The invention provides a method for monitoring a vehicle that features the steps of: 1) generating a data packet including vehicle data retrieved from the vehicle using a wireless appliance; 2) transmitting the data packet over an airlink with the wireless appliance so that the data packet passes through a network and to a host computer system; 3) processing the data packet with the host computer system to generate a set of data; and 4) displaying the set of data on a web page hosted on the internet.
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6. A vehicle computer device, located in a vehicle, configured to perform a method, the method comprising:
a cellular modem;
a connector that connects to an obd or obd-II connector of a vehicle; and
a processor to:
(a) acquiring acquire vehicle data comprising numerical diagnostic data or location-based data associated with the vehicle via the obd or obd-II connector of the vehicle;
(b) processing process the vehicle data according to a mathematical algorithm to generate derived diagnostic or location information that is at least in part derived from the acquired vehicle data, and wherein the derived diagnostic information has a meaning distinct from the acquired vehicle data;
(c) formatting format the derived diagnostic or location information for display on an application running on a host computer device, wherein the application can provide an interface for presenting information associated with the vehicle, wherein the interface includes at least one of an icon and or a data field associated with derived diagnostic information indicative of the vehicle's emissions performance, of the vehicle; and
(d) wirelessly transmitting transmit, using the cellular modem, the derived diagnostic information in a communication via an internet to the host computer device,
the derived diagnostic information for a first diagnostic problem to be diagnosed being monitored and wirelessly transmitted at a first temporal interval or mileage interval set based on the first diagnostic problem to be diagnosed, and
the derived diagnostic information for a second diagnostic problem to be diagnosed being monitored and wirelessly transmitted at a second temporal interval or mileage interval set based on the second diagnostic problem to be diagnosed,
the first temporal interval or mileage interval being simultaneous with and different than the second temporal interval or mileage interval.
0. 15. A non-transitory computer-readable medium storing instructions, the instructions comprising:
one or more instructions that, when executed by one or more processors of a vehicle computer device connected to an engine control unit (ECU) of a vehicle via an obd or obd-II connector, cause the one or more processors to:
acquire vehicle data comprising numerical diagnostic data associated with the vehicle via the obd or obd-II connector of the vehicle;
process the vehicle data according to a mathematical algorithm to generate derived diagnostic information that is at least in part derived from the vehicle data, and wherein the derived diagnostic information has a meaning distinct from the vehicle data;
format the derived diagnostic information for display on an application running on a host computer device, wherein the application can provide an interface for presenting information associated with the vehicle, wherein the interface includes at least one of an icon or a data field associated with derived diagnostic information indicative of emissions performance of the vehicle; and
wirelessly transmit, using a cellular modem included in the vehicle computer device, the derived diagnostic information in a communication via an internet to the host computer device,
the derived diagnostic information for a first diagnostic problem to be diagnosed being monitored and wirelessly transmitted at a first temporal interval or mileage interval set based on the first diagnostic problem to be diagnosed, and
the derived diagnostic information for a second diagnostic problem to be diagnosed being monitored and wirelessly transmitted at a second temporal interval or mileage interval set based on the second diagnostic problem to be diagnosed,
the first temporal interval or mileage interval being simultaneous with and different than the second temporal interval or mileage interval.
1. A method for monitoring a vehicle with a vehicle computer device located in the vehicle, comprising:
(a) acquiring, by a vehicle computer device connected to an engine control unit (ECU) of a vehicle via an obd or obd-II connector, vehicle data comprising numerical diagnostic data or location-based data associated with the vehicle;
(b) processing, by the vehicle computer device connected to the ECU of the vehicle via the obd or obd-II connector, the vehicle data according to a mathematical algorithm to generate derived diagnostic or location information that is at least in part derived from the acquired vehicle data, and wherein the derived diagnostic information has a meaning distinct from the acquired vehicle data;
(c) formatting, by the vehicle computer device connected to the ECU of the vehicle via the obd or obd-II connector, the derived diagnostic or location information for display on an application running on a host computer device, wherein the application can provide an interface for presenting information associated with the vehicle, wherein the interface includes at least one of an icon and or a data field associated with derived diagnostic information indicative of the vehicle's emissions performance, of the vehicle; and
(d) wirelessly transmitting, by a cellular modem included in the vehicle computer device connected to the ECU of the vehicle via the obd or obd-II connector and via an internet, the derived diagnostic information in a communication to the host computer device,
the derived diagnostic information for a first diagnostic problem to be diagnosed being monitored and wirelessly transmitted at a first temporal interval or mileage interval set based on the first diagnostic problem to be diagnosed, and
the derived diagnostic information for a second diagnostic problem to be diagnosed being monitored and wirelessly transmitted at a second temporal interval or mileage interval set based on the second diagnostic problem to be diagnosed,
the first temporal interval or mileage interval being simultaneous with and different than the second temporal interval or mileage interval.
