US20120123660A1 - Vehicle control device, vehicle control method, and vehicle control system - Google Patents
Vehicle control device, vehicle control method, and vehicle control system Download PDFInfo
- Publication number
- US20120123660A1 US20120123660A1 US13/387,284 US200913387284A US2012123660A1 US 20120123660 A1 US20120123660 A1 US 20120123660A1 US 200913387284 A US200913387284 A US 200913387284A US 2012123660 A1 US2012123660 A1 US 2012123660A1
- Authority
- US
- United States
- Prior art keywords
- vehicle
- traffic
- speed
- amount
- inter
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
- 238000000034 method Methods 0.000 title claims description 35
- 230000001133 acceleration Effects 0.000 description 77
- 238000004891 communication Methods 0.000 description 30
- 230000006872 improvement Effects 0.000 description 19
- 230000008859 change Effects 0.000 description 16
- 102100021641 Acetyl-CoA carboxylase 2 Human genes 0.000 description 13
- 101000677540 Homo sapiens Acetyl-CoA carboxylase 2 Proteins 0.000 description 13
- 101000894929 Homo sapiens Bcl-2-related protein A1 Proteins 0.000 description 13
- 102100039164 Acetyl-CoA carboxylase 1 Human genes 0.000 description 5
- 101710190443 Acetyl-CoA carboxylase 1 Proteins 0.000 description 5
- 230000003287 optical effect Effects 0.000 description 4
- 238000010586 diagram Methods 0.000 description 3
- 230000000694 effects Effects 0.000 description 3
- 230000035515 penetration Effects 0.000 description 3
- 230000008569 process Effects 0.000 description 3
- 230000000644 propagated effect Effects 0.000 description 3
- 230000003044 adaptive effect Effects 0.000 description 2
- 230000003247 decreasing effect Effects 0.000 description 2
- 230000009467 reduction Effects 0.000 description 2
- 239000000523 sample Substances 0.000 description 2
- 230000015556 catabolic process Effects 0.000 description 1
- 238000010276 construction Methods 0.000 description 1
- 238000012423 maintenance Methods 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
Images
Classifications
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W30/00—Purposes of road vehicle drive control systems not related to the control of a particular sub-unit, e.g. of systems using conjoint control of vehicle sub-units
- B60W30/14—Adaptive cruise control
- B60W30/16—Control of distance between vehicles, e.g. keeping a distance to preceding vehicle
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/01—Detecting movement of traffic to be counted or controlled
- G08G1/0104—Measuring and analyzing of parameters relative to traffic conditions
- G08G1/0108—Measuring and analyzing of parameters relative to traffic conditions based on the source of data
- G08G1/0112—Measuring and analyzing of parameters relative to traffic conditions based on the source of data from the vehicle, e.g. floating car data [FCD]
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/01—Detecting movement of traffic to be counted or controlled
- G08G1/0104—Measuring and analyzing of parameters relative to traffic conditions
- G08G1/0125—Traffic data processing
- G08G1/0133—Traffic data processing for classifying traffic situation
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/01—Detecting movement of traffic to be counted or controlled
- G08G1/0104—Measuring and analyzing of parameters relative to traffic conditions
- G08G1/0137—Measuring and analyzing of parameters relative to traffic conditions for specific applications
- G08G1/0145—Measuring and analyzing of parameters relative to traffic conditions for specific applications for active traffic flow control
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/16—Anti-collision systems
- G08G1/161—Decentralised systems, e.g. inter-vehicle communication
- G08G1/163—Decentralised systems, e.g. inter-vehicle communication involving continuous checking
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/16—Anti-collision systems
- G08G1/164—Centralised systems, e.g. external to vehicles
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/22—Platooning, i.e. convoy of communicating vehicles
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2556/00—Input parameters relating to data
- B60W2556/45—External transmission of data to or from the vehicle
- B60W2556/50—External transmission of data to or from the vehicle of positioning data, e.g. GPS [Global Positioning System] data
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2556/00—Input parameters relating to data
- B60W2556/45—External transmission of data to or from the vehicle
- B60W2556/65—Data transmitted between vehicles
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2754/00—Output or target parameters relating to objects
- B60W2754/10—Spatial relation or speed relative to objects
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2754/00—Output or target parameters relating to objects
- B60W2754/10—Spatial relation or speed relative to objects
- B60W2754/30—Longitudinal distance
-
- G—PHYSICS
- G08—SIGNALLING
- G08G—TRAFFIC CONTROL SYSTEMS
- G08G1/00—Traffic control systems for road vehicles
- G08G1/16—Anti-collision systems
- G08G1/167—Driving aids for lane monitoring, lane changing, e.g. blind spot detection
Definitions
- the present invention relates to a vehicle control device, a vehicle control method, and a vehicle control system and more particularly, to a vehicle control device, a vehicle control method, and a vehicle control system capable of improving the amount of traffic on the road.
- Patent Literature 1 discloses a vehicle-in-front following device which detects a change in the gradient of the front side of the road and changes the control mode from inter-vehicle distance control to vehicle speed control when a change in the gradient is detected in front of the road in the vicinity of, for example, a sag section (position where the road is changed from a descent to an ascent).
- the control mode is changed from inter-vehicle distance control to vehicle speed control in the vicinity of the sag section, thereby suppressing a change in the vehicle speed during vehicle-in-front following control.
- the vehicle-in-front following device disclosed in Patent Literature 1 prevents a phenomenon in which a change in the speed of the vehicle in front is amplified and propagated to the following vehicle even though the gradient is changed in the sag section when a plurality of vehicles travel in a line.
- the control mode is changed from vehicle speed control to inter-vehicle distance control at the time when the deceleration propagation occurs, resulting in traffic congestion in which a plurality of vehicles travel in a line at a low speed. As a result, it is difficult to effectively suppress traffic congestion.
