EP0072833A1 - Fahrpreisermittlung bei transportsystemen mit kostenteilung - Google Patents

Fahrpreisermittlung bei transportsystemen mit kostenteilung

Info

Publication number
EP0072833A1
EP0072833A1 EP19820900607 EP82900607A EP0072833A1 EP 0072833 A1 EP0072833 A1 EP 0072833A1 EP 19820900607 EP19820900607 EP 19820900607 EP 82900607 A EP82900607 A EP 82900607A EP 0072833 A1 EP0072833 A1 EP 0072833A1
Authority
EP
European Patent Office
Prior art keywords
fare
circuit
meter
fares
individual
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP19820900607
Other languages
English (en)
French (fr)
Inventor
Gary Schmidt
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
SCHMIDT ELECTRONIC LABORATORIES PTY Ltd
Original Assignee
SCHMIDT ELECTRONIC LABORATORIES PTY Ltd
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 SCHMIDT ELECTRONIC LABORATORIES PTY Ltd filed Critical SCHMIDT ELECTRONIC LABORATORIES PTY Ltd
Publication of EP0072833A1 publication Critical patent/EP0072833A1/de
Withdrawn legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G07CHECKING-DEVICES
    • G07BTICKET-ISSUING APPARATUS; FARE-REGISTERING APPARATUS; FRANKING APPARATUS
    • G07B13/00Taximeters

