Telematics basic mobile device safety interlock

Information

  • Patent Grant
  • 8336664
  • Patent Number
    8,336,664
  • Date Filed
    Monday, November 29, 2010
    13 years ago
  • Date Issued
    Tuesday, December 25, 2012
    11 years ago
Abstract
A vehicle includes a telematics controller and a single short range, low power interior transmitter focused substantially only on a vehicle's driver's seat only. Synergistic interaction is provided between a vehicle's telematics controller and a wireless device used by the driver (e.g. a cell phone, smart phone, PDA, wireless laptop, etc.) to parametrically control at least one wireless service or other operation of a wireless device presumed operated by the driver of the vehicle. Example wireless services blocked or forced into a safe mode (such as hands-free operation) include SMS, Email, and Voice services.
Description
BACKGROUND OF THE INVENTION

1. Field of the Invention


This invention relates generally to telecommunications. More particularly, it relates to a safety interlock system blocking usage of given telecommunication services while operating a vehicle.


2. Background of the Related Art


When a mobile subscriber is a mere passenger (not the driver/operator) in any kind of ground transportation it is perfectly safe to use a mobile device to access mobile services. However, when the mobile subscriber is operating a vehicle, use of mobile services may pose a significant danger.


Studies have shown that a vehicle operator sending a text message exhibits a response time that is markedly slower than an intoxicated driver. A driver who accesses mobile services will respond slowly to a crisis, resulting in their vehicle traveling farther before stopping. Other studies published by the insurance institutes in the U.S. have shown that sending an Email or “Text Messaging” (sending an SMS message) or web browsing while operating a vehicle makes the operator less aware of their surroundings and of their vehicular situation. In fact, those same studies indicate that a person using mobile messaging services while operating a vehicle consistently demonstrated stopping distances nearly 50% longer than persons who were legally intoxicated. Messaging while operating a vehicle is more dangerous to both the vehicle operator and people nearby than drunk drivers. Even engaging in a voice conversation on a wireless device while operating a moving vehicle has been found in some studies to be just as dangerous as driving while intoxicated. But in today's mobile society, traveling via vehicle is the quintessential essence of “being mobile.”


In addition to being able to make phone calls, virtually every cell phone, PDA, or smartphone on the market today is manufactured pre-installed with a Short Messaging System (SMS) (i.e., text messaging), Email, and an Internet browser application. There are currently few limitations (if any) imposed on when and where a person can send/receive a message using a mobile device. Even a wireless enabled laptop can send a text message by sending a short email to an Email address generally consisting of the target person's cell phone number “@” a domain operated by the cellular carrier. These Emails are processed by the cellular carrier and converted to SMS messages for transmission to the target person's mobile device.


In today's SMS infrastructure, the SMSC can interwork with the Usage Control Server to control time-of-day, day-of-week, number of SMS messages sent, and other static data. So at least with respect to this particular mobile service, SMS usage can currently be blocked at certain times of the day, on certain days, or after a given number of messages have been sent and/or received. However, in conventional systems there is no linkage to the SMSC or usage control server or other part of the network for any data referring to movement, motion, speed, etc. of the wireless subscriber. Today this data is at best only statically employed.


Currently, every cellular subscriber has the ability to send or receive text messages or Email from their mobile device as well as browse web sites without any imposed limitation based on when or where the user is pursuing such activities—including while they are actively operating a vehicle. As a result persons operating vehicles can access mobile services even though doing so makes them more dangerous than if they were legally intoxicated.


SUMMARY OF THE INVENTION

In accordance with the principles of the current invention, a telematics mobile device safety interlock for a vehicle comprises a short range, low power transmitter mountable within a vehicle. The short range, lower power transmitter has a range of approximately a single seat in the vehicle. A telematics controller is in communication with the short range, low power transmitter. A safety module forces a safety mode of operation of the wireless device when operated from the operator's seat.


A method of restricting use of a mobile device in a non-parked vehicle according to another aspect of the invention comprises detecting attempted use of a mobile device within an operator's seat of a vehicle. A safety interlock module is triggered to cause transmission of a block use instruction substantially toward only an operator's seat of the vehicle. The block use instruction causing the mobile device to temporarily implement restriction of use of at least one application on the mobile device from use by a driver of the vehicle.





BRIEF DESCRIPTION OF THE DRAWINGS

Features and advantages of the present invention will become apparent to those skilled in the art from the following description with reference to the drawings which:



FIG. 1 shows an automobile with an enhanced mobile safety interlock installed, in accordance with the principles of the present invention.



FIG. 2 shows trilateration implemented by the telematics controller shown in FIG. 1, using range measurements rA, rB and rD from seat-focused short range, low power transceivers, in accordance with the principles of the present invention.



FIG. 3 depicts modules in an exemplary telematics controller, in accordance with the principles of the present invention.



FIG. 4 shows an automobile with another embodiment of the invention wherein a basic mobile safety interlock implements a single short range, low power transmitter, in accordance with the principles of the present invention.





DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS

The present inventors have appreciated that mere disablement of communication services while moving at a speed presumed to be driving would also inadvertently eliminate perfectly safe operation of similar modes of communication services for mere passengers in a vehicle. The present inventors have also appreciated that a key to achieving greater safety without unduly reducing the utility of mobile services is to detect whether or not it is the vehicle operator who is attempting to send a text message, read an email, etc., then render such usage safe, either by forcing hands-free use of that service if relevant and available, or by blocking use of that particular service for a temporary period of time (or for as long as the vehicle remains in a non-parked condition.)


One conventional definition of “telematics” may have been understood to be limited to the use of telecommunication equipment to facilitate automation(s) in automobiles (http://en.wikipedia.org/wiki/Telematics). However the etymology of the word telematics suggests that it can refer to any sharing of computer based information over some distance. As such, as used herein, a mobile device is described as being in communication with the automobile's computer system, i.e., its telematics system.