- the invention has been made in view of the above-mentioned problems and an object of the invention is to provide a vehicle control device, a vehicle control method, and a vehicle control system capable of effectively suppressing traffic congestion.
- a vehicle control device including: information acquiring means for acquiring information related to the amount of traffic on a road on which a host vehicle travels; and traveling control means for, when the amount of traffic related to the information acquired by the information acquiring means is more than a first threshold value, controlling an inter-vehicle distance between the host vehicle and other vehicles traveling on the road and the speed of the host vehicle such that the amount of traffic is equal to or more than a second threshold value.
- the amount of traffic on the road is greatly affected by the inter-vehicle distance and the vehicle speed.
- the traveling control means controls the inter-vehicle distance and the vehicle speed such that the amount of traffic is a predetermined value equal to or more than a second threshold value. Therefore, it is possible to effectively suppress traffic congestion.
- the traveling control means may change the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of other vehicles which can communicate with the host vehicle.
- the traveling control means changes the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which can communicate with the host vehicle and have high flexibility in the control of the inter-vehicle distance and the vehicle speed by the host vehicle. Therefore, it is possible to suppress traffic congestion according to the actual situation.
- the information acquiring means may acquire information related to the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle, and the traveling control means may change the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle related to the information acquired by the information acquiring means.
- the traveling control means changes the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which cannot communicate with the host vehicle and have low flexibility in the control of the inter-vehicle distance and the vehicle speed by the host vehicle. Therefore, it is possible to perform vehicle control considering the actual traffic conditions and traffic flow.
- the traveling control means may change the first threshold value, depending on a region including the road.
- the first threshold value for starting the control of the inter-vehicle distance and the vehicle speed is changed depending on the region including the road. Therefore, for example, when the road is in the region in which traffic congestion occurs frequently, such as a sag section, the first threshold value is changed depending on the region. In this way, it is possible to effectively suppress traffic congestion.
- the traveling control means changes the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value depending on the number of other vehicles which can communicate with the host vehicle
- the information acquiring means may acquire information related to the amount of traffic in each lane of the road
- the traveling control means may control at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means.
- the amount of traffic on the road is greatly affected by the concentration of the amount of traffic in each lane.
- the traveling control means controls at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means. Therefore, it is possible to effectively suppress traffic congestion according to the concentration of the amount of traffic in each lane.
- a vehicle control method including: a step of acquiring information related to the amount of traffic on a road on which a host vehicle travels; and a step of, when the amount of traffic related to the acquired information is more than a first threshold value, controlling an inter-vehicle distance between the host vehicle and other vehicles traveling on the road and the speed of the host vehicle such that the amount of traffic is equal to or more than a second threshold value.
- the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value may be changed depending on the number of other vehicles which can communicate with the host vehicle.
- the step of acquiring the information related to the amount of traffic on the road on which the host vehicle travels information related to the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle may be acquired.
- the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value may be changed depending on the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle related to the acquired information.
- the first threshold value may be changed depending on a region including the road.
- step of acquiring the information related to the amount of traffic on the road on which the host vehicle travels information related to the amount of traffic in each lane of the road may be acquired.
- step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value at least one of the inter-vehicle distance and the vehicle speed may be controlled on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means.
- a vehicle control system including: information acquiring means for acquiring information related to the amount of traffic on a road on which a plurality of vehicles travel; and traveling control means for, when the amount of traffic related to the information acquired by the information acquiring means is more than a first threshold value, controlling an inter-vehicle distance between at least two of the vehicles traveling on the road and the speed of at least one of the vehicles such that the amount of traffic is equal to or more than a second threshold value.
- the traveling control means may change the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which can communicate with each other.
- the information acquiring means may acquire information related to the number of vehicles which cannot communicate with each other between the vehicles which can communicate with each other, and the traveling control means may change the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which cannot communicate with each other between the vehicles which can communicate with each other related to the information acquired by the information acquiring means.
- the traveling control means may change the first threshold value, depending on a region including the road.
- the information acquiring means may acquire information related to the amount of traffic in each lane of the road, and the traveling control means may control at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means.
- the vehicle control device According to the vehicle control device, the vehicle control method, and the vehicle control system of the invention, it is possible to effectively suppress traffic congestion.
- FIG. 1 is a block diagram illustrating the structure of a vehicle control device according to a first embodiment.
- FIG. 2 is a graph illustrating the relationship among the amount of traffic, a vehicle speed, and an inter-vehicle distance before and after traffic congestion occurs.
- FIG. 3 is a graph illustrating a region in which traffic congestion occurs and a region in which no traffic congestion occurs in the relationship between the inter-vehicle distance and the vehicle speed.
- FIG. 4 is a plan view illustrating an example of a situation in which the vehicle control device according to the first embodiment is applied.
- FIG. 5 is a flowchart illustrating an operation of guiding the vehicle speed and the inter-vehicle distance.
- FIG. 6 is a flowchart illustrating the details of the operation of guiding the vehicle speed and the inter-vehicle distance.
- FIG. 7 is a flowchart illustrating the details of the operation of guiding the vehicle speed and the inter-vehicle distance.
- FIG. 8 is a flowchart illustrating an operation of maintaining the guided vehicle speed and inter-vehicle distance.
- FIG. 9 is a flowchart illustrating the details of the operation of maintaining the guided vehicle speed and inter-vehicle distance.
- FIG. 10 is a flowchart illustrating the details of the operation of maintaining the guided vehicle speed and inter-vehicle distance.
- FIG. 11 is a flowchart illustrating an operation of returning the vehicle speed and the inter-vehicle distance to normal values since the vehicle passes through a sag section.
- FIG. 12 is a flowchart illustrating the details of the operation of returning the vehicle speed and the inter-vehicle distance to the normal values since the vehicle passes through the sag section.
- FIG. 13 is a flowchart illustrating a control operation for a first communication vehicle in each lane.
