Vehicle operation managing device, vehicle operation managing system, vehicle operation managing method, and vehicle operation managing program

The vehicle operation management device addresses the challenge of meeting user demands by determining stops to bypass based on demand and characteristics, enhancing operational accuracy and reducing travel time.

JP2025098269APending Publication Date: 2025-07-01MITSUBISHI ELECTRIC CORP
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Patent Information

Application Number
JP2025061347
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2025-07-01

AI Technical Summary

Technical Problem

Existing vehicle operation management systems fail to accurately meet user demands at stops, leading to unnecessary stops and increased travel time due to uniform passing of stops with varying user demands.

Method used

A vehicle operation management device that includes a storage unit for operation plans, a movement demand acquisition unit, a stop characteristic acquisition unit, and a bypass stop determination unit to determine stops where the vehicle does not stop based on user demand and stop characteristics, updating the operation plan accordingly.

Benefits of technology

The system improves the accuracy of vehicle operations by matching demand, reducing unnecessary stops and shortening travel time by selecting routes that bypass stops with no user demand.

✦ Generated by Eureka AI based on patent content.

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Abstract

To obtain a vehicle operation managing device that can shorten a travel time of a vehicle while improving an accuracy of vehicle operation in response to user demand.SOLUTION: A vehicle operation managing device 10 comprises: a storage unit 20 that stores in advance an operation plan 24 for a vehicle 74, which contains an operation route including a plurality of stops; a movement demand acquisition unit 40 that acquires a movement demand 22 of a user of the vehicle 74; a stop characteristic acquisition unit 30 that acquires a stop characteristic 21 which is a characteristic of a stop regarding the movement demand 22; and a route and stop determining unit 50 that determines a stop at which the vehicle 74 is not stopped among the plurality of stops included in the operation route, based on the movement demand 22 and the stop characteristic 21.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present disclosure relates to a vehicle operation management device, a vehicle operation management system, a vehicle operation management method, and a vehicle operation management program for managing the operation of a vehicle.

Background Art

[0002] Conventionally, a bus travels along a predetermined route, stops at predetermined stops, and picks up and drops off passengers. When there are no passengers getting off and no passengers at the stop, the bus driver may pass the stop. Also, since the bus travels on ordinary roads, it may be delayed due to traffic congestion or the like. Therefore, a passenger who wants to board the bus has to keep waiting at the stop assuming that the bus will stop at the stop and that the bus may be delayed even if the departure time has passed.

[0003] In response to such problems, Patent Document 1 discloses a technique for a passenger to make a reservation to board a bus. By making a reservation to board the bus, the passenger does not need to keep waiting at the stop for the arrival of the bus. Also, when there are no passengers getting off and no reservation to board the bus, the bus driver can pass the stop without stopping the bus, so that the occurrence of wasted stop time of the bus can be suppressed.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] Generally, the number of users getting on and off at stops is not the same at each stop. At stops where facilities such as stations, hospitals, and commercial facilities are present in the vicinity, a large number of user demands are expected. Also, at such stops, it is assumed that users who do not recognize the departure time of the bus may arrive at the stop just before the original departure time of the bus. However, according to the above conventional technology, the bus driver passes through stops where there are no users getting off and there are no bus reservation passengers without stopping the bus uniformly. Therefore, when the above conditions are met, the bus driver passes through stops where user demand is expected without stopping the bus, so there is a problem that the user demand may not be met.

[0006] The present disclosure has been made in view of the above, and an object thereof is to obtain a vehicle operation management device capable of shortening the running time of a vehicle while improving the accuracy of vehicle operation corresponding to user demand.

Means for Solving the Problem

[0007] In order to solve the above-described problems and achieve the object, the vehicle operation management device of the present disclosure includes a storage unit that stores in advance an operation plan of a vehicle including an operation route including a plurality of stops, a movement demand acquisition unit that acquires the movement demand of vehicle users, a stop characteristic acquisition unit that acquires stop characteristics that are characteristics of stops regarding the movement demand, and a bypass stop determination unit that determines a stop at which the vehicle does not stop among a plurality of stops included in the operation route based on the movement demand and the stop characteristics. When the bypass stop determination unit determines a stop at which the vehicle does not stop, it selects an operation route that does not pass through the stop at which the vehicle does not stop, and updates the arrival time and departure time at the stop at which the vehicle does not stop and the stops after the stop at which the vehicle does not stop for the operation plan.

Effect of the Invention

[0008] According to the present disclosure, the vehicle operation management device has an effect of being able to shorten the running time of the vehicle while improving the accuracy of vehicle operation corresponding to user demand.

Brief Description of the Drawings

[0009]

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Modes for Carrying Out the Invention

[0010] Hereinafter, a vehicle operation management device, a vehicle operation management system, a vehicle operation management method, and a vehicle operation management program according to an embodiment of the present disclosure will be described in detail with reference to the drawings

[0011] Embodiment 1 FIG. 1 is a diagram showing a configuration example of a vehicle operation management system 100 according to Embodiment 1. The vehicle operation management system 100 includes a vehicle operation management device 10, an external system 71, a demand collection terminal 72, and a vehicle control terminal 73 mounted on a vehicle 74. The vehicle operation management device 10 manages the operation of the vehicle 74 on which the vehicle control terminal 73 is mounted. In the present embodiment, the vehicle 74 to be managed by the vehicle operation management device 10 is assumed to be a bus that stops at a stop according to the needs of users from a plurality of preset stops included in the operation route. The vehicle 74 may be one driven by a driver, or may be an autonomous vehicle not driven by a driver

[0012] The external system 71 provides the vehicle operation management device 10 with the stop characteristics 21, which are the characteristics of stops. The stop characteristics 21 will be described later. The vehicle operation management device 10 may be connected to the external system 71 either online or offline.

[0013] The demand collection terminal 72 provides the vehicle operation management device 10 with the travel demand 22 of the users of the vehicle 74. The travel demand 22 will be described later. The vehicle operation management device 10 may communicate with the demand collection terminal 72 via the Internet or other means, or via a dedicated network or other means.

[0014] The vehicle control terminal 73 is an ECU (Electronic Control Unit) installed in the vehicle 74. For example, when the vehicle 74 is driven by a driver, the vehicle control terminal 73 provides the driver with information such as the stops to pass through and the stops not to pass through obtained from the vehicle operation management device 10, and transmits the position information of the vehicle 74, the arrival time and departure time of the stops, etc. to the vehicle operation management device 10. When the vehicle 74 is an autonomous vehicle, the vehicle control terminal 73 controls the operation of the vehicle 74 according to the instructions from the vehicle operation management device 10, and transmits the position information of the vehicle 74, the arrival time and departure time of the stops, etc. to the vehicle operation management device 10. The vehicle control terminal 73 obtains the operation plan 24 stored in the vehicle operation management device 10 when the operation plan 24 has not been updated in the vehicle operation management device 10, and obtains the updated operation plan 24 in the vehicle operation management device 10 when the operation plan 24 has been updated in the vehicle operation management device 10. The vehicle operation management device 10 may communicate with the vehicle control terminal 73 via the Internet or other means, or via a dedicated network or other means.

[0015] The configuration and operation of the vehicle operation management device 10 will be described in detail. As shown in FIG. 1, the vehicle operation management device 10 includes a storage unit 20, a stop characteristic acquisition unit 30, a travel demand acquisition unit 40, a passing stop determination unit 50, and an operation plan execution unit 60.

[0016] The storage unit 20 stores the stop characteristics 21, the travel demand 22, the operation status 23, and the operation plan 24.

[0017] The stop characteristics 21 are unique characteristics for each stop regarding stops where the vehicle 74 may stop in the operation plan 24. The stop characteristics 21 may differ depending on the day of the week, the time zone, or the season even for the same stop. The stop characteristics 21 may be obtained by the stop characteristics acquisition unit 30 from an external system 71 outside the vehicle operation management device 10 and dynamically stored in the storage unit 20, or may be statically pre-stored, i.e., held, in the storage unit 20 of the vehicle operation management device 10 when there are no significant fluctuations in the past operation of the vehicle 74. Various things can be considered as the stop characteristics 21, for example, the predicted travel demand, the user priority, the presence or absence of alternative means of transportation, etc.

[0018] The predicted travel demand is information indicating the scale of the users expected to board the vehicle 74 at the stop. The predicted travel demand is a prediction of the travel demand 22 expected at the stop. The predicted travel demand is calculated, for example, from past operation records, event schedules, weather conditions, the usage status of surrounding transportation facilities, the usage status of surrounding facilities, the congestion status of surrounding facilities, etc.

[0019] The user priority is information indicating whether the users boarding the vehicle 74 at the stop should be given priority for transportation. The user priority is information indicating the priority of the users boarding the vehicle 74 at the stop. For example, stops with a high usage rate by the elderly, pregnant women, important customers, etc. are given a high priority, and stops used only by employees of a company, etc. are ranked with a low priority.

[0020] The presence or absence of alternative means of transportation indicates, for users boarding vehicle 74 at the stop, whether there are alternative means of transportation available when not using vehicle 74 whose operation is managed by the vehicle operation management device 10. For example, the priority is increased for stops without alternative means of transportation and decreased for stops with alternative means of transportation.