Some conventional on-board vehicle telematics systems have the ability to detect seats which are occupied, e.g., whether a driver is present in the driver's seat, and whether a front seat passenger is also present. There are a variety of technologies used to accomplish this, the most common of which is a weight sensor built into the respective seats conventionally used to determine whether or not to disarm a passenger side air bag.


Privately owned and operated vehicles constitute the most significant danger in terms of the sheer number of users who may attempt to access mobile services while operating a ground vehicle, because there are far more mobile device owners who drive automobiles than any other “vehicle operator” demographic. Blocking dangerous use of mobile devices within private vehicles has a tremendous ability to eliminate a huge percentage of the source of potential danger associated with mobile wireless services. Along this line, an embodiment of the invention (a case that constitutes the vast majority of the instances of dangerous use of mobile services while operating a vehicle) is when the vehicle operator is the solitary adult in the vehicle. Vehicles generally use weight to determine whether an occupant is an adult. Vehicle occupants whose weight is below a pre-designated value are considered “juvenile occupants”. Vehicles will not arm the passenger side airbags when juveniles occupy the front side passenger seat because the airbag may constitute a greater threat to the juvenile occupant than the force vectors suffered in a front or side impact when the juvenile occupant is wearing a seatbelt.


The invention recognizes that the best way to determine whether the vehicle operator is attempting to access a mobile service while moving is for the mobile device to interact with the vehicle itself, i.e., using a telematics controller in the given vehicle. Thus, the present invention provides a handset-based safety interlock that inter-operates the wireless mobile device with a vehicle's telematics controller which has the ability to physically sense the specific seats in the vehicle that are occupied. Though possible to accomplish with trilateration methods alone, combining knowledge of seats that are occupied together with triangulation information informing which of the occupied seats is attempting operation of a restrictable service on a mobile phone, increases safety results with a higher fidelity handset-based safety interlock.


Trilateration uses range measurements from three (3) points and computes where the arcs of those three line segments intersect. There is error in trilateration, so an error ellipse in which the target is located is computed. while similar in end result to triangulation, trilateration in accordance with the principles of the present invention is not the same as triangulation. Trilateration is preferred because the antenna technology included in the passenger cabin of vehicles typically can not get accurate angular measurements. Although trilateration can be quite sensitive to noise in terms of detected range, if the receiver antenna cannot accurately measure angles then trilateration is preferred by the inventors herein. In accordance with the invention, trilateration is preferred for scenarios where the antenna within the passenger cabin cannot adequately measure angles, and triangulation may be used and is preferred for scenarios where the antenna within the passenger cabin is capable of measuring an angle.


The present invention provides synergistic interaction between a telematics controller 102 (e.g. computing for vehicles), wireless devices (e.g. cell phones, smart phones, PDAs, wireless laptops, etc.), and location infrastructure to parametrically control the use of wireless devices and associated services—including but not limited to Short Message System (e.g. “Text”) messages, Email, Voice, and other client services—used by a vehicle operator.


Otherwise conventional vehicles include a variety of mechanical sensors that indicate which seats in a vehicle are occupied. In accordance with the present invention, a wireless mobile device takes advantage of features of an otherwise conventional telematics system by including a “smart safety interlock” that allows only passengers to access certain mobile services while in a moving vehicle. In the present invention mobile communication devices are enabled to interoperate with vehicle computing systems—via very short range, low power, small bandwidth communication protocols including but not limited to “Bluetooth”—so that vehicle information including but not limited to weight sensor readings can be provided to the mobile device.



FIG. 1 shows an automobile with an enhanced mobile safety interlock installed, in accordance with the principles of the present invention.


In particular, as shown in FIG. 1, a vehicle includes a telematics controller 102, and at least three short range, low power interior transceivers 110, 112, 114, 116. The short range, low power interior transceiver A 110 is shown focused on a vehicle's driver's seat only. At least two additional individual short range, low power interior transceivers B 112 and C 114 are also included, e.g., focused on a front passenger seat, and a rear passenger side seat. For increased accuracy, a short range, low power interior transceiver may be provided adjacent each passenger seat in the vehicle, which in the shown example adds a fourth rear driver side short range, low power interior transceiver D 116 focused on a driver's side rear seat.


For trilateration purposes, it is only important that at least three short range, low power transceivers (e.g., Bluetooth transceivers) be included within the vehicle. The inclusion of a plurality of short range, low power transceivers (e.g., 110-116) throughout a vehicle interior allows the vehicle's telematics system to determine with accuracy which occupant is attempting to access a given mobile service.


The telematics controller 102 includes a module which determines from seat sensors and from trilateration from among the plurality of short range, low power transceivers 110-116, a most likely occupied seat within the vehicle that is attempting to access a given mobile service (e.g., SMS, Email, etc.)


As an alternative to trilateration methods, the telematics module 102 may simply determine a closest transceiver 110-116 to a mobile device as measured by the intensity of a received RF (e.g., Bluetooth) signal, ideally to provide a 99% dependable indication of the mobile device's location within the vehicle interior.


Table 1 illustrates an exemplary method implemented by the telematics controller 102 to determine which passenger in a given vehicle is most likely using their mobile device, based upon which short range, low power interior transceiver 110-116 has the maximum signal strength with the mobile device and thus is presumed closest to the mobile device):













TABLE 1






Interior
Interior
Interior
Interior



Transceiver
Transceiver
Transceiver
Transceiver


Passenger
“A” 110
“B” 112
“C” 114
“D” 116







Driver
MAX SIGNAL






STRENGTH


Front
max signal
max signal


Center
strength
strength


Front

MAX


Right

SIGNAL




STRENGTH


Back


MAX SIGNAL


Right


STRENGTH


Back


max signal
max signal


Center


strength
strength


Back Left



MAX






SIGNAL






STRENGTH









A non-driving passenger sitting in a position between transceivers C 114 and D 116, e.g., in a position such as in the center of the back seat, may well be detected at nearly the same signal strength in two of the four interior transceivers (e.g., at transceivers C 114 and D 116). In this example this would be presumed to be a passenger sitting in a center of the back seat of the vehicle.