- FIG. 14 is a flowchart illustrating an operation when the vehicle follows the leading vehicle.
- FIG. 15 is a flowchart illustrating an operation of maintaining the guided vehicle speed.
- FIG. 16 is a block diagram illustrating the structure of a vehicle control device according to a second embodiment.
- FIG. 17 is a block diagram illustrating the structure of a vehicle control device according to a third embodiment.
- FIG. 18 is a plan view illustrating an example of a situation in which the vehicle control device according to the third embodiment is applied.
- FIG. 19 is a graph illustrating the relationship between a speed and the amount of traffic when the driver performs an operation.
- FIG. 20 is a flowchart illustrating the operation of the vehicle control device according to the third embodiment.
- FIG. 21 is graph illustrating the relationship between the amount of traffic and the vehicle speed.
- FIG. 22 is a graph illustrating a change in the vehicle speed in a driving lane and the vehicle speed in a passing lane.
- FIG. 23 is a plan view illustrating the operation of the vehicle control device according to the third embodiment.
- FIG. 24 is a flowchart illustrating the operation of a vehicle control device according to a fourth embodiment.
- FIG. 25 is a plan view illustrating the operation of the vehicle control device according to the fourth embodiment.
- a vehicle control device 10 a includes a vehicle-to-vehicle communication device 12 , a road-to-vehicle communication device 14 , a navigation system 16 , an ECU (Electronic Control Unit) 20 , and an ACC (Adaptive Cruise Control) 30 .
- ECU Electronic Control Unit
- ACC Adaptive Cruise Control
- the vehicle-to-vehicle communication device 12 performs vehicle-to-vehicle communication to transmit or receive information about the position or speed of system-provided vehicles other than a host vehicle, or information indicating whether to turn on or off vehicle control for preventing traffic congestion.
- the road-to-vehicle communication device 14 receives information, such as the amount of traffic on the road or the speed of the vehicle traveling on the road, from a road infrastructure, such as an optical beacon communication device.
- a road infrastructure such as an optical beacon communication device.
- the road-to-vehicle communication device 14 is not necessarily essential.
- the navigation system 16 includes a GPS (Global Positioning System) that receives signals from a plurality of GPS satellites using a GPS receiver and measures the position of the host vehicle from the difference between the signals and a map information DB (Database) that stores the map information of the host vehicle.
- the navigation system 16 guides the route of the host vehicle and acquires information related to the position where the speed of the vehicle in front of the host vehicle is reduced, such as a sag section. For example, the navigation system 16 detects the position of the host vehicle relative to the sag section and outputs the position to the ECU 20 .
- the ECU 20 receives information related to the position of the host vehicle relative to the sag section from the navigation system 16 and receives information related to the relative position and relative speed of other vehicles around the host vehicle from a radar 32 of the ACC 30 .
- the ECU outputs traveling control command values, such as a target vehicle speed, acceleration and deceleration G, and a target inter-vehicle distance, to the ACC 30 on the basis of the information input from the navigation system 16 and the ACC 30 .
- the ACC 30 includes the radar 32 that detects the relative position and relative speed of other vehicles around the host vehicle.
- the ACC 30 performs traveling control on the basis of the traveling control command values from the ECU 20 such that the host vehicle has the target vehicle speed, the acceleration and deceleration G, and the target inter-vehicle distance.
- the inter-vehicle distance becomes too short due to the following causes. That is,
- the vehicle speed is gradually reduced (N 1 ) and the driver of the vehicle presses on his or her way to reduce the inter-vehicle distance.
- a road-side infrastructure checks traffic conditions and predicts traffic congestion on the basis of information from sensors which are provided on the road, thereby preventing the traffic congestion.
- (C) A method of allowing the infrastructure side to instruct a change in, for example, vehicle speed and lane
- the infrastructure side checks traffic conditions and predicts traffic congestion on the basis of information from a probe car.
- the method (A) is performed on condition that there are (a plurality of) detour routes and is not used at positions other than the central area of a metropolitan.
- the driver follows a detour instruction for preventing traffic congestion, not a detour instruction for avoiding traffic congestion which has occurred.
- each driver is likely to feel unfair (for example, difference in transit time or traveling distance) according to whether a detour instruction is given to the vehicle, which is not practical.
- the method (B) has no effect of preventing traffic congestion when traffic congestion occurs in an inflow restriction portion.
- the method (C) even when a vehicle speed and a driving lane are instructed, traffic congestion occurs when the inter-vehicle distance is reduced. Therefore, the method (C) may have no effect according to the magnitude of the inter-vehicle distance.
- the driving lanes of a large number of vehicles it is not expected that the vehicles will be moved in the way that is intended to prevent the concentration of the vehicles on the lanes.
- desired control information such as the percentage and number of vehicles which are desired to change their lanes, to the drivers using a display on the road.
- the method (D) is suitable for a specific position and is a centralized method. Therefore, the method (D) is a large-scale method requiring standardization, which is not practical.
- the inter-vehicle distance and speed of the vehicles are guided to the region B in which there is the largest margin in the amount of traffic, as shown in FIGS. 2 and 3 (S 1 ). That is, vehicle control is performed such that traffic congestion is less likely to occur. Specifically, in this embodiment, the vehicle control is performed by the following methods.
- vehicle control is performed such that each vehicle has the above-mentioned inter-vehicle distance and vehicle speed. That is, the system-provided vehicle is controlled or guided to a vehicle speed and an inter-vehicle distance at which the amount of traffic is the maximum, according to the vehicle speed.
- ACC/CC Adaptive Cruise control/Cruise Control
- vehicle control is performed such that the system-provided vehicle predicts the number of general vehicles between the system-provided vehicles and the inter-vehicle distance is maintained using the sum of the inter-vehicle distances as an upper limit.
