that are to be distributed than circuit capabilities. Because the active components of key 12' are formed of large scale integrated circuits, a virtually unlimited number of bits can be provided in a very small volume.
At least some of the parallel outputs of password generator 32 are connected to a password display 18 which, in one device designed in accordance with the invention, is constituted by a plurality of LCDs. In order to limit the number of digits that a user must input to the computer containing the software to which access is desired, -fewer bits are displayed by display 18 than are produced by password generator 32.
It will be seen then that key 12' produces on display 18 a number f' (date) that is a function of the date. In order to render the key immune to reverse engineering or decoding by a persistent hacker, it is preferred that the function f* (date) be such that the relation between the number of date pulses coupled to password generator 32 and the bit pattern output by the password generator not be an inverse relation. In order to facilitate understanding of password generation, the computer and the program resident in in will be described.
Reference numeral 34 indicates a computer containing a software program to which access is sought. The computer can be mainframe, mini or micro and includes a video display screen on which user prompts, indicated at 36 and 38, can be displayed. The computer also includes a keyboard to afford user input, indicated schematically at 40 and 42.
Computer 34 contains a stored seen number schematically represented at 44. The value of the stored seed is representative of the number or state to which password generator 32 in the key has been initialized. The value of the stored seed uniquely associates the key and the software program resident in computer 34. The computer also includes code for executing a password-generating algorithm, indicated diagrammatically at 46, so that the computer can produce, from the combination of the current date input by the user to keyboard 40 and stored seed 44, a password f(date) which corresponds to the password produced in key 12' and displayed on display 18. Also within computer 34 is comparison logic indicated at 48 for comparing the password generated by password generator 46 and the password input by the user to keyboard 42. Decision logic 49 determines subsequent action depending on whether correspondence between f(date) and f' (date) exists. Correspondence between the two passwords causes the protected software to run, indicated schematically at 50; inequality results in a screen prompt or message to the user, indicated at 52, and termination of the attempted access to the program, indicated at 54.
Equality between the functions f(date) and f* (date) is but one example of a predetermined or prescribed relationship between the functions. Another exemplary relationship involves using f(date) as an encryption key and f' (date) as a decryption key.
The operation of the system described to this point requires the user to activate computer 34 so that the video display requests the user via screen prompt 36 to input the current date to the computer. The user's compliance with the screen prompt is schematically indicated at 56, and the date is typed into the computer via keyboard 40. The date supplied to keyboard 40 is coupled to password generator 46 which, as alluded to previously, produces a password that is a function, f(date) , of the current date. Such password is applied as one input to comparator 48. Another consequence of a date in proper form being applied to the keyboard is that the computer produces via a control path 57 a second screen prompt, indicated at 38, which instructs the user to input the user's password. The password is produced by key 12' and displayed on display 18. The user's input of the password gleaned from display 18 is indicated schematically at 58, the password being typed into the computer keyboard at 42. The password so typed in by the user is supplied as another input to comparator 48. The comparator 48 supplies signal to decision logic 49, and if the password f(date) generated within the computer by password generator 46 corresponds to the password f' (date) input at keyboard 42, the software program is caused to run as at 50, that is, the user is afforded access to the software program. If the comparison fails, decision logic 49 causes creation of a screen prompt indicated at 52 informing the user that access to the computer software is denied.
Numerous characteristics of the present invention make it difficult, if not impossible, to decode by reverse engineering or other techniques. The number stored in password generator 32 is stored in a dynamic shift register so that attempted disassembly of the key, which would almost inevitably entail interruption of battery power to the shift register, will destroy the number or state within password generator 32. Because the relation, f' (date) , between the date and the password displayed by display 18 is not an inverse function, a person obtaining possession of key 12' cannot derive the function f' (date) from observing a sequence of passwords displayed on display 18. Within computer 34, even the most readily copyable medium, a diskette, cannot be conveniently employed to decode the seed or the function f' (date) . Such is the case because the seed can be embedded in data or code. ithin the diskette at a different location from the logic that is called to effect password generation in response to keyboard input of the current date. Thus a significant degree of security is afforded.
The embodiment shown in Figs. 3 and 4 exploits sensors 28a-28d to afford a key having even greater immunity to unauthorized decoding or reverse engineering. Referring to Fig. 3, key 12 includes a pulse generator 60 which is substantially identical to pulse generator 30 described above in connection with Fig. 2 in that pulse generator 60 produces pulses at a rate depending on the elapse of real time, for example one pulse per day. The output of pulse generator 60 is coupled to a baseword generator 62. Baseword generator 62 is similar in many respects to password generator 32 described in connection with Fig. 2. Baseword generator 62 is typically embodied in a shift register having a serial input and plural parallel outputs. Pulses from pulse generator 60 are coupled to the serial input and the combination of the bit states at parallel output forms a number that is a function, g' (date) , of elapsed time, i.e., the total number of pulses that have been produced by pulse generator 60 since initialization. Baseword generator 62 is initialized at the time of manufacture with a unique bit pattern; because the baseword generator is typically embodied in a silicon chip, the possible number of unique bit patterns is virtually unlimited. The parallel outputs of baseword generator are coupled as one input to a password generator 64. The other input of password generator 64 is supplied form a stimulus number input 66 via sensors 28a-28d. Password generator 64 produces an output that is a function of both the baseword, in turn a function of the date, and the stimulus number, such function being referred to herein as h1 (date, sti ) , "stim" being an abbreviation for stimulus number. The output of password generator 64 is a plurality of bit states in parallel and selected ones of the bits are made accessible to the user via display 18 to which the password generator output is coupled.
Key 12 is adapted for use with a computer system 68 which is similar to that described above in connection with Fig. 2. Computer 68 also contains software capable of executing an algorithm somewhat different from that described previously. Computer 68 has a keyboard; the user of the key supplies to the computer from the keyboard the current date as indicated at 69 and 70 and the password as indicated at 71 and 72. Computer 68 also has a display screen D (Fig. 1) , such as a video display, for prompting -li¬ the user, screen prompts being illustrated in Fig. 3 at 74, 76 and 78. The computer or the program loaded thereinto has a stored seed, indicated at 80, which is uniquely associated with the state at which baseword generator is initialized at manufacturing time so that key 12 and the medium in which the stored seed exists are uniquely associated throughout the useful life of the apparatus.
Computer 68 also includes software code so that the computer can function as a baseword generator 82 and produce a baseword that is a function, g(date) of both the date input by the user to keyboard 70 and the stored seed 80. The output of baseword generator 62 in key 12 and the output of baseword generator 82 in computer 68 bear a prescribed relationship to one another, typically equality. There is a control path 84 from keyboard 70 to a stimulus number generator 86 so that when user inputs a date to keyboard 70, stimulus number generator 86 is activated to produce an output which can be a random or arbitrarily varying number. The stimulus number produced by stimulus number generator 86 is utilized in two ways. First the stimulus number is saved as one input to a password generator 88. Second the stimulus number is processed by the computer to produce a time-space pattern on screen sites S for transmission of information that can b« sensed by sensors 28a-28d. The user can place key 12 adjacent the computer display such that sensors 28a-28d are excited by radiation from the screen sites so that a signal representative of the output of -stimulus number generator 86 is applied to password generator 64 in the key.