[0021] The stop characteristic 21 may be one of the predicted travel demand, user priority, and presence or absence of alternative means of transportation, or a combination thereof.

[0022] The travel demand 22 is information indicating at which stops users wish to board and alight. The travel demand 22 is dynamically updated in response to operations such as reservation registration by users and reservation changes by users. The travel demand 22 is, for example, the sum of information such as the number of boarding passengers, which is the number of users boarding at the stop, the number of alighting passengers, which is the number of users alighting at the stop, and the number of redundant passengers, which is the number of users boarding upstream and alighting downstream from the stop, for each stop. The travel demand 22 may include, for example, the sum of information such as the number of transported passengers, which is the number of users boarding upstream and alighting downstream from the current operating location in the operating vehicle 74, and the number of available seats, which is the difference between the number of passengers that can be transported by the vehicle 74 and the number of transported passengers.

[0023] FIG. 2 is a diagram showing an example of the travel demand 22 stored in the storage unit 20 of the vehicle operation management device 10 according to the first embodiment. For example, as shown in FIG. 2, the travel demand 22 includes, for each user ID (Identifier) for identifying a user, the reservation time for boarding the vehicle 74, the boarding stop, and the alighting stop. It is assumed that each stop is assigned a unique ID for each stop. The travel demand 22 shown in FIG. 2 is an example, and the travel demand 22 may include information other than the information shown in FIG. 2. The travel demand 22 may be obtained by the travel demand acquisition unit 40 from the demand collection terminal 72 outside the vehicle operation management device 10 and dynamically stored in the storage unit 20, or may be statically stored in advance, that is, held in the storage unit 20 of the vehicle operation management device 10 when there are no significant fluctuations in the past operation of the vehicle 74.

[0024] The operation status 23 is information indicating the arrival time of the vehicle 74, the departure time of the vehicle 74, etc. at the stops on the operation plan 24. The operation status 23 can also be said to be information indicating whether the vehicle 74 is operating as per the operation plan 24, that is, on schedule, or is delayed.

[0025] The operation plan 24 is information indicating when the vehicle 74 arrives at and departs from each stop on the operation route. The operation plan 24 includes an operation route including a plurality of stops in advance. In the present embodiment, the operation plan 24 of the vehicle 74 stored in the storage unit 20 may be dynamically updated during the operation of the vehicle 74 by the operation of the via stop determination unit 50 described later.

[0026] The stop characteristic acquisition unit 30 acquires the stop characteristics 21, which are the characteristics of stops regarding the travel demand 22. The stop characteristic acquisition unit 30 stores, for example, the stop characteristics 21 acquired from the external system 71 in the storage unit 20 and outputs them to the transit stop determination unit 50. Alternatively, the stop characteristic acquisition unit 30 acquires the stop characteristics 21 previously stored in the storage unit 20 from the storage unit 20 and outputs them to the transit stop determination unit 50. That is, the stop characteristic acquisition unit 30 acquires the stop characteristics 21 from outside the vehicle operation management device 10 or from the storage unit 20. Here, various variations are conceivable for the stop characteristics 21 acquired by the stop characteristic acquisition unit 30. In this case, the stop characteristic acquisition unit 30 will acquire the stop characteristics 21 from various external systems 71 according to the stop characteristics 21.

[0027] For example, when the stop characteristic 21 is the past operation record, the stop characteristic acquisition unit 30 acquires the stop characteristic 21 from a data server that stores the operation record of the operation system as the external system 71. Even when the stop characteristic 21 is the user priority, the stop characteristic acquisition unit 30 can acquire the stop characteristic 21 from a data server that stores the operation record of the operation system as the external system 71. Also, when the stop characteristic 21 is an event schedule such as a concert or a sports game, the stop characteristic acquisition unit 30 acquires the stop characteristic 21 from a server that manages the event information of the area as the external system 71. Also, when the stop characteristic 21 is the weather condition, the stop characteristic acquisition unit 30 acquires the stop characteristic 21 from a weather forecast system as the external system 71. Also, when the stop characteristic 21 is the usage status, congestion status, etc. of the transportation facilities around the stop, the stop characteristic acquisition unit 30 acquires the stop characteristic 21 from an operation management system of the transportation facilities around the stop as the external system 71. Also, when the stop characteristic 21 is the usage status, congestion status, etc. of the facilities around the stop, the stop characteristic acquisition unit 30 acquires the stop characteristic 21 from a building management system of the facilities around the stop as the external system 71. Also, when the stop characteristic 21 is the presence or absence of alternative means of transportation, the stop characteristic acquisition unit 30 acquires the stop characteristic 21 from a system that manages a guide map, route maps of other transportation facilities, timetable information of other transportation facilities, etc. as the external system 71.

[0028] The travel demand acquisition unit 40 acquires the travel demand 22 of the user of the vehicle 74. The travel demand acquisition unit 40 stores, for example, the travel demand 22 acquired from the demand collection terminal 72 in the storage unit 20 and outputs it to the transit stop determination unit 50. That is, the travel demand acquisition unit 40 acquires the travel demand 22 from outside the vehicle operation management device 10 or from the storage unit 20. Here, the demand collection terminal 72 may be a reservation terminal, a ticket vending machine, etc. installed at a stop, or a portable terminal that can be carried by the user. The portable terminal may be a dedicated one, or a smartphone with an application corresponding to the vehicle operation management system 100 installed. Also, the demand collection terminal 72 may be a terminal at which an operator who accepts telephone reservations from users performs operations such as registration and change of reservations. The demand collection terminal 72 may be installed at a lodging facility, a commercial facility, etc.

[0029] Based on the operation plan 24 stored in the storage unit 20, the operation plan execution unit 60 gives instructions to the vehicle control terminal 73 mounted on the vehicle 74 to control the operation of the vehicle 74. Also, the operation plan execution unit 60 acquires from the vehicle control terminal 73 the arrival time at the stop of the vehicle 74, the departure time from the stop of the vehicle 74, the position information of the vehicle 74, etc., compares the acquired information with the operation plan 24, determines whether the vehicle 74 is operating according to the operation plan 24 or is delayed, and updates the operation status 23 stored in the storage unit 20.

[0030] Based on the travel demand 22 and the stop characteristics 21, the transit stop determination unit 50 determines the stops among the plurality of stops included in the operation route at which the vehicle 74 does not stop. Here, in the present embodiment, when the transit stop determination unit 50 determines the stops at which it does not stop, it can select an operation route that does not pass through the stops at which it does not stop. In this case, the transit stop determination unit 50 updates the arrival time and departure time at the stops at which it does not stop and the stops after the stops at which it does not stop for the operation plan 24.

[0031] FIG. 3 is a diagram showing an example of the operation plan 24 before update and an example of the operation plan 24 after update when the via stop determination unit 50 of the vehicle operation management device 10 according to Embodiment 1 determines a stop at which the vehicle 74 is not to stop and updates the operation plan 24. FIG. 3 shows an example in which the via stop determination unit 50 determines not to stop the vehicle 74 at stop [2]. The upper part shows an example of the operation plan 24 before update, and the lower part shows an example of the operation plan 24 after update. Note that the left table and the right graph in the upper part represent the same content, and the left table and the right graph in the lower part represent the same content. In the right graph in the lower part, the dotted line represents before update, and the broken line represents after update. For example, when the vehicle 74 can shortcut from stop [1] to pass in front of stop [2] and travel to stop [3], the via stop determination unit 50 selects an operation route that does not pass in front of stop [2], that is, does not pass through stop [2]. Note that alternative operation route candidates in the case where it is possible to shortcut without passing through any stop may be registered in advance in the operation plan 24, or an optimal operation route may be searched each time from the drivable road network. In the example of FIG. 3, the via stop determination unit 50 does not stop the vehicle 74 at stop [2] and selects an operation route that does not pass through stop [2], so that the vehicle 74 can arrive at stop [3] earlier, and thus the arrival time and departure time of the vehicle 74 at stop [3] are advanced.

[0032] Here, the stops targeted when the via stop determination unit 50 determines a stop at which the vehicle 74 is not to stop are limited to stops where there is no demand for both boarding and alighting of users in the travel demand 22. The via stop determination unit 50 does not target for determination of a stop at which the vehicle 74 is not to stop for stops where there is at least one demand for either boarding or alighting in the travel demand 22. The via stop determination unit 50 is not limited to this. For example, even in the case of a stop where there is a demand for boarding in the travel demand 22, if the vehicle 74 is full, it may be targeted for determination of a stop at which the vehicle 74 is not to stop.

[0033] The bypass stop determination unit 50 determines the timing for determining a stop where the vehicle 74 does not stop based on the running status 23 of the vehicle 74. Here, regarding the timing for determining a stop where the vehicle 74 does not stop, the earlier the timing, the greater the shortcut and the shorter the travel time when the vehicle 74 does not stop at stop [2]. However, if the timing is too early, it will be impossible to respond to the generated travel demand 22 thereafter. Therefore, the bypass stop determination unit 50 makes a decision on whether to stop the vehicle 74 at stop [2] after the vehicle 74 departs from or passes through the stop [1] immediately before stop [2].