- the system-provided vehicle predicts an inter-vehicle time (target inter-vehicle time) at the position (in the vicinity of the position where traffic congestion occurs) where the vehicle speed is the minimum before the sag section and starts vehicle speed and inter-vehicle distance control before the inter-vehicle time is equal or less than the predicted value. That is, the system-provided vehicle changes a control start position depending on the amount of traffic.
- system-provided vehicles 100 a and 100 b provided with the vehicle control device 10 a according to this embodiment and a general vehicle 200 which is not provided with the vehicle control device 10 a travel together on a road 500 .
- the system-provided vehicle 100 b follows one leading system-provided vehicle 100 a .
- Several general vehicles 200 travel between the system-provided vehicle 100 a and the system-provided vehicle 100 b .
- the vehicle control device 10 a of the following system-provided vehicle 100 b sets ACC 1 and ACC 2 sections in which the system-provided vehicle 100 b travels while performing inter-vehicle control and CC 1 and CC 2 sections in which the system-provided vehicle 100 b travels while performing cruise control, according to the distance relationship with the general vehicle 200 p which travels immediately in front of the system-provided vehicle 100 b.
- the length of the given section is determined by the communicable distance between the system-provided vehicles 100 a and 100 b .
- the vehicle control device 10 a of the system-provided vehicle 100 b performs traveling control for guiding the vehicle speed and the inter-vehicle distance (S 13 ).
- the time when the amount of traffic reaches 40 to 80 vehicles/minute in two lanes may be used as a traveling control start condition.
- the vehicle speed and the inter-vehicle distance at which the amount of traffic is obtained may be the traveling control start condition.
- V OR is the initial speed of the system-provided vehicle 100 b when the system-provided vehicle 100 b travels in a passing lane and traveling control starts and V OR is the initial speed of the system-provided vehicle 100 b when the system-provided vehicle 100 b travels in a driving lane and traveling control starts
- V OR is the initial speed of the system-provided vehicle 100 b when the system-provided vehicle 100 b travels in a driving lane and traveling control starts
- the vehicle control device 10 a of the system-provided vehicle 100 b performs the subsequent steps.
- the speed V of the system-provided vehicle 100 b satisfies V>V Rt +V d (S 16 )
- the vehicle control device 10 a of the system-provided vehicle 100 b performs Steps S 13 to S 16 again.
- the target vehicle speed V Rt is appropriately changed depending on, for example, the number of other system-provided vehicles 100 a and 100 b within the communicable distance, the number of general vehicles 200 , and whether there are a sag section, a curved road, a tunnel, and gradient in the region including the road 500 .
- the target vehicle speed V Rt may be set in the range of 40 km/h to 80 km/h and preferably, in the range of 60 km/h to 75 km/h.
- Step S 13 the operation of guiding the vehicle speed and the inter-vehicle distance in Step S 13 will be described in detail.
- the distance headway (the distance between the heads of two vehicles) between the system-provided vehicle 100 b and a general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is L R
- the speed of the general vehicle 200 p is V pre
- the distance headway between the leading system-provided vehicle 100 a and the system-provided vehicle 100 b is L C
- a predicted distance headway between the leading system-provided vehicle 100 a and the vehicle which is immediately in front of the system-provided vehicle 100 b is L RL
- the predicted distance headway satisfies L C ⁇ L R ⁇ L RL
- the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is within the predicted distance headway L RL
- the vehicle control device 10 a the vehicle control device 10 a
- the estimated value of the number of general vehicles 200 between the leading system-provided vehicle 100 a and the system-provided vehicle 100 b is N.
- the predicted time headways T preR and T preL between the general vehicles 200 or the number of general vehicles 200 may be estimated by observing the distance from the vehicle which travels in an adjacent lane using the radar 32 .
- the vehicle control device 10 a controls the system-provided vehicle 100 b such that the distance between the system-provided vehicle 100 b and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is reduced and the system-provided vehicle 100 b moves from the CC 2 section to the CC 1 section.
- Step S 13 a as shown in a case C 2 of FIG. 4 , when L C ⁇ L R ⁇ L RL is not satisfied and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is not within the predicted distance headway L RL (S 13 a ), the vehicle control device 10 a of the system-provided vehicle 100 b performs Step S 13 e.
- the vehicle control device 10 a controls the system-provided vehicle 100 b so as to travel while maintaining the distance headway between the system-provided vehicle 100 b and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b to be the target inter-vehicle distance L Rt .
- the vehicle control device 10 a controls the system-provided vehicle 100 b such that the relative speed thereof to the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is equal to the target value V k and the system-provided vehicle 100 b moves to the ACC 2 section in the case C 2 of FIG. 4 .
- the vehicle control device 10 a of the system-provided vehicle 100 b performs control for guiding the vehicle speed and the inter-vehicle distance, it performs control for maintaining the guided vehicle speed and inter-vehicle distance, as shown in FIG. 8 (S 17 ).
- V>V Rt +V d is satisfied, that is, when the speed V of the system-provided vehicle 100 b is more than the sum of the target vehicle speed V Rt and the target vehicle speed added upper limit V d (S 18 )
- Step S 17 As shown in the case C 1 of FIGS. 9 and 4 , when L C ⁇ L R ⁇ L RL is satisfied and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is within the predicted distance headway L RL (S 17 a ), the vehicle control device 10 a of the system-provided vehicle 100 b performs Step S 17 b .
- L RL +L Rt ⁇ L C ⁇ L RL +L Rt +L RC0 is not satisfied (S 17 b )
- the vehicle control device 10 a of the system-provided vehicle 100 b performs Step S 17 c.
- the vehicle control device 10 a of the system-provided vehicle 100 b performs Step S 17 d .
- the vehicle control device 10 a controls the system-provided vehicle 100 b such that the inter-vehicle distance between the system-provided vehicle 100 b and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is reduced and the system-provided vehicle 100 b is moved from the CC 2 section to the CC 1 section.
