Warning device, warning method, and program
The warning device addresses EV power shortages by detecting deviations in predicted and actual SOC values, issuing timely warnings to prevent power depletion during travel.
Patent Information
- Application Number
- JP2023573788
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-01-17
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2042-01-17
AI Technical Summary
Existing electric vehicle (EV) transportation plans may fail to account for discrepancies between predicted and actual State of Charge (SOC) values, leading to potential power shortages during travel, despite planned charging strategies.
A warning device and method that acquires prediction and actual measurement values of SOC, determines the deviation between them, and outputs warning information when a predetermined condition is met to alert the user of potential power shortages.
Effectively notifies users of impending power shortages, ensuring timely charging and preventing EVs from running out of power during travel by utilizing deviation-based warning conditions.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a warning device, a warning method, and a program. [Background technology]
[0002] Techniques relating to electric vehicles are disclosed in Patent Documents 1 to 3.
[0003] Patent Document 1 discloses a technique for determining the transition of a predicted value of SOC (state of charge) up to a destination.
[0004] Patent Document 2 discloses a technique for identifying a location where the SOC is likely to decrease, and notifying a user that an area including the identified location is an area where the battery may run out of power.
[0005] Patent Document 3 discloses a technology that, when it detects that there has been a change from the original plan in the number of passengers or whether the air conditioner is being used or not while the vehicle is in motion, notifies the user that the vehicle may not be able to be driven due to insufficient charge. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2003-111209 [Patent Document 2] Japanese Patent Application Laid-Open No. 2015-69259 [Patent Document 3] Japanese Patent Application Laid-Open No. 2010-32459 Summary of the Invention [Problem to be solved by the invention]
[0007] By notifying the user of the possibility of running out of power at an appropriate time, it is possible to effectively prevent the electric vehicle from running out of power. An object of the present invention is to provide a new technology for notifying the user of the possibility of running out of power in an electric vehicle. [Means for solving the problem]
[0008] According to the present invention, a prediction information acquisition means for acquiring prediction information indicating a change in a predicted value of the SOC of the vehicle when the vehicle is traveling based on the transportation plan; an actual measurement value acquisition means for acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determination means for determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output means for outputting first warning information when the warning condition is satisfied; A warning device is provided having:
[0009] Further, according to the present invention, The computer a prediction information acquisition step of acquiring prediction information indicating a change in a predicted value of SOC of the vehicle when the vehicle travels based on the transportation plan; an actual measurement value acquisition step of acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determining step of determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output step of outputting first warning information when the warning condition is satisfied; A warning method is provided that performs the following.
[0010] Further, according to the present invention, Computer, a prediction information acquisition means for acquiring prediction information indicating a change in a predicted value of the SOC of the vehicle when the vehicle is traveling based on the transportation plan; an actual measurement value acquisition means for acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determination means for determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output means for outputting first warning information when the warning condition is satisfied; A program is provided to function as a [Effects of the Invention]
[0011] According to the present invention, a new technique for notifying a user of the possibility of a power shortage in an electric vehicle is realized. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 2 is a diagram illustrating an example of a hardware configuration of a warning device. [Figure 2] FIG. 2 is a functional block diagram of an example of a warning device. [Figure 3] FIG. 10 is a diagram schematically illustrating an example of prediction information. [Figure 4] FIG. 10 is a diagram schematically illustrating an example of prediction information. [Figure 5] FIG. 1 is a diagram schematically illustrating an example of a transportation plan. [Figure 6] FIG. 1 is a diagram schematically illustrating an example of a transportation plan. [Figure 7] FIG. 1 is a diagram schematically illustrating an example of a transportation plan. [Figure 8] FIG. 1 is a diagram schematically illustrating an example of a transportation plan. [Figure 9] 10 is a flowchart showing an example of a processing flow of the warning device. [Figure 10] FIG. 10 is a diagram for explaining a process performed by the warning device. DETAILED DESCRIPTION OF THE INVENTION
[0013] Hereinafter, embodiments of the present invention will be described with reference to the drawings. In all drawings, like components are designated by like reference numerals, and descriptions thereof will be omitted where appropriate. In the following, an "electric vehicle" powered by electricity will be simply referred to as a "vehicle." In other words, the "vehicle" referred to below refers to an "electric vehicle." In addition, in this specification, "transportation" is a concept that includes both delivering a package to a destination and collecting the package at the destination.
[0014] First Embodiment "overview" The warning device of this embodiment is used in a transportation vehicle that departs from a base, visits multiple destinations, and then returns to the base. The vehicle travels based on a transportation plan created in advance. The transportation plan specifies the destinations and transportation order, etc., so that the vehicle does not run out of power along the way. The transportation plan may also specify that the vehicle should be charged before or during departure from the base.
