The present invention relates to authentication apparatus used for a car-locking system.
In recent years, a portable device for locking/unlocking a car via radio waves has become commercially practical. In such a car-locking system, the portable device stores an identification information number (hereinafter, an ID number) specific to the car. Receiving the ID number, the car-locking system carries out authentication and unlocks the door if it checks out.
For example, Japanese Patent Unexamined Publication No. 2003-20837 is known as a prior art relating to the present invention.
In the car-locking system above, more-than-one portable devices are provided for family use; the system carries out authentication for plural devices. To be specific, communication signals are transmitted to the portable devices from the car-locking system. Receiving the signal, each device sends a reply signal back to the system. In such a car-locking system employing plural portable devices, however, it takes time before unlocking the car.
Suppose that six portable devices communicate with a car-locking system, as shown in
To identify the adjacent device, the car-locking system firstly sends individual authentication call to portable device 1a. When having no reply from device 1a, the system carries out the authentication calling one after another, i.e., devices 2a, 3a, 4a and so on. In the sequential calling, reply from portable device 5a tells the system that device 5a is adjacent to the car. ECU in
The aforementioned car-locking system, because of having a plurality of portable devices, takes long time until completing authentication.
The authentication apparatus of the present invention is formed of a unit to be controlled and a plurality of portable devices communicating with the unit via radio waves. The unit to be controlled has a first controller, a first transmitter controlled by the first controller, and a first receiver. Each of portable devices has a second controller, a storage section that stores a replying order of the portable devices and is controlled by the second controller, a second transmitter, and a second receiver. In response to communication signals sent from the first transmitter of the unit to each of the second receivers, each portable device sends a first communication signal according to the replying order stored in the storage section. The first communication signal is sent back to the unit from each device with a predetermined time difference so as not to produce an overlapped period in the replying time. By virtue of the communication with a predetermined time difference, the first controller of the unit quickly recognizes an adjacent portable device, significantly reducing the time required to complete authentication.
An exemplary embodiment of the present invention will be described hereinafter with reference to accompanying drawings. The description below shows an example where the structure described in the embodiment is mounted on a car.
Here will be described car-locking system 30 and portable device 17 shown in
Interior transmitting antenna 10 is disposed between front seats 7 and 8. Interior transmitting antenna 11 is disposed at back seat 9. On the other hand, exterior transmitting antenna 12 is attached on door 6 and exterior transmitting antenna 13 is attached on door 5. Exterior transmitting antenna 14 is attached on trunk 4. Steering wheel 15 and receiving antenna 16 are disposed in front of seat 8 in interior 3. Portable device 17 shown in
Interior transmitting antennas 10 and 11 are connected to first transmitter 18 and first controller 19. Exterior transmitting antennas 12, 13 and 14 are also connected to transmitter 18. Receiving antenna 16 is connected to first receiver 20. Door-locking section 21, which locks/unlocks door 6, is connected to controller 19.
Portable device 17 has receiving antenna 22, second receiver 23, second controller 24, transmitting antenna 25 and second transmitter 26. Controller 19 of car-locking system 30 has storage section 27 that stores reference data used for comparison with data sent from portable device 17. On the other hand, portable device 17 has storage section 28 that stores data specific to the device. For example, storage section 27 stores which portable device has replied, and storage section 28 stores the replying order of the portable device. Storage sections 27 and 28 are formed of nonvolatile storage, such as EEPROM, or formed of volatile storage, such as RAM.
In the structure above, controller 19 of the car-locking system regularly communicates with portable device 17 via exterior transmitting antennas 12, 13 and 14. When portable device 17 is close to the car, device 17 receives the communication signal through receiving antenna 22. Controller 24 sends a reply signal to controller 19 via transmitter 26 and transmitting antenna 25. The reply signal has a time difference according to the replying order stored in storage section 28. Receiving the reply signal by receiving antenna 16 of car body 1, controller 19 knows, from the received time difference, which portable device has replied.
Controller 19 of car body 1 sends an individual authentication call signal to portable device 17 via transmitter 18 and exterior transmitting antenna 12. In the calling operations, controller 19 uses potable device-specific data stored in storage section 27. Receiving the call signal by receiving antenna 22, controller 24 of portable device 17 checks whether the call signal agrees with a predetermined value with reference to the specific data stored in storage section 28. If the received data matches with the predetermined value, controller 24 sends individual authentication reply with the use of portable device-specific data via transmitter 26 and transmitting antenna 25. Receiving the reply by receiving antenna 16 of car body 1, controller 19 checks the authentication reply for normality, with reference to the portable device-specific data stored in storage section 27. If the normality is confirmed, controller 19 judges that the authentication successfully completes and unlocks the door.
Although portable device 17 is shown as a single device in
Although the exemplary embodiment introduces a smart keyless system where the car-locking system communicates with portable device 17 (devices 1b through 6b) coming close to the car and the doors are locked/unlocked if the authentication is successfully completed, it is not limited thereto. In the smart keyless system of the present invention, the communication between the car-locking system and the portable device in prior to the authentication may be triggered by the following actions: depressing a button disposed on doors 5 and 6; touching a touch sensor.