Password generator 88 produces a function h(date, stim) which bears a prescribed relationship to the password produced by password generator 64, equalitv being the typical relationship. The password displayed on display 18 is input to computer 68, element 71 representing the user's input and element 72 representing reception at the computer keyboard of the password. The password input by the user and the password generated by password generator 88 are compared by the computer which is coded so as to form a comparator 92. There is decision logic 94 within computer 68, and if correspondence between the computer generated password and the user input password is detected, the software program to which access is to be controlled is run as indicated at 96. If, to the contrary, lack of correspondence between the two passwords is detected, a screen message is produced, as indicated at 78, and access to the software program is denied, indicated at 98.
In further explanation of the construction of key 12, reference is made to Fig. 4. In Fig. 4 discrete logical elements are shown solely for the purpose of illustration, because the preferred embodiment of the invention incorporates the circuit functions within one or more silicon chips. In Fig. 4, at the upper portion thereof, are four data type flip-flops 100a, 100b, 100c and lOOd. The flip-flops form a shift register having four outputs identified at 102a, 102b, 102c and 102d. The state of the flip-flops lOOa-lOOd, and therefore the bit pattern appearing at outputs 102a-102d, remains constant throughout the life of the key, and after initialization uniquely identifies a single user. Although four flip-flops provide only sixteen combinations of unique numbers or functions it is reiterated that Fig. 4 is for the purpose of illustration and is not for the purpose of limitation.
As will appear, the state of flip-flops lOOa-lOOd defines the function g' referred to previously in connection with element 62 of Fig. 3 to which the timing pulses from pulse generator 60 are subjected to produce the baseword g' (date) . Parallel outputs 102a-102d are connected as inputs to respective AND gates 104a, 104b, 104c and 104d.
The outputs of AND gates 104a-104d are gated to the input of respective data type flip-flops 106a, 106b, 106σ and 106d. Flip-flops 106a-106d have clock inputs to which the output of pulse generator 60 is coupled; in F-ig. 4 pulse generator 60 is shown as a crystal controlled oscillator that constitutes a system clock 60a which produces system clock pulses at a relatively high rate and a divider circuit 60b which divides the relatively high frequency pulses produced by the system clock so that the output of the divide circuit provides a pulse at a repetition rate of one per day. Divide circuit 60b is coupled to the clock inputs of flip-flops 106a-106d through an AND age 107 and an OR gate 108. Each AND gate 104a-104d includes a second input to which is coupled the Q output of flip-flop 106d. The outputs of AND gates 104a-104d thus depend on the state of flip-flop 106d and the states of respective flip-flops lOOa-lOOd. The D inputs of flip-flops 106b-106d are supplied through respective XOR gates 109b, 109c and 109d which have one input coupled to respective AND gates 104b-104d and another input coupled to the output of the preceding flip-flop, namely: 106a-106σ, respectively. The input to flip-flop 106a is supplied by AND gate 104a through AND gate 110 and an OR gate 112. After initialization during manufacture, AND gate 110 is continuously enabled so that during the life of key 12 operation occurs as though AND gate 104a were directly connected to the D input of flip-flop 106a.
Flip-flops lOOa-lOOd together with AND gates 104a-104d and XOR gates 109b-109d cooperate to produce the function g' (date) . Thus flip-flops 106a-106d have respective outputs 114a-114d the bit pattern of which corresponds to the baseword, g' (date) . As such the bit pattern appearing on outputs 114a-114d changes once each dav to a number that is the function of the number of pulses supplied by divider circuit 60b and the state stored in flip-flops lOOa-lOOd.
The baseword is coupled to a password generator 64 which includes data type flip-flops 116a, 116b, 116c and 116d. There are four XOR gates 118a, 118b, 118c and 118d, each of which has one input driven by the respective Q outputs of flip-flops 106a-106d and the other input driven by respective flip-flops 116a-116d. The output of XOR gate 118a is coupled to the D input of flip-flop 116b, the output of XOR gate 118b is coupled to the D input of flip-flop 116c, the output of XOR gate 118c is coupled to the D input of flip-flop 116d and the output of XOR gate 118d is coupled to the D input of flip-flop 116a through an XOR gate 120. To the other input of XOR gate 120 via a circuit path 122 is coupled the stimulus number received by sensors 28a-28d and indicated in Fig. 3 at 66.
Two sensors, such as sensor 28a and 28d are shown in Fig. 4. The other two sensors, 28b and 28c, are omitted for simplicity because their outputs are handled in substantially the same manner as is the output of sensor 28a. The sensors are biased by pull up resistors R which are connected to the positive terminal of the battery power supply within key 12. The outputs of the sensors constitute inputs to an input buffer register 124. Buffer register 124 is a FIFO register. The register has a plurality of data inputs one of which is shown coupled to the output of sensor 28a and a clock input shown coupled to the output of sensor 28b. The buffer register has a Q output, on which data appears, and a clock output. The data and clock outputs of input register 124 are coupled to a sync detector and counter 126. Sync detector 126 is a well known circuit which detects a prescribed pattern and number of signals supplied to it from buffer register 124 to ascertain when a data signal, in contrast to noise or the like, has been applied to the sensors. When ascertainment of data signals is made, sync detector supplies via a circuit path 128 an enable signal to input register 124. In response to receipt of an enable signal, the input register supplies data to XOR gate 120 via circuit path 122. Sync detector and counter 126 includes a counter which counts a prescribed number of pulses (four in the exemplary circuit of Fig. 4) and applies an enable signal on circuit path 128 for a period corresponding to the duration of the prescribed number of pulses. There is an inverter 129 coupled from circuit path 128 to the reset inputs of flip-flops 116a-116d. When there is no enable signal on circuit path 128, the action of inverter is such as to reset flip-flops 116a-116d so that the state of their respective outputs is 0. When a stimulus number of proper format is received, the enable signal is asserted and the reset signal to flip-flops 116a-116d is discontinued so that the stimulus number can be loaded into the shift register constituted by the latter flip-flops.
The bits appearing at the outputs .of flip-flops 116c and 116d are displayed to the user on display 18. Because Fig. 4 has been reduced and simplified for the purposes of clarity of description, the output of only two of the - flip-flops that constitute a part of password generator 64 are employed. In actual practice, as has been stated previously, more than two bits are employed and more than one digit is displayed on display 18.
Before summarizing the operation of the circuit of Fig. 4, initialization of the circuit will be described. Initialization occurs either at the time of manufacture or at some subsequent time when the key is to be introduced into commerce in combination with a specific computer software program to which access is to be limited. In the embodiment shown in Fig. 4, there are three inputs to which connection is necessary for initialization. Such inputs have been previously identified in connection with Fig. 1 as contact points 22. One initialization input 22a, a data input, is coupled directly to the D input of flip-flop 100a. A second initialization input 22b, a clock input, is coupled to the clock inputs of flip-flops 106a-106d through a gating circuit. A third initialization input 22c, a load enable input, is directly coupled to one input of each of two AND gates 136 and 137 and is coupled through an inverter 138 to one input of each of two AND gates 107 and 110. The other input of AND gate 136 is coupled to the Q output of flip-flop lOOd. The other input of AND gate 137 is coupled to clock input 22b. The outputs of AND gates 110 and 136 constitute the inputs to OR gate 112. During initialization only AND gates 136 and 137 are active because the load enable signal applied to initialization input 22c and.inverted by inverter 138, disables AND gates 107 and 110.