[0015] As mentioned above, transportation plans are designed to prevent the vehicle from running out of power along the way. However, the predicted SOC trend when traveling according to the transportation plan may not match the actual SOC trend when traveling according to the transportation plan. Also, even if the transportation plan specifies that the vehicle should be charged before departing from the base or along the way, charging may not be carried out as planned. As a result, even if the transportation plan is designed to prevent the vehicle from running out of power along the way, the vehicle may still run out of power along the way.
[0016] Therefore, the warning device acquires "prediction information indicating the transition of the predicted value of the vehicle's SOC when traveling based on the transportation plan" and also acquires "the actual measured value of the vehicle's SOC while traveling based on the transportation plan."The warning device then determines whether the relationship between the predicted value and the actual measured value (e.g., deviation status) satisfies a predetermined warning condition, and outputs first warning information if the warning condition is satisfied.
[0017] In this way, the warning device detects the possibility of the vehicle running out of power based on the relationship (e.g., deviation) between the predicted value of the vehicle's SOC when traveling based on a transportation plan that is designed to prevent the vehicle from running out of power along the way and the actual measured value of the vehicle's SOC while traveling based on the transportation plan.
[0018] "Hardware Configuration" Next, an example of the hardware configuration of the warning device will be described. Each functional section of the warning device is realized by any combination of hardware and software, centered around a computer's CPU (Central Processing Unit), memory, programs loaded into memory, a storage unit such as a hard disk that stores the programs (this can store programs pre-loaded at the time the device is shipped, as well as programs downloaded from storage media such as CDs (Compact Discs) or servers on the Internet), and a network connection interface. Those skilled in the art will understand that there are many variations in the implementation methods and devices.
[0019] FIG. 1 is a block diagram illustrating the hardware configuration of a warning device. As shown in FIG. 1, the warning device has a processor 1A, a memory 2A, an input / output interface 3A, a peripheral circuit 4A, and a bus 5A. The peripheral circuit 4A includes various modules. The warning device does not necessarily have to have the peripheral circuit 4A. The warning device may also be composed of multiple devices that are physically and / or logically separated. In this case, each of the multiple devices can have the above hardware configuration.
[0020] The bus 5A is a data transmission path for the processor 1A, memory 2A, peripheral circuit 4A, and input / output interface 3A to transmit and receive data among them. The processor 1A is an arithmetic processing device such as a CPU or a GPU (Graphics Processing Unit). The memory 2A is a memory such as a RAM (Random Access Memory) or a ROM (Read Only Memory). The input / output interface 3A includes an interface for acquiring information from an input device, an external device, an external server, an external sensor, a camera, etc., and an interface for outputting information to an output device, an external device, an external server, etc. Examples of input devices include a keyboard, a mouse, a microphone, physical buttons, a touch panel, etc. Examples of output devices include a display, a speaker, a printer, a mailer, etc. The processor 1A can issue commands to each module and perform calculations based on the results of those calculations.
[0021] "Function Configuration" Next, the functional configuration of the warning device will be described.
[0022] The warning device may be, for example, an in-vehicle device, and may output warning information to the driver of the vehicle.
[0023] Alternatively, the warning device may be a server that communicates with the in-vehicle device, and may acquire various information about the vehicle (such as the actual measured value of the SOC) via the in-vehicle device and output warning information to the driver of the vehicle via the in-vehicle device.
[0024] Alternatively, the warning device may be a server that communicates with the in-vehicle device, and may acquire various information about the vehicle (such as the actual measured value of SOC) via the in-vehicle device, and output warning information to a monitor who monitors multiple vehicles via a monitor device operated by the monitor.
[0025] Alternatively, the warning device may be a server that communicates with the in-vehicle device. The warning device may acquire various information about the vehicle (such as the actual measured value of SOC) via the in-vehicle device. The warning device may also output warning information to the driver of the vehicle via the in-vehicle device, and may also output warning information to a monitor who monitors multiple vehicles via a monitor device operated by the monitor.
[0026] 2 shows an example of a functional block diagram of the warning device 10. As shown in the figure, the warning device 10 has a predicted information acquisition unit 11, an actual measurement value acquisition unit 12, a determination unit 13, and an output unit 14.
[0027] The prediction information acquisition unit 11 acquires prediction information indicating a transition of a predicted value of the SOC of the vehicle when traveling based on the transportation plan. The prediction information acquisition unit 11 may acquire the prediction information by receiving input of the prediction information. Alternatively, the prediction information acquisition unit 11 may create the prediction information based on the transportation plan. The process of creating the prediction information based on the transportation plan will be described in the following embodiment.