3. The method of
4. The method of
5. The method of
8. The method vehicle computer device of
wherein the processing further includes extracting extract information representative of at least one of the following vehicle parameters from the received vehicle data: numerical data, an alphanumeric text message, and or a vehicle identification number.
9. The method vehicle computer device of
10. The method vehicle computer device of
0. 11. A graphical user interface running on a host computer device for displaying derived diagnostic or location information corresponding to a vehicle wherein the derived diagnostic or location information displayed by the graphical user interface includes diagnostic or location information wirelessly transmitted by, a vehicle computer device coupled to the vehicle to acquire diagnostic and location vehicle data generated thereby, and wherein the vehicle computer device processes the diagnostic or location vehicle data according to a mathematical algorithm, and wherein the information comprises at least one of vehicle status reports and vehicle service recommendations to generate the derived information so that it has a meaning distinct from the acquired diagnostic and location vehicle data,
wherein the graphical user interface includes at least one of an icon and data field associated with derived information indicative of the vehicle's emissions.
0. 12. The graphical user interface of
0. 13. The graphical user interface of
0. 14. The graphical user interface of
0. 16. The non-transitory computer-readable medium of claim 15, wherein the application includes a browser.
0. 17. The non-transitory computer-readable medium of claim 15, wherein the one or more instructions, that cause the one or more processors to process the vehicle data, cause the one or more processors to:
extract information representative of at least one of the following vehicle parameters from the vehicle data: numerical data, an alphanumeric text message, or a vehicle identification number.
0. 18. The non-transitory computer-readable medium of claim 15, wherein the numerical diagnostic data includes at least one of the following numerical parameters: diagnostic trouble codes, vehicle speed, fuel level, fuel pressure, miles per gallon, engine RPM, mileage, oil pressure, oil temperature, tire pressure, tire temperature, engine coolant temperature, intake-manifold pressure, engine performance tuning parameters, alarm status, accelerometer status, cruise-control status, fuel injector performance, spark-plug tinting, or a status of an anti-lock braking system.
0. 19. The non-transitory computer-readable medium of claim 15, wherein the host computer device is one of a cellular telephone, a personal digital, assistant (PDA), a wireless smartphone, or a personal computer.
0. 20. The non-transitory computer-readable medium of claim 15, wherein the first temporal interval or mileage interval is a temporal interval, and
the derived diagnostic information for the first diagnostic problem to be diagnosed is wirelessly transmitted by the cellular modem a plurality of times each minute based on the temporal interval to provide the derived diagnostic information to the host computer device in real-time.
0. 21. The non-transitory computer-readable medium of claim 15, wherein the first temporal interval or mileage interval is a mileage interval.
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This application 1) is a continuation of, and claims priority under 35 U.S.C. §120 to, U.S. patent application Ser. No. 10/614,665, now U.S. Pat. No. 7,747,365, entitled ‘Internet-based system for monitoring vehicles’, which has a filing date of Jul. 7, 2003, and which is a continuation of U.S. patent application Ser. No. 09/804,888, which was filed on Mar. 13, 2001, now abandoned, both of which are incorporated by reference in its entirety their entireties herein. This application also and; 2) is a continuation-in-part of, and claims priority under 35 U.S.C. §120 to U.S. patent application Ser. No. 11/796,372, now U.S. Pat. No. 7,904,219, entitled ‘Peripheral Access Devices and Sensors for Use with Vehicle Telematics Devices and Systems’, which has a filing date of Apr. 27, 2007., which is a continuation-in-part of prior U.S. patent application Ser. No. 10/810,373, filed Mar. 26, 2004, now U.S. Pat. No. 7,228,211, which is (1) a continuation-in-part of prior U.S. patent application Ser. No. 10/431,947, filed May 8, 2003, now issued as U.S. Pat. No. 6,957,133; and (2) a continuation-in-part of prior U.S. patent application Ser. No. 10/447,713, filed May 29, 2003, now issued as U.S. Pat. No. 6,732,031, which is a continuation of prior U.S. patent application Ser. No. 09/776,106, filed Feb. 1, 2001, now issued as U.S. Pat. No. 6,636,790, which claims the benefit of U.S. Provisional Application No. 60/220,986, filed Jul. 25, 2000, U.S. Provisional Application No. 60/222,213, filed Aug. 1, 2000 and U.S. Provisional Application No. 60/222,152, filed Aug. 1, 2000. The contents of all of the above-listed applications are incorporated herein by reference in their entirety.