Definitions

  • This invention relates to metering in a share riding transport system and particularly, but not exclu ⁇ sively, to share riding in taxis.
  • Certain electronic taximeters are known to be able to calculate discounted fares for each passenger, when more than one passenger isRiding in a taxi or microbus at any particular time.
  • the meter is activated to calculate discounted fares when all passen ⁇ gers intending to share the said vehicle have actually entered the vehicle.
  • the taximeter is then activated to calculate and display a discounted fare, where the discount is related to the number of passengers sharing the vehicle.
  • the discounting of fares is highest when the number of passengers sharing the vehicle is largest, and the discount reduces with fewer passengers.
  • the meter actually calculates and displays a single discounted fare, which is to be paid by each passenger travelling in the vehicle at that time. It is often the case that passengers sharing such a vehicle will wish to alight from the said vehicle at different points along the vehicle's route. With such known taximeters, each alighting passenger pays the fare currently being displayed on the taximeter. Coincident with a passenger's disembarkation, the meter is then activated to calculate further fare increments at a different "discount rate, where the rate is determined by the number of passengers - 2 -
  • such known taximeters actually calculate and display a single continuous fare, where the rate of increase of that fare may differ along 5 the vehicle's route, and where the rate of increase is related to the number of passengers sharing the vehicle at the current time. Each passenger then pays the fare being displayed when the vehicle arrives at his or her point of disembarkation.
  • a disadvantage of such known taximeters is that, while they are able to calculate discounted faresfor passengers alighting at different points, they are unable to calculate discounted fares for passengers boarding at different points. Often with such known taximeters a
  • the invention therefore provides an electronic meter for a share riding transport systems characterized in ' that, said meter is adapted to calculate and display a plurality of different individual fares, and each said fare is activated and deactivated independently of the
  • Fig. ICal is one part of a circuit block diagram of a taximeter according to the embodiment
  • Fig. 1(b) is the other part of the diagram of
  • Fig. 1(a) Fig. 2 is a program flow chart for the taximeter shown in Figs. 1(a) and 1(b).
  • Fig. 3 is a line graph of fare calculation in a conventional share riding system
  • Fig. 4 is a line graph of fare calculation in a share riding system according to this invention. Reference is initially made to Fig. 1(a).
  • Circuit 30 comprises the central element of the taximeter's electronic system. It is a microcomputer circuit comprising a "central processing unit” which performs all the calcula ⁇ tions required and interprets the program instructions; a “hardware timer” which is controlled and monitored by the “central processing unit” to count out accurate time intervals; some “read/write memory” which is used like a scratchpad to store intermediary calculation results, and to store “flags” and parameters describing the meter's current operation mode; and “input-output” interface circuits through which the "central processing unit” may monitor and control other electronic activities in the system, such as the keypad and displays.
  • Circuit 30 may be implemented by a number of discrete circuit packages, the number depending on the level of "integration” or sophistication chosen for each circuit component required to implement the complete circuit. For reasons of size reduction and assembly time minimization a single "large-scale-integrated circuit" has to be used to implement the complete circuit block 30.
  • Circuit 31 is frequency reference which pro ⁇ vides the basic timing source required to operate the complete taximeter system. It is directly connected to - - - 4 -
  • Circuit 31 since the latter is the central electronic element via which all other circuitry is controlled.
  • Circuit 31 may Be an oscillating L-C circuit, other similar discrete oscillator or a single quartz crystal.
  • the latter 5 has been chosen because crystals may be manufactured to oscillate extremely reliably at a particular frequency prescribed by the user, and this frequency will be highly stable, that is, it will not alter appreciably with varying ambient environmental changes. The crystal actually speci-
  • Circuit 32 is a "demultiplexing circuit" which serves to demultiplex the multiplexed bidirectional address/data buss (39) .
  • This bus (39) comprises a series of electronic paths via which circuit 30 addresses (or
  • Circuit 32 may be implemented by a parallel network of D-type latches.
  • Bus 37 is a unidirectional control bus, along which certain control signals are sent
  • Circuit 32 receives information from buses 39 and 37 and demultiplexing of 39 is performed in. conjunction with control signals (37) to produce a "demultiplexed address bus" (40) which serves to address certain memory elements in memory arrays 33
  • Circuit 33 is a memory array as first indicated but is the type of memory from which data may be read only. It is designated an "erasable-programmable-read-only-memory" t .EPR ⁇ M") and contains the entire micro-computer system's
  • circuit 33 is in the "in-circuit" condition. For alteration it must be removed from the circuit board to which it is connected and altered by means of external laboratory equipment. __. 5 _
  • Circuit 33 is "addressed" by circuit 30 along input address paths 40 and 38, the latter of which is a “multiplexed address/input-output Bus".
  • Buses 38 and 40 operate in concert with bus 37 to read data from circuit 33, the said data existing circuit 33 via bus 39 from which it is read by circuit 30 for progressing.
  • Circuit 34 is also a memory array but differs from circuit 33 in that the former (34) is read/write memory, which means that circuit 30 may read from or write into this memory array. Circuit 34, is addressed by 30 along bus 40 which acts in concert with.bus 37. Memory data may pass in either direction between circuits 30 and 34 via bus 39.
  • Circuit 35 is a battery support system for main- taining intact the data in circuit 34 in the eventuality that the entire taximeter is removed from its external power source (say the vehicle battery) .