[0028] FIG. 3 shows an example of prediction information. The illustrated prediction information shows predicted SOC values at all times between departure from the base and return to the base. FIG. 4 shows another example of prediction information. The illustrated prediction information shows predicted SOC values at specific times between departure from the base and return to the base. For example, predicted SOC values may be shown every 30 minutes as shown in the figure, or the time interval may be different from the example shown in the figure. Furthermore, the time interval may be shortened as the predicted SOC value decreases.
[0029] Next, a transportation plan will be described. The transportation plan indicates the transportation destination, transportation order, weight of luggage, etc. The transportation plan may also indicate charging before or during departure from the base.
[0030] FIG. 5 shows a schematic diagram of an example of a transportation plan. FIG. 5 shows a list of multiple delivery plans for November 19, 2021. In FIG. 5, plan identification information, vehicle identification information, transportation information, and base departure times are linked to one another. Note that the transportation plan may also include other information.
[0031] "Plan identification information" is information that identifies multiple transportation plans from each other. The "vehicle identification information" is information for identifying multiple vehicles used for transportation from one another. Each piece of plan identification information is linked to the vehicle identification information of a vehicle assigned to each transportation plan. The "transportation information" includes the order, destination, classification, work time, package weight, work start time, and work end time.
[0032] "Order" indicates the order of transportation. "Destination" indicates the name and address of the party to whom the package is to be delivered or the party from whom the package is to be collected. "Classification" indicates the type of work, ie, delivery or collection. "Work time" indicates the time required for work (delivery or collection) to be performed at the destination. "Luggage weight" indicates the weight of the luggage to be delivered to the delivery destination or the weight of the luggage to be collected at the collection destination. The "work start time" indicates the time when work (delivery or collection) starts at the destination. The "work completion time" indicates the time when the work (delivery or collection) ends at the destination.
[0033] The "Departure time from base" indicates the time when the vehicle departs from a base such as an office. After departing from the base, the vehicle visits multiple destinations and then returns to the base. The departure base and the return base may be the same or different.
[0034] Figure 6 shows a schematic diagram of another example of a transportation plan. Figure 6 displays one delivery plan (plan identification information: 0001) for November 19, 2021. Figure 6 displays the work date, plan identification information, precautions, and transportation schedule. The work date, plan identification information, and transportation schedule are the same as those in the transportation plan of Figure 5. The precautions include the requirement to charge before departing from the base, and the amount of charge. In other words, this transportation plan is the transportation plan of Figure 5 with the addition of charging before departing from the base.
[0035] Figure 7 shows a schematic diagram of another example of a transportation plan. Figure 7 displays one delivery plan (plan identification information: 0001) for November 19, 2021. Figure 7 displays the work date, plan identification information, precautions, and transportation schedule. The work date, plan identification information, and transportation schedule are the same as those in the transportation plan of Figure 5. The precautions indicate that charging should be performed during breaks and the amount of charge. In other words, this transportation plan is the transportation plan of Figure 5 to which charging during breaks has been added.
[0036] Figure 8 shows a schematic diagram of another example of a transportation plan. Figure 8 displays one delivery plan (plan identification information: 0001) for November 19, 2021. Figure 8 displays the work date, plan identification information, precautions, and transportation schedule. The work date, plan identification information, and transportation schedule are the same as those in the transportation plan of Figure 5. The precautions indicate that charging should be performed before departing from the base, as well as the amount of charging, and that charging should be performed during breaks, as well as the amount of charging. In other words, this transportation plan is the transportation plan of Figure 5 to which charging before departing from the base and during breaks has been added.
[0037] Such a transportation plan may be created using any technique. For example, the transportation plan may be created using the technique described in Non-Patent Document 1.
[0038] 2, the actual measurement value acquiring unit 12 acquires the actual measurement value of the vehicle's SOC while the vehicle is traveling based on the transportation plan. The actual measurement value acquiring unit 12 acquires the actual measurement value of the vehicle's SOC detected by well-known technology.
[0039] The determination unit 13 determines whether the relationship between the predicted value of the vehicle's SOC at a certain time indicated by the prediction information and the actual measured value of the SOC of the vehicle at that time satisfies a predetermined warning condition. The warning condition relates to the deviation between the predicted value and the actual measured value. Specific examples of the warning condition will be described in the following embodiments.
[0040] When the warning condition is satisfied, the output unit 14 outputs first warning information. The first warning information indicates that there is a possibility of running out of power while traveling based on the transportation plan. The output unit 14 can output the first warning information via any output device, such as a display, a speaker, a projection device, or a warning lamp.