As an aspect of the structure of the embodiment, when the car-locking system communicates with six portable devices 1b through 6b, the numbers 1 to 6 are assigned to the six devices as a replying order. The car-locking system communicates with each device in a way that each portable device replies with a predetermined time difference to the car-locking system according to the replying order. As a result, the communication is successively carried out between the system and each device, with no overlapped replies between the devices.
As another aspect of the structure of the embodiment, when the car-locking system communicates with portable devices up to six in number, the maximum number for the replying order is set to 6.
As still another aspect of the structure, all the portable devices can reply to the car-locking system with a predetermined same data.
As yet another aspect of the structure, in six portable devices 1b through 6b, a portable device placed earlier in the replying order has a shorter reply signal.
As another aspect of the structure, the car-locking system starts individual authentication with a firstly replied portable device.
As still another aspect of the structure, when receiving a reply signal having a receiving electric-field intensity within a predetermined range (as is shown in
As yet another aspect of the structure, when receiving a reply signal having a predetermined data (as is shown in
As another aspect of the structure, the time for waiting reply signals from the portable devices can be changed according to the number of the portable devices. That is, for communication with three portable devices, the system has a waiting time enough for three, and for communication with six devices, the system has a waiting time enough for six.
As still another aspect of the structure, the system carries out individual authentication with the use of a device-specific number that is given separately from the numbers representing the replying order of the devices.
As yet another aspect of the structure, in the communication that employs a reply signal having a structure shown in
As another aspect of the structure, the car-locking system carries out locking operations by using not only the aforementioned two-way authentication between the car-locking system and the portable devices but also another one-way authentication from a device to the system. In this case, the synchronizing signal included in the transmitting signal in the one-way authentication above differs from the synchronizing signal in the reply signal of
As still another aspect of the structure, a preamble signal, which is a string of same data included in the one-way transmitting signal, differs from the reply signal.
According to car-locking system 30 shown in
Here will be described effects brought by the authentication apparatus of the exemplary embodiment.
The authentication apparatus of the present invention is formed of a unit to be controlled and a plurality of portable devices communicating with the unit via radio waves. The unit to be controlled has a first controller, a first transmitter controlled by the first controller, and a first receiver. Each of portable devices has a second controller, a storage section that stores a replying order of the portable devices and is controlled by the second controller, a second transmitter, and a second receiver. In response to communication signals sent from the first transmitter of the unit to each of the second receivers, each portable device sends a first communication signal according to the replying order stored in the storage section. The first communication signal is sent back to the unit from each device with a predetermined time difference so as not to produce an overlapped period in the replying time. With the structure above, the authentication apparatus easily detects a portable device close to the unit to be controlled.
A structure of the embodiment has the following aspect:
With the structure above, the replying time required for the portable devices can be shortened.
A structure of the embodiment has the following aspect:
With the structure above, the replying process can be started with the device having the predetermined number and then successively carried out one after another. This shortens the replying time of the devices.
A structure of the embodiment has the following aspect:
With the structure above, a number greater than the maximum number can be detected as wrong data.
A structure of the embodiment has the following aspect:
With the structure above, there is no need to set different data to each device.
A structure of the embodiment has the following aspect:
With the structure above, the time required for all devices to complete replying can be shortened.
A structure of the embodiment has the following aspect:
With the structure above, the time required to complete authentication can be shortened because the device has already been identified prior to the authentication.
A structure of the embodiment has the following aspect:
With the structure above, a portable device adjacent to the unit can be identified. This is because the first controller stores a portable device on condition that receiving electric-field intensity of the first communication signal from the device is kept within a predetermined range.
A structure of the embodiment has the following aspect:
With the structure above, the controller stores a portable device on condition that the first communication signal from the device has a predetermined data, and therefore, a portable device without meeting condition above can be omitted.
A structure of the embodiment has the following aspect:
With the structure above, the time for waiting the first communication signal is determined to be longer when the unit communicates with larger in number portable devices, whereas the time is determined to be shorter when the unit communicates with smaller in number portable devices. This eliminates waste from the time for waiting signals.
A structure of the embodiment has the following aspect:
The authentication with the use of a device-specific number increases the level of security.
A structure of the embodiment has the following aspect:
With the use of the first communication signal having a plurality of parity bits in a device-specific number, a portable device with no agreement in parity can be omitted.
A structure of the embodiment has the following aspect:
The structure serves as a car-locking system.
A structure of the embodiment has the following aspect:
With the structure above, the first communication signal can be easily distinguished from the second communication signal.
A structure of the embodiment has the following aspect:
With the structure above, the first communication signal can be easily distinguished from the preamble signal of the second communication signal.
According to the structure of the present invention, as described above, a plurality of portable devices send back, with a predetermined time difference, communication signals to the unit so as not to produce an overlapped period in the replying time. This allows the unit to have a speedy authentication,
Number | Date | Country | Kind |
---|---|---|---|
2005-248964 | Aug 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2006/316852 | 8/28/2006 | WO | 00 | 10/12/2007 |