[0034] Regarding the method for the bypass stop determination unit 50 to determine a stop where the vehicle 74 does not stop, various methods can be considered. For example, there is a method where the bypass stop determination unit 50 determines a stop where the vehicle 74 does not stop according to the unique priority for each stop. The bypass stop determination unit 50 determines a bypass priority indicating the priority of each stop based on the stop characteristics 21. The bypass stop determination unit 50 determines whether to stop the vehicle 74 at the stop corresponding to the bypass priority based on the travel demand 22 and the bypass priority.

[0035] FIG. 4 is a diagram showing an example of the stop characteristics 21 when the via stop determination unit 50 of the vehicle operation management device 10 according to the first embodiment determines a high via priority. FIG. 5 is a diagram showing an example of the stop characteristics 21 when the via stop determination unit 50 of the vehicle operation management device 10 according to the first embodiment determines a low via priority. FIGS. 4 and 5 both use stop [2] as an example. The via stop determination unit 50 determines the via priority so as to prioritize stops having stop characteristics 21 where the occurrence of the travel demand 22 that should be prioritized for transportation is expected to be high. The via stop determination unit 50 can determine the via priority, for example, by comparing the number of users per hour with a specified threshold value in the predicted travel demand amount. Further, the via stop determination unit 50, for example, increases the via priority when there is a hospital or the like near the stop and demand from the elderly or the like is expected, and decreases the via priority in other cases. Further, the via stop determination unit 50, for example, increases the via priority of a stop without an alternative means of transportation and decreases the via priority of a stop with an alternative means of transportation.

[0036] The via stop determination unit 50 may determine the via priority using only any one of the predicted travel demand amount, user priority, and presence or absence of an alternative means of transportation, or may determine the via priority by a combination of these. When the via stop determination unit 50 determines the via priority using all of the predicted travel demand amount, user priority, and presence or absence of an alternative means of transportation, it may determine the via priority by weighting each item. Note that in the present embodiment, the via stop determination unit 50 has set either a high via priority or a low via priority for the via priority of the stop, but is not limited to this. The via stop determination unit 50 can also set the via priority of the stop to three or more levels. Hereinafter, an example in the case of two levels of high and low via priorities for the via priority of the stop will be described.

[0037] The transit stop determination unit 50 sets a high transit determination threshold at stops with a high transit priority. The transit stop determination unit 50 refers to the transit priority and the travel demand 22, and determines whether or not to transit by stopping the vehicle 74 at a stop with a high transit priority. For example, the transit stop determination unit 50 totals the number of users who board upstream of the stop and alight downstream as the unnecessary number of people, and determines that "if the unnecessary number of people < the transit determination threshold is satisfied, then transit; if not, then do not transit".

[0038] FIG. 6 is a diagram showing an example when the transit stop determination unit 50 of the vehicle operation management device 10 according to the first embodiment determines the transit priority using the predicted travel demand as the stop characteristic 21 and determines a stop at which the vehicle 74 is not to be stopped. The transit stop determination unit 50 sets a high priority when the number of users per hour is 36 in the predicted travel demand, and a low priority when the number of users per hour is 12. Further, the transit stop determination unit 50 calculates the transit determination threshold from the number of users per hour. In the example of FIG. 6, the constant 1 = 1 / 12 and the constant 2 = -1, and the transit determination threshold is calculated by the formula shown in FIG. 6. This is in consideration of the maximum number of passengers that the vehicle 74 can carry, etc., and the examples of the constant 1 and the constant 2 are not limited to these. The transit stop determination unit 50 calculates a transit determination threshold = 2 for a high transit priority, and calculates a transit determination threshold = 0 for a low transit priority.

[0039] When the transfer stop determination unit 50 determines that the transfer priority is high, the number of unnecessary persons is 1, the likelihood of generating a travel demand 22 is high, and there is also available space in the vehicle 74, it decides to stop the vehicle 74 at the stop [2] and let the vehicle 74 pass through the stop [2]. Also, when the transfer stop determination unit 50 determines that the transfer priority is high and the number of unnecessary persons is 2, although the likelihood of generating a travel demand 22 is high, since there is no available space in the vehicle 74, it decides not to stop the vehicle 74 at the stop [2] and does not let the vehicle 74 pass through the stop [2]. Further, when the transfer stop determination unit 50 determines that the transfer priority is low and the number of unnecessary persons is 1, since the likelihood of generating a travel demand 22 is low, it decides not to stop the vehicle 74 at the stop [2] and does not let the vehicle 74 pass through the stop [2]. Moreover, when the transfer stop determination unit 50 determines that the transfer priority is low and the number of unnecessary persons is 2, since there is no available space in the vehicle 74 and the likelihood of generating a travel demand 22 is low, it decides not to stop the vehicle 74 at the stop [2] and does not let the vehicle 74 pass through the stop [2].

[0040] FIG. 7 is a diagram showing an example when the transfer stop determination unit 50 of the vehicle operation management device 10 according to the first embodiment determines the transfer priority using the user priority as the stop characteristic 21 and determines a stop at which the vehicle 74 is not to be stopped. The transfer stop determination unit 50 calculates a transfer determination threshold based on the user priority. The transfer stop determination unit 50 calculates a transfer determination threshold = 2 when the transfer priority is high, and calculates a transfer determination threshold = 0 when the transfer priority is low.

[0041] When the transfer stop determination unit 50 determines that the transfer priority is high and the number of unnecessary passengers is 1, and it is likely that a high-priority travel demand 22 will occur and there is also available space in vehicle 74, it decides to stop vehicle 74 at stop [2] and have vehicle 74 pass through stop [2]. Also, when the transfer stop determination unit 50 determines that the transfer priority is high and the number of unnecessary passengers is 2, although it is likely that a high-priority travel demand 22 will occur, since there is no available space in vehicle 74, it decides not to stop vehicle 74 at stop [2] and not to have vehicle 74 pass through stop [2]. Further, when the transfer stop determination unit 50 determines that the transfer priority is low and the number of unnecessary passengers is 1, for the immediately preceding low-priority travel demand 22, it decides not to stop vehicle 74 at stop [2] and not to have vehicle 74 pass through stop [2]. Also, when the transfer stop determination unit 50 determines that the transfer priority is low and the number of unnecessary passengers is 2, since there is no available space in vehicle 74 and for the immediately preceding low-priority travel demand 22, it decides not to stop vehicle 74 at stop [2] and not to have vehicle 74 pass through stop [2].

[0042] FIG. 8 is a diagram showing an example when the transfer stop determination unit 50 of the vehicle operation management device 10 according to Embodiment 1 determines the transfer priority using the presence or absence of alternative transportation means as the stop characteristic 21 and determines a stop at which vehicle 74 will not stop. The transfer stop determination unit 50 calculates a transfer determination threshold based on the presence or absence of alternative transportation means. When there is no alternative transportation means, the transfer stop determination unit 50 calculates the transfer determination threshold = 2, and when there is alternative transportation means, the transfer stop determination unit 50 calculates the transfer determination threshold = 0.

[0043] When the transit stop determination unit 50 determines that the transit priority is high and the number of unnecessary passengers is 1, and when it is likely that a travel demand 22 will occur in a situation where there is no alternative means of transportation and there is also available space in the vehicle 74, it decides to stop the vehicle 74 at the stop [2] and have the vehicle 74 pass through the stop [2]. Also, when the transit stop determination unit 50 determines that the transit priority is high and the number of unnecessary passengers is 2, and when it is likely that a travel demand 22 will occur in a situation where there is no alternative means of transportation but there is no available space in the vehicle 74, it decides not to stop the vehicle 74 at the stop [2] and not have the vehicle 74 pass through the stop [2]. Further, when the transit stop determination unit 50 determines that the transit priority is low and the number of unnecessary passengers is 1, and when there is an alternative means of transportation and for the immediately preceding travel demand 22, it decides not to stop the vehicle 74 at the stop [2] and not have the vehicle 74 pass through the stop [2]. Additionally, when the transit stop determination unit 50 determines that the transit priority is low and the number of unnecessary passengers is 2, and when there is no available space in the vehicle 74 and there is an alternative means of transportation and for the immediately preceding travel demand 22, it decides not to stop the vehicle 74 at the stop [2] and not have the vehicle 74 pass through the stop [2].

[0044] FIG. 9 is a diagram showing a comparison example between the case where the transit stop determination unit 50 of the vehicle operation management device 10 according to the first embodiment determines whether to stop the vehicle 74 at a stop using the stop characteristics 21 and the case where it determines whether to stop the vehicle 74 at a stop without using the stop characteristics 21. If the transit stop determination unit 50 does not use the stop characteristics 21 and determines whether to stop the vehicle 74 at the stop [2] based on the number of alighting passengers, when the transit priority is high and the number of unnecessary passengers is 1, it decides not to stop the vehicle 74 at the stop [2] and not have the vehicle 74 pass through the stop [2]. For this reason, the vehicle 74 may not be able to respond to a travel demand 22 with a high priority. Also, if the transit stop determination unit 50 does not use the stop characteristics 21 and determines whether to stop the vehicle 74 at the stop [2] based on the number of available seats, when the transit priority is low and the number of unnecessary passengers is 1, it decides to stop the vehicle 74 at the stop [2] and have the vehicle 74 pass through the stop [2]. For this reason, the vehicle 74 may have an unnecessary detour to the stop [2] with a low priority.