- Step S 17 a as shown in the case C 2 of FIG. 4 , when L C ⁇ L R ⁇ L RL is not satisfied and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is not within the predicted distance headway L RL (S 17 a ), the vehicle control device 10 a of the system-provided vehicle 100 b performs Step S 17 e.
- the vehicle control device 10 a controls the system-provided vehicle 100 b so as travel while maintaining the distance headway between the system-provided vehicle 100 b and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b to be the target inter-vehicle distance L Rt .
- the vehicle control device 10 a controls the system-provided vehicle 100 b such that the relative speed thereof to the general vehicle 200 p is equal to the target value V k and the system-provided vehicle 100 b moves to the ACC 2 section in the case C 2 of FIG. 4 .
- the vehicle control device 10 a of the system-provided vehicle 100 b performs control for maintaining the guided vehicle speed and inter-vehicle distance, it performs control for returning to a normal vehicle speed and inter-vehicle distance since the system-provided vehicle 100 b has passed through the sag section, as shown in FIG. 8 (S 20 ).
- the vehicle control device 10 a controls the system-provided vehicle 100 b so as to travel while maintaining the distance headway between the system-provided vehicle 100 b and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b to be the target inter-vehicle distance L Rt .
- the vehicle control device 10 a controls the system-provided vehicle 100 b such that the relative speed thereof to the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 b is the target value V k and the system-provided vehicle 100 b moves to the ACC section.
- V Xon is the speed of the first system-provided vehicle 100 a in each lane when the first system-provided vehicle 100 a passes through the position X on and X d is the distance of the section in which the first system-provided vehicle 100 a is initially decelerated. That is, the vehicle control device 10 a controls the traveling of the system-provided vehicle 100 a such that the vehicle speed is V Rt only in the initial section corresponding to the distance X d .
- the vehicle control device 10 a controls the system-provided vehicle 100 a so as to travel while maintaining the distance headway between the system-provided vehicle 100 a and the general vehicle 200 p which is immediately in front of the system-provided vehicle 100 a to be the target inter-vehicle distance L Rt .
- Step S 26 when the speed V of the system-provided vehicle 100 a is equal to or less than the target vehicle speed V Rt (V ⁇ V Rt ) (S 26 ), the vehicle control device 10 a of the system-provided vehicle 100 a performs control to maintain the guided vehicle speed (S 28 ).
- Step S 28 the control process of maintaining the guided vehicle speed in Step S 28 will be described in detail.
- the amount of traffic on the road is greatly affected by both the inter-vehicle distance and the vehicle speed.
- the ECU 20 and the ACC 30 controls the inter-vehicle distance and the vehicle speed such that the amount of traffic becomes a value equal to or more than the threshold value. In this way, it is possible to effectively suppress traffic congestion.
- the ECU 20 and the ACC 30 changes the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the threshold value, according to the number of system-provided vehicles 100 a or 100 b which can communicate with the system-provided vehicle 100 a or 100 b , which is the host vehicle, and have high flexibility in the control of the inter-vehicle distance and the vehicle speed by the host vehicle. Therefore, it is possible to suppress traffic congestion according to the actual situation.
- the ECU 20 and the ACC 30 changes the inter-vehicle distance such that the amount of traffic is equal to or more than the threshold value, according to the number N of general vehicles 200 disposed between the system-provided vehicles 100 a or 100 b which can communicate with the system-provided vehicle 100 a or 100 b , which is the host vehicle, and have low flexibility in the control of the inter-vehicle distance and the vehicle speed by the host vehicle. Therefore, it is possible to perform vehicle control considering the actual traffic conditions and traffic flow.
- the ECU 20 and the ACC 30 change the threshold value for starting the control of the inter-vehicle distance and the vehicle speed, depending on the region including the road. Therefore, for example, when the road is in the region in which traffic congestion occurs frequently, such as a sag section, the ECU 20 and the ACC 30 change the threshold value depending on the region. Therefore, it is possible to effectively suppress traffic congestion.
- a vehicle control device 10 b differs from the vehicle control device according to the first embodiment in that it does not include the vehicle-to-vehicle communication device 12 and the road-to-vehicle communication device 14 and an MM (Multimedia) communication device 18 is connected to the navigation system 16 .
- the MM communication device 18 is for receiving information related to the penetration rate of the system-provided vehicles 100 a and 100 b transmitted from a predetermined management center.
- the vehicle control device does not have a communication function, but the system-provided vehicle having a vehicle speed and inter-vehicle distance control function, such as the function of an ACC 30 , predicts the percentage of the system-provided vehicles from information related to the penetration rate of the system-provided vehicles received by the MM communication device 18 , predicts the number of general vehicles disposed between the system-provided vehicles on the basis of the predicted percentage, and adjusts the inter-vehicle distance using the sum of the inter-vehicle distances as the upper limit, similarly to the first embodiment. Therefore, in this embodiment, it is possible to perform vehicle control for preventing traffic congestion, without a communication function or even in the section other than the communicable range.
- the system-provided vehicle having a vehicle speed and inter-vehicle distance control function such as the function of an ACC 30 , predicts the percentage of the system-provided vehicles from information related to the penetration rate of the system-provided vehicles received by the MM communication device 18 , predicts the number of general vehicles
- a vehicle control device 10 c according to this embodiment is provided in a vehicle and includes an input unit 50 , a calculating unit 60 , and a control unit 70 .
- the input unit 50 includes an infrastructure information receiving system 51 , a vehicle-to-vehicle communication system 52 , a vehicle-in-front speed detecting system 53 , and a driving lane recognizing system 54 .
- the infrastructure information receiving system 51 receives information, such as the average speed of the road in each lane, the amount of traffic (the number of vehicles per unit time), and the possibility of traffic congestion transmitted from, for example, a management center, from an optical beacon communication device, which is a road infrastructure.