  • Circuit 35 is implemented as a rechargeable battery system which is constantly trickle-charged during external power applica- tion periods to provide up to 6 months of battery back up power in the event of long term external power removal.
  • Circuit 55 comprises a keypad to which 4 button are electrically connected.
  • the keypad 55 communicates with circuit 30 via a "bidirectional input-output bus" 36.
  • the keypad 55 provides the medium by which taximeter activity is controlled by the operator.
  • Circuit 54 is an array of 8 seven-segment light emitting diode displays and 2 discrete light emitting diode lamps. This array is controlled by circuit 30 via bus 36 and circuits 41 and 42.
  • Circuit 41 decodes the binary-coded-decimal data present on bus 36 into 7-segment display data for activation of any of the 7 individual elements which comprise a display digit. . Data from circuit 41 is presented to each of the 8 digits simultaneously. — - - - 6 -
  • Circuit 42 is a "one-of-eight decoder/driver" circuit and is directed by circuit 30, via Bus 36, to activate only one of the 8 digits at any moment in time. Hence even though circuit 41 presents the same data to all digits at any moment, circuit 42 activates only the digit which is designated to receive this data as prescribed by circuit 30, and only that designated digit (addressed by 42) will illuminate and indicate data to the operator.
  • circuit 30 actually directs the illumination of only one digit (of the array) at any moment in time, where directions from circuit 30 change at least 800 times every second to activate each digit in a cyclic manner at least 100 times a second thereby sequencing the turn-on and turn-off of each digit in a cycle at a rate of faster than 100 times per second, which produces an image to the operator of all digits being illuminated at any one moment.
  • This is a widely practiced electronic technique called "display multiplexing".
  • Circuit 43 is an "input/output expander" which serves to "expand” the otherwise limited input-output capacity of bus 38. Circuit 43 is controlled by circuit 30 via buses 37 and 38. It is via circuit 43 that circuit 30 may transmit data to, or receive it from other elements such as, for example, 44, 45 and 48 along bidirectional bus 38.
  • Circuit block 44 represents a "dual-in-line switch pack" via which the taximeter may be calibrated for use in individual vehicles.
  • a particular combination of on/off positions of the 8 switches (in 44) represents a binary combination relating to the number of revolutions of the speedometer cable a particular vehicle performs when driven over a standard length of roadway, say 1 kilometre.
  • the number of said speedometer cable revolutions per kilometre driven will vary from one vehicle to the - -
  • the said meter in order to ensure that the taximeter records an accurate fare, the said meter must be initially calibrated for use in that vehicle, where said calibration is effected by selecting appropriate on-off combinations on switch pack 44.
  • Circuit 45 is a block containing high current drive circuits for activation of external indicator lamps such as a taxi's dome light.
  • Circuit 43 provides the appropriate signals (as directed by circuit 30) but the electrical current carrying capability of signals origin ⁇ ating from circuit 43 is much too light to effect switching of the required indicators.
  • circuit 43 controls external indicators via circuit 45 which performs the necessary electrical current amplification required.
  • Circuit lines 51 are connected to the indicators after passing outside the taximeter via a back panel connector (not shown) .
  • Elements to the left of the dashed line in Fig. 1(b) are housed inside the meter's case, whereas elements to the right of the said line are outside the taximeter's case, and connected to the meter circuitry via the said connector.
  • Circuit element 47 is a transducer assembly which converts each revolution of a taxi's speedometer cable (not shown) into 8 sequential electronic signals, which the meter detects to determine distance travelled.
  • the speedometer cable is actually coupled to element 47 which contains a shaft (not shown) adapted to revolve in concert with the cable.
  • a flat disc (not shown) is mounted on the shaft and the disc also revolves with the shaft and cable.
  • Eight holes are drilled in the disc close to its outer perimeter and located so that each hole is equidistant from its adjacent holes around the circumference of the - disc.
  • a light emitting diode (not shown) and a photo ⁇ sensitive transistor (not shown) are located in the trans ⁇ ducer assembly, such that infra red light from the diode shines directly on the phototransistor, which is sensitive to the presence of this light.
  • the disc is aligned so that it rotates through the light beam. When one of the eight holes is in line with the Beam, the light activates the transistor, and conversely when a hole is not in line with the beam, the beam is blocked and the transistor is not activate .
  • circuit 46 Signals from the said phototransistor are trans ⁇ mitted from circuit 47 to circuit 46 (inside the meter) where circuit 46 is a signal-conditioning circuit, such as a "Schmitt-trigger" which conditions said signals for passage- to circuit 48.
  • the latter circuit is a “recognition and acknowledgement” circuit (in the form of a “flip-flop") which is controlled by circuit 43, and which directs trans- ducer signals to circuit 30 for processing and counting, via bus 36.
  • Circuit 49 performs two functions. It accepts power (along line 52) from the vehicle's electrical source, such as a car battery, and conditions this source for use in the meter. A voltage of between +ll and +14 volts may be present on line 52 during meter operation, and as long as this voltage is between +7 and +30 volts, circuit 49 provides a stable regulated output voltage of +5V to drive all the meter's circuit elements. Furthermore circuit 49 incorporates a "Schmitt- trigger" circuit to detect voltage fluctuations.
  • Bus 53 is a Bidirectional bus which enables the meter to communicate with external electronic systems such as a receipt printer, should such external options be required.
  • circuit 33 In order to fully detail how the taximeter operates it is necessary to describe how the program lodged in circuit 33 is configured.
  • the basic configuration is shown in Fig. 2, the program flow chart- Circuit 30 reads and processes program instructions in a sequence determined by the program itself and each instruction is executed in less 5 millionths of a second by the said circuit. Upon power application to the meter, circuit