[0045] In contrast, in the present embodiment, the via stop determination unit 50 determines whether to stop the vehicle 74 at a stop using the stop characteristics 21. Thereby, the vehicle operation management device 10 can improve the accuracy of the operation of the vehicle 74 corresponding to the user's demand while shortening the travel time of the vehicle 74. Here, in the example shown in FIGS. 6 to 9, since the installation position of the stop [2] is a position that detours from the road directly connecting the stop [1] and the stop [3], the effect of shortening the travel time is easily understandable. However, even when the operation route from the stop [1] to the stop [3] is a one-way road, the vehicle operation management device 10 can obtain the same effect.

[0046] For example, when the via stop determination unit 50 determines a stop at which the vehicle 74 does not stop, the vehicle 74 does not require lane changes, deceleration necessary to stop at the stop, acceleration for departure, etc. Therefore, the vehicle operation management device 10 can obtain the effect of shortening the travel time of the vehicle 74 even when the operation route of the vehicle 74 is a one-way road. Further, the vehicle operation management device 10 can improve the riding comfort, comfort, etc. of the users in the vehicle 74 by reducing the number of times of lane changes, deceleration for the vehicle 74 to stop, acceleration for departure, etc. by making a decision not to stop the vehicle 74 at a stop. When the operation route of the vehicle 74 is a one-way road, the via stop determination unit 50 can also make a decision not to stop the vehicle 74 immediately before the target stop, so that it can better respond to the movement demand 22 of the users.

[0047] Note that when the via stop determination unit 50 determines not to stop the vehicle 74 at the stop [2] and the vehicle 74 does not pass through the stop [2], as shown in FIG. 3, the arrival time and departure time of the vehicle 74 at the stop [3] will be earlier. Therefore, when the user's disadvantage is considered, the via stop determination unit 50 may avoid deciding not to stop the vehicle 74 at the stop [2].

[0048] For example, when the number of trips of vehicle 74 is about one trip per hour, if the departure time of vehicle 74 is advanced and a user who could originally board vehicle 74 cannot board it, the user will suffer a great disadvantage as they will have to wait for another hour. Therefore, the via stop determination unit 50 avoids deciding not to stop vehicle 74 at stop [2] on routes with a low number of trips. On the other hand, when the number of trips of vehicle 74 is about one trip every two to three minutes, even if a user cannot board vehicle 74 which they could originally board, the next vehicle 74 will come soon, so they will not suffer a great disadvantage. Therefore, the via stop determination unit 50 only needs to determine whether to decide on a stop where vehicle 74 will not stop according to the route on which vehicle 74 operates. For a vehicle 74 whose departure time may be advanced, it is possible to alleviate the disadvantage to the user by previously stating in the stop timetable or the like that the departure time of vehicle 74 may be advanced.

[0049] Also, when the operation of vehicle 74 is delayed and not as per the operation plan 24, since determining a non-via stop and shortcutting the travel is effective for recovering the delay of vehicle 74, control may be performed to determine a stop where vehicle 74 will not stop only when the operation of vehicle 74 is delayed.

[0050] The vehicle operation management device 10 may perform the operations described above for all vehicles 74 operated by the company operating vehicle 74, or may perform them for every specified number of trips, for example, for every other vehicle 74 among the vehicles 74 in operation. Also, in the vehicle operation management device 10, when the via stop determination unit 50 decides not to stop at stop [2] and not to pass through stop [2] for a certain vehicle 74, for the next vehicle 74 to be operated, the via priority of stop [2] or the like may be temporarily changed so that a decision to easily stop at stop [2] can be made.

[0051] The operation of the vehicle operation management device 10 described so far will be described using a flowchart. FIG. 10 is a flowchart showing the operation of the vehicle operation management device 10 according to Embodiment 1. In the vehicle operation management device 10, while the vehicle 74 is in operation, the travel demand acquisition unit 40 acquires the travel demand 22 from the demand collection terminal 72 (Steps S11, S13). Specifically, the travel demand acquisition unit 40 acquires the travel demand 22 from the demand collection terminal 72 and registers, changes, etc. the travel demand 22 with the storage unit 20 or the transit stop determination unit 50 (Step S12). In the example of FIG. 10, it is assumed that the stop characteristics 21 are stored in the storage unit 20 in advance. However, the stop characteristic acquisition unit 30 can acquire the stop characteristics 21 from the external system 71 by the same operation as when the travel demand acquisition unit 40 acquires the travel demand 22.

[0052] While the vehicle 74 is in operation, the transit stop determination unit 50 updates the operation plan 24 (Steps S21, S25). Specifically, the transit stop determination unit 50 determines whether it is the timing for route determination to determine whether to stop the vehicle 74 at stop [2], that is, whether to have the vehicle 74 pass through stop [2], based on the operation status 23 (Step S22). As described above, when the transit stop determination unit 50 determines whether to stop the vehicle 74 at stop [2], it is performed after the vehicle 74 departs from or passes through the previous stop [1] of stop [2]. If it is not the route determination timing, the transit stop determination unit 50 waits (Step S22: No). If it is the route determination timing (Step S22: Yes), it determines the route priority of the stops based on the stop characteristics 21 (Step S23). The transit stop determination unit 50 determines whether to stop the vehicle 74 at the stop corresponding to the route priority, that is, whether to have the vehicle 74 pass through the stop, based on the travel demand 22 and the route priority (Step S24). If the vehicle 74 is not stopped at the stop corresponding to the route priority, that is, if the vehicle 74 is not made to pass through the stop, the transit stop determination unit 50 updates the operation plan 24.

[0053] While the vehicle 74 is in operation, the operation plan execution unit 60 executes the operation plan 24 stored in the storage unit 20 to control the operation of the vehicle 74 (steps S31, S34). Specifically, the operation plan execution unit 60 updates the operation status 23 stored in the storage unit 20 based on the position information of the vehicle 74 obtained from the vehicle control terminal 73 mounted on the vehicle 74 (step S32). The operation plan execution unit 60 determines the travel route of the vehicle 74 based on the operation plan 24 stored in the storage unit 20 (step S33) and controls the operation of the vehicle 74.

[0054] Next, the hardware configuration of the vehicle operation management device 10 according to the first embodiment will be described. In the vehicle operation management device 10, the storage unit 20 is a memory. The stop characteristic acquisition unit 30, the travel demand acquisition unit 40, the via stop determination unit 50, and the operation plan execution unit 60 are realized by a processing circuit. The processing circuit may be a memory that stores a program and a processor that executes the program stored in the memory, or may be dedicated hardware. The processing circuit is also called a control circuit.

[0055] FIG. 11 is a diagram showing an example of the configuration of a processing circuit 90 when the processing circuit that realizes the vehicle operation management device 10 according to Embodiment 1 is configured by a processor 91 and a memory 92. The processing circuit 90 shown in FIG. 11 is a control circuit and includes a processor 91 and a memory 92. When the processing circuit 90 is configured by a processor 91 and a memory 92, each function of the processing circuit 90 is realized by software, firmware, or a combination of software and firmware. The software or firmware is described as a program and stored in the memory 92. In the processing circuit 90, the processor 91 reads and executes the program stored in the memory 92 to realize each function. That is, the processing circuit 90 includes a memory 92 for storing a program in which the processing of the vehicle operation management device 10 is ultimately executed. This program can also be said to be a program for causing the vehicle operation management device 10 to execute each function realized by the processing circuit 90. This program may be provided by a storage medium in which the program is stored, or may be provided by other means such as a communication medium.

[0056] The above program can also be said to be a program for causing the vehicle operation management device 10 to execute a storage step of preliminarily storing an operation plan 24 of a vehicle 74 including an operation route including a plurality of stops, a travel demand acquisition step of acquiring a travel demand 22 of a user of the vehicle 74, a stop characteristic acquisition step of acquiring a stop characteristic 21 that is a characteristic of a stop regarding the travel demand 22, and a via stop determination step of determining a stop at which the vehicle 74 does not stop among a plurality of stops included in the operation route based on the travel demand 22 and the stop characteristic 21.

[0057] Here, the processor 91 is, for example, a CPU (Central Processing Unit), a processing device, an arithmetic unit, a microprocessor, a microcomputer, or a DSP (Digital Signal Processor). Also, the memory 92 is, for example, a non-volatile or volatile semiconductor memory such as RAM (Random Access Memory), ROM (Read Only Memory), flash memory, EPROM (Erasable Programmable ROM), EEPROM (registered trademark) (Electrically EPROM), a magnetic disk, a flexible disk, an optical disk, a compact disk, a mini disk, or a DVD (Digital Versatile Disc).