This ‘center of the seat’ possibility also exists in a front bench-seat type seat, in which case a front center passenger's mobile device will register signal strength nearly equally on transceivers A 110 and B 112. But few vehicles manufactured today have a front middle passenger seat. The RF signal (e.g., Bluetooth) strength detection at each of the transceivers 110-116 for a passenger sitting in the front center position may well be close enough to the driver's position to make it virtually impossible to articulate the difference between a passenger sitting in a front center seat and a driver. Even though use a mobile device from a front center position within the vehicle interior may be inadvertently blocked, such mobile device usage so close to the driver would likely in any event be distracting to the driver, so blockage of use of certain mobile services on a device used by a passenger sitting in the front center would be acceptable to ensure safety.


Once it is determined that a mobile device is being attempted to be used by the driver of a non-parked vehicle, safety blockage is initiated. The safety blockage may be accomplished at the mobile device itself with an appropriate instruction signal from the vehicle's telematics controller 102 via an appropriate wireless communication path (e.g., a piconet type communication such as Bluetooth) instructing the carrier servicing the mobile device to block usage of at least that particular wireless service. Alternatively, or additionally, the telematics controller 102 may communicate with the mobile device, via Bluetooth or via the wireless phone network, forcing the mobile device into a hands-free mode.


Alternatively, or additionally, service safety blockage may be implemented at the subscriber's network level by use of a “service blockage request” passed from the telematics system 102 over its own wireless telecommunications network, and routed to a pre-configured service blockage server associated either with the current carrier (if roaming) or with the carrier of the mobile device to be blocked.


Service blockage is preferably limited to a given mobile service, e.g., SMS, Email, calls, etc., and preferably is temporary, e.g., for the next several minutes. Once blockage is implemented for a given service, other services that might not be appropriate for use by a driver of a vehicle may also be blocked at that time.



FIG. 2 shows trilateration implemented by the telematics controller 102 shown in FIG. 1, using range measurements rA, rB and rD from seat-focused short range, low power transceivers A 110, B 112 and D 116, in accordance with the principles of the present invention.


In particular, as shown in FIG. 2, the method illustrated in Table 1 is enhanced by the use of trilateration performed within a vehicle's telematics controller 102 to accurately compute the seat location of a transmitting mobile device, as detected by reception of an RF communication signal and/or Bluetooth signal from the mobile device at each of the internal transceivers 110-116.


Echo cancellation techniques may be implemented at the transceivers 110-116 to digitally remove echoes received from an original signal from the mobile device. With echoes removed or significantly attenuated, a distance from any of the transceivers 110-116 to the transmitting mobile device may be calculated with an accurate time measurement of the same signal component of a transmission from the mobile device to each of the internal transceivers 110-116.


Although FIG. 2 shows trilateration using range measurements from Transceivers “A”, “B”, and “D” (i.e. “rA”, “rB”, and “rD”) there is no reason that the location determination couldn't be made with range measurements from any subset of three (3) out of the total quantity of transceivers A-D 110-116 within the vehicle. And while disclosed embodiments show the implementation of four transceivers within the internal cavity of a vehicle, a larger vehicle with several or more seats may include additional transceivers focused on those additional seats, within the principles of the present invention.


In accordance with the principles of the present invention, at least three receivers (which may be transceivers in a more sophisticated implementation) are required to permit trilateration and calculation in a 2-dimensional plane of the location of a given active mobile device. If more than three receivers are implemented, accurate location of a mobile device within the vehicle may be obtained using any subset of at least three of the receivers.


The mathematical details of trilateration are well known to those of skill in the art (e.g., at the web site http://en_wikipedia.org/wiki/Trilateration), and thus will not be included herein.


Though trilateration may be performed for any/all mobile devices operated within a given vehicle, for the purposes of the present invention a significant improvement in safety is provided by the dependable detection of the location of only a mobile device attempted to be operated by the driver of the vehicle, and safety imposed blockage or forced hands-free operation thereof.


According to another aspect of the present invention, the short range, low power, small bandwidth communication protocol usage is mandatory for the wireless device user when within the confines of the relevant automobile. As an example, in one embodiment, the vehicle computing system has authority to start any required application within the wireless device to automatically enable Bluetooth or other communications if not already enabled within the wireless device.



FIG. 3 depicts modules in an exemplary telematics controller, in accordance with the principles of the present invention.


In particular, as shown in FIG. 3, the telematics controller 102 includes the otherwise conventional telematics module 302 and associated cellular RF front end 304. However, in accordance with the invention, the telematics controller 102 further includes a safety interlock module 300 and associated Bluetooth front end 310. Multiple antennas 110-114 are located within the operator/passenger cabin of the vehicle. Conventional seat sensors 319 are monitored by the telematics controller 102 to sense occupied seats within the vehicle.


Detection that a vehicle is driving may be derived from a non-parked indication from the telematics controller 102.