In order to initialize the key, that is, to load into the shift register formed by flip-flops lOOa-lOOd a permanent, uniσue number, an enable singal is first applied to load enable input 22σ. The enable singal is a voltage level that corresponds to a logical 1. A serial bit pattern is then applied to data input 22a and a clock pulse signal, at a rate substantially in excess of that produced by divider circuit 60b, is applied to clock input 22c-until flip-flops lOOa-lOOd are loaded with the desired permanent bit pattern and flip-flops 106a-106d are loaded with an initial bit pattern. Thereafter connections to initialization inputs 22a, 22b and 22c are broken and the key is ready for use. Operation of key 12 will be described- by using an example in which the bit pattern loaded into flip-flops lOOa-lOOs is 0101, and the bit pattern initially loaded into flip-flops 106a-106d is 1100. Because flip-flops 116a-116d are reset prior to each introduction of a stimulus number, their respective Q outputs are set to a logical 0 state.
The output of password generator 64 is constituted by the outputs of flip-flops 116σ and 116d which are coupled to display 18. The outputs of all flip-flops constituting password generator 64 are defined by the following equations:
Q116a {t+1) = stim(t) X0R (QH6d(t) X0R Ql06d)
Q116b(t+1) = Q116a(t) X0R Q106a(t)
Q116c(t+1) - Q116b{t) X0R Q106bft)
Q116d(t+1) - Q116c(t) X0R Q106c(t) In the above formulas Q(t) represents the state of the indicated parameter before a clock pulse is supplied by buffer register 124 to the flip-flops, the parameter Q(t+1) represents the state after such clock pulse, and the parameter stim represents the value of a bit in the stimulus number by sensors 28a-28d and processed by buffer register 124.
Referring to the table of Fig. 5, rows 140 show a typical number permanently stored in the shift register constituted by flip-flops lOOa-lOOd. Rows 142 show the number stored in the shift register constituted by flip-flops 106a-106d immediately after initialization, i.e., during day 0 in the operating life of the key. Rows 144 show that upon reset, the output of password generator 64, constituted by flip-flops 116a-116d, is constituted by all logical 0s. The next group 146 of four rows shows the outputs of flip-flops 116a-116d as each digit of a stimulus number 1110 is detected by sensors 28a-?8d, processed by buffer register 124, and supplied to password generator 64 via circuit path 122. upon completion of processing of the stimulus number, display 18 displays a number representative of binary 11 and indicated at 18...
Row group 148 shows the processing of a subsequent stimulus number, in this case 0100. The password displayed to the user by display 18 is representative of binary 10, indicated at 18,,.
When a timing pulse is produced by system clock 60a and divider 60b, the output states of flip-flops 106a-106d are changed, the new states being a function of the prior states of those flip-flops and the number permanently stored in flop-flops lOOa-lOOd. Rows 150 show the state of flip-flops 106a-106d at day 1. If during day 1 the user wishes to use the device and if a stimulus number 1111 is produced by the computer system and received by sensors 28a-28d, indicated at row group 152, display 18 will display a number representative of binary 11, indicated at 183 in Fig.' 5. The sequence of operation described above demonstrates that the password displayed to the user changes on a daily basis and changes for each stimulus number received from the computer system with which the device is used. Because the relation between the number permanently stored in flip-flops lOOa-lOOd and the password characters displayed to the user is not an inverse relation, it is virtually impossible for even. the legitimate possessor of the key to deduce the permanently stored number of the function or algorithm that is employed to generate the displayed password characters.
To afford further insight into the apparatus of Figs. 3 and 4, the following pseudo code is presented to illustrate cooperation of a computer in which resides a program to which access is sought by a user and a key embodying the invention:
1) Prompt user for date;
2) Accept date from user;
3A) Compute internal baseword from date and stored seed; 3B) Generate stimulus number; 3C) Transmit stimulus number to user and save stimulus number; 3D) Compute internal password from internal baseword and saved stimulus number;
4) Prompt. user for password;
5) Accept password from user;
6) Compare user password and internal password;
7) Initiate program execution if equal.
In the embodiment of the invention described in more detail in connection with Fig. 2, the steps identified above as 3A-3D are combined and simplified to produce apparatus that affords security against unauthorized access to a somewhat lesser degree than the embodiment of the invention shown in Figs. 3 and 4. The elements in Fig. 6 that are identical to similar elements in Fig. 3 bear identical reference numerals to those employed in Fig. 3. There is a pulse generator 60 which produces an output each day or like constant time interval. The timing pulse is coupled to baseword generator 62 where it is used as previously described. The baseword generated by baseword generator 62 is coupled to a password generator 64. Also coupled to password generator 64 is a stimulus number input from the video display via sensors 28a-28d, reception and processing of the stimulus number being indicated at 66. Password generator 64 - produces a password that is displayed to the user on display 18 and the user inputs the password to the computer to obtain access to the protected software within the computer.
There are certain instances where the owner of software may desire to limit the usage made of the software. One form of limited usage is to permit the software user to access the software a specific number of times. To afford this mode of operation one enhancement in the device shown in Fig. 6 is a usage counter 200. The usage counter is typically loaded at initialization time with a number equal to the authorized number of uses of the software. Each time a stimulus number is received and processed, as at 66, a pulse is applied to the usage counter via a signal path 202 to decrement the counter. When the counter is ultimately decremented tq 0 the counter produces a disable signal on a signal path 204. The disable signal is coupled to password generator 64, and when the disable signal occurs, password generator 64 is disabled. Usage counter has an initialization input 22d so that at the time of initialization, the number of times for authorized usage can be loaded into the counter. Input 22d is accessible from a contact point 22 (Fig. 1) .
Another technique for limiting the usage of the software program is to place a time limit on the usage rather than a usage limit. For this purpose there is a time limit counter 206 which is loaded to some initial count indicating the number of days of authorized usage, there being an initialization input 22e for this purpose. A timing pulse from pulse generator 60 is supplied via a signal path 208 to time limit counter 206 each time a pulse is produced by pulse generator 60, e.g. one pulse per day. When the count stored in time limit counter reaches 0, a disable signal is produced on signal path 204 which disables password generator 64 and prevents further access to the program.
In the interest of completeness a power supply in the form of a battery 210 is shown in Fig. 6. Such battery is also provided for the key shown in the other figures but it is not shown in the other figures in the interest of simplicity and clarity. Suffice it to say that the battery is connected to each of the elements within the circuit, the connections being indicated by an input lead having a plus sign, "+," adjacent the distal end thereof.