[0058] FIG. 12 is a diagram showing an example of the configuration of a processing circuit 93 when the processing circuit for realizing the vehicle operation management device 10 according to Embodiment 1 is configured by dedicated hardware. The processing circuit 93 shown in FIG. 12 corresponds to, for example, a single circuit, a composite circuit, a programmed processor, a parallel programmed processor, an ASIC (Application Specific Integrated Circuit), an FPGA (Field Programmable Gate Array), or a combination thereof. For the processing circuit 93, a part may be realized by dedicated hardware and a part may be realized by software or firmware. In this way, the processing circuit 93 can realize each of the above functions by dedicated hardware, software, firmware, or a combination thereof.

[0059] As described above, according to the present embodiment, the vehicle operation management device 10 stores in advance an operation plan 24 of the vehicle 74 including an operation route including a plurality of stops, and based on the travel demand 22 and the stop characteristics 21, determines stops at which the vehicle 74 is not to stop among the plurality of stops included in the operation route, and updates the operation plan 24 if there is a stop at which the vehicle 74 is not to stop. Thereby, the vehicle operation management device 10 can improve the accuracy of the operation of the vehicle 74 corresponding to the demand of the user while shortening the travel time of the vehicle 74. The vehicle operation management device 10 can further shorten the travel time of the vehicle 74 by causing the vehicle 74 to take a shortcut without passing in front of a stop where it is not to stop if possible.

[0060] Embodiment 2. In Embodiment 1, in the vehicle operation management device 10, the via stop determination unit 50 was used for determining whether or not to determine the timing when determining whether or not to stop the vehicle 74 at a stop regarding the operation status 23, but was not used for the determination itself of whether or not to stop the vehicle 74 at a stop. In Embodiment 2, a case where the via stop determination unit 50 uses the operation status 23 in determining whether or not to stop the vehicle 74 at a stop will be described.

[0061] In Embodiment 2, the configuration of the vehicle operation management system 100 including the vehicle operation management device 10 is the same as the configuration of the vehicle operation management system 100 in Embodiment 1 shown in FIG. 1. In Embodiment 2, the via stop determination unit 50 uses the travel demand 22, the stop characteristics 21, and further the operation status 23 of the vehicle 74 to determine stops at which the vehicle 74 is not to stop among the plurality of stops included in the operation route. For example, if the information indicated by the operation status 23 is that the vehicle 74 is delayed, the via stop determination unit 50 can alleviate the delay of the vehicle 74 by increasing the number of stops at which the vehicle 74 is not to stop in determining the stops at which the vehicle 74 is not to stop.

[0062] Therefore, when the delay time of the vehicle 74 indicated by the operation status 23 is equal to or greater than a specified threshold value, the via stop determination unit 50 can increase the number of stops at which the vehicle 74 does not stop, compared with the case of the first embodiment, for example, by further reducing the calculated via determination threshold value to 1 / 2. The via stop determination unit 50 may use a plurality of threshold values so that the larger the delay time is, the smaller the via determination threshold value can be made.

[0063] Thereby, the vehicle operation management device 10 can further improve the accuracy of the operation of the vehicle 74 corresponding to the user's demand while shortening the travel time of the vehicle 74.

[0064] Embodiment 3. In the first and second embodiments, the via stop determination unit 50 has been described as determining, based on rules, a stop at which the vehicle 74 does not stop among a plurality of stops included in the operation route. In the third embodiment, a case where the via stop determination unit 50 determines, using a learned model, a stop at which the vehicle 74 does not stop among a plurality of stops included in the operation route will be described. Components having the same functions as those in the first embodiment are denoted by the same reference numerals as in the first embodiment, and redundant descriptions are omitted. Hereinafter, differences from the first embodiment will be mainly described.

[0065] The via stop determination unit 50 of the present embodiment includes a learning device 51 and an inference device 55. FIG. 13 is a diagram showing a configuration example of the via stop determination unit 50 according to the third embodiment. First, the learning device 51 will be described. The learning device 51 includes a data acquisition unit 52, a model generation unit 53, and a learned model storage unit 54.

[0066] The data acquisition unit 52 acquires, as learning data, the travel demand 22, the stop characteristics 21, and information indicating a stop at which the vehicle 74 does not stop among a plurality of stops included in the operation route.

[0067] Here, the training data is data in which the travel demand 22 and the stop characteristics 21 are associated with each other as input data, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route is associated as correct answer data. Note that when there is at least one of boarding and alighting demands in the travel demand 22, it is not targeted for the training data. Not limited to this, for example, even in the case of a stop where there is a boarding demand in the travel demand 22, if the vehicle 74 is full, it may be targeted for the determination of stops at which the vehicle 74 does not stop.

[0068] An example in which the data acquisition unit 52 acquires training data based on past information regarding the stop [2] stored in the storage unit 20 will be described with reference to FIG. 14. FIG. 14 is a diagram showing an example of training data according to the third embodiment. The data acquisition unit 52 acquires the travel demand 22 and the stop characteristics 21 regarding the stop [2] as input data. In FIG. 14, the travel demand 22 is the number of redundant people at the timing of route determination of the stop [2] and the number of boarding passengers at the actual stop [2], and the stop characteristics 21 are an example of the predicted travel demand volume of the stop [2], the user priority of the stop [2], and the presence or absence of alternative means of transportation at the stop [2].

[0069] An example of the correspondence between the travel demand 22 and the stop characteristics 21 which are the input data, and the information indicating the stops where the vehicle 74 does not stop among the plurality of stops included in the correct route data will be described. For example, in situation 1 of FIG. 14, the number of redundant people at the timing of determining whether to pass through stop [2] is 1, the number of boarding passengers at the actual stop [2] is 1, the predicted travel demand is 36 persons / hour, the user priority is high, and there is no alternative means of transportation. In situation 1, since the predicted travel demand is higher than that in situation 2 and situation 3 described later, the user priority is higher than that in situation 3, and 1 boarding passenger has occurred at the actual stop [2], it is preferable to stop the vehicle 74 at stop [2]. Therefore, in the present embodiment, corresponding to the input data of situation 1, the correct data is set to the information indicating that the vehicle 74 stops at stop [2]. That is, among the information indicating the stops where the vehicle 74 does not stop among the plurality of stops included in the correct route data, stop [2] is not included.

[0070] Also, in situation 2 of FIG. 14, the number of redundant people at the timing of determining whether to pass through stop [2] is 0, the number of boarding passengers at the actual stop [2] is 2, the predicted travel demand is 12 persons / hour, the user priority is high, and there is no alternative means of transportation. In situation 2, although the predicted travel demand is lower than that in situation 1, the number of redundant people at the timing of determining whether to pass through stop [2] is 0 and there is more margin in the vehicle capacity of the vehicle 74 than in situation 1 and situation 3, and 2 boarding passengers have occurred at the actual stop [2], it is preferable to stop the vehicle 74 at stop [2]. Therefore, in the present embodiment, corresponding to the input data of situation 2, the correct data is set to the information indicating that the vehicle 74 stops at stop [2]. That is, among the information indicating the stops where the vehicle 74 does not stop among the plurality of stops included in the correct route data, stop [2] is not included.

[0071] On the other hand, in situation 3 of FIG. 14, the number of redundant people at the timing of determining the route via the stop [2] is 1, the number of boarding passengers at the actual stop [2] is 0, the predicted travel demand is 12 people / hour, the user priority is low, and there is an alternative means of transportation. In situation 3, compared with situation 1, the predicted travel demand is low and the user priority is low. And in situation 3, there is an alternative means of transportation and there are no boarding passengers at the actual stop [2]. Therefore, it is preferable not to stop vehicle 74 at stop [2]. Thus, in the present embodiment, corresponding to the input data of situation 3, the correct answer data is set to information indicating that vehicle 74 is not to be stopped at stop [2]. That is, among the plurality of stops included in the operation route which is the correct answer data, stop [2] is included in the information indicating the stop at which vehicle 74 is not to be stopped. The correspondence relationship between the travel demand 22 and the stop characteristics 21 which are the input data and the information indicating the stop at which vehicle 74 is not to be stopped among the plurality of stops included in the operation route which is the correct answer data can be set as appropriate. Also, the learning data shown in FIG. 14 is an example, and the travel demand 22 and the stop characteristics 21 can take various conditions.

[0072] Returning to the description of FIG. 13, the model generation unit 53 learns information indicating the stop at which vehicle 74 is not to be stopped among the plurality of stops included in the operation route based on the learning data. That is, the model generation unit 53 inputs the travel demand 22 and the stop characteristics 21, and generates a learned model that outputs information indicating the stop at which vehicle 74 is not to be stopped among the plurality of stops included in the operation route.

[0073] As the learning algorithm used by the model generation unit 53, known algorithms such as supervised learning, unsupervised learning, and reinforcement learning can be used. As an example, the case of applying a neural network will be described. The model generation unit 53 learns, for example, according to a neural network model, information indicating the stop at which vehicle 74 is not to be stopped among the plurality of stops included in the operation route by so-called supervised learning. Here, supervised learning refers to a method of giving a set of input and result (label) data to the learning device 51, learning the characteristics in the learning data, and inferring the result from the input.