[0041] Next, an example of the processing flow of the warning device 10 will be described with reference to the flowchart of FIG.
[0042] First, the warning device 10 acquires prediction information indicating a transition of a predicted value of the SOC of the vehicle when traveling based on the transportation plan (S10). The warning device 10 also acquires an actual measurement value of the SOC of the vehicle while traveling based on the transportation plan (S11). Then, the warning device 10 determines whether the relationship between the actual measurement value of the current point acquired in S11 and the predicted value of the current point indicated by the prediction information acquired in S10 satisfies a predetermined warning condition (S12).
[0043] If the warning condition is met (Yes in S12), the warning device 10 outputs the first warning information (S13). If the warning condition is not met (No in S12), the warning device 10 does not output the first warning information.
[0044] <Action and effect> The warning device 10 of this embodiment outputs first warning information indicating the possibility of running out of power while traveling based on a transportation plan when the relationship between the predicted value of the vehicle's SOC and the actual measured value of the vehicle when traveling based on a transportation plan created to prevent running out of power midway satisfies a predetermined warning condition. This method outputs the first warning information based on the relationship between the predicted value of the SOC and the actual measured value of the SOC, regardless of the magnitude of the current actual measured value of the SOC. In this case, the first warning information can be output when the current actual measured value of the SOC is relatively high (e.g., 60%, 70%, etc.). By outputting the first warning information when the current actual measured value of the SOC is relatively high (e.g., 60%, 70%, etc.), it is possible to ensure sufficient preparation time for charging.
[0045] In addition, a highly reliable warning can be issued by outputting first warning information based on the relationship between the predicted value of the vehicle's SOC when traveling based on a transportation plan created to prevent the vehicle from running out of power along the way and the actual measured value of the vehicle's SOC.
[0046] <Second embodiment> In this embodiment, warning conditions are specified. The warning conditions include at least one of the following first to fourth warning conditions. The warning conditions may further include the following fifth warning condition.
[0047] -First warning condition- The first warning condition is that "the actual measured value of the vehicle's SOC at the time of departure from the base is less than the predicted value of the vehicle's SOC at that time." The purpose of the warning based on the first warning condition is to warn that there is a possibility of running out of power en route if the actual measured value of the vehicle's SOC is already lower than the predicted value of the vehicle's SOC at that time when departing from the base. According to this first warning condition, it is possible to output first warning information at the time of departure from the base indicating that there is a possibility of running out of power while traveling based on the transportation plan.
[0048] -Second warning condition- The second warning condition is that "the actual measured value of the vehicle's SOC at the time of departure from the base is less than the predicted value of the vehicle's SOC at that time, and the level of discrepancy between the actual measured value and the predicted value is equal to or greater than a first threshold value." The discrepancy level is expressed, for example, as the difference between the predicted value and the actual measured value. The first threshold value is a predetermined value, and its specific value is a design factor. The purpose of the warning based on the second warning condition is to warn the vehicle if, at the time of departure from the base, the actual measured value of the vehicle's SOC is already less than the predicted value of the vehicle's SOC at that time, and if the discrepancy level is somewhat large, there is a high possibility that the vehicle will run out of power en route.
[0049] According to such a second warning condition, first warning information can be output at the time of departure from the base, indicating that there is a possibility of running out of power while traveling based on the transportation plan.
[0050] -Third warning condition- The third warning condition is that the actual measured value of the vehicle's SOC after departing from the base is less than the predicted value of the vehicle's SOC at that time, and the deviation level between the actual measured value and the predicted value is equal to or greater than the second threshold. The deviation level is expressed, for example, as the difference between the predicted value and the actual measured value.
[0051] The second threshold is a predetermined value, and its specific value is a design factor. The purpose of the warning based on the third warning condition is to warn when the actual measured value of the vehicle's SOC after departing from the base is lower than the predicted value of the vehicle's SOC at that time, and the deviation level becomes large enough that there is a possibility of running out of power along the way. The second threshold may be a value greater than the first threshold.
[0052] Alternatively, the second threshold may be a value that changes depending on the progress of work based on the transportation plan. In this case, the value of the second threshold increases as the work based on the transportation plan progresses. For example, the second threshold may change depending on the time of day. In this case, the second threshold decreases as the time approaches the time of departure from the base, and increases as the time approaches the time of return to the base.