The present invention relates to use of an Internet-based system for monitoring a vehicle's performance.
The Environmental Protection Agency (EPA) requires vehicle manufacturers to install on-board diagnostics (OBD-II) for monitoring light-duty automobiles and trucks beginning with model year 1996. OBD-II systems (e.g., microcontrollers and sensors) monitor the vehicle's electrical and mechanical systems and generate data that are processed by a vehicle's engine control unit (ECU) to detect any malfunction or deterioration in the vehicle's performance. Most ECUs transmit status and diagnostic information over a shared, standardized electronic buss in the vehicle. The buss effectively functions as an on-board computer network with many processors, each of which transmits and receives data. The primary computers in this network are the vehicle's electronic-control module (ECM) and power-control module (PCM). The ECM typically monitors engine functions (e.g., the cruise-control module, spark controller, exhaust/gas recirculator), while the PCM monitors the vehicle's power train (e.g., its engine, transmission, and braking systems). Data available from the ECM and PCM include vehicle speed, fuel level, engine temperature, and intake manifold pressure. In addition, in response to input data, the ECU also generates 5-digit ‘diagnostic trouble codes’ (DTCs) that indicate a specific problem with the vehicle. The presence of a DTC in the memory of a vehicle's ECU typically results in illumination of the ‘Service Engine Soon’ light present the dashboard of most vehicles.
Data from the above-mentioned systems are made available through a standardized, serial 16-cavity connector referred to herein as an ‘OBD-II connector’. The OBD-II connector typically lies underneath the vehicle's dashboard. When a vehicle is serviced, data from the standardized buss is typically queried using an external engine-diagnostic tool (commonly called a ‘scan tool’) that connects to the OBD-II connector. The data are then displayed an analyzed with the scan tool, and can then be used to service the vehicle.
Some vehicle manufacturers also include complex electronic systems in their vehicles to access and analyze some of the above-described data. For example, General Motors includes a system called ‘On-Star’ in some of their high-end vehicles. On-Star collects and transmits data relating to these DTCs through a wireless network. On-Star systems are not connected through the OBD-II connector, but instead are wired directly to the vehicle's electronic system. This wiring process typically takes place when the vehicle is manufactured.
It is an object of the present invention to provide a wireless, internet-based system for monitoring a vehicle. Specifically, it is an object of the invention to access data from a vehicle, analyze it, and make it available to organizations (e.g. an automotive dealership or service center) over the internet so that the vehicle's performance can be analyzed accurately and in real-time. The data include, for example, DTCs that trigger ‘alert messages’ that are emailed to a vehicle owner or displayed on a web page on the internet.
In one aspect, the invention provides a method for monitoring a vehicle that features the steps of: 1) generating a data packet that includes data retrieved from the vehicle using a wireless appliance; 2) transmitting the data packet over an airlink with the wireless appliance so that it passes through a network and to a host computer system; 3) processing the data packet with the host computer system to generate a set of data; and 4) displaying the set of data on a web page hosted on the internet.
The ‘wireless appliance’ used in the above-described method includes electronics that extract data from the vehicle's ECU, and a transmitting component (e.g. a radio or cellular modem) that sends out the data packet over an existing network (e.g., Cingular's Mobitex network). Such a wireless appliance is described in the U.S. patent application Ser. No. 09/776,106, now U.S. Pat. No. 6,636,790, entitled WIRELESS DIAGNOSTIC SYSTEM FOR VEHICLES, and filed Feb. 1, 2001, the contents of which are incorporated herein by reference.
In embodiments, the processing step includes extracting at least one of the following vehicle parameters from the data packet: numerical data, an alphanumeric text message, an active or pending diagnostic trouble code (e.g., a 5-digit code), or a vehicle identification number. These parameters are then processed with database software (e.g., an Oracle database) to generate a set of data that comprises an alphanumeric text message. The text message, e.g. an alert message, can be displayed on the web page or emailed to a user. The text message can also include a description of the data parameter, such as a written description of the DTC.