Alternatively, driving may be inferred by the wireless network itself by detection of movement of the subscriber. In particular, the cellular infrastructure has the capability to determine when a mobile device is actually moving. In accordance with the invention, a mobile device cooperates with cellular network infrastructure to detect its rate of movement and location relative to known roadways. In this way, the mobile device itself may impose safe operation by blocking its own use of certain features of the wireless mobile device, e.g., SMS, Email, and web browsing applications, and/or blocking that device's access to network mobile services, when in a moving vehicle as detected by motion. Motion or velocity is a simple function of changes in location over time, and can be determined by an on-board GPS system and/or a location determining elements of a wireless network. Every cellular mobile device, be it CDMA, TDMA, GSM, WiMAX, LTE, and even VoIP, communicates with a cellular base station. As the mobile device moves and signal quality with a current base station with which the mobile device is communicating begins to degrade, the cellular network transfers communication with that device to a different base station having better signal quality. That transfer (referred to as a “handoff”) occurs again and again as the mobile device continues to move. Transfers between base stations can be used as a presumed measure of motion of the mobile device, though this is a relatively low fidelity measurement of motion. Nevertheless, it allows detection of movement of every cellular mobile device regardless of its technology, old or new. Better yet is use of an internal Global Positioning System (GPS) chipset present in most modern cellular mobile devices, allowing the wireless device to receive GPS signals and locate itself. Based on repeated GPS location information an accurate determination as to both location and speed computed. The Federal Communications Commission (FCC) has mandated that all cellular carriers be able to precisely (i.e. within 150 ft) locate mobile devices that are communicating with the carriers' cellular network(s) regardless of whether or not the mobile device is GPS enabled. All wireless carriers operating in the U.S. have added various Position Determination Equipment(s) (PDEs) to their wireless networks allowing them to accurately locate all subscribers and thus comply with the FCC mandate.


A rough determination of speed may be calculated from at least two location determinations for a given wireless device, allowing computation of velocity of the wireless device as a function of the distance the wireless device travels divided by the amount of time elapsed between location determinations.


When a distance vector is computed starting at the first location and ending at the second location a velocity vector may be derived that represents not only where the mobile device is currently located but also the direction in which the mobile device moved, and the velocity at which the device moved.


Some mobile devices even include accelerometer chipsets with which to directly detect motion on three axes of measurement (up-down, side-to-side, and forward-back).


In addition to cell data, some wireless devices are otherwise conventionally able to provide measurements of transmission strength to/from a list of cell towers in addition to the location of the current cell site. This measured power level data in addition to cell data is used to provide an enhanced view of location and movement, in accordance with another embodiment of the invention.


In another aspect, the present invention implements a simple safety interlock by blocking use of certain mobile services if the calculated velocity of a given wireless device exceeds a certain value presumed to correspond with use within a moving vehicle. The need to implement the safety-interlock blockage of wireless services may be determined and implemented by the wireless device, or the service blockage may be determined and implemented within the carrier network.


When the mobile device receives “velocity” and “adult passenger count” from the vehicle, if the velocity is greater than zero (0) and the adult passenger count is less than or equal to one (1) then the mobile device disables the use of mobile services.

















IF ((velocity > 0) and (adult_passenger_count <= 1)) then









DISABLE_MOBILE SERVICES



DISPLAY VISUAL WARNING ON MOBILE DEVICE









END IF










Safety is not an absolute. Safety is incremental . . . safety is a matter of probabilities. There is nothing that is “perfectly safe” but many things that have been deemed safe enough for consumption by the general public. Also, it's distinctly possible that dealing with just this one scenario—the solitary adult vehicle occupant scenario—may eliminate enough of the problem domain that no further safeguards are needed.


Every other case is more complex than the “Solitary Adult Vehicle Occupant” scenario.


Difficulty inherent with any “multiple adult vehicle occupants” scenario is determining precisely which occupant is attempting to access mobile services.


The present invention recommends that interoperation between a vehicle's telematics controller 102 and a mobile device be extended such that while inside the vehicle the mobile device communicates only with the vehicle's telematics controller 102 (e.g., via Bluetooth communications) and then the vehicle's telematics controller 102 relays the mobile communication signals to its wireless infrastructure. This yields two desirable end results: (1) The ability to detect which occupant is attempting to use a mobile device; and (2) Improved battery life for the mobile device because the mobile device can temporarily either disable its high power RF circuitry necessary to communicate with cell towers in favor of just its Bluetooth wireless network front end, thus reducing its draw on its own battery power.


The present invention recommends that vehicle telematics systems include several short range, low power interior transceivers in each corner of the vehicle interior for passenger vehicles intended to carry 2 to 6 passengers (see FIG. 1), and ideally also in the middle of the vehicle near the roofline for vehicles meant to carry more than 6 passengers.


Once the telematics controller 102 determines “velocity” or other non-parked condition; and a Boolean value representing “transmission from operator” from the vehicle, if the vehicle is not in ‘Park’, or if the velocity is greater than zero (0), and the adult passenger count is greater than one (1) and the transmission from operator Boolean is equal to “TRUE” then the mobile device disables the use of Mobile Services.

















IF ((velocity > 0) and (adult_passenger_count > 1) and



(XMIT_FROM_OPERATOR = “TRUE”)) then









DISABLE_MOBILE SERVICES



DISPLAY VISUAL WARNING ON MOBILE DEVICE









END IF










A Smart Safety Interlock in accordance with the principles of the present invention may be implemented on large-scale vehicles, e.g., on mass transit vehicles, using the principles of the present invention. For instance:

















IF ((velocity > 0) and (adult_passenger_count > 1) and



(XMIT_FROM_OPERATOR = “TRUE”)) then









DISABLE_MOBILE SERVICES



DISPLAY VISUAL WARNING ON MOBILE DEVICE









END IF











FIG. 4 shows an automobile with another embodiment of the invention wherein a basic mobile safety interlock implements a single short range, low power transmitter, in accordance with the principles of the present invention.


In particular, as shown in FIG. 4, a cellular telematics controller 502 is implemented in a vehicle containing a safety module that causes a safety interlock with a wireless device operated by a driver via a single short range, low power interior transmitter 510.


In this embodiment of the invention, vehicle operation safety is improved without indiscriminately blocking all mobile devices within the vehicle by sending a signal only to the vehicle operator's mobile device, causing only the driver's mobile device to disable mobile services.