  • program 30 begins executing instructions at program item 10, to which it only returns after power has again been applied following a description in input power.
  • the program initialization path can take one of two routes namely:- 10, 11, 12, 13, 14 and 16, or alternatively, 10, 11, 15, 14 and 16 as indicated in Fig. 2. This will be further explained later.
  • circuit 30 begins execution of the "main loop” of the program and this loop is indicated by the paths which join program blocks 17, 18, 19, 20, 21, 22, 23, 24 and then back to block 17.
  • This entire loop (or body of program instructions) is executed by circuit 30 approximately one every millisecond.
  • the separate blocks of program instructions contained within this loop direct circuit 30 to supervise to total operation of the meter in all its facets, including:- recognition and interpretation of front panel key depressions (18) control of front panel displays (20) - control of external indicators (21) calculation of taxi fares C23) - maintenance of 16 separate items in memory circuit 34 (18, 22, 23) — - 1Q -
  • the front panel keys C55J provide the means by which the operator may control meter activity, and this includes the starting and stopping of separate taxi fares, the selection of which fare is to Be displayed at any given moment, the addition of extras to a fare, the alteration of rate (or tariff) upon which the fares are to be based, and the display (for purposes of inspection) of individual items from memory.
  • the information which may be displayed (on circuit 54) is stored in sequence in memory circuit 34. Even if power is removed from the meter this data is main ⁇ tained intact since circuit 35 provides enough auxiliary power to maintain this data for up to six months.
  • circuit 34 is divided into "memory regions" where each region is avail ⁇ able for the storage of particular items of information.
  • Taxi drivers do not have access to the interior of the meter (because of the seal) and therefore power reconnection after an interruption will not clear circuit 34 of its data because the SYSTEM CLEAR dine cannot be grounded from the exterior of the case.
  • Item 11 in Fig. 2 is processed immediately after power reapplication.
  • This program block has the function of testing the SYSTEM CLEAR line. If it has been -grounded program flow passes from block 11 to block 12 wherein circuit 30 is instructed to clear all data from circuit 34. If the SYSTEM CLEAR line is not grounded, the program passes from block 11 to block 15, wherein circuit 30 is directed to retrieve its prior operating data from region 17 of circuit 34, and. data in other regions of circuit 34 is left unaltered.
  • circuit 30 After clearing circuit 34 of its data (block 12) , program flow passes to instruction block 13. This is a complicated program block in which many initializing calculations are performed. Under the direction of instructions located in this block, circuit 30 reads the current vehicle calibration (revolutions/km) from circuit 44 (the switch pack) and stores this information in memory * region 13 (circuit 34) . Circuit 30 then sets the tariff to number 1 and is directed to assume single fare operation (the default condition after "system clear") and reads the programmed constants relating to this particular tariff and mode of operation from circuit 33. In particular circuit 30 reads the number of metres to be travelled to effect a fare increment, and the time elapsed to effect a fare increment. Within block 13, calculations are then performed to determine
  • program flow proceeds to blocks 14 and 16 where the "hardware timer" in circuit 30 is initialized to time out every 20 milliseconds.
  • This timer operates in parallel with program execution as described in Fig. 2 and at each 20 millisecond timeout an auxiliary program interrupts the program shown in Fig. 2 and resets the timer immediately for determination of the next 20 millisecond time interval.
  • This auxiliary program also counts the progressive number of 20 millisecond time-outs and sets a "flag" in circuit 30 each time a second has elapsed. This flag is monitored, as described later.
  • Block 17 has the function of directing input circuitry in circuit 30, to count any transducer pulses (by way of interrupt ) which may be present on bus 36 after passage through circuits 46 and 48.
  • circuit 30 scans the front panel keys, circuit 55, via bus 36. It is via these keys that the meter's operating mode may be altered. Depending on which key is pressed and the sequence of such depressions, program block 18 will set various "Flags" and parameters in certain registers contained within circuits 30 and 34 for l
  • Such flags or parameters would indicate whether indeed any fares have Been started, and if so, how many fares have been started, (regions 27 and 28 5 of circuit 34) . , and whether such a fare or fares are to be based on distance travelled alone, or a combination of both time elapsed and distance travelled. Likewise other flags and parameters are set during execution of program block 18 to completely specify the required mode of meter opera-
  • Program item 18 is not concerned with the actual activity of fare calculation or display of fares or memory items. It merely interprets keypad instructions and sets
  • circuit 30 dumps all its flags, parameters and registers (containing intermediary calcuia-
  • circuit 30 checks its body of flags and parameters (and those in circuit 34) and determines which data is to be displayed to the operator via circuit 54. The appropriate data is read from circuit 34 and the appropriate digit is *
  • circuit 30 accesses its internal registers to deter- - - -
  • Item 22 represents a Body of nstructions which initially determines whether the meter is being used in its revolution counter mode, and if so the instructions in this block direct circuit 30 to maintain revolution counter operation.
  • circuit 30 determines whether or not any fares are actually being calculated. If this is not the case program execution passes to the latter section of item 23.where the program supervises the maintenance of memory data stored in regions 1, 3, 4 and 8 of circuit 34.
  • the program then establishes whether operation is by distance only, or a combinationof time and distance by check ⁇ ing flags in circuit 30.
  • this program item merely establishes whether sufficient transducer pulses have been received to warrant another increment in fare.