Thus it will be seen that the present invention provides a device that affords securitv against unauthorized access to computer software programs. Because the date represented by the cumulative number of pulses produced since initialization and the stimulus number are each modified according to one or more functions in producing a password visible to the user and because each function is not palpable, ascertainment of the password by reverse engineering or like analysis is so difficult as to be virtually impossible. The device is highly protable, convenient to use and relatively inexpensive to produce. In addition use of the device is convenient because no connection to or modification of the computer system is required.
Although several embodiments of the invention have been shown and described, it will be obvious that other adaptations and modifications can be made without departing form the true spirit and scope of the invention.

Claims

WHAT IS CLAIMED IS:
1. Apparatus for affording access by a user to a computer resident program, which program includes code capable of operating on first and second operands to produce an access signal that permits execution of the program, the apparatus comprising means for generating a series of regularly recurring pulses at a frequency corresponding to elapse of real time, password generating means coupled to said pulse generating means and responsive to pulses produced thereby for generating in accordance with a prescribed algorithm a different password character string for each pulse from said pulse generating means, and means for displaying at least one character representative of each of said password character strings as a displayed character representation, the computer affording user input of real time as the first operand and the displayed character representation as the second operand whereupon the computer can process the first operand in accordance with the algorithm to produce an internal password and produce the access signal only if the second operand bears a prescribed relationship to the internal password.
2. Apparatus in accordance with claim 1 wherein the computer in which the program is resident is coupled to a video display and wherein the code is adapted to produce a stimulus number, to generate a signal pattern that is sequentially variable in accordance with a predetermined function of the stimulus number, and to excite the display in accordance with the signal pattern, said apparatus having at least one sensor accessible from the exterior of said apparatus so that juxtaposition of the apparatus and the display affords excitation of the sensor in accordance with the pattern, means coupled to said sensor for decoding the pattern to produce the stimulus number in the apparatus, said password generating means including a baseword generator coupled to said pulse generating means for producing a baseword that is a function of the number of pulses produced by said pulse generating means, and means in the apparatus for combining the stimulus number with the baseword according to a prescribed function to produce a password character string.
3. Apparatus in accordance with claim 2 including means in said apparatus for counting each time said sensor is excited by the stimulus number on the video display and means for disabling said apparatus when said counter reaches a predetermined count.
4. Apparatus in accordance with claim 2 includinα a time limit counter in said apparatus, said time limit counter being coupled to said pulse generating means so as to count the number of pulses generated thereby, and means for disabling said apparatus when said time limit counter has counted a predetermined number of pulses from said pulse generating apparatus.
5. Apparatus according to claim 1 wherein said password generating means comprises first and second registers each having input means and outputs means, said first register being initialized to a fixed state that uniquely identifies the apparatus, said pulse generating means being coupled to said input means of said second register, and means for gating said output means of said first and second registers to produce said password character strings, said computer storing a data pattern uniquely associated with the fixed state of said first register.
6. Apparatus according to claim 5 including a third register having input means and output means, said gating means including means for gating said output means of said third register with said output means of said first and second registers to produce said password character strings, said computer being coupled to a visual display and being coded to produce a stimulus number and to generate a radiant signal pattern on the display that varies as a function of the stimulus number, said apparatus having at least one sensor accessible from the exterior of said apparatus and coupled to said input means of said third register, said apparatus having means for converting excitations o said sensor from said radiant signal pattern into a string of pulses for altering the state of said third register in accordance with the stimulus number.
7. Apparatus according to claim 6 including a substantially imperforate housing for said apparatus, a plurality of contacts accessible from the exterior of said housing, one of said contacts being coupled to said input means of said shift register and another of said contacts being coupled to said input means of said second register and means for rendering the apparatus immune to reinitializatio .
8. Apparatus according to claim 7 wherein said rendering means includes means for covering said contacts after initialization.
9. Apparatus in accordance with claim 6 wherein one of said contacts is a third contact and wherein said apparatus includes a gating circuit within said housing for selectively enabling and disabling coupling between said first and second contacts and said first and second registers, said gating means having a gate enable terminal coupled to said third contact for enabling said gating circuit only during initialization.
10. Apparatus for controlling access by a user to a computer resident program in which the computer has a video display and includes code for producing a stimulus number and for exciting the display with a signal that is a predetermined function of the stimulus number, the apparatus including an imperforate housing having an external surface, a plurality of sensors accessible from said surface and positioned so that juxtaposition of said apparatus and said video display affords excitation of the sensors in accordance with the predetermined function, means in said housing coupled to said sensors for producing a password that bears a prescribed relation to the stimulus number, and display means coupled"to said password producing means for displaying a password character string that is representative of said password, the computer-also having user accessible input means to afford input to the computer by a user of the password character string displayed by the display means, the computer having code for processing the stimulus number and a password character string input by the user to determine the relationship therebetween so as to afford access to the computer software program only in response to detection of a prescribed relationship between t fi stimulus number and the password character string input by the user.
11. Apparatus according to claim 10 wherein said apparatus includes timing means in said housing for producing a signal that has a value representative of calendar time and means for gating the output of said timing means with said password producing means so that said password character string is a preselected function of both the password and calendar time, said computer being adapted to afford user input of calendar time, said computer including code for modifying the stimulus number by calendar time input by the user according to the preselected function.
12. Apparatus in accordance with claim 10 including means in said apparatus for counting each time said sensor is excited by the stimulus number on the video display and means for disabling said apparatus when said counter reaches a predetermined count.
13. Apparatus according to claim 10 wherein said password generating means comprises first and second registers each having input means and output means, said first register being initialized to a fixed state that uniquely identifies the apparatus, said pulse generating means being coupled to said input means of said second register, and means for gating said output means of said first and second registers to produce said password character strings, said computer storing a data pattern uniquely associated with the fixed state of said first register.
14. Apparatus according to claim 13 including a substantially imperforate housing for said apparatus, a plurality of contacts accessible from the exterior of said housing, one of said contacts being coupled to said input means of said shift register and another of said contacts being coupled to said input means of said second register and means for rendering the apparatus immune to reinitialization.
15. Apparatus according to claim 14 wherein said rendering means includes means for covering said contacts after initialization.
<
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Cited By (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1987001835A1 (en) * 1985-09-12 1987-03-26 Basil Eliseus Philipsz Secure computer system
FR2588396A1 (en) * 1985-10-04 1987-04-10 Esparseil Claude Electronic device for access protection, especially to program and key for such a device
FR2601480A1 (en) * 1986-07-11 1988-01-15 Amsa Method and device for monitoring the use of hardware such as a personal computer
EP0253885A1 (en) * 1985-12-26 1988-01-27 Vasco Corp. Solid state key for controlling access to computer systems and to computer software and/or for secure communications
EP0266748A2 (en) * 1986-11-05 1988-05-11 International Business Machines Corporation A software protection system using a single-key cryptosystem, a hardware-based authorization system and a secure coprocessor
FR2607544A1 (en) * 1986-11-27 1988-06-03 Neiman Sa Electronic lock with periodic code change
WO1988006826A1 (en) * 1987-03-02 1988-09-07 Mars Incorporated Access systems
GB2214673A (en) * 1988-01-29 1989-09-06 Texas Instruments Ltd Electronic control device for producing a particular code group of digits when energised.