In this embodiment, only one telematics transmitter 510 is included in the vehicle's interior. The single telematics transmitter 510 (e.g., a Bluetooth transmitter) is positioned such that the driver will always be the occupant nearest to the transmitter (see FIG. 4).


The signal strength from the single telematics transmitter 510 is carefully attenuated so that only the driver's mobile device will receive the signal and only the driver's mobile device will disable mobile services.


In operation, a safety interlock is triggered in the driver's mobile device by transmitting a block instruction signal from the vehicle's telematics controller 502, via the very short range, low power, small bandwidth communication protocols such as “Bluetooth” transmitter 510. The block instruction signal instructs the driver's mobile device to temporarily disable its mobile services.


The block instruction signal may be qualified by an independent detection that the vehicle is in a driving condition. The driving condition may be determined when the vehicle is started, and its transmission is in a non-parked condition. Alternatively driving may be measured, e.g., when the velocity of the vehicle is detected to be greater than zero (0), thus causing the telematics controller 502 to broadcast a signal through the short range, low power interior transmitter 510 that causes any mobile device within its one seat range to disable the use of mobile services.

















IF (velocity > 0)



then









vehicle telematics begins to broadcast DISABLE_MOBILE



SERVICES signal









END IF










While it's true that this invention is not “safer” than total disablement of all mobile services while any mobile device is in motion presumed to correspond with driving, it enables a vast majority of mobile subscribers to continue to use these mobile services if they aren't the vehicle operator, thus significantly improving safety to a universally acceptable level for all people in a vehicle.


The present invention provides improved mobile device battery life, allowing the vehicle to relay telecommunications to the surrounding cellular infrastructure will allow mobile devices to temporarily (i.e. while aboard the vehicle) reduce transceiver power to minimum settings. This would also provide a reduced risk of any adverse health effects caused by continuous close exposure to higher power RF radiation. Moreover, allowing mobile devices to operate via Bluetooth communications with a vehicle's telematics controller 102 with its own cellular front end turned off or left at a minimum transceiver power setting reduces exposure to RF radiation within the vehicle.


The present invention provides improved management of presence & availability, e.g., by providing the ability to detect whether a mobile device subscriber is currently operating a vehicle, and thus the basis to automatically, by network control, alter that user's “availability” settings to indicate some variant of “unavailable”, until the mobile device detects that the vehicle is ‘parked’ or otherwise no longer being operated by the user of that mobile device.


The present invention to vehicles other than just transportation vehicles. For instance, someone operating a crane or a back-hoe ought not to be sending SMS messages or using other mobile services while operating the vehicle in precisely the same way that a bus driver or someone driving an automobile ought not to be distracted by mobile services.


While the invention has been described with reference to the exemplary embodiments thereof, those skilled in the art will be able to make various modifications to the described embodiments of the invention without departing from the true spirit and scope of the invention.

Claims
  • 1. A telematics mobile device safety interlock for a vehicle, comprising: a short range, low power transmitter mountable within a vehicle, said short range, lower power transmitter having a range of approximately a single seat in said vehicle;a telematics controller in communication with said short range, low power transmitter;a single seat sensor to detect, via trialateration, occupancy of said single seat; anda safety module to trigger a safety mode of operation of said wireless device when said single seat sensor detects occupancy of said single seat.
  • 2. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein: said safety module forces said safety mode of operation only if said vehicle is currently being operated by a requestor of mobile services.
  • 3. The telematics mobile device safety interlock for a vehicle according to claim 1, said telematics controller comprising: a cellular front end communications module.
  • 4. The telematics mobile device safety interlock for a vehicle according to claim 3, wherein: said safety module is triggered via said cellular front end communications module.
  • 5. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein: said short range, low power transmitter conforms to a Bluetooth protocol.
  • 6. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein: said short range, low power transmitter utilizes infrared communications.
  • 7. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein said wireless device comprises: a laptop.
  • 8. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein said wireless device comprises: a smartphone.
  • 9. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein: said telematics controller detects attempted use of said mobile device within a driver's seat.
  • 10. The telematics mobile device safety interlock for a vehicle according to claim 1, wherein: said single seat sensor includes at least three antenna.
  • 11. A method of restricting use of a mobile device in a non-parked vehicle, comprising: detecting, via a single seat sensor using trilateration, occupancy of a single seat in a vehicle; andtriggering a safety mode of operation of said mobile device when said single seat sensor detects occupancy of said single seat, said safety mode of operation including transmission of a block use instruction, said block use instruction causing said mobile device to temporarily implement restricted use of at least one application on said mobile device from use by a driver of said vehicle.
  • 12. The method of restricting use of a mobile device in a non-parked vehicle according to claim 11, wherein said restriction of use comprises: prevention of operation of an Email application.
  • 13. The method of restricting use of a mobile device in a non-parked vehicle according to claim 11, wherein said restriction of use comprises: prevention of operation of a text messaging application.
  • 14. The method of restricting use of a mobile device in a non-parked vehicle according to claim 11, wherein said restriction of use comprises: forced hands-free mode of operation of said mobile device.
  • 15. The method of restricting use of a mobile device in a non-parked vehicle according to claim 11, further comprising: communicating between said safety interlock module and said mobile device using a Bluetooth signal.
  • 16. The method of restricting use of a mobile device in a non-parked vehicle according to claim 11, further comprising: detecting attempted use of said mobile device within a driver's seat.
  • 17. The method of restricting use of a mobile device in a non-parked vehicle according to claim 11, wherein: said single seat sensor includes at least three antenna.
Parent Case Info

This application claims priority from U.S. Provisional No. 61/344,382 to Wallace et al., entitled “Telematics Basic Mobile Device Safety Interlock” filed Jul. 9, 2010; and from U.S. Provisional No. 61/344,381 to Wallace et al., entitled “Telematics Enhanced Mobile Device Safety Interlock” filed Jul. 9, 2010, the entirety of both of which are expressly incorporated herein by reference.