  • this block determines which of the two variables is proceeding at a faster rate. It does this by counting the number of pulses in a given time period, say % second, (equivalent to the speed of the vehicle) and compares this to the change-over speed calculated in item 13. If the speed determined is faster than the said change-over speed, fare calculation is based on distance travelled; otherwise it is based on time.
  • the microcomputer determines whether suffi- • cient distance and/or time has elapsed to increment any fares currently operating by another fare increment. If this is not the case program execution returns to the latter section of item 23 as above. If, however, this is the case the microcomputer searches through the 10 -"fare flags" (located in section 27 or circuit 34) to determine which of the fares are to be incremented, and proceeds then to increment each of those operating fares by the same fare increment. (Fare data is stored in sections 0, and 18 to
  • the microcomputer similarly updates "TOTAL MONEY" Csection 2, circuit 34) by the sum total of the monetary increments just made to all the operating fares. Following this, the microcomputer sets a flag
  • Program flow then passes to item 24 which checks to determine whether the operator requested a tariff change (i.e. requested fare calculation to be based on an alterna ⁇ tive base rate) , or whether fare increments were performed during the previous passage through the main loop. If either of these conditions are in fact met, program execution passes to item 25 otherwise program execution returns to item 17 and the main loop is traversed once again.
  • a tariff change i.e. requested fare calculation to be based on an alterna ⁇ tive base rate
  • the first passenger's fare continues to be incremented at the 2 passenger discount rate until the next fare increment.
  • This two passenger rate will gen-: erally be lower than the single passenger rate and therefore the first passenger receives a slightly cheaper ride over this portion of his trip.
  • Share-ride taxi operation with this type of multiple-fare taximeter is envisaged to provide a service where individual passengers may enter and exit taxis at any point during the progress of a journey, and consequently all fares may be effected in the same way, by this process of synchronization.
  • section B passenger 3 alights and pays the fare currently displayed on -the meter.
  • the meter is then activated to calculate fare increments based on 3 passengers remaining in the vehicle. Notice now, that these remaining passengers have received a significant benefit from sharing the vehicle.
  • the meter has been incrementing the fare at a heavily discounted rate of 40% (in Section A) and 30% (in Section B) of the fare which would have accrued had any of these passengers been a solitary occupier of the vehicle.
  • the process continues, until each passenger finally alights and finds that he has paid a much reduced fare as a result of sharing the vehicle.
  • the present invention substantially improves the prospects of usage in share-ride vehicles by making it possible to start a number of individual fares at different points along the route.
  • the present invention provides for a single taximeter to record a number of separate fares where each fare may be started and stopped independently of all other fares currently being calculated within the said meter. Each fare is separately stored in the meter.
  • any particular one of ' the fares currently being calculated may be displayed in the said display upon request by the operator, via the front panel keys.
  • the meter automatically determines how many passengers are currently occupying the vehicle, and therefore the rate of discount applicable. Initially as indicated in the graph above 3 passengers share the vehicle. The operator will consequentl activate 3 separate fares, and the rate of increase of ___ — - - - 21 -
  • section A At the end of section A, another passenger enters the vehicle and the operator starts a separate 5 fare yet again for this particular client.
  • section B of the route the meter assesses that 4 individual fares are being calculated and hence increments each of these at the rate of 70£ per kilometre.
  • the part of the display which, in a conventional meter would display the 0 tariff is utilized to display the number of the particular passenger who's fare is being displayed.
  • the part of the display which, in a conventional meter would- display any "extras” is utilized to display the rate of discount (e.g. 20%) on the basis that "extras" would not be charged separately but would be taken into account when establishing fare rates and discounts.
  • the present invention provides for the prospect of substantially improved efficiency in share-ride trans ⁇ portation systems.
  • the efficiency improvement is twofold. Firstly, it provides passengers with the added flexibility of being able to enter a " partially occupied vehicle, even after it has travelled for quite some distance with its current occupiers. It therefore -removes the necessity for passengers wishing to share-ride, to enter the vehicle at the same point, or at points within the immediate vicinity of each other.
  • OMPI Secondly, it provides flexibility to the operator to pick up passengers even though he has been carrying his current passengers for some distance. Thus the prospect of increased revenue for the vehicle operator, and increased flexibility for individual passengers is readily appreciated.
  • the meter may be programmed to automatically cyclically display the individual fares in a parti ⁇ cular sequence or may be provided with individual displays for displaying all fares simultaneously.
  • a separate display is provided to display the fare rate thus enabling ⁇ the passenger or passengers to readily view the actual rate at which the fare is being calculated at any one time.
  • This latter modification is an alternative to displaying a tariff number relevant to the number of passengers in the vehicle at a particular time and providing a printed table in the . taxicab or other transport vehicle, displaying the charging rates corresponding to the various different tariffs.
  • the indiviudal fares are not discounted as the number of passengers increase but instead are incremented at a fixed predetermined rate.
  • a meter having this variation is more suited to installation in a bus, particularly a micro-bus transport vehicle, where passengers board and alight at random along a set route and are charged the same rate irrespective of how many passengers are in the vehicle.