[0074] A neural network is composed of an input layer consisting of a plurality of neurons, an intermediate layer (hidden layer) consisting of a plurality of neurons, and an output layer consisting of a plurality of neurons. The intermediate layer may be one layer or two or more layers.

[0075] FIG. 15 is a schematic diagram showing an example of a neural network according to Embodiment 3. For example, in the case of a three-layer neural network as shown in FIG. 15, when a plurality of inputs are input to the input layer (X1-X3), the values are multiplied by weights W1 (w11-w16) and input to the intermediate layer (Y1-Y2), and the result is further multiplied by weights W2 (w21-w26) and output from the output layer (Z1-Z3). This output result changes depending on the values of weights W1 and W2.

[0076] In the present embodiment, the neural network learns information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the travel demand 22, stop characteristics 21, and travel route acquired by the data acquisition unit 52 according to the learning data created based on the combination of information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the travel route by so-called supervised learning.

[0077] That is, the neural network learns by adjusting the weights W1 and W2 so that the result output from the output layer when the travel demand 22 and the stop characteristics 21 are input to the input layer approaches the information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the travel route.

[0078] The model generation unit 53 generates and outputs a learned model by executing the above learning.

[0079] The learned model storage unit 54 stores the learned model output from the model generation unit 53.

[0080] Next, the inference device 55 will be described. As shown in FIG. 13, the inference device 55 includes a data acquisition unit 56 and an inference unit 57.

[0081] The data acquisition unit 56 acquires the travel demand 22 and the stop characteristics 21 from the storage unit 20.

[0082] The inference unit 57 infers stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route obtained by using the learned model. That is, the inference unit 57 inputs the travel demand 22 and the stop characteristics 21 acquired by the data acquisition unit 56 into this learned model, and can output information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route inferred from the travel demand 22 and the stop characteristics 21.

[0083] Next, with reference to FIG. 16, the process learned by the learning device 51 will be described. FIG. 16 is a flowchart relating to the learning process of the learning device 51 according to Embodiment 3.

[0084] In step S41, the data acquisition unit 52 acquires the travel demand 22, the stop characteristics 21, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route. Although the travel demand 22, the stop characteristics 21, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route are acquired simultaneously, it is sufficient that the travel demand 22, the stop characteristics 21, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route can be input in association with each other, and the data of the travel demand 22, the stop characteristics 21, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route may be acquired at different timings.

[0085] In step S42, the model generation unit 53 learns information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route by a learning process of so-called supervised learning according to the learning data created based on the combination of the travel demand 22, the stop characteristics 21, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route acquired by the data acquisition unit 52, and generates a learned model.

[0086] In step S43, the learned model storage unit 54 stores the learned model generated by the model generation unit 53.

[0087] Next, with reference to FIG. 17, a process for obtaining information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route using the inference device 55 will be described. FIG. 17 is a flowchart relating to the inference process of the inference device 55 according to Embodiment 3.

[0088] In step S51, the data acquisition unit 56 acquires the travel demand 22 and the stop characteristics 21 from the storage unit 20.

[0089] In step S52, the inference unit 57 inputs the travel demand 22 and the stop characteristics 21 into the learned model stored in the learned model storage unit 54, and obtains information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route.

[0090] In step S53, the inference unit 57 outputs information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route obtained by the learned model.

[0091] In step S54, when the via stop determination unit 50 does not stop the vehicle 74 at a stop corresponding to the via priority, that is, when the vehicle 74 does not pass through the stop, the operation plan 24 is updated.

[0092] Similar to Embodiment 1, the vehicle operation management device 10 can improve the accuracy of the operation of the vehicle 74 in response to the needs of users while shortening the travel time of the vehicle 74. Further, the transit stop determination unit 50 uses a learned model for inferring stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route from the travel demand 22 and the stop characteristics 21, and outputs information indicating stops at which the vehicle 74 does not stop among the plurality of stops included in the operation route from the travel demand 22 and the stop characteristics 21 acquired by the data acquisition unit 56. Thereby, it is possible to accurately determine whether or not a stop at which the vehicle 74 should stop for various conditions that the travel demand 22 and the stop characteristics 21 can take.

[0093] Note that although the learning device 51 and the inference device 55 are included in the transit stop determination unit 50 and an example of being used for learning information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route is shown, the present invention is not limited thereto. For example, the learning device 51, or the learning device 51 and the inference device 55 may be connected to the transit stop determination unit 50 via a network and may be a device separate from the vehicle operation management device 10. Further, the learning device 51, or the learning device 51 and the inference device 55 may exist on a cloud server.

[0094] Further, in the present embodiment, the case where supervised learning is applied to the learning algorithm used by the model generation unit 53 has been described, but the present invention is not limited thereto. Regarding the learning algorithm, in addition to supervised learning, reinforcement learning, unsupervised learning, semi-supervised learning, or the like can also be applied.

[0095] Further, the model generation unit 53 may use, as input data, the travel demand 22 and, as correct answer data, information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route, in an associated manner. In this case, a learned model corresponding to the stop characteristics 21 may be generated. The inference device 55 switches the learned model according to the stop characteristics 21, and inputs the travel demand 22 acquired by the data acquisition unit 56 to this learned model, thereby outputting information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route inferred from the travel demand 22.

[0096] Further, the model generation unit 53 may learn information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route, according to the learning data created for a plurality of vehicle operation management devices 10. Furthermore, the model generation unit 53 may acquire learning data from a plurality of vehicle operation management devices 10 used in the same area, or may learn information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route, using learning data collected from a plurality of vehicle operation management devices 10 operating independently in different areas. Also, the vehicle operation management device 10 that collects the learning data may be added as a target midway, or may be removed from the target. Furthermore, a learning device 51 that has learned information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route for a certain vehicle operation management device 10 may be applied to another vehicle operation management device 10 different from this, and information indicating stops at which the vehicle 74 does not stop among a plurality of stops included in the operation route for the said another vehicle operation management device 10 may be relearned and updated.

[0097] In addition, in Embodiments 1 to 3, the vehicle operation management device 10 has been performing operations such that the vehicle 74 is not stopped at stops where the movement demand 22 of users is not expected. However, the operation method of the vehicle operation management device 10 is not limited to this. For example, in the examples of FIGS. 6 to 8, assume that there is an event venue near Stop [2], and there are few users when no event is being held at the event venue, and a large number of users are expected when an event is being held at the event venue. In such a case, the vehicle operation management device 10 may determine not to stop the vehicle 74 at Stop [2] when no event is being held at the event venue, and may determine to stop the vehicle 74 at Stop [2] on days when an event is being held at the event venue. Since the vehicle operation management device 10 originally assumes an operation route passing through Stop [2] in the operation plan 24, it can flexibly control the operation of the vehicle 74 even when users are unexpectedly expected. In such an operation, in the vehicle operation management device 10, the transit stop determination unit 50 normally updates the operation plan 24 and does not update the operation plan 24 during event holding. Therefore, compared with the case where Stop [2] is not originally included in the operation plan 24 and the vehicle is temporarily stopped at Stop [2], the vehicle operation management device 10 can reduce the processing load and can quickly determine the next stop.

[0098] In addition, in Embodiments 1 to 3, it was assumed that the vehicle 74 is a bus, and the vehicle operation management device 10 determines stops at which the vehicle 74 does not stop and controls the operation of the vehicle 74. However, the control target of the vehicle operation management device 10 is not limited to the case where the vehicle 74 is a bus. For example, the vehicle operation management device 10 can also be a control target for delivery vehicles that have a predetermined route and perform operations such as collecting and delivering goods. In this case, the vehicle operation management device 10 can prevent the delivery vehicle from passing by stores, warehouses, etc. where there are no reservations for collecting and delivering goods, so that the driver of the delivery vehicle can efficiently collect and deliver goods. In addition, the vehicle operation management device 10 is also applicable to ship transportation such as a ferry connecting a plurality of islands where the sailing route is determined in advance. In this case, the transportation target of the ship transportation may be a person or goods. In addition, the vehicle operation management device 10 is also applicable to aerial delivery using a drone as long as the sailing route is determined in advance.

[0099] The configurations shown in the above embodiments are merely examples, and it is possible to combine them with other known technologies, combine the embodiments with each other, and omit or change a part of the configuration without departing from the gist.

[0100] Although the preferred embodiments etc. have been described in detail above, the present invention is not limited to the above-described embodiments etc., and various modifications and substitutions can be made to the above-described embodiments etc. without departing from the scope described in the claims.

[0101] Hereinafter, aspects of the present disclosure will be summarized as appendices.