- the vehicle-to-vehicle communication system 52 performs vehicle-to-vehicle communication to transmit or receive information about the position or speed system-provided vehicles other than the host vehicle, or information about whether to turn on or off vehicle control for preventing traffic congestion.
- the vehicle-in-front speed detecting system 53 is, for example, an inter-vehicle distance sensor that measures the distance from the vehicle in front.
- the traveling lane recognizing system 54 detects the lane in which the host vehicle travels using an autonomous sensor, such as a camera.
- the calculating unit 60 includes a traffic flow improvement control system 61 .
- the traffic flow improvement control system 61 performs control for improving the traffic flow of the road on the basis of various kinds of information acquired by the input unit 50 .
- the control unit 70 includes an engine control ECU 71 that controls an engine on the basis of a command signal from the calculating unit 60 , a brake control ECU 72 that controls a brake, and a steering control ECU 73 that controls steering.
- a system-provided vehicle 100 including the traveling control device 10 c recognizes the lane in which the host vehicle travels using the traveling lane recognizing system 54 (S 101 ).
- An optical beacon communication device transmits the traffic conditions, such as the number of vehicles per unit time in each lane and the average speed detected by a road infrastructure 600 and the system-provided vehicle 100 receives the traffic conditions using the infrastructure information receiving system 51 (S 102 ).
- the general vehicle changes its lane to the driving lane which is on the left side in the traveling direction and the vehicles are concentrated on the driving lane.
- the traffic flow improvement control system 61 of the calculating unit 60 determines which of a region R 1 and a region R 2 includes the traffic conditions of the lane of the host vehicle and which of the regions R 1 and R 2 includes the traffic conditions of other lanes in the map shown in FIG. 21 (S 104 ). This determination may be performed by the road infrastructure and the determination result may be transmitted to the system-provided vehicle 100 .
- the traffic flow improvement control system 61 performs control to reduce the speed of the host vehicle to an arbitrary set vehicle speed (S 106 ).
- the traffic flow improvement control system 61 reduces the speed of the host vehicle by a predetermined value V 1 .
- the traffic flow improvement control system 61 sufficiently reduces acceleration ⁇ a 1 .
- the traffic flow improvement control system 61 may reduce the speed of the host vehicle by V 2 with respect to the average vehicle speed vr(n) of other lanes.
- the amount of traffic of the lane of the host vehicle may be more than that of other lanes.
- the traffic flow improvement control system 61 reduces the speed of the host vehicle again.
- the traffic flow improvement control system 61 gradually returns the vehicle speed to an arbitrary set vehicle speed while detecting the distance from the vehicle in front using the vehicle-in-front speed detecting system 53 (S 109 ). The reason is that, when the vehicle speeds are alternately reduced in each lane, the vehicle speed becomes too low.
- the traffic flow improvement control system 61 returns the speed of the host vehicle to the value before the speed reduction control is performed. In addition, in this case, the traffic flow improvement control system 61 sufficiently reduces acceleration a 2 . In addition, the traffic flow improvement control system 61 increases the speed of the host vehicle by V 2 with respect to the average vehicle speed vr(n) of other lanes. Alternatively, the traffic flow improvement control system 61 may set the speed of the host vehicle to be equal to the average vehicle speed vr(n) of other lanes. As shown in FIG. 22 , the vehicle speeds of the driving lane and the passing lane are alternately increased and decreased by the above-mentioned control operation and the concentration of the vehicles on the lane is removed.
- the system-provided vehicle 100 provided with the traveling control device 10 c recognizes the lane of the host vehicle using the traveling lane recognizing system 54 (S 201 ).
- the system-provided vehicles 100 share the information related to the lane and the vehicle speed using the vehicle-to-vehicle communication system 52 (S 202 ).
- the traveling control device may acquire data for the position where traffic congestion occurs, such as a sag section, from, for example, a navigation system and start control at a position X 2 km ahead of the sag section, and cancel the control after the vehicle passes through the sag section.
- the traffic flow improvement control system 61 performs control to reduce the speed of the host vehicle to an arbitrary set vehicle speed (S 206 ).
- the traffic flow improvement control system 61 performs control to increase the speed of the host vehicle to an arbitrary set vehicle speed (S 208 ).
- speed control is performed when the conditions of Step S 204 are maintained for the unit time T 1 .
- the vehicle speed is maintained for the time T 1 and then the setting of the vehicle speed of each lane is changed.
- the average vehicle speed vr of other lanes are set such that the accelerational at that time is sufficiently reduced.
- the amount of traffic on the road is greatly affected by the concentration of the amount of traffic in each lane.
- the traffic flow improvement control system 61 of the calculating unit 60 controls at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the input unit 50 . Therefore, it is possible to effectively suppress traffic congestion according to the concentration of the amount of traffic in each lane.
- the vehicle control device provided in each system-provided vehicle performs vehicle control for preventing traffic congestion.
- the vehicle control device may be provided only in the management center and transmit commands from the management center to each vehicle using communication, thereby performing the vehicle control for preventing traffic congestion.
Landscapes
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Chemical & Material Sciences (AREA)
- Analytical Chemistry (AREA)
- Engineering & Computer Science (AREA)
- Automation & Control Theory (AREA)
- Transportation (AREA)
- Mechanical Engineering (AREA)
- Traffic Control Systems (AREA)
- Control Of Driving Devices And Active Controlling Of Vehicle (AREA)
- Electric Propulsion And Braking For Vehicles (AREA)
Abstract
The amount of traffic on the road is greatly affected by both an inter-vehicle distance and a vehicle speed. When the amount of traffic increases and is more than a threshold value, an ECU and an ACC control the inter-vehicle distance and the vehicle speed such that the amount of traffic is a predetermined value equal to or more than the threshold value. In this way, it is possible to effectively suppress traffic congestion.