FR2636795A3 (en) * 1988-08-25 1990-03-23 Informatique Realite Security access system for a videotex server centre
GB2223610A (en) * 1988-08-01 1990-04-11 Expert Electronic Co Ltd Power control security system for a computer
EP0372110A1 (en) * 1987-05-26 1990-06-13 Hai Cheng Chen A security system
CH675169A5 (en) * 1988-02-22 1990-08-31 Asea Brown Boveri
US5060263A (en) * 1988-03-09 1991-10-22 Enigma Logic, Inc. Computer access control system and method
US5107258A (en) * 1986-04-22 1992-04-21 Rene Soum Wireless remote control high security system permitting the opening or theft-proof closing of relays actuating systems such as locks
US5136644A (en) * 1988-04-21 1992-08-04 Telecash Portable electronic device for use in conjunction with a screen
EP0564832A1 (en) * 1992-04-03 1993-10-13 International Business Machines Corporation Identity verification system resistant to compromise by observation of its use
WO1993023830A1 (en) * 1992-05-08 1993-11-25 Wesco Software Limited Authenticating the identity of an authorised person
EP0338936B1 (en) * 1988-04-21 1993-12-22 Telecash Hand-held electronic device to be used in conjuction with a screen
WO1996034328A1 (en) * 1995-04-27 1996-10-31 Herman Weisz Method and security system for ensuring the security of a device
WO1998053431A1 (en) * 1997-05-20 1998-11-26 Himalaya S.A.R.L. Device for identifying and locating a person

Families Citing this family (123)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4680731A (en) * 1983-03-17 1987-07-14 Romox Incorporated Reprogrammable cartridge memory with built-in identification circuitry and programming method
US4819267A (en) * 1984-02-22 1989-04-04 Thumbscan, Inc. Solid state key for controlling access to computer systems and to computer software and/or for secure communications
IE56668B1 (en) * 1984-06-15 1991-10-23 Pelling Nicholas John M An encoder/decoder
US4885778A (en) * 1984-11-30 1989-12-05 Weiss Kenneth P Method and apparatus for synchronizing generation of separate, free running, time dependent equipment
US5367572A (en) * 1984-11-30 1994-11-22 Weiss Kenneth P Method and apparatus for personal identification
US4720860A (en) * 1984-11-30 1988-01-19 Security Dynamics Technologies, Inc. Method and apparatus for positively identifying an individual
US4998279A (en) * 1984-11-30 1991-03-05 Weiss Kenneth P Method and apparatus for personal verification utilizing nonpredictable codes and biocharacteristics
US5168520A (en) * 1984-11-30 1992-12-01 Security Dynamics Technologies, Inc. Method and apparatus for personal identification
US4856062A (en) * 1984-11-30 1989-08-08 Kenneth Weiss Computing and indicating device
US4800590A (en) * 1985-01-14 1989-01-24 Willis E. Higgins Computer key and computer lock system
US4907268A (en) * 1986-11-03 1990-03-06 Enigma Logic, Inc. Methods and apparatus for controlling access to information processed a multi-user-accessible digital computer
US5109413A (en) * 1986-11-05 1992-04-28 International Business Machines Corporation Manipulating rights-to-execute in connection with a software copy protection mechanism
US4817140A (en) * 1986-11-05 1989-03-28 International Business Machines Corp. Software protection system using a single-key cryptosystem, a hardware-based authorization system and a secure coprocessor
US5148534A (en) * 1986-11-05 1992-09-15 International Business Machines Corp. Hardware cartridge representing verifiable, use-once authorization
DE3642629A1 (en) * 1986-12-13 1988-06-23 Grundig Emv SYSTEM FOR PROCESSING ENCRYPTED TRANSFER INFORMATION
US4829589A (en) * 1987-06-02 1989-05-09 Kabushiki Kaisha Toshiba Anti-tapping system
US4999806A (en) * 1987-09-04 1991-03-12 Fred Chernow Software distribution system
FR2623309B1 (en) * 1987-11-13 1994-04-08 Boule Jean Pierre DEVICE AND METHOD FOR SECURING DATA EXCHANGE BETWEEN A VIDEOTEX TERMINAL AND A SERVER
US4959861A (en) * 1988-07-13 1990-09-25 Howlette Edward L Security system for computer software
US5007085A (en) * 1988-10-28 1991-04-09 International Business Machines Corporation Remotely sensed personal stylus
US5065429A (en) * 1989-04-03 1991-11-12 Lang Gerald S Method and apparatus for protecting material on storage media
US4937864A (en) * 1989-04-27 1990-06-26 Xerox Corporation Debug routine accessing system
KR100191811B1 (en) * 1989-10-24 1999-06-15 이브 오드베르 Portable electronic device to establish public loyalty to a medium or similar
US5097505A (en) * 1989-10-31 1992-03-17 Securities Dynamics Technologies, Inc. Method and apparatus for secure identification and verification
US5067155A (en) * 1990-05-09 1991-11-19 Control Module Inc. Method and means to limit access to computer systems
US6175312B1 (en) 1990-05-29 2001-01-16 Microchip Technology Incorporated Encoder and decoder microchips and remote control devices for secure unidirectional communication
DE69133047T2 (en) * 1990-10-19 2002-11-14 Rsa Security Inc METHOD AND DEVICE FOR PERSONAL IDENTIFICATION
US5237614A (en) * 1991-06-07 1993-08-17 Security Dynamics Technologies, Inc. Integrated network security system
US5177789A (en) * 1991-10-09 1993-01-05 Digital Equipment Corporation Pocket-sized computer access security device
US5222133A (en) * 1991-10-17 1993-06-22 Wayne W. Chou Method of protecting computer software from unauthorized execution using multiple keys
NL9101796A (en) * 1991-10-25 1993-05-17 Nederland Ptt METHOD FOR AUTHENTICATING COMMUNICATION PARTICIPANTS, METHOD FOR USING THE METHOD AND FIRST COMMUNICATION PARTICIPANT AND SECOND COMMUNICATION PARTICIPANT FOR USE IN THE SYSTEM.