US Referenced Citations (374)
Number Name Date Kind
3400222 Nightingale Sep 1968 A
4445118 Taylor Apr 1984 A
4928107 Kuroda May 1990 A
4972484 Theile Nov 1990 A
5126722 Kamis Jun 1992 A
5283570 DeLuca Feb 1994 A
5301354 Schwendeman Apr 1994 A
5311516 Kuznicki May 1994 A
5327529 Fults Jul 1994 A
5335246 Yokev Aug 1994 A
5351235 Lahtinen Sep 1994 A
5365451 Wang Nov 1994 A
5418537 Bird May 1995 A
5422813 Schuchman Jun 1995 A
5479408 Will Dec 1995 A
5485163 Singer Jan 1996 A
5504491 Chapman Apr 1996 A
5506886 Maine Apr 1996 A
5517199 DiMattei May 1996 A
5530655 Lokhoff Jun 1996 A
5530914 McPheters Jun 1996 A
5539395 Buss Jul 1996 A
5539829 Lokhoff Jul 1996 A
5546445 Dennison Aug 1996 A
5568153 Beliveau Oct 1996 A
5583774 Diesel Dec 1996 A
5594780 Weideman Jan 1997 A
5606618 Lokhoff Feb 1997 A
5629693 Janky May 1997 A
5633630 Park May 1997 A
5636276 Brugger Jun 1997 A
5661652 Sprague Aug 1997 A
5661755 Van de Kerkhof Aug 1997 A
5689245 Noreen Nov 1997 A
5699053 Jonsson Dec 1997 A
5704029 Wright, Jr. Dec 1997 A
5721781 Deo Feb 1998 A
5731785 Lemelson Mar 1998 A
5765152 Erickson Jun 1998 A
5771353 Eggleston Jun 1998 A
5774670 Montulli Jun 1998 A
5809415 Rossman Sep 1998 A
5812086 Bertiger Sep 1998 A
5812087 Krasner Sep 1998 A
5841396 Krasner Nov 1998 A
5857201 Wright, Jr. Jan 1999 A
5864667 Barkam Jan 1999 A
5874914 Krasner Feb 1999 A
5896369 Warsta Apr 1999 A
5898391 Jeffries Apr 1999 A
5922074 Richard Jul 1999 A
5930250 Klok Jul 1999 A
5945944 Krasner Aug 1999 A
5946629 Sawyer Aug 1999 A
5950137 Kim Sep 1999 A
5960362 Grob Sep 1999 A
5983099 Yao Nov 1999 A
5999124 Sheynblat Dec 1999 A
6026292 Coppinger Feb 2000 A
6032051 Hall Feb 2000 A
6052081 Krasner Apr 2000 A
6058338 Agashe May 2000 A
6061018 Sheynblat May 2000 A
6064336 Krasner May 2000 A
6067045 Castelloe May 2000 A
6081229 Soliman Jun 2000 A
6085320 Kaliski, Jr. Jul 2000 A
6121923 King Sep 2000 A
6124810 Segal Sep 2000 A
6131067 Girerd Oct 2000 A
6133874 Krasner Oct 2000 A
6134483 Vayanos Oct 2000 A
6147598 Murphy Nov 2000 A
6150980 Krasner Nov 2000 A
6154172 Piccionelli Nov 2000 A
6169901 Boucher Jan 2001 B1
6169902 Kawamoto Jan 2001 B1
6178506 Quick, Jr. Jan 2001 B1
6185427 Krasner Feb 2001 B1
6188354 Soliman Feb 2001 B1
6188909 Alanara Feb 2001 B1
6189098 Kaliski, Jr. Feb 2001 B1
6195557 Havinis Feb 2001 B1
6205330 Winbladh Mar 2001 B1
6208290 Krasner Mar 2001 B1
6215441 Moeglein Apr 2001 B1
6239742 Krasner May 2001 B1
6247135 Feague Jun 2001 B1
6249873 Richard Jun 2001 B1
6253203 O'Flaherty Jun 2001 B1
6260147 Quick, Jr. Jul 2001 B1
6275692 Skog Aug 2001 B1
6275849 Ludwig Aug 2001 B1
6297768 Allen, Jr. Oct 2001 B1
6307504 Sheynblat Oct 2001 B1
6308269 Proidl Oct 2001 B2
6313786 Sheynblat Nov 2001 B1
6321257 Kotala Nov 2001 B1
6324524 Lent Nov 2001 B1
6327473 Soliman Dec 2001 B1
6333919 Gaffney Dec 2001 B2
6360093 Ross Mar 2002 B1
6360102 Havinis Mar 2002 B1
6363254 Jones Mar 2002 B1
6367019 Ansell Apr 2002 B1
6377209 Krasner Apr 2002 B1
6400314 Krasner Jun 2002 B1
6400958 Isomursu Jun 2002 B1
6411254 Moeglein Jun 2002 B1
6421002 Krasner Jul 2002 B2
6430504 Gilbert Aug 2002 B1
6433734 Krasner Aug 2002 B1
6442391 Johansson Aug 2002 B1
6449473 Raivisto Sep 2002 B1
6449476 Hutchison Sep 2002 B1
6456852 Bar Sep 2002 B2
6463272 Wallace Oct 2002 B1
6473622 Meuronen Oct 2002 B1
6477150 Maggenti Nov 2002 B1
6504491 Christians Jan 2003 B1
6510387 Fuchs Jan 2003 B2
6512922 Burg Jan 2003 B1
6512930 Sandegren Jan 2003 B2
6515623 Johnson Feb 2003 B2
6519466 Pande Feb 2003 B2
6522682 Kohli Feb 2003 B1
6525687 Roy Feb 2003 B2
6525688 Chou Feb 2003 B2
6529829 Turetzky Mar 2003 B2
6531982 White Mar 2003 B1
6538757 Sansone Mar 2003 B1
