The invention relates to a system and method for generating utilization data of a vehicle.
Most vehicles are now equipped with various systems such as GPS tracking systems that provide data on location of the vehicle and various sensors that provide data on operating parameters of the vehicle. Such parameters are made available to a remote server which can monitor the position and operating parameters of the vehicle remotely.
While existing GPS tracking systems are effective for tracking light and heavy vehicles such as cars, buses, lorries, etc which primarily engage in an on-road operation, tracking of work vehicles including but not limited to as tractors, bulldozers, harvest machines, earth movers pose a different challenge as their primary operation is off-road/on-field. The tracking systems when employed in work vehicles, only provide the distance and the speed of the work vehicle and hence only being effective for the on-road part of the operation of the work vehicle. For the on-field operation, these systems do not allow the user to gauge any additional information of utilization of the work vehicle resource. Accordingly, tracking whether the vehicle has been used for on-road operation or on-field operation is not possible.
Further, vehicles generally travel through different terrains and different network conditions. In this regard, field locations generally have poor network conditions, and thus monitoring parameters remotely is a challenge.
In view of the above, there is a need in the art to address at-least the aforementioned problems.
Accordingly, the present invention in one aspect provides a system for generating utilization data of a vehicle, the system comprising: a telematics control unit of the vehicle for obtaining at-least one location data, speed data, RPM data; and a remote server configured to establish a communication link with the telematics control unit, the remote server having a processing unit configured to: receive data from the telematics control unit, the data comprising at-least location data, speed data, RPM data of the vehicle; classify the data into plurality of segments, each segment comprising a cluster of location points or GPS points with speed data and RPM data; analyze each segment to identify from the plurality of segments on-road segments or on-field segments based upon at-least density of location points in the segment; and generate utilization data of the vehicle for on-road segments and/or on-field segments.
In another aspect, the present invention provides a method for generating utilization data of a vehicle, the method comprising the steps of receiving data from the vehicle, the data comprising at-least location data, speed data, RPM data of the vehicle; classifying the data into plurality of segments, each segment comprising a cluster of location points or GPS points with speed data and RPM data; analyzing each segment to identify from plurality of segments an on-road segment or on-field segment based upon density of location points in the segment; and generating utilization data of the vehicle for on-road segments and/or on-field segments.
Reference will be made to embodiments of the invention, examples of which may be illustrated in accompanying figures. These figures are intended to be illustrative, not limiting. Although the invention is generally described in context of these embodiments, it should be understood that it is not intended to limit the scope of the invention to these particular embodiments.
The present invention is directed towards generating utilization data of a vehicle to identify on-field/off-road and on-road operation of the vehicle. In case of on-field operation, the present invention determines total field area covered by the vehicle, and in case of on-road operation the present invention determines total distance covered by the vehicle.
The telematic control unit is installed on the vehicle and is connected with various sensors such as on-board vehicle sensors, speed sensor, RPM sensor, GPS module, engine sensors, gyroscope, accelerometer, to obtain location data, position data, speed data, RPM data, engine ON/OFF data, operating parameters of the vehicle, etc.
Further, the telematics control unit has a communication module. The communication module enables the telematics control unit to communicate with the remote server and/or the electronic device. In this regard, the data obtained by the telematics control unit is sent/transferred to the remote server and/or the electronic device enabling vehicle data to be monitored and/or analyzed remotely. The data is transferred in the form of packets at pre-determined time intervals, wherein each packet comprises at-least location data, position data, speed data, RPM data, engine ON/OFF data.
In an embodiment, the remote server is configured to establish a communication link with the telematics control unit. The server comprises a processing unit, and at-least one communication module. The communication module enables the server to establish a communication link with the telematics control unit. For each vehicle, the remote server is configured to receive one or more packets of data, each packet comprising at-least location data, speed data, RPM data, position data. In this regard, data is continuously received by the remote server in the form of packets at pre-determined time intervals. Further, the remote server receives data of one or more vehicles, wherein data of each vehicle is identified with a unique code.
In an embodiment of the invention, data received from the telematics unit is classified into plurality of segments, wherein each segment comprises cluster of location points or GPS points with at-least speed data and RPM data. In an embodiment, the segments are classified on the basis of speed of the vehicle or vehicle start-stop operation. Accordingly, speed of vehicle is monitored wherein starting point of the segment is when speed of vehicle is more than 0 kmph and stop point of the segment is when speed of vehicle is back to 0 kmph, and the speed of vehicle remains at 0 Kms for a pre-determined time period. For example—more than two minutes. Alternately, the segments can be classified based on time or based on start-stop operation of engine of the vehicle.
Further, each segment is analyzed to identify from plurality of segments—on-road segments or on-field segments based upon density of the location. In an embodiment, each segment is analyzed to determine density of location points and depending upon density of location points, each segment is classified as on-road segment or on-field segment. In this regard, it may be noted that density of location points for an on-field segment is higher compared to density of location points for an on-road segment. Accordingly, segment with high density is classified as on-field segment and segment with less density points is classified on-road segment. Further, for each segment other parameters of vehicle such as speed data, RPM data are obtained/correlated. Accordingly, each segment comprises of location data, speed data and RPM data of vehicle.
Further, as shown the electronic device is in communication with the system. The electronic device can be selected from devices such as a smart phone, laptop, tablet, PC, etc. comprising of at least one or more processors, a memory, a storage unit, a communication module, a display, etc. The electronic device has a dedicated application which when executed establishes a communication link with the remote server and receives the utilization data of the vehicle monitored by the invention. The electronic device displays utilization data of the vehicle. In this regard for an on-road operation, the electronic device displays distance covered by the vehicle and time period for which engine is utilized. For on-field operation, the electronic device displays area covered by the vehicle, time period for which engine is utilized and average engine RPM.
At step 5D, utilization data of the vehicle for on-road operation and/or off-road operation is generated. For an on-road operation, distance covered by the vehicle and time period for which engine is utilized is provided and for on-field operation, area covered by the vehicle, time period for which engine is utilized and average engine RPM is provided.
Advantageously, the present invention provides actual usage of the vehicle—on-road and on-field. Thus, basis the utilization data, various other analysis/determination such as pricing for vehicle rental based on actual effort/use of the vehicle can be carried out.
While the present invention has been described with respect to certain embodiments, it will be apparent to those skilled in the art that various changes and modification may be made without departing from the scope of the invention as defined in the following claims.
Number | Date | Country | Kind |
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202041053459 | Dec 2020 | IN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IN2021/050065 | 1/22/2021 | WO |