[0102] (Appendix 1) A storage unit that stores in advance an operation plan for a vehicle including an operation route including a plurality of stops; A movement demand acquisition unit that acquires the movement demand of the users of the vehicle; A stop characteristic acquisition unit that acquires stop characteristics that are characteristics of the stops for the movement demand; A via stop determination unit that determines, based on the moving demand and the stop characteristics, stops at which the vehicle does not stop among the plurality of stops included in the operation route. A vehicle operation management device characterized by comprising the above. (Appendix 2) The stop characteristics are the predicted moving demand amount obtained by predicting the moving demand expected at the stop. The vehicle operation management device according to Appendix 1, characterized by the above. (Appendix 3) The stop characteristics are information indicating the priority of the users boarding at the stop. The vehicle operation management device according to Appendix 1 or 2, characterized by the above. (Appendix 4) The information indicating the priority of the users is set such that the priority of at least one of the elderly, pregnant women, and important customers is higher than that of the other users. The vehicle operation management device according to Appendix 3, characterized by the above. (Appendix 5) The information indicating the priority of the users is set such that the priority of employees is lower than that of the other users. The vehicle operation management device according to Appendix 3 or 4, characterized by the above. (Appendix 6) The stop characteristics are information indicating whether there is an alternative means of transportation for the users boarding at the stop. The vehicle operation management device according to any one of Appendices 1 to 5, characterized by the above. (Appendix 7) When the via stop determination unit determines a stop at which the vehicle does not stop, it selects an operation route that does not pass through the stop at which the vehicle does not stop. The vehicle operation management device according to any one of Appendices 1 to 6, characterized by the above. (Appendix 8) The via stop determination unit updates the arrival time and departure time at the stop at which the vehicle does not stop and the stops after the stop at which the vehicle does not stop for the operation plan. The vehicle operation management device according to Appendix 7, characterized by the above. (Supplementary Note 9) Based on the characteristics of the stops, the via-stop determination unit determines a via priority indicating the priority of each stop, and based on the travel demand and the via priority, determines whether to stop the vehicle at the stop corresponding to the via priority. The vehicle operation management device according to any one of Supplementary Notes 1 to 8, characterized by the above. (Supplementary Note 10) The via-stop determination unit further determines a stop at which the vehicle does not stop, using the operation status of the vehicle. The vehicle operation management device according to any one of Supplementary Notes 1 to 9, characterized by the above. (Supplementary Note 11) The via-stop determination unit determines the timing for determining a stop at which the vehicle does not stop, based on the operation status of the vehicle. The vehicle operation management device according to any one of Supplementary Notes 1 to 10, characterized by the above. (Supplementary Note 12) The via-stop determination unit includes a data acquisition unit that acquires the travel demand and the characteristics of the stops, and an inference unit that outputs information indicating a stop at which the vehicle does not stop among the plurality of stops included in the operation route, using a learned model. The vehicle operation management device according to any one of Supplementary Notes 1 to 11, characterized by having the above. (Supplementary Note 13) The via-stop determination unit includes a data acquisition unit that acquires the travel demand and the characteristics of the stops, and an inference unit that outputs information indicating a stop at which the vehicle does not stop among the plurality of stops included in the operation route, using a learned model for inferring a stop at which the vehicle does not stop from the travel demand and the characteristics of the stops, based on the travel demand and the characteristics of the stops acquired by the data acquisition unit. The vehicle operation management device according to any one of Supplementary Notes 1 to 11, characterized by having the above. (Supplementary Note 14) The movement demand acquisition unit acquires the movement demand from outside the vehicle operation management device or from the storage unit. The vehicle operation management device according to any one of Appendices 1 to 13, characterized in that... (Appendix 15) The stop characteristic acquisition unit acquires the stop characteristics from outside the vehicle operation management device or from the storage unit. The vehicle operation management device according to any one of Appendices 1 to 14, characterized in that... (Appendix 16) A demand collection terminal that provides the movement demand of vehicle users, A vehicle operation management device according to any one of Appendices 1 to 13, which stores in advance a vehicle operation plan including an operation route including a plurality of stops, determines a stop at which the vehicle is not to stop among the plurality of stops included in the operation route based on the movement demand and the stop characteristics, and updates the operation plan if there is a stop at which the vehicle is not to stop. A vehicle control terminal mounted on the vehicle, which acquires the operation plan that has not been updated or has been stored if not updated, and acquires the updated operation plan if updated, from the vehicle operation management device. A vehicle operation management system, characterized by comprising... (Appendix 17) A storage step of storing in advance a vehicle operation plan including an operation route including a plurality of stops, A movement demand acquisition step of acquiring the movement demand of the vehicle users, A stop characteristic acquisition step of acquiring stop characteristics, which are the characteristics of the stops with respect to the movement demand, A via-stop determination step of determining a stop at which the vehicle is not to stop among the plurality of stops included in the operation route based on the movement demand and the stop characteristics. A vehicle operation management method, characterized by comprising... (Appendix 18) The stop characteristic is a predicted movement demand amount obtained by predicting the movement demand expected at the stop. The vehicle operation management method according to Appendix 17, characterized in that... (Supplementary Note 19) The stop characteristics are information indicating the priority of the user boarding at the stop. The vehicle operation management method according to Supplementary Note 17 or 18, characterized by the above. (Supplementary Note 20) The information indicating the priority of the user is set such that the priority of at least one of the elderly, pregnant women, and important customers is higher than that of the other users. The vehicle operation management method according to Supplementary Note 19, characterized by the above. (Supplementary Note 21) The information indicating the priority of the user is set such that the priority of employees is lower than that of the other users. The vehicle operation management method according to Supplementary Note 19 or 20, characterized by the above. (Supplementary Note 22) The stop characteristics are information indicating whether there is an alternative means of transportation for the user boarding at the stop. The vehicle operation management method according to any one of Supplementary Notes 17 to 21, characterized by the above. (Supplementary Note 23) In the via stop determination step, when determining the stop that does not stop, select an operation route that does not pass through the stop that does not stop. The vehicle operation management method according to any one of Supplementary Notes 17 to 22, characterized by the above. (Supplementary Note 24) In the via stop determination step, for the operation plan, update the arrival time and departure time at the stop that does not stop and the stop after the stop that does not stop. The vehicle operation management method according to Supplementary Note 23, characterized by the above. (Supplementary Note 25) In the via stop determination step, based on the stop characteristics, determine the via priority indicating the priority of each stop, and based on the travel demand and the via priority, determine whether to stop the vehicle at the stop corresponding to the via priority. The vehicle operation management method according to any one of Supplementary Notes 17 to 24, characterized by the above. (Supplementary Note 26) In the via stop determination step, further determine the stops at which the vehicle is not to be stopped by using the running status of the vehicle. The vehicle operation management method according to any one of Supplementary Notes 17 to 25, characterized in that. (Supplementary Note 27) In the via stop determination step, determine the timing for determining the stops at which the vehicle is not to be stopped based on the running status of the vehicle. The vehicle operation management method according to any one of Supplementary Notes 17 to 26, characterized in that. (Supplementary Note 28) The via stop determination step includes: A data acquisition step of acquiring the travel demand and the stop characteristics; An inference step of outputting information indicating the stops at which the vehicle is not to be stopped among the plurality of stops included in the travel route by using a learned model. The vehicle operation management method according to any one of Supplementary Notes 17 to 27, characterized by including the above. (Supplementary Note 29) The via stop determination step includes: A data acquisition step of acquiring the travel demand and the stop characteristics; An inference step of outputting information indicating the stops at which the vehicle is not to be stopped among the plurality of stops included in the travel route by using a learned model for inferring the stops at which the vehicle is not to be stopped from the travel demand and the stop characteristics, from the travel demand and the stop characteristics acquired in the data acquisition step. The vehicle operation management method according to any one of Supplementary Notes 17 to 27, characterized by including the above. (Supplementary Note 30) In the travel demand acquisition step, acquire the travel demand from outside the vehicle operation management device or from a storage unit provided in the vehicle operation management device. The vehicle operation management method according to any one of Supplementary Notes 17 to 29, characterized in that. (Supplementary Note 31) In the stop characteristic acquisition step, the stop characteristics are acquired from outside the vehicle operation management device or from a storage unit provided in the vehicle operation management device. The vehicle operation management method according to any one of Appendices 17 to 30, characterized by the above. (Appendix 32) A storage step of preliminarily storing an operation plan of a vehicle including an operation route including a plurality of stops; A travel demand acquisition step of acquiring the travel demand of a user of the vehicle; A stop characteristic acquisition step of acquiring stop characteristics that are characteristics of the stops with respect to the travel demand; A via stop determination step of determining, based on the travel demand and the stop characteristics, stops at which the vehicle is not to be stopped among the plurality of stops included in the operation route; A vehicle operation management program characterized by causing a computer to execute the above.

Explanation of Reference Numerals

[0103] 10 Vehicle operation management device, 20 Storage unit, 21 Stop characteristics, 22 Travel demand, 23 Operation status, 24 Operation plan, 30 Stop characteristic acquisition unit, 40 Travel demand acquisition unit, 50 Via stop determination unit, 51 Learning device, 52, 56 Data acquisition unit, 53 Model generation unit, 54 Learned model storage unit, 55 Inference device, 57 Inference unit, 60 Operation plan execution unit, 71 External system, 72 Demand collection terminal, 73 Vehicle control terminal, 74 Vehicle, 100 Vehicle operation management system.