In related embodiments, the method includes the step of processing at least one numerical parameter from the numerical data with a mathematical algorithm. This generates an alert message from data other than DTCs. For example, the numerical parameter can be compared or displayed with at least one numerical parameter generated at an earlier point in time (e.g., a previously determined fuel level), or with a predetermined numerical value (e.g., a mileage level corresponding to a recommended service appointment). These values, or a simple analysis of the data, can be included in the alphanumeric text message displayed on the web page or sent out in an email.
In another aspect, the invention features a similar set of steps for processing data from multiple vehicles (e.g., a group of customers) associated with a corporate organization (e.g., a vehicle dealership). Specifically, the invention features the steps of 1) generating a first data packet comprising vehicle data retrieved from a first vehicle in a set of vehicles using a first wireless appliance disposed in the first vehicle; 2) transmitting the first data packet over an airlink with the first wireless appliance so that it passes through a network and to a host computer system; 3) repeating steps 1 and 2 for a second vehicle; 4) processing the first and second data packets with the host computer system to generate first and second sets of data; 5) displaying the first set of data on a first web page hosted on the internet; and 6) displaying the first and second sets of data on a second web page hosted on the internet.
In this embodiment, a single web site includes the first and second web pages. The web site also includes a ‘login’ web page for entering a user name and a password so that one group of users (e.g. vehicle owners) can log in with and view data from a single vehicle, while another group (e.g. corporate organizations such as vehicle dealerships, vehicle-rental organizations, insurance organizations, or fleet organizations) can log in and view data of all the users associated with the group.
In the above-described method, the term “airlink” refers to a standard wireless connection (e.g., a connection used for wireless telephones or pagers) between a transmitter and a receiver. Also in the above-described method, the ‘generating’ and ‘transmitting’ steps can be performed at any time and with any frequency, depending on the diagnoses being performed. For a ‘real-time’ diagnoses of a vehicle's engine performance, for example, the steps may be performed at rapid time or mileage intervals (e.g., several times each minute, or every few miles). Alternatively, other diagnoses (e.g. an emissions or ‘smog’ check) may require the steps to be performed only once each year or after a large number of miles are driven. Alternatively, the vehicle may be configured to automatically perform these steps at predetermined or random time intervals.
The term ‘web page’ refers to a single page that is hosted on the internet or world-wide web. A ‘web site’ typically includes multiple web pages.
The invention has many advantages. In particular, wireless transmission of data from a vehicle, followed by analysis and display of these data using a web site hosted on the internet, makes it possible to diagnose the performance of a vehicle in real-time from virtually any location that has internet access. This ultimately means the problems with the vehicle can be efficiently diagnosed, and in some cases predicted before they actually occur. Moreover, data from the vehicle can be queried and analyzed while the vehicle is actually in use to provide a relatively comprehensive diagnosis that is not possible using a conventional scan tool. An internet-based system for vehicle diagnoses can also be easily updated and made available to a large group of users simply by updating software on the web site. In contrast, a comparable updating process for a series of scan tools can only be accomplished by updating the software on each individual scan tool.
The wireless appliance used to access and transmit the vehicle's data is small, low-cost, and can be easily installed in nearly every vehicle with an OBD-II connector in a matter of minutes. It can also be easily transferred from one vehicle to another, or easily replaced if it malfunctions.
An in-vehicle wireless appliance can also collect data that is not accessible using a scan tool. For example, data that indicates a vehicles performance can be collected while the vehicle is actually driven. Scan tools, in contrast, can only collect data in a vehicle service bay. Service technicians, for example, can analyze DTCs during repair of the vehicle. The system described herein makes also makes data available in real-time, thereby allowing the technicians to order parts and schedule resources for service appointments before the vehicle is actually brought into the dealership.
The resulting data, of course, have many uses for automotive dealerships, vehicle-service organizations, vehicle-renting firms, insurance companies, vehicle owners, organizations that monitor emission performance (e.g., the EPA), manufacturers of vehicles and related parts, survey organizations (e.g., J.D. Power) and vehicle service centers. In general, these data yield information that benefits the consumer, vehicle and parts manufacturers, vehicle service centers, and the environment.
These and other advantages of the invention are described in the following detailed disclosure and in the claims.