[0053] -Fourth warning condition- The fourth warning condition is that the actual measured value of the vehicle's SOC after departing from the base is less than the predicted value of the vehicle's SOC at that time, the difference between the actual measured value and the predicted value is equal to or greater than the third threshold and less than the fourth threshold, and there is no charging facility after the reference point on the travel route based on the transportation plan. The difference level is expressed, for example, as the difference between the predicted value and the actual measured value.
[0054] The purpose of the warning based on the fourth warning condition is to encourage early charging (before reaching the reference point) because the actual measurement value is not so far from the predicted value as to satisfy the third warning condition, but the actual measurement value is somewhat different from the predicted value and there are no charging facilities beyond the reference point. As shown in Fig. 10, if the first warning information can be output before reaching the reference point, charging can be performed between the current point and the reference point.
[0055] The third threshold is a predetermined value, and its specific value is a design choice. The third threshold is a value smaller than the second threshold.
[0056] Alternatively, the third threshold may be a value that changes depending on the progress of work based on the transportation plan. In this case, the value of the third threshold increases as the work based on the transportation plan progresses. For example, the third threshold may change depending on the time of day. In this case, the third threshold decreases as the time approaches the time of departure from the base, and increases as the time approaches the time of return to the base.
[0057] The fourth threshold is a value greater than the third threshold, and may be the same as the second threshold, or may be a value smaller than the second threshold.
[0058] Next, the reference point will be described. Drivers may prioritize delivery or pickup and postpone charging. As a result, an inconvenience may occur in which there is no charging facility on the route after the point at which charging is intended. By appropriately setting the reference point, it is possible to prevent such inconveniences that may occur when charging is postponed. The reference point is, for example, a destination in a predetermined visiting order among multiple destinations (e.g., the last destination), a point where the vehicle is predicted to be located at a reference time, or a point where the predicted value of the vehicle's SOC based on prediction information is predicted to be the reference value.
[0059] Next, the condition "that there is no charging facility after a reference point on a driving route based on a transportation plan" will be described. This condition may be, for example, "that there is no charging facility on a driving route after a reference point on a driving route based on a transportation plan." Alternatively, this condition may be, for example, "that there is no charging facility on a driving route after a reference point on a driving route based on a transportation plan, and within a predetermined distance from each point on the driving route after the reference point."
[0060] Charging facilities can be classified as public or private. Reservations for charging are not possible at public charging facilities. Therefore, availability is unknown until the facility is reached. On the other hand, private charging facilities allow reservations for charging and even the reservation status can be checked. Furthermore, some charging facilities cannot be used by certain vehicles, such as large vehicles, due to factors such as parking space limitations and the width of roads leading to them. Therefore, the driver may be notified of the types of charging facilities that are not available after the reference point on the route based on the transportation plan.
[0061] Furthermore, if the warning device 10 determines that there is a charging facility after a reference point on the driving route based on the transportation plan, it may notify the driver of the type of charging facility that is available. Furthermore, if the reservation status can be checked, the warning device 10 may further notify the driver of the reservation status. On the other hand, if the reservation status cannot be checked, the warning device 10 may notify the driver of a predicted congestion level based on past performance (e.g., a prediction based on past congestion levels on the same day and at the same time). Note that there are no particular limitations on the means by which the warning device 10 identifies the type of each charging facility, and any configuration may be employed. For example, a database in which the types of multiple charging facilities are registered may be created in advance. The warning device 10 may then refer to the database to identify the type of each charging facility.
[0062] - Fifth warning condition - The fifth warning condition is that "the amount of power required to travel from the current location to a predetermined location is less than the remaining power at that time, as indicated by the actual measured value of the vehicle's SOC." The fifth warning condition is not based on the relationship between the predicted value of the vehicle's SOC and the actual measured value of the vehicle's SOC. However, the warning conditions may include such a fifth warning condition.
[0063] The predetermined points are the departure base, the return base, other related offices, etc. There may be one predetermined point or multiple predetermined points. Information indicating the predetermined points (address, latitude, longitude, etc.) is registered in advance in the warning device 10.
[0064] The output unit 14 outputs first warning information when the above-described warning conditions are satisfied. Note that if the warning conditions include multiple warning conditions from the first to fifth warning conditions, the output unit 14 outputs the first warning information when one of the multiple warning conditions is satisfied. In this case, the output unit 14 may change the content of the first warning information to be output depending on the type of satisfied warning condition.
[0065] Alternatively, the output unit 14 may output second warning information when the actual measurement value of the vehicle's SOC falls below a fifth threshold. The fifth threshold is a predetermined value, such as 30%, 15%, or 10%. This allows the second warning information to be output when the actual measurement value of the vehicle's SOC falls to a certain level. The second warning information indicates that the vehicle's SOC is low and charging is required. The output unit 14 can output the second warning information via any output device, such as a display, a speaker, a projection device, or a warning lamp.