US5377269A (en) * 1992-10-29 1994-12-27 Intelligent Security Systems, Inc. Security access and monitoring system for personal computer
US5361062A (en) * 1992-11-25 1994-11-01 Security Dynamics Technologies, Inc. Personal security system
US5317636A (en) * 1992-12-09 1994-05-31 Arris, Inc. Method and apparatus for securing credit card transactions
DE4243888A1 (en) * 1992-12-23 1994-06-30 Gao Ges Automation Org Data carrier and method for checking the authenticity of a data carrier
US5365587A (en) * 1993-03-11 1994-11-15 International Business Machines Corporation Self modifying access code for altering capabilities
US5432851A (en) * 1993-10-21 1995-07-11 Tecsec Incorporated Personal computer access control system
US5721777A (en) * 1994-12-29 1998-02-24 Lucent Technologies Inc. Escrow key management system for accessing encrypted data with portable cryptographic modules
US7133845B1 (en) 1995-02-13 2006-11-07 Intertrust Technologies Corp. System and methods for secure transaction management and electronic rights protection
US7165174B1 (en) 1995-02-13 2007-01-16 Intertrust Technologies Corp. Trusted infrastructure support systems, methods and techniques for secure electronic commerce transaction and rights management
US5892900A (en) 1996-08-30 1999-04-06 Intertrust Technologies Corp. Systems and methods for secure transaction management and electronic rights protection
US7143290B1 (en) 1995-02-13 2006-11-28 Intertrust Technologies Corporation Trusted and secure techniques, systems and methods for item delivery and execution
US7124302B2 (en) 1995-02-13 2006-10-17 Intertrust Technologies Corp. Systems and methods for secure transaction management and electronic rights protection
US7095854B1 (en) 1995-02-13 2006-08-22 Intertrust Technologies Corp. Systems and methods for secure transaction management and electronic rights protection
US5943422A (en) 1996-08-12 1999-08-24 Intertrust Technologies Corp. Steganographic techniques for securely delivering electronic digital rights management control information over insecure communication channels
CA2683230C (en) 1995-02-13 2013-08-27 Intertrust Technologies Corporation Systems and methods for secure transaction management and electronic rights protection
US7069451B1 (en) 1995-02-13 2006-06-27 Intertrust Technologies Corp. Systems and methods for secure transaction management and electronic rights protection
US6157721A (en) 1996-08-12 2000-12-05 Intertrust Technologies Corp. Systems and methods using cryptography to protect secure computing environments
US6948070B1 (en) 1995-02-13 2005-09-20 Intertrust Technologies Corporation Systems and methods for secure transaction management and electronic rights protection
US6658568B1 (en) 1995-02-13 2003-12-02 Intertrust Technologies Corporation Trusted infrastructure support system, methods and techniques for secure electronic commerce transaction and rights management
US7133846B1 (en) 1995-02-13 2006-11-07 Intertrust Technologies Corp. Digital certificate support system, methods and techniques for secure electronic commerce transaction and rights management
US5652793A (en) * 1995-05-08 1997-07-29 Nvidia Corporation Method and apparatus for authenticating the use of software
US6980655B2 (en) * 2000-01-21 2005-12-27 The Chamberlain Group, Inc. Rolling code security system
US7492905B2 (en) 1995-05-17 2009-02-17 The Chamberlain Group, Inc. Rolling code security system
DE69637072T2 (en) * 1995-05-17 2008-01-10 The Chamberlain Group, Inc., Elmhurst ROLLING CODE SECURITY SYSTEM
US6690796B1 (en) 1995-05-17 2004-02-10 The Chamberlain Group, Inc. Rolling code security system
US5715390A (en) * 1995-11-30 1998-02-03 General Electric Company Method and apparatus for providing upgrades in electricity meters
US5652838A (en) * 1996-05-20 1997-07-29 Lovett; Donna M. Smart disc cd-rom
US6128002A (en) 1996-07-08 2000-10-03 Leiper; Thomas System for manipulation and display of medical images
US6184862B1 (en) 1996-07-08 2001-02-06 Thomas Leiper Apparatus for audio dictation and navigation of electronic images and documents
US5930767A (en) * 1997-05-28 1999-07-27 Motorola, Inc. Transaction methods systems and devices
US6523119B2 (en) 1996-12-04 2003-02-18 Rainbow Technologies, Inc. Software protection device and method
US20050021477A1 (en) * 1997-01-29 2005-01-27 Ganapathy Krishnan Method and system for securely incorporating electronic information into an online purchasing application
US7062500B1 (en) 1997-02-25 2006-06-13 Intertrust Technologies Corp. Techniques for defining, using and manipulating rights management data structures
US5969324A (en) * 1997-04-10 1999-10-19 Motorola, Inc. Accounting methods and systems using transaction information associated with a nonpredictable bar code
US6047258A (en) * 1997-08-11 2000-04-04 Trimble Navigation Limited Renting/leasing instrument options using satellite positioning system
US7092914B1 (en) 1997-11-06 2006-08-15 Intertrust Technologies Corporation Methods for matching, selecting, narrowcasting, and/or classifying based on rights management and/or other information
JP4006796B2 (en) 1997-11-17 2007-11-14 株式会社日立製作所 Personal information management method and apparatus
US6370649B1 (en) * 1998-03-02 2002-04-09 Compaq Computer Corporation Computer access via a single-use password
US6128741A (en) * 1998-03-05 2000-10-03 Rainbow Technologies, Inc. Compact transparent dongle device
TW420796B (en) * 1999-01-13 2001-02-01 Primax Electronics Ltd Computer system equipped with portable electronic key
US6985583B1 (en) 1999-05-04 2006-01-10 Rsa Security Inc. System and method for authentication seed distribution
US7430670B1 (en) 1999-07-29 2008-09-30 Intertrust Technologies Corp. Software self-defense systems and methods
FR2802685B1 (en) * 1999-12-17 2005-07-08 Ibm PERSONAL IDENTIFICATION NUMBER (PIN) COMPARISON SYSTEM FOR A CARD HAVING A VARIABLE DISPLAY
FR2811446B1 (en) * 2000-07-07 2004-01-16 Dixet SECURITY METHOD USING OPTICAL INFORMATION TRANSMISSION AND OPTICAL DISC FOR CARRYING OUT SAID METHOD
CA2320665C (en) 2000-09-26 2010-08-17 Spielo Manufacturing Incorporated System and method for downloading electronic information to a video lottery terminal
US7203840B2 (en) * 2000-12-18 2007-04-10 Burlingtonspeech Limited Access control for interactive learning system
US7996321B2 (en) * 2000-12-18 2011-08-09 Burlington English Ltd. Method and apparatus for access control to language learning system
JP3707407B2 (en) 2001-08-28 2005-10-19 セイコーエプソン株式会社 Projector that projects password
US7363494B2 (en) * 2001-12-04 2008-04-22 Rsa Security Inc. Method and apparatus for performing enhanced time-based authentication
US20030131094A1 (en) * 2002-01-10 2003-07-10 International Business Machines Corporation Apparatus and method of limiting application program usage
US6880079B2 (en) 2002-04-25 2005-04-12 Vasco Data Security, Inc. Methods and systems for secure transmission of information using a mobile device
US7293071B2 (en) * 2002-05-27 2007-11-06 Seiko Epson Corporation Image data transmission system, process and program, image data output device and image display device