The features and advantages of the present invention can be understood by reference to the following detailed description taken with the drawings, in which:
A user ‘logs’ into the website 20 by entering a username and password that, once entered, are compared to a database associated with the website. The comparison determines if the user is a dealer or a customer. If the user is determined to be a dealer, the website renders a dealer interface 27 that contains, e.g., diagnostic information for each vehicle purchased from the particular dealership. Users viewing the dealer interface 27 do not have access to data corresponding to vehicles sold by other dealerships. If the user is determined to be a customer, the website 20 renders a customer interface 29 that contains diagnostic information for one or more vehicles corresponding to the customer. The customer interface contains diagnostic information for each vehicle corresponding to the customer.
The wireless appliance that provides a diagnostic data to the website is described in more detail in WIRELESS DIAGNOSTIC SYSTEM FOR VEHICLES, filed Feb. 1, 2001, the contents of which have been previously incorporated by reference. Each wireless appliance contains logic for retrieving data from the host vehicle and formatting the data in a data packet, and a wireless transmitter that transmits the data packet over an airlink to a wireless network (e.g., Cingular's ‘Mobitex’ network). Each appliance typically transmits a data packet at either a predetermined time interval (e.g., once each day), or shortly (e.g., within a few seconds) after a DTC is generated. The format of each data packet, along with the data contained therein, is described in the above-mentioned patent application. In general, each data packet contains information of its status, an address describing its destination, an address describing its origin, and a ‘payload’ that contains diagnostic data from the vehicle. The process for transmitting diagnostic data from a vehicle to a website is described in more detail in the above-referenced patent application.
An alert is generated when data, sent from the vehicle's wireless appliance to the host computer system, indicates either 1) a mechanical/electrical problem with the vehicle; or 2) that a scheduled maintenance is recommended for the vehicle. For example, the customer list 52 includes a data field 54 that lists the user ‘Five, Loaner’ with an associated 2001 Toyota Corolla. The data field 54 also includes the number ‘1 ’ in the alert listing 62, indicating the presence of one of a single alert.
The web page 60 is separated into four categories describing, respectively, a status of the vehicle's ‘emission’ system 62, ‘transmission/brakes’ system 64, ‘engine/fuel’ system 66, and ‘other’ systems 68. For this vehicle, the emission 62, transmission/brakes 64, and engine/fuel 66 system categories have no associated alerts. This is indicated by, respectively, messages 62′, 64′, 66′ preceded an icon that features a green box with a checkmark similar to that shown in the data field 71 describing the overview vehicle's emissions status. These icons indicate that no DTCs corresponding to the respective categories were detected. Conversely the ‘other’ system category 68 includes an alert message 68′ that includes a text message field preceded by an icon that features a yellow box with a ‘question mark’. The presence of this single alert message 68′ is what generates the ‘1 ’ listed in the data field 54 in
The alert message 68′ is first generated when the vehicle's mileage is within 1000 miles of the mileage corresponding to a recommended scheduled maintenance, which in this case is 5000 miles. Thus, an alert in generated and first appears on the web page 60 when the vehicle's odometer reading is 4000 miles or greater. Mileage values corresponding to this and other recommended schedule maintenances are entered into the system in a ‘Scheduled Maintenance’ section 75 on the same page. The alert message 68′ appears on the web page 60 until: 1) the recommended service is performed on the vehicle; or 2) the vehicle's mileage is greater than 1000 miles from the mileage corresponding to a recommended scheduled maintenance (i.e., 6000 miles). In either case, the alert is ‘cleared’ from the web page 60 and is stored in a ‘History of Alert’ section 75 that, when clicked, historically lists all the cleared alerts corresponding to this particular vehicle.
The data parameters within the set 122 describe a variety of electrical, mechanical, and emissions-related functions in the vehicle. Several of the more significant parameters from the set are listed in Table 1, below:
TABLE 1
Parameters Monitored from Vehicle
Pending DTCs
Ignition Timing Advance
Calculated Load Value
Air Flow Rate MAF Sensor
Engine RPM
Engine Coolant Temperature
Intake Air Temperature
Absolute Throttle Position Sensor
Vehicle Speed
Short-Term Fuel Trim
Long-Term Fuel Trim
MIL Light Status
Oxygen Sensor Voltage
Oxygen Sensor Location
Delta Pressure Feedback EGR Pressure Sensor
Evaporative Purge Solenoid Dutycycle
Fuel Level Input Sensor
Fuel Tank Pressure Voltage
Engine Load at the Time of Misfire
Engine RPM at the Time of Misfire
Throttle Position at the Time of Misfire
Vehicle Speed at the Time of Misfire
Number of Misfires
Transmission Fluid Temperature
PRNDL position (1, 2, 3, 4, 5 = neutral, 6 = reverse)
Number of Completed OBDII Trips
Battery Voltage
The parameters listed in Table 1 were measured from a Ford Crown Victoria. Similar sets of data are available for nearly all vehicles manufactured after 1996. In addition to these, hundreds of other vehicle-specific parameters are also available from the vehicle's ECU.