Description
- The present invention relates to a vehicle control device, a vehicle control method, and a vehicle control system and more particularly, to a vehicle control device, a vehicle control method, and a vehicle control system capable of improving the amount of traffic on the road.
- In recent years, there is an attempt to control the traveling of each vehicle, thereby improving the amount of traffic on the road and reducing traffic congestion. For example,
Patent Literature 1 discloses a vehicle-in-front following device which detects a change in the gradient of the front side of the road and changes the control mode from inter-vehicle distance control to vehicle speed control when a change in the gradient is detected in front of the road in the vicinity of, for example, a sag section (position where the road is changed from a descent to an ascent). In the vehicle-in-front following device disclosed inPatent Literature 1, the control mode is changed from inter-vehicle distance control to vehicle speed control in the vicinity of the sag section, thereby suppressing a change in the vehicle speed during vehicle-in-front following control. In particular, the vehicle-in-front following device disclosed inPatent Literature 1 prevents a phenomenon in which a change in the speed of the vehicle in front is amplified and propagated to the following vehicle even though the gradient is changed in the sag section when a plurality of vehicles travel in a line. -
- [Patent Literature 1] Japanese Unexamined Patent Application Publication No. 2002-137652
- However, in the above-mentioned technique, even when the control mode is changed to vehicle speed control in the vicinity of the sag section, deceleration propagation in which the deceleration of the vehicle in front is propagated to the following vehicle is not prevented. When the vehicles travel in a line, the deceleration of the vehicle increases toward the rear side. In the above-mentioned technique, when the control mode is changed to vehicle speed control in front of the sag section, but the deceleration propagation occurs, there is a concern that the control mode will return to inter-vehicle distance control in order to prevent the inter-vehicle distance from being too short. Therefore, in the above-mentioned technique, the control mode is changed from vehicle speed control to inter-vehicle distance control at the time when the deceleration propagation occurs, resulting in traffic congestion in which a plurality of vehicles travel in a line at a low speed. As a result, it is difficult to effectively suppress traffic congestion.
- The invention has been made in view of the above-mentioned problems and an object of the invention is to provide a vehicle control device, a vehicle control method, and a vehicle control system capable of effectively suppressing traffic congestion.
- According to an aspect of the invention, there is a provided a vehicle control device including: information acquiring means for acquiring information related to the amount of traffic on a road on which a host vehicle travels; and traveling control means for, when the amount of traffic related to the information acquired by the information acquiring means is more than a first threshold value, controlling an inter-vehicle distance between the host vehicle and other vehicles traveling on the road and the speed of the host vehicle such that the amount of traffic is equal to or more than a second threshold value.
- The amount of traffic on the road is greatly affected by the inter-vehicle distance and the vehicle speed. According to the above-mentioned structure, when the amount of traffic increases and is more than the first threshold value, the traveling control means controls the inter-vehicle distance and the vehicle speed such that the amount of traffic is a predetermined value equal to or more than a second threshold value. Therefore, it is possible to effectively suppress traffic congestion.
- The traveling control means may change the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of other vehicles which can communicate with the host vehicle.
- According to this structure, the traveling control means changes the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which can communicate with the host vehicle and have high flexibility in the control of the inter-vehicle distance and the vehicle speed by the host vehicle. Therefore, it is possible to suppress traffic congestion according to the actual situation.
- The information acquiring means may acquire information related to the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle, and the traveling control means may change the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle related to the information acquired by the information acquiring means.
- According to this structure, the traveling control means changes the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which cannot communicate with the host vehicle and have low flexibility in the control of the inter-vehicle distance and the vehicle speed by the host vehicle. Therefore, it is possible to perform vehicle control considering the actual traffic conditions and traffic flow.
- The traveling control means may change the first threshold value, depending on a region including the road.
- According to this structure, the first threshold value for starting the control of the inter-vehicle distance and the vehicle speed is changed depending on the region including the road. Therefore, for example, when the road is in the region in which traffic congestion occurs frequently, such as a sag section, the first threshold value is changed depending on the region. In this way, it is possible to effectively suppress traffic congestion.
- When the traveling control means changes the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value depending on the number of other vehicles which can communicate with the host vehicle, the information acquiring means may acquire information related to the amount of traffic in each lane of the road, and the traveling control means may control at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means.
- The amount of traffic on the road is greatly affected by the concentration of the amount of traffic in each lane. According to this embodiment, the traveling control means controls at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means. Therefore, it is possible to effectively suppress traffic congestion according to the concentration of the amount of traffic in each lane.
- According to another aspect of the invention, there is provided a vehicle control method including: a step of acquiring information related to the amount of traffic on a road on which a host vehicle travels; and a step of, when the amount of traffic related to the acquired information is more than a first threshold value, controlling an inter-vehicle distance between the host vehicle and other vehicles traveling on the road and the speed of the host vehicle such that the amount of traffic is equal to or more than a second threshold value.
- In the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value may be changed depending on the number of other vehicles which can communicate with the host vehicle.
- In the step of acquiring the information related to the amount of traffic on the road on which the host vehicle travels, information related to the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle may be acquired. In the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value may be changed depending on the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle related to the acquired information.
- In the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, the first threshold value may be changed depending on a region including the road.
- In the step of acquiring the information related to the amount of traffic on the road on which the host vehicle travels, information related to the amount of traffic in each lane of the road may be acquired. In the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, at least one of the inter-vehicle distance and the vehicle speed may be controlled on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means.
- According to still another aspect of the invention, there is provided a vehicle control system including: information acquiring means for acquiring information related to the amount of traffic on a road on which a plurality of vehicles travel; and traveling control means for, when the amount of traffic related to the information acquired by the information acquiring means is more than a first threshold value, controlling an inter-vehicle distance between at least two of the vehicles traveling on the road and the speed of at least one of the vehicles such that the amount of traffic is equal to or more than a second threshold value.