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Devices For Checking Fares Or Tickets At Control Points (AREA)
EP19820900607 1981-02-26 1982-02-26 Fahrpreisermittlung bei transportsystemen mit kostenteilung Withdrawn EP0072833A1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
AU776881 1981-02-26
AU7768/81 1981-02-26

Publications (1)

Publication Number Publication Date
EP0072833A1 true EP0072833A1 (de) 1983-03-02

Family

ID=3698437

Family Applications (1)

Application Number Title Priority Date Filing Date
EP19820900607 Withdrawn EP0072833A1 (de) 1981-02-26 1982-02-26 Fahrpreisermittlung bei transportsystemen mit kostenteilung

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EP (1) EP0072833A1 (de)
WO (1) WO1982002970A1 (de)

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NZ204694A (en) * 1983-06-24 1988-04-29 Electronic Innovations Taximeter
EP0576775A1 (de) * 1992-07-03 1994-01-05 Rodolfo Santovetti Mehrfachtaxameter mit magnetischen Karten für öffentliche Fahrzeuge
DE9306016U1 (de) * 1993-04-21 1993-12-16 Mannesmann Kienzle Gmbh, 78052 Villingen-Schwenningen Taxameter
IT1305410B1 (it) * 1998-04-03 2001-05-04 Giovanni Premuda Dispositivo per il calcolo delle tariffe di viaggio in veicoli, inparticolare in taxi, taxi collettivi, bus o simili.
KR100414684B1 (ko) * 2000-12-28 2004-01-07 이영근 행선지 표시 기능 및 합승요금정산 기능을 함께 수행하는 장치 및 합승요금정산 방법
CN103150763B (zh) * 2013-02-03 2015-09-16 刘彦蕊 用于分时分段合乘的装置和运输装置以及计价方法
JP6417859B2 (ja) * 2014-10-31 2018-11-07 富士通株式会社 相乗り料金計算プログラム、相乗り料金計算装置、及び相乗り料金計算方法

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3983378A (en) * 1973-03-30 1976-09-28 Kajaani Oy, Elektroniika Method and apparatus for measuring taxi fares
SE377397C (sv) * 1973-05-30 1977-11-07 Haldex Ab Anordning vid manoverveljarkretsar, serskilt taxeveljarkretsar vid elektroniskt arbetande taxametrar
DE2332361C3 (de) * 1973-06-26 1980-08-28 Kienzle Apparate Gmbh, 7730 Villingen-Schwenningen Elektronischer Taxameter für Linientaxisystem
GB1571085A (en) * 1975-12-15 1980-07-30 Heritier F Taximeters

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO8202970A1 *

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Publication number Publication date
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