The data set 122 shown in
Referring to
Other embodiments are also within the scope of the invention. In particular, the web pages used to display the data can take many different forms, as can the manner in which the data are displayed. Web pages are typically written in a computer language such as ‘HTML’ (hypertext mark-up language), and may also contain computer code written in languages such as Java for performing certain functions (e.g., sorting of names). The web pages are also associated with database software (provided by companies such as Oracle) that is used to store and access data. Equivalent versions of these computer languages and software can also be used.
Different web pages may be designed and accessed depending on the end-user. As described above, individual users have access to web pages that only show data for their particular vehicle, while organizations that support a large number of vehicles (e.g. dealerships or distributors) have access to web pages that contain data from a collection of vehicles. These data, for example, can be sorted and analyzed depending on vehicle make, model, odometer reading, and geographic location. The graphical content and functionality of the web pages may vary substantially from what shown in the above-described figures. In addition, web pages may also be formatted using standard wireless access protocols (WAP) so that they can be accessed using wireless devices such as cellular telephones, personal digital assistants (PDAs), and related devices.
The web pages also support a wide range of algorithms that can be used to analyze data once it is extracted from the data packets. For example, the above-mentioned method alert messages are sent out in response to a DTC or when a vehicle approaches a pre-specified odometer reading. Alternatively, the message could be sent out when a data parameter (e.g. engine coolant temperature) exceeded a predetermined value. In some case, multiple parameters (e.g., engine speed and load) can be analyzed to generate an alert message. In general, an alert message can be sent out after analyzing one or more data parameters using any type of algorithm. These algorithms range from the relatively simple (e.g., determining mileage values for each vehicle in a fleet) to the complex (e.g., predictive engine diagnoses using ‘data mining’ techniques). Data analysis may be used to characterize an individual vehicle as described above, or a collection of vehicles, and can be used with a single data set or a collection of historical data. Algorithms used to characterize a collection of vehicles can be used, for example, for remote vehicle or parts surveys, to characterize emission performance in specific geographic locations, or to characterize traffic.
Other embodiments of the invention include algorithms for analyzing data to characterize vehicle accidents and driving patterns for insurance purposes; algorithms for determining driving patterns for use-based leasing; and algorithms for recording vehicle use and driving patterns for tax purposes. In general, any algorithm that processes data collected with the above-described method is within the scope of the invention.
Similarly, the temporal or mileage frequency at which data is collected can be adjusted to diagnose specific types of problems. For example, characterization of certain types of vehicle performance indicators, such as emissions, may need to be monitored relatively frequently (e.g., once every few minutes). Other properties, such as mileage and fluid levels, may only need to be monitored every few days, or in some cases just a few times each year.
In other embodiments, additional hardware can be added to the in-vehicle wireless appliance to increase the number of parameters in the transmitted data. For example, hardware for global-positioning systems (GPS) may be added so that the location of the vehicle can be monitored along with its data. Or the radio modem used to transmit the data may employ a terrestrial GPS system, such as that available on modems designed by Qualcomm, Inc. In still other embodiments, the location of the base station that transmits the message can be analyzed to determine the vehicle's approximate location. In addition, the wireless appliance may be interfaced to other sensors deployed in the vehicle to monitor additional data. For example, sensors for measuring tire pressure and temperature may be deployed in the vehicle and interfaced to the appliance so that data relating the tires' performance can be transmitted to the host computer system.
In other embodiments, data processed using the above-described systems can be used for: remote billing/payment of tolls; remote smog and emissions checks; remote payment of parking/valet services; remote control of the vehicle (e.g., in response to theft or traffic/registration violations); and general survey information.
Still other embodiments are within the scope of the following claims.
Lowrey, Larkin Hill, Lightner, Bruce, Borrego, Diego, Myers, Chuck, Banet, Matthew
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