US20030228911A1 (en) * 2002-06-05 2003-12-11 Dernis Mitchell S. DVD-enabling code server and loader for a console-based gaming system
US20050137018A1 (en) * 2002-06-05 2005-06-23 Microsoft Corporation DVD-enabling dongle for a console-based gaming system
JP2004287160A (en) * 2003-03-24 2004-10-14 Seiko Epson Corp Image display system, projector, image display method, projector control method, image display program, and projector control program
US7519989B2 (en) * 2003-07-17 2009-04-14 Av Thenex Inc. Token device that generates and displays one-time passwords and that couples to a computer for inputting or receiving data for generating and outputting one-time passwords and other functions
US20050044387A1 (en) * 2003-08-18 2005-02-24 Ozolins Helmars E. Portable access device
US7475255B1 (en) 2003-11-03 2009-01-06 Guthery Scott B Analog physical signature devices and methods and systems for using such devices to secure the use of computer resources
JP2005208823A (en) 2004-01-21 2005-08-04 Seiko Epson Corp Network system for projector
US8601264B2 (en) * 2004-11-02 2013-12-03 Oracle International Corporation Systems and methods of user authentication
US8422667B2 (en) 2005-01-27 2013-04-16 The Chamberlain Group, Inc. Method and apparatus to facilitate transmission of an encrypted rolling code
US9148409B2 (en) 2005-06-30 2015-09-29 The Chamberlain Group, Inc. Method and apparatus to facilitate message transmission and reception using different transmission characteristics
CN101120351B (en) * 2005-02-18 2010-10-06 Rsa安全公司 Derivative seeds distribution method
US8181232B2 (en) * 2005-07-29 2012-05-15 Citicorp Development Center, Inc. Methods and systems for secure user authentication
EP1788509A1 (en) * 2005-11-22 2007-05-23 Berner Fachhochschule, Hochschule für Technik und Architektur Method to transmit a coded information and device therefore
US9002750B1 (en) 2005-12-09 2015-04-07 Citicorp Credit Services, Inc. (Usa) Methods and systems for secure user authentication
US9768963B2 (en) 2005-12-09 2017-09-19 Citicorp Credit Services, Inc. (Usa) Methods and systems for secure user authentication
US7904946B1 (en) 2005-12-09 2011-03-08 Citicorp Development Center, Inc. Methods and systems for secure user authentication
US8484632B2 (en) * 2005-12-22 2013-07-09 Sandisk Technologies Inc. System for program code execution with memory storage controller participation
US8479186B2 (en) * 2005-12-22 2013-07-02 Sandisk Technologies Inc. Method for program code execution with memory storage controller participation
JP5040341B2 (en) 2006-04-04 2012-10-03 セイコーエプソン株式会社 Projector system
US8667285B2 (en) 2007-05-31 2014-03-04 Vasco Data Security, Inc. Remote authentication and transaction signatures
US7930554B2 (en) * 2007-05-31 2011-04-19 Vasco Data Security,Inc. Remote authentication and transaction signatures
US20090080659A1 (en) * 2007-09-21 2009-03-26 Texas Instruments Incorporated Systems and methods for hardware key encryption
EP2223256A1 (en) * 2007-11-17 2010-09-01 Uniloc Usa, Inc. System and method for adjustable licensing of digital products
US20090210712A1 (en) * 2008-02-19 2009-08-20 Nicolas Fort Method for server-side detection of man-in-the-middle attacks
US20090219173A1 (en) * 2008-02-29 2009-09-03 Micromouse As Pin code terminal
US8302167B2 (en) * 2008-03-11 2012-10-30 Vasco Data Security, Inc. Strong authentication token generating one-time passwords and signatures upon server credential verification
US8270839B2 (en) * 2008-03-11 2012-09-18 Vasco Data Security, Inc. Method and an apparatus to convert a light signal emitted by a display into digital signals
US7530106B1 (en) 2008-07-02 2009-05-05 Kaspersky Lab, Zao System and method for security rating of computer processes
US8230231B2 (en) * 2009-04-14 2012-07-24 Microsoft Corporation One time password key ring for mobile computing device
US9633183B2 (en) 2009-06-19 2017-04-25 Uniloc Luxembourg S.A. Modular software protection
US8423473B2 (en) 2009-06-19 2013-04-16 Uniloc Luxembourg S. A. Systems and methods for game activation
US8347096B2 (en) 2009-07-10 2013-01-01 Vasco Data Security, Inc. Authentication token with incremental key establishment capacity
US8924734B2 (en) 2011-12-07 2014-12-30 Synaptilogix LLC Key and method for entering computer related passwords via a mnemonic combination
US9525705B2 (en) 2013-11-15 2016-12-20 Oracle International Corporation System and method for managing tokens authorizing on-device operations
GB2522217A (en) * 2014-01-16 2015-07-22 Parcelhome Ltd Electronic lock apparatus, method and system
US9569602B2 (en) 2014-03-20 2017-02-14 Oracle International Corporation Mechanism for enforcing user-specific and device-specific security constraints in an isolated execution environment on a device
US10652743B2 (en) 2017-12-21 2020-05-12 The Chamberlain Group, Inc. Security system for a moveable barrier operator
US11074773B1 (en) 2018-06-27 2021-07-27 The Chamberlain Group, Inc. Network-based control of movable barrier operators for autonomous vehicles
US11423717B2 (en) 2018-08-01 2022-08-23 The Chamberlain Group Llc Movable barrier operator and transmitter pairing over a network
US10997810B2 (en) 2019-05-16 2021-05-04 The Chamberlain Group, Inc. In-vehicle transmitter training

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3891799A (en) * 1944-09-27 1975-06-24 Bell Telephone Labor Inc Coding device with light responsive key generator
US4295039A (en) * 1979-12-03 1981-10-13 International Business Machines Corporation Method and apparatus for achieving secure password verification
US4310720A (en) * 1978-03-31 1982-01-12 Pitney Bowes Inc. Computer accessing system
US4430728A (en) * 1981-12-29 1984-02-07 Marathon Oil Company Computer terminal security system
US4447890A (en) * 1980-07-14 1984-05-08 Pitney Bowes Inc. Remote postage meter systems having variable user authorization code
US4475175A (en) * 1981-06-05 1984-10-02 Exide Electronics Corporation Computer communications control
US4484306A (en) * 1982-03-22 1984-11-20 Exide Electronics Corporation Method and apparatus for controlling access in a data transmission system
US4486828A (en) * 1981-02-20 1984-12-04 Hitachi, Ltd. Data processing system providing data security through coded identification of accessing terminals
US4494114A (en) * 1983-12-05 1985-01-15 International Electronic Technology Corp. Security arrangement for and method of rendering microprocessor-controlled electronic equipment inoperative after occurrence of disabling event

Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1117088A (en) * 1964-07-20 1968-06-12 Omron Tateisi Electronics Co Apparatus for certifying the validity of a credit card for use with a vending machine
GB1256730A (en) * 1969-01-15 1971-12-15
US3761683A (en) * 1971-11-08 1973-09-25 S Rogers Security system
US3786420A (en) * 1972-02-17 1974-01-15 L Stambler Validation systems for credit card or the like
US3938091A (en) * 1972-03-17 1976-02-10 Atalla Technovations Company Personal verification system