[0066] Then, even if the actual measurement value of the vehicle SOC is not below the fifth threshold, if the above-mentioned warning condition is satisfied, the output unit 14 outputs the first warning information. As a result, the first warning information can be output at a point when the actual measurement value of the vehicle SOC is not too low.
[0067] Other configurations of the warning device 10 of this embodiment are the same as those of the first embodiment.
[0068] The warning device 10 of this embodiment achieves the same effects as those of the first embodiment. Furthermore, the warning device 10 of this embodiment issues a warning based on characteristic warning conditions, so that the user can be notified at a desirable timing that there is a possibility that a battery shortage will occur while traveling based on a transportation plan.
[0069] <Third embodiment> In this embodiment, a process for creating forecast information based on a transportation plan is embodied.
[0070] The predicted information acquisition unit 11 acquires the SOC of the vehicle when it departs from the base. Then, the predicted information acquisition unit 11 creates predicted information based on the SOC of the vehicle when it departs from the base and the transportation plan. Each process will be explained below.
[0071] -Processing to obtain vehicle SOC when departing from base- "First Example" For example, the user may input the SOC of the vehicle at the time of departure from the base into the warning device 10. Then, the predicted information acquisition unit 11 may acquire the SOC of the vehicle at the time of departure from the base input by the user. For example, the user checks the SOC of the vehicle at that time by visually checking information displayed by an in-vehicle device or the like installed in the vehicle at any time between the end of work on the previous day and the time of departure from the base on the current day. Then, the user inputs the checked SOC of the vehicle into the warning device 10 as the SOC of the vehicle at the time of departure from the base.
[0072] "Second Example" Alternatively, the predicted information acquisition unit 11 may communicate with a device that manages the vehicle's SOC and acquire the vehicle's SOC from the device. For example, the predicted information acquisition unit 11 acquires the vehicle's SOC at that time from the device at any timing between the end of business on the previous day and the departure from the base on the current day as the vehicle's SOC at the time of departure from the base.
[0073] "Third Example" Additionally, the prediction information acquisition unit 11 may acquire reservation information indicating the reservation status of the charging facility. The reservation information indicates a reservation time (reservation start time and reservation end time) and vehicle identification information of the vehicle that will be charged at the reservation time.
[0074] Then, after acquiring the SOC of the vehicle at the time of departure from the base using the method of the first or second example (hereinafter referred to as the "first SOC"), for a vehicle for which a reservation for charging equipment has been made thereafter and before departure from the base, the prediction information acquisition unit 11 calculates the SOC of the vehicle at the time of departure from the base as the SOC obtained by adding the amount of charging for the reservation to the first SOC. The amount of charging for the reservation can be the smaller of the product of the time from the reservation start time to the reservation end time and the charging speed of the charging equipment, and the available capacity of the vehicle (100% - (the first SOC) capacity).
[0075] -Processing to create forecast information based on the vehicle's SOC at the time of departure from the base and the transportation plan- The prediction information acquisition unit 11 divides the distance from the departure base to the return base into a plurality of sections. Specifically, the prediction information acquisition unit 11 defines each of "from the departure base to the first transport destination," "from the first transport destination to the second transport destination," "from the second transport destination to the third transport destination," ..., "from the final transport destination to the return base" as one section.
[0076] The prediction information acquisition unit 11 then calculates the transition of the SOC for each section, taking into account the load of each section, the SOC at the start of each section (synonymous with the SOC at the end of the immediately preceding section), and so on, and connects these in chronological order to predict the transition of the SOC of the vehicle from the departure point to the return point. There are no particular limitations on the method for predicting the transition of the SOC taking the load into account, and any technology can be used. For example, machine learning or other existing technology may be used. An example will be described below, but the present invention is not limited to this.
[0077] For example, the prediction information acquisition unit 11 identifies the vehicle's electricity consumption (km / kWh) for each section. The electricity consumption is identified taking into consideration the load capacity of each section, information about the route that will be taken through each section (road pavement condition, predicted road congestion, road inclination, radius of curvature of curves on the route, number of right and left turns on the route, etc.), weather conditions on the day (weather, temperature, humidity, wind speed, etc.), vehicle type, air resistance depending on the vehicle type, power consumption due to bodywork, etc. The information about the route that will be taken through each section is identified based on map data prepared in advance. The map data indicates the pavement condition, general congestion, inclination, radius of curvature of curves, etc. at each location.