6539200 Schiff Mar 2003 B1
6539304 Chansarkar Mar 2003 B1
6542464 Takeda Apr 2003 B1
6542734 Abrol Apr 2003 B1
6542743 Soliman Apr 2003 B1
6549776 Joong Apr 2003 B1
6549844 Egberts Apr 2003 B1
6556832 Soliman Apr 2003 B1
6560461 Fomukong May 2003 B1
6560534 Abraham May 2003 B2
6570530 Gaal May 2003 B2
6574558 Kohli Jun 2003 B2
6580390 Hay Jun 2003 B1
6584552 Kuno Jun 2003 B1
6594500 Bender Jul 2003 B2
6597311 Sheynblat Jul 2003 B2
6603973 Foladare Aug 2003 B1
6606495 Korpi Aug 2003 B1
6606554 Edge Aug 2003 B2
6609004 Morse Aug 2003 B1
6611757 Brodie Aug 2003 B2
6618670 Chansarkar Sep 2003 B1
6621452 Knockheart Sep 2003 B2
6628233 Knockheart Sep 2003 B2
6633255 Krasner Oct 2003 B2
6640184 Rabe Oct 2003 B1
6650288 Pitt Nov 2003 B1
6661372 Girerd Dec 2003 B1
6665539 Sih Dec 2003 B2
6665541 Krasner Dec 2003 B1
6671620 Garin Dec 2003 B1
6677894 Sheynblat Jan 2004 B2
6680694 Knockheart Jan 2004 B1
6680695 Turetzky Jan 2004 B2
6687504 Raith Feb 2004 B1
6690940 Brown et al. Feb 2004 B1
6691019 Seeley Feb 2004 B2
6694258 Johnson Feb 2004 B2
6694351 Shaffer Feb 2004 B1
6697629 Grilli Feb 2004 B1
6698195 Hellinger Mar 2004 B1
6701144 Kirbas Mar 2004 B2
6703971 Pande Mar 2004 B2
6703972 van Diggelen Mar 2004 B2
6704651 Van Diggelen Mar 2004 B2
6707421 Drury Mar 2004 B1
6714793 Carey Mar 2004 B1
6718174 Vayanos Apr 2004 B2
6720915 Sheynblat Apr 2004 B2
6721578 Minear Apr 2004 B2
6721871 Piispanen Apr 2004 B2
6724342 Bloebaum Apr 2004 B2
6725159 Krasner Apr 2004 B2
6731940 Nagendran May 2004 B1
6734821 Van Diggelen May 2004 B2
6738013 Orler May 2004 B2
6738800 Aguilon May 2004 B1
6741842 Goldberg May 2004 B2
6745038 Callaway, Jr. Jun 2004 B2
6747596 Orler Jun 2004 B2
6748195 Phillips Jun 2004 B1
6751464 Burg Jun 2004 B1
6756938 Zhao Jun 2004 B2
6757544 Rangarajan Jun 2004 B2
6772340 Peinado Aug 2004 B1
6775655 Peinado Aug 2004 B1
6775802 Gaal Aug 2004 B2
6778136 Gronomeyer Aug 2004 B2
6778885 Agashe Aug 2004 B2
6781963 Crockett Aug 2004 B2
6788249 Farmer Sep 2004 B1
6795699 McCraw Sep 2004 B1
6799050 Krasner Sep 2004 B1
6801124 Naitou Oct 2004 B2
6801159 Swope Oct 2004 B2
6804524 Vandermaijden Oct 2004 B1
6807534 Erickson Oct 2004 B1
6810323 Bullock Oct 2004 B1
6813560 van Diggelen Nov 2004 B2
6816111 Krasner Nov 2004 B2
6816710 Krasner Nov 2004 B2
6816719 Heinonen Nov 2004 B1
6816734 Wong Nov 2004 B2
6820069 Kogan Nov 2004 B1
6829475 Lee Dec 2004 B1
6832373 O'Neill Dec 2004 B2
6833785 Brown Dec 2004 B2
6839020 Geier Jan 2005 B2
6839021 Sheynblat Jan 2005 B2
6842449 Hardjono Jan 2005 B2
6842715 Gaal Jan 2005 B1
6853916 Fuchs Feb 2005 B2
6856282 Mauro Feb 2005 B2
6861980 Rowitch et al. Mar 2005 B1
6865171 Nilsson Mar 2005 B1
6865395 Riley Mar 2005 B2
6867734 Voor et al. Mar 2005 B2
6873854 Crockett et al. Mar 2005 B2
6885940 Brodie et al. Apr 2005 B2
6888497 King et al. May 2005 B2
6888932 Snip et al. May 2005 B2
6895238 Newell et al. May 2005 B2
6895249 Gaal May 2005 B2
6900758 Mann et al. May 2005 B1
6903684 Simic et al. Jun 2005 B1
6904029 Fors Jun 2005 B2
6907224 Younis Jun 2005 B2
6907238 Leung Jun 2005 B2
6912395 Benes Jun 2005 B2
6915138 Kraft Jul 2005 B2
6915208 Garin Jul 2005 B2
6917331 Gronemeyer Jul 2005 B2
6930634 Peng Aug 2005 B2
6937187 Van Diggelen Aug 2005 B2
6937872 Krasner Aug 2005 B2
6941144 Stein Sep 2005 B2
6944540 King Sep 2005 B2
6947772 Minear Sep 2005 B2
6950058 Davis Sep 2005 B1
6956467 Mercado, Jr. Oct 2005 B1
6957073 Bye Oct 2005 B2
6961562 Ross Nov 2005 B2
6965754 King Nov 2005 B2
6965767 Maggenti Nov 2005 B2
6970917 Kushwaha Nov 2005 B1
6973166 Tsumpes Dec 2005 B1
6973320 Brown Dec 2005 B2
6975266 Abraham Dec 2005 B2
6978453 Rao Dec 2005 B2
6980816 Rohles Dec 2005 B2