Claims

1. A storage unit that stores in advance a vehicle operation plan including an operation route including a plurality of stops; A travel demand acquisition unit that acquires travel demand of a user of the vehicle; A bus stop characteristic acquisition unit that acquires a bus stop characteristic that is a characteristic of the bus stop for the travel demand; a stop determining unit for determining a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics; Equipped with When the intermediate stop determination unit determines the stop at which the bus will not stop, the intermediate stop determination unit selects a route that does not pass through the stop at which the bus will not stop, and updates the arrival time and departure time at the stop at which the bus will not stop and at the stop after the stop at which the bus will not stop, for the operation plan. A vehicle operation management device comprising:

2. A storage unit that stores in advance a vehicle operation plan including an operation route including a plurality of stops; A travel demand acquisition unit that acquires travel demand of a user of the vehicle; A bus stop characteristic acquisition unit that acquires a bus stop characteristic that is a characteristic of the bus stop for the travel demand; a stop determining unit for determining a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics; Equipped with The intermediate stop determination unit determines a timing for determining the stop at which the vehicle will not stop based on an operation status of the vehicle. A vehicle operation management device comprising:

3. The bus stop characteristics are a predicted travel demand amount that predicts the travel demand expected at the bus stop.

3. The vehicle operation management device according to claim 1 or 2.

4. The bus stop characteristics are information indicating the priority of the user boarding at the bus stop.

3. The vehicle operation management device according to claim 1 or 2.

5. The information indicating the priority of the users is set so that the priority of at least one of an elderly person, a pregnant woman, and an important customer is set higher than that of the other users.

5. The vehicle operation management device according to claim 4.

6. The bus stop characteristics are information indicating whether or not there is an alternative means of transportation for the user boarding at the bus stop.

3. The vehicle operation management device according to claim 1 or 2.

7. The route stop determination unit determines a route priority indicating a priority of each stop based on the stop characteristics, and determines whether or not to stop the vehicle at the stop corresponding to the route priority based on the travel demand and the route priority.

3. The vehicle operation management device according to claim 1 or 2.

8. The intermediate stop determination unit further determines the stops at which the vehicle will not stop by using the operation status of the vehicle.

3. The vehicle operation management device according to claim 1 or 2.

9. The route stop determination unit is A data acquisition unit that acquires the travel demand and the bus stop characteristics; an inference unit that outputs information indicating a stop at which the vehicle will not stop among the plurality of stops included in the operation route from the travel demand and the stop characteristics acquired by the data acquisition unit, using a trained model for inferring a stop at which the vehicle will not stop among the plurality of stops included in the operation route from the travel demand and the stop characteristics; 3. The vehicle operation management device according to claim 1, further comprising:

10. The travel demand acquisition unit acquires the travel demand from outside the vehicle operation management device or from the storage unit.

3. The vehicle operation management device according to claim 1 or 2.

11. The bus stop characteristic acquisition unit acquires the bus stop characteristics from outside the vehicle operation management device or from the storage unit.

3. The vehicle operation management device according to claim 1 or 2.

12. The travel demand includes a vacant number of people obtained by subtracting the number of people to be transported from the number of people that can be transported by the vehicle, The intermediate stop determination unit determines not to stop the vehicle at the stop if there is no available number of passengers.

3. The vehicle operation management device according to claim 1 or 2.

13. The bus stop characteristics are event information about events held in the vicinity of the bus stop.

3. The vehicle operation management device according to claim 1 or 2.

14. the intermediate stop determination unit determines, based on the event information, not to stop the vehicle at the stop corresponding to the stop characteristic which is the event information when the event is not being held. The vehicle operation management device according to claim 13.

15. the intermediate stop determination unit determines, based on the event information, that when the event is being held, to cause the vehicle to stop at the stop corresponding to the stop characteristic which is the event information. The vehicle operation management device according to claim 13.

16. In the operation plan, candidates of alternative operation routes that can be shortcuts that do not pass through the bus stops are registered in advance.

2. The vehicle operation management device according to claim 1 .

17. In the operation plan, an optimal operation route is searched for each time from a drivable road network as a candidate for an alternative operation route when a shortcut can be taken without passing through the bus stop.

2. The vehicle operation management device according to claim 1 .

18. The intermediate stop determination unit determines whether or not to stop the vehicle at the stop after the vehicle departs from or passes through a stop immediately before the stop.

3. The vehicle operation management device according to claim 2.

19. A demand collection terminal that provides travel demands of vehicle users; The vehicle operation management device according to claim 1 or 2, which stores in advance a vehicle operation plan including a route including a plurality of stops, determines a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics, and updates the operation plan when there is a stop at which the vehicle will not stop; a vehicle control terminal mounted on the vehicle, which acquires the stored operation plan from the vehicle operation management device if the operation plan has not been updated, and acquires the updated operation plan from the vehicle operation management device if the operation plan has been updated; A vehicle operation management system comprising:

20. A storage step of storing in advance a vehicle operation plan including an operation route including a plurality of stops; A travel demand acquisition step of acquiring travel demand of a user of the vehicle; A stop characteristic acquisition step of acquiring stop characteristics that are characteristics of the stop for the travel demand; a stop determining step of determining a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics; Including, When the bus stop at which the bus does not stop is determined in the intermediate stop determination step, a route that does not pass through the bus stop at which the bus does not stop is selected, and the arrival time and the departure time at the bus stop at which the bus does not stop and at the stop after the bus stop at which the bus does not stop are updated in the operation plan. A vehicle operation management method comprising:

21. A storage step of storing in advance a vehicle operation plan including an operation route including a plurality of stops; A travel demand acquisition step of acquiring travel demand of a user of the vehicle; A stop characteristic acquisition step of acquiring stop characteristics that are characteristics of the stop for the travel demand; a stop determining step of determining a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics; Including, In the intermediate stop determination step, a timing for determining the stop at which the vehicle will not stop is determined based on an operation status of the vehicle. A vehicle operation management method comprising:

22. The bus stop characteristics are a predicted travel demand amount that predicts the travel demand expected at the bus stop.

22. The vehicle operation management method according to claim 20 or 21.

23. The bus stop characteristics are information indicating the priority of the user boarding at the bus stop.

22. The vehicle operation management method according to claim 20 or 21.

24. The information indicating the priority of the users is set so that the priority of at least one of an elderly person, a pregnant woman, and an important customer is set higher than that of the other users. The vehicle operation management method according to claim 23.

25. The bus stop characteristics are information indicating whether or not there is an alternative means of transportation for the user boarding at the bus stop.

22. The vehicle operation management method according to claim 20 or 21.

26. In the route stop determination step, a route priority indicating a priority of each stop is determined based on the stop characteristics, and whether or not to stop the vehicle at the stop corresponding to the route priority is determined based on the travel demand and the route priority.

22. The vehicle operation management method according to claim 20 or 21.

27. In the step of determining the intermediate bus stops, the bus stops at which the vehicle is not to be stopped are determined using an operation status of the vehicle.

22. The vehicle operation management method according to claim 20 or 21.

28. The route stop determination step includes: A data acquisition step of acquiring the travel demand and the bus stop characteristics; an inference step of outputting information indicating the stops at which the vehicle will not stop among the plurality of stops included in the operation route from the travel demand and the stop characteristics acquired in the data acquisition step, using a trained model for inferring the stops at which the vehicle will not stop among the plurality of stops included in the operation route from the travel demand and the stop characteristics; The vehicle operation management method according to claim 20 or 21, further comprising:

29. In the travel demand acquisition step, the travel demand is acquired from outside the vehicle operation management device or from a storage unit included in the vehicle operation management device.

22. The vehicle operation management method according to claim 20 or 21.

30. In the bus stop characteristic acquisition step, the bus stop characteristics are acquired from an external device of the vehicle operation management device or from a storage unit included in the vehicle operation management device.

22. The vehicle operation management method according to claim 20 or 21.

31. A storage step of storing in advance a vehicle operation plan including an operation route including a plurality of stops; A travel demand acquisition step of acquiring travel demand of a user of the vehicle; A stop characteristic acquisition step of acquiring stop characteristics that are characteristics of the stop for the travel demand; a stop determining step of determining a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics; The computer executes the above. When the bus stop at which the bus does not stop is determined in the intermediate stop determination step, a route that does not pass through the bus stop at which the bus does not stop is selected, and the arrival time and the departure time at the bus stop at which the bus does not stop and at the stop after the bus stop at which the bus does not stop are updated in the operation plan. A vehicle operation management program comprising:

32. A storage step of storing in advance a vehicle operation plan including an operation route including a plurality of stops; A travel demand acquisition step of acquiring travel demand of a user of the vehicle; A stop characteristic acquisition step of acquiring stop characteristics that are characteristics of the stop for the travel demand; a stop determining step of determining a stop at which the vehicle will not stop among the plurality of stops included in the operation route based on the travel demand and the stop characteristics; The computer executes the above. In the intermediate stop determination step, a timing for determining the stop at which the vehicle will not stop is determined based on an operation status of the vehicle. A vehicle operation management program comprising:

Citation Information

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