[0078] A reference table may be registered in advance in the storage unit of the warning device 10, which stores the electricity consumption when each condition is met for each condition generated by connecting these items with logical operators. The prediction information acquisition unit 11 may then search for the conditions met by each section to identify the electricity consumption for each section. The conditions may be, for example, "load capacity: X1 [kg] or more, and weather: sunny, and temperature: 15°C or more and 25°C or less, and..."
[0079] Alternatively, an arithmetic formula for calculating electricity consumption when values of the above items are input may be generated in advance and registered in the storage unit of the warning device 10. Then, the prediction information acquisition unit 11 may input the values of the above items into the arithmetic formula for each section to identify the electricity consumption for each section.
[0080] Alternatively, a learning model that estimates electricity consumption from a combination of values of the plurality of items may be generated by machine learning based on training data that associates combinations of values of the plurality of items with electricity consumption when the plurality of items take those values. Then, the prediction information acquisition unit 11 may input the values of the above items for each section into the learning model to identify the electricity consumption for each section.
[0081] Then, the predicted information acquisition unit 11 calculates the change in the SOC of the vehicle during transportation, that is, the change in the SOC of the vehicle from the departure point to the return point, assuming that electricity is consumed at the electricity efficiency of each section.
[0082] -How to identify the load during transportation- As shown in Figure 5, the transportation plan indicates the order of transportation and the weight of the cargo to be transported at each destination. This information can be used to identify the load during transportation.
[0083] First, by adding up the cargo weights corresponding to the "Delivery" category in Figure 5, the load volume from the departure base to the first destination (hereinafter referred to as "Departure Load Volume") can be calculated.
[0084] If the classification of the first destination is "delivery," the load capacity between the first destination and the second destination can be calculated by subtracting the weight of the cargo to be delivered at the first destination from the load capacity at departure.
[0085] On the other hand, if the classification of the first destination is "collection," the load volume between the first destination and the second destination can be calculated by adding the weight of the cargo to be collected at the first destination to the load volume at departure.
[0086] Similarly, the load amount from one transport destination to the next transport destination and the load amount from the last transport destination to the return base can be calculated.
[0087] Other configurations of the warning device 10 of this embodiment are the same as those of the first and second embodiments.
[0088] According to the warning device 10 of this embodiment, the same effects as those of the first and second embodiments are achieved.
[0089] Although the embodiments of the present invention have been described above with reference to the drawings, these are merely examples of the present invention, and various other configurations may be adopted. The configurations of the above-described embodiments may be combined with each other, or some of the configurations may be replaced with other configurations. Furthermore, various modifications may be made to the configurations of the above-described embodiments without departing from the spirit of the invention. Furthermore, the configurations and processes disclosed in the above-described embodiments and modified examples may be combined with each other.
[0090] In this specification, "acquisition" includes at least one of the following: "the device retrieves data stored in another device or storage medium (active acquisition)" based on user input or program instructions, such as receiving data by making a request or inquiry to another device, or accessing and reading out another device or storage medium; "the device inputs data output from another device (passive acquisition)" based on user input or program instructions, such as receiving data that is distributed (or transmitted, push notification, etc.), and selecting and acquiring data from received data or information; and "the device generates new data by editing data (converting it to text, rearranging data, extracting some data, changing the file format, etc.), and then acquires the new data."
[0091] Some or all of the above-described embodiments can be described as, but are not limited to, the following supplementary notes. 1. A prediction information acquisition means for acquiring prediction information indicating a change in the predicted value of the SOC of the vehicle when traveling based on the transportation plan; an actual measurement value acquisition means for acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determination means for determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output means for outputting first warning information when the warning condition is satisfied; A warning device having: 2. The warning device according to 1, wherein the warning condition includes that the actual measured value at the time of departure from the base is less than the predicted value at that time. 3. The warning device described in 1, wherein the warning conditions include that the actual measured value at the time of departure from the base is less than the predicted value at that time, and the level of deviation between the actual measured value and the predicted value is greater than or equal to a first threshold. 4. A warning device described in any one of 1 to 3, wherein the warning condition includes that the actual measured value at a time after departure from the base is less than the predicted value at that time, and the level of deviation between the actual measured value and the predicted value is equal to or greater than a second threshold. 5. A warning device described in any one of 1 to 4, wherein the warning conditions include the actual measured value at a time point after departure from the base being less than the predicted value at that time point, the deviation level between the actual measured value and the predicted value being equal to or greater than a third threshold and less than a fourth threshold, and there being no charging facility after a reference point on the driving route based on the transportation plan. 6. A warning device as described in 5, wherein the reference point is a destination in a predetermined visiting order among a plurality of destinations, a point where the vehicle is predicted to be located at a reference time, or a point where the predicted value is predicted to become a reference value. 