- The traveling control means may change the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which can communicate with each other.
- The information acquiring means may acquire information related to the number of vehicles which cannot communicate with each other between the vehicles which can communicate with each other, and the traveling control means may change the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which cannot communicate with each other between the vehicles which can communicate with each other related to the information acquired by the information acquiring means.
- The traveling control means may change the first threshold value, depending on a region including the road.
- The information acquiring means may acquire information related to the amount of traffic in each lane of the road, and the traveling control means may control at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information means.
- According to the vehicle control device, the vehicle control method, and the vehicle control system of the invention, it is possible to effectively suppress traffic congestion.
-
FIG. 1 is a block diagram illustrating the structure of a vehicle control device according to a first embodiment. -
FIG. 2 is a graph illustrating the relationship among the amount of traffic, a vehicle speed, and an inter-vehicle distance before and after traffic congestion occurs. -
FIG. 3 is a graph illustrating a region in which traffic congestion occurs and a region in which no traffic congestion occurs in the relationship between the inter-vehicle distance and the vehicle speed. -
FIG. 4 is a plan view illustrating an example of a situation in which the vehicle control device according to the first embodiment is applied. -
FIG. 5 is a flowchart illustrating an operation of guiding the vehicle speed and the inter-vehicle distance. -
FIG. 6 is a flowchart illustrating the details of the operation of guiding the vehicle speed and the inter-vehicle distance. -
FIG. 7 is a flowchart illustrating the details of the operation of guiding the vehicle speed and the inter-vehicle distance. -
FIG. 8 is a flowchart illustrating an operation of maintaining the guided vehicle speed and inter-vehicle distance. -
FIG. 9 is a flowchart illustrating the details of the operation of maintaining the guided vehicle speed and inter-vehicle distance. -
FIG. 10 is a flowchart illustrating the details of the operation of maintaining the guided vehicle speed and inter-vehicle distance. -
FIG. 11 is a flowchart illustrating an operation of returning the vehicle speed and the inter-vehicle distance to normal values since the vehicle passes through a sag section. -
FIG. 12 is a flowchart illustrating the details of the operation of returning the vehicle speed and the inter-vehicle distance to the normal values since the vehicle passes through the sag section. -
FIG. 13 is a flowchart illustrating a control operation for a first communication vehicle in each lane. -
FIG. 14 is a flowchart illustrating an operation when the vehicle follows the leading vehicle. -
FIG. 15 is a flowchart illustrating an operation of maintaining the guided vehicle speed. -
FIG. 16 is a block diagram illustrating the structure of a vehicle control device according to a second embodiment. -
FIG. 17 is a block diagram illustrating the structure of a vehicle control device according to a third embodiment. -
FIG. 18 is a plan view illustrating an example of a situation in which the vehicle control device according to the third embodiment is applied. -
FIG. 19 is a graph illustrating the relationship between a speed and the amount of traffic when the driver performs an operation. -
FIG. 20 is a flowchart illustrating the operation of the vehicle control device according to the third embodiment. -
FIG. 21 is graph illustrating the relationship between the amount of traffic and the vehicle speed. -
FIG. 22 is a graph illustrating a change in the vehicle speed in a driving lane and the vehicle speed in a passing lane. -
FIG. 23 is a plan view illustrating the operation of the vehicle control device according to the third embodiment. -
FIG. 24 is a flowchart illustrating the operation of a vehicle control device according to a fourth embodiment. -
FIG. 25 is a plan view illustrating the operation of the vehicle control device according to the fourth embodiment. - Hereinafter, a vehicle control device according to an embodiment of the invention will be described with reference to the accompanying drawings. The vehicle control device according to this embodiment is provided in a vehicle and performs vehicle control for improving the amount of traffic on the road. As shown in
FIG. 1 , avehicle control device 10 a according to this embodiment includes a vehicle-to-vehicle communication device 12, a road-to-vehicle communication device 14, anavigation system 16, an ECU (Electronic Control Unit) 20, and an ACC (Adaptive Cruise Control) 30. - The vehicle-to-
vehicle communication device 12 performs vehicle-to-vehicle communication to transmit or receive information about the position or speed of system-provided vehicles other than a host vehicle, or information indicating whether to turn on or off vehicle control for preventing traffic congestion. - The road-to-
vehicle communication device 14 receives information, such as the amount of traffic on the road or the speed of the vehicle traveling on the road, from a road infrastructure, such as an optical beacon communication device. In this embodiment, the road-to-vehicle communication device 14 is not necessarily essential. - The
navigation system 16 includes a GPS (Global Positioning System) that receives signals from a plurality of GPS satellites using a GPS receiver and measures the position of the host vehicle from the difference between the signals and a map information DB (Database) that stores the map information of the host vehicle. Thenavigation system 16 guides the route of the host vehicle and acquires information related to the position where the speed of the vehicle in front of the host vehicle is reduced, such as a sag section. For example, thenavigation system 16 detects the position of the host vehicle relative to the sag section and outputs the position to theECU 20. - The
ECU 20 receives information related to the position of the host vehicle relative to the sag section from thenavigation system 16 and receives information related to the relative position and relative speed of other vehicles around the host vehicle from aradar 32 of theACC 30. In addition, the ECU outputs traveling control command values, such as a target vehicle speed, acceleration and deceleration G, and a target inter-vehicle distance, to theACC 30 on the basis of the information input from thenavigation system 16 and theACC 30. - The
ACC 30 includes theradar 32 that detects the relative position and relative speed of other vehicles around the host vehicle. TheACC 30 performs traveling control on the basis of the traveling control command values from theECU 20 such that the host vehicle has the target vehicle speed, the acceleration and deceleration G, and the target inter-vehicle distance. - Next, the operation of the
vehicle control device 10 a