CA1004362A (en) * 1972-04-11 1977-01-25 Gretag Aktiengesellschaft System for the individual identification of a plurality of individuals
US3794813A (en) * 1972-07-28 1974-02-26 Mosler Safe Co Verification system
US3959633A (en) * 1974-09-10 1976-05-25 Merck & Co., Inc. Security guard recording system
US4198619A (en) * 1976-10-28 1980-04-15 Atalla Technovations Corporation Programmable security system and method
US4268715A (en) * 1978-05-03 1981-05-19 Atalla Technovations Method and apparatus for securing data transmissions
US4281215A (en) * 1978-05-03 1981-07-28 Atalla Technovations Method and apparatus for securing data transmissions
US4283599A (en) * 1979-01-16 1981-08-11 Atalla Technovations Method and apparatus for securing data transmissions
US4315101A (en) * 1979-02-05 1982-02-09 Atalla Technovations Method and apparatus for securing data transmissions
US4288659A (en) * 1979-05-21 1981-09-08 Atalla Technovations Method and means for securing the distribution of encoding keys
FR2469760A1 (en) * 1979-11-09 1981-05-22 Cii Honeywell Bull METHOD AND SYSTEM FOR IDENTIFYING PEOPLE REQUESTING ACCESS TO CERTAIN MEDIA
US4304990A (en) * 1979-12-11 1981-12-08 Atalla Technovations Multilevel security apparatus and method
US4328414A (en) * 1979-12-11 1982-05-04 Atalla Technovations Multilevel security apparatus and method
US4357529A (en) * 1980-02-04 1982-11-02 Atalla Technovations Multilevel security apparatus and method
DE3126786C3 (en) * 1980-07-14 1997-11-13 Pitney Bowes Inc Improved remote-controlled franking machine reloading system
JPS5786964A (en) * 1980-11-19 1982-05-31 Hitachi Ltd Secrecy security system of electronic computer system
GB2120434B (en) * 1982-04-22 1986-03-12 Enigma Logic Inc A security system

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3891799A (en) * 1944-09-27 1975-06-24 Bell Telephone Labor Inc Coding device with light responsive key generator
US4310720A (en) * 1978-03-31 1982-01-12 Pitney Bowes Inc. Computer accessing system
US4295039A (en) * 1979-12-03 1981-10-13 International Business Machines Corporation Method and apparatus for achieving secure password verification
US4447890A (en) * 1980-07-14 1984-05-08 Pitney Bowes Inc. Remote postage meter systems having variable user authorization code
US4486828A (en) * 1981-02-20 1984-12-04 Hitachi, Ltd. Data processing system providing data security through coded identification of accessing terminals
US4475175A (en) * 1981-06-05 1984-10-02 Exide Electronics Corporation Computer communications control
US4430728A (en) * 1981-12-29 1984-02-07 Marathon Oil Company Computer terminal security system
US4484306A (en) * 1982-03-22 1984-11-20 Exide Electronics Corporation Method and apparatus for controlling access in a data transmission system
US4494114A (en) * 1983-12-05 1985-01-15 International Electronic Technology Corp. Security arrangement for and method of rendering microprocessor-controlled electronic equipment inoperative after occurrence of disabling event
US4494114B1 (en) * 1983-12-05 1996-10-15 Int Electronic Tech Security arrangement for and method of rendering microprocessor-controlled electronic equipment inoperative after occurrence of disabling event

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP0172239A4 *

Cited By (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1987001835A1 (en) * 1985-09-12 1987-03-26 Basil Eliseus Philipsz Secure computer system
FR2588396A1 (en) * 1985-10-04 1987-04-10 Esparseil Claude Electronic device for access protection, especially to program and key for such a device
EP0253885A4 (en) * 1985-12-26 1991-03-20 Gordian Systems Solid state key for controlling access to computer systems and to computer software and/or for secure communications
EP0253885A1 (en) * 1985-12-26 1988-01-27 Vasco Corp. Solid state key for controlling access to computer systems and to computer software and/or for secure communications
US5107258A (en) * 1986-04-22 1992-04-21 Rene Soum Wireless remote control high security system permitting the opening or theft-proof closing of relays actuating systems such as locks
FR2601480A1 (en) * 1986-07-11 1988-01-15 Amsa Method and device for monitoring the use of hardware such as a personal computer
EP0266748A2 (en) * 1986-11-05 1988-05-11 International Business Machines Corporation A software protection system using a single-key cryptosystem, a hardware-based authorization system and a secure coprocessor
EP0266748A3 (en) * 1986-11-05 1991-04-10 International Business Machines Corporation A software protection system using a single-key cryptosystem, a hardware-based authorization system and a secure coprocessor
FR2607544A1 (en) * 1986-11-27 1988-06-03 Neiman Sa Electronic lock with periodic code change
WO1988006826A1 (en) * 1987-03-02 1988-09-07 Mars Incorporated Access systems
EP0372110A1 (en) * 1987-05-26 1990-06-13 Hai Cheng Chen A security system
GB2214673A (en) * 1988-01-29 1989-09-06 Texas Instruments Ltd Electronic control device for producing a particular code group of digits when energised.
CH675169A5 (en) * 1988-02-22 1990-08-31 Asea Brown Boveri
US5060263A (en) * 1988-03-09 1991-10-22 Enigma Logic, Inc. Computer access control system and method
US5136644A (en) * 1988-04-21 1992-08-04 Telecash Portable electronic device for use in conjunction with a screen
EP0338936B1 (en) * 1988-04-21 1993-12-22 Telecash Hand-held electronic device to be used in conjuction with a screen
GB2223610A (en) * 1988-08-01 1990-04-11 Expert Electronic Co Ltd Power control security system for a computer
FR2636795A3 (en) * 1988-08-25 1990-03-23 Informatique Realite Security access system for a videotex server centre
US5276314A (en) * 1992-04-03 1994-01-04 International Business Machines Corporation Identity verification system resistant to compromise by observation of its use
EP0564832A1 (en) * 1992-04-03 1993-10-13 International Business Machines Corporation Identity verification system resistant to compromise by observation of its use
WO1993023830A1 (en) * 1992-05-08 1993-11-25 Wesco Software Limited Authenticating the identity of an authorised person
GB2281649A (en) * 1992-05-08 1995-03-08 Wesco Software Ltd Authenticating the identity of an authorised person
GB2281649B (en) * 1992-05-08 1995-11-29 Wesco Software Ltd Authenticating the identity of an authorised person
US5655020A (en) * 1992-05-08 1997-08-05 Wesco Software Limited Authenticating the identity of an authorized person
WO1996034328A1 (en) * 1995-04-27 1996-10-31 Herman Weisz Method and security system for ensuring the security of a device
WO1998053431A1 (en) * 1997-05-20 1998-11-26 Himalaya S.A.R.L. Device for identifying and locating a person
FR2763723A1 (en) * 1997-05-20 1998-11-27 Himalaya DEVICE FOR IDENTIFYING AND LOCATING A PERSON

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EP0172239A4 (en) 1986-07-23
DE3569994D1 (en) 1989-06-08
US4599489A (en) 1986-07-08
EP0172239B1 (en) 1989-05-03
JPS61501291A (en) 1986-06-26
AU4062685A (en) 1985-09-10
EP0172239A1 (en) 1986-02-26

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