7. A warning device according to any one of 1 to 6, wherein the warning conditions include the amount of power required to travel from the current location to a specified location being less than the remaining power at that time indicated by the actual measured value. 8. The output means outputting second warning information when the actual measurement value falls below a fifth threshold; 8. The warning device according to any one of 1 to 7, wherein the first warning information is output when the warning condition is satisfied even if the actual measurement value is not below the fifth threshold value. 9. The computer a prediction information acquisition step of acquiring prediction information indicating a change in a predicted value of SOC of the vehicle when the vehicle travels based on the transportation plan; an actual measurement value acquisition step of acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determining step of determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output step of outputting first warning information when the warning condition is satisfied; The alert method to run. 10. Computer a prediction information acquisition means for acquiring prediction information indicating a change in a predicted value of the SOC of the vehicle when the vehicle is traveling based on the transportation plan; an actual measurement value acquisition means for acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determination means for determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output means for outputting first warning information when the warning condition is satisfied; A program that functions as a [Explanation of symbols]
[0092] 10 Warning device 11. Prediction information acquisition unit 12 Actual measurement value acquisition section 13 Judgment section 14 Output section 1A processor 2A Memory 3A input / output I / F 4A peripheral circuit 5A Bus
Claims
1. a prediction information acquisition means for acquiring prediction information indicating a change in a predicted value of a state of charge (SOC) of the vehicle when the vehicle travels based on the transportation plan; an actual measurement value acquisition means for acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determination means for determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output means for outputting first warning information when the warning condition is satisfied; and the warning condition includes that the actual measurement value at a time point after departure from the base is less than the predicted value at that time point, and a deviation level between the actual measurement value and the predicted value is equal to or greater than a second threshold; The determination means is a warning device that increases the second threshold value depending on the progress of work based on the transportation plan or the elapsed time from a predetermined timing indicated in the transportation plan.
2. The warning device according to claim 1 , wherein the warning condition includes the actual measured value at the time of departure from a base being less than the predicted value at that time.
3. The warning device according to claim 1 , wherein the warning condition includes that the actual measured value at the time of departure from the base is less than the predicted value at that time, and the deviation level between the actual measured value and the predicted value is equal to or greater than a first threshold.
4. 4. The warning device according to claim 1, wherein the warning conditions include that the actual measured value at a time after departure from the base is less than the predicted value at that time, the deviation level between the actual measured value and the predicted value is equal to or greater than a third threshold and less than a fourth threshold, and there is no charging facility after a reference point on the driving route based on the transportation plan.
5. 5. The warning device according to claim 4, wherein the reference point is a destination in a predetermined visiting order among a plurality of destinations, a point where the vehicle is predicted to be located at a reference time, or a point where the predicted value is predicted to become a reference value.
6. 6. The warning device according to claim 1, wherein the warning condition includes that the amount of power required to travel from the current location to a predetermined location is less than the remaining power at that time indicated by the actual measured value.
7. The output means outputting second warning information when the actual measurement value falls below a fifth threshold; The warning device according to claim 1 , wherein the first warning information is output when the warning condition is satisfied even if the actual measurement value is not below the fifth threshold value.
8. The computer a prediction information acquisition step of acquiring prediction information indicating a change in a predicted value of the SOC of the vehicle when the vehicle travels based on the transportation plan; an actual measurement value acquisition step of acquiring an actual measurement value of an SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determining step of determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output step of outputting first warning information when the warning condition is satisfied; Run the warning condition includes that the actual measurement value at a time point after departure from the base is less than the predicted value at that time point, and a deviation level between the actual measurement value and the predicted value is equal to or greater than a second threshold; In the determination step, the second threshold is increased depending on the progress of work based on the transportation plan or the elapsed time from a predetermined timing indicated in the transportation plan.
9. Computer, a prediction information acquisition means for acquiring prediction information indicating a change in a predicted value of the SOC of the vehicle when the vehicle is traveling based on the transportation plan; an actual measurement value acquisition means for acquiring an actual measurement value of the SOC of the vehicle while the vehicle is traveling based on the transportation plan; a determination means for determining whether the relationship between the predicted value and the actual measurement value satisfies a predetermined warning condition; an output means for outputting first warning information when the warning condition is satisfied; It functions as the warning condition includes that the actual measurement value at a time point after departure from the base is less than the predicted value at that time point, and a deviation level between the actual measurement value and the predicted value is equal to or greater than a second threshold; The determination means is a program that increases the second threshold value depending on the progress of work based on the transportation plan or the elapsed time from a predetermined timing indicated in the transportation plan.
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