6985105 Pitt et al. Jan 2006 B1
6996720 DeMello Feb 2006 B1
6999782 Shaughnessy Feb 2006 B2
7024321 Deniger Apr 2006 B1
7024393 Peinado Apr 2006 B1
7047411 DeMello May 2006 B1
7064656 Bekcher Jun 2006 B2
7065351 Carter Jun 2006 B2
7065507 Mohammed Jun 2006 B2
7079857 Maggenti Jul 2006 B2
7103018 Hasen Sep 2006 B1
7103574 Peinado Sep 2006 B1
7106717 Rousseau Sep 2006 B2
7110773 Wallace Sep 2006 B1
7120418 Herajarvi Oct 2006 B2
7123874 Brennan Oct 2006 B1
7136838 Peinado Nov 2006 B1
7151946 Magennti Dec 2006 B2
7206615 Ochi Apr 2007 B2
7209969 Lahti Apr 2007 B2
7218940 Niemenna May 2007 B2
7221959 Lindquist May 2007 B2
7269428 Wallenius Sep 2007 B1
7328031 Kraft Feb 2008 B2
7356328 Espejo Apr 2008 B1
RE42927 Want Nov 2011 E
8200291 Steinmetz et al. Jun 2012 B2
20010006889 Kraft Jul 2001 A1
20020037735 Maggenti Mar 2002 A1
20020038182 Wong Mar 2002 A1
20020052214 Maggenti May 2002 A1
20020061760 Maggenti May 2002 A1
20020069529 Wieres Jun 2002 A1
20020085538 Leung Jul 2002 A1
20020102999 Maggenti Aug 2002 A1
20020112047 Kushwaha Aug 2002 A1
20020173317 Nykanen Nov 2002 A1
20030009602 Jacobs Jan 2003 A1
20030037163 Kitada Feb 2003 A1
20030044654 Holt Mar 2003 A1
20030060214 Hendry Mar 2003 A1
20030065788 Salomaki Apr 2003 A1
20030078064 Chan Apr 2003 A1
20030081557 Mettala May 2003 A1
20030101329 Lahti May 2003 A1
20030101341 Kettler May 2003 A1
20030103484 Oommen Jun 2003 A1
20030114157 Spitz Jun 2003 A1
20030118160 Holt Jun 2003 A1
20030119528 Pew Jun 2003 A1
20030151507 Andre Aug 2003 A1
20030153340 Crockett Aug 2003 A1
20030153341 Crockett Aug 2003 A1
20030153342 Crockett Aug 2003 A1
20030153343 Crockett Aug 2003 A1
20030157942 Osmo Aug 2003 A1
20030161298 Bergman Aug 2003 A1
20030169881 Niedermeyer Sep 2003 A1
20030186709 Rhodes Oct 2003 A1
20030204640 Sahinaja Oct 2003 A1
20030223381 Schroderus Dec 2003 A1
20040002326 Maher Jan 2004 A1
20040044623 Wake Mar 2004 A1
20040064550 Sakata Apr 2004 A1
20040068724 Gardner Apr 2004 A1
20040078694 Lester Apr 2004 A1
20040090121 Simonds May 2004 A1
20040198389 Alcock Oct 2004 A1
20040203863 Huomo Oct 2004 A1
20040204806 Chen Oct 2004 A1
20040205151 Sprigg Oct 2004 A1
20040209594 Naboulsi Oct 2004 A1
20040229632 Flynn Nov 2004 A1
20050003797 Baldwin Jan 2005 A1
20050028034 Gantman Feb 2005 A1
20050039178 Marolia Feb 2005 A1
20050041578 Huotari Feb 2005 A1
20050074107 Renner Apr 2005 A1
20050079877 Ichimura Apr 2005 A1
20050086467 Asokan Apr 2005 A1
20050101338 Kraft May 2005 A1
20050112030 Gauss May 2005 A1
20050197775 Smith Sep 2005 A1
20050209995 Aksu Sep 2005 A1
20050237923 Balakrishnan Oct 2005 A1
20050238156 Turner Oct 2005 A1
20050259675 Tuohino Nov 2005 A1
20050265536 Smith Dec 2005 A1
20060010200 Mousseau Jan 2006 A1
20060053225 Poikleska Mar 2006 A1
20060058045 Nilsen Mar 2006 A1
20060212558 Sahinoja Sep 2006 A1
20060212562 Kushwaha Sep 2006 A1
20060233317 Coster et al. Oct 2006 A1
20060234639 Kushwaha Oct 2006 A1
20060234698 Folk Oct 2006 A1
20070004424 Sheen Jan 2007 A1
20070021098 Rhodes Jan 2007 A1
20070026854 Nath Feb 2007 A1
20070030539 Nath Feb 2007 A1
20070042765 Bailin Feb 2007 A1
20070162942 Hamynen Jul 2007 A1
20070201623 Hines Aug 2007 A1
20080014964 Sudit Jan 2008 A1
20080030588 Boss Feb 2008 A1
20080254811 Stewart Oct 2008 A1
20080268769 Brown et al. Oct 2008 A1
20080293397 Gajdos Nov 2008 A1
20090029675 Steinmetz et al. Jan 2009 A1
20090258660 Bush Oct 2009 A1
20100087137 Fischer Apr 2010 A1
20100167691 Howarter et al. Jul 2010 A1
20110109468 Hirschfeld et al. May 2011 A1
Related Publications (1)
Number Date Country
20120006611 A1 Jan 2012 US
Provisional Applications (2)
Number Date Country
61344382 Jul 2010 US
61344381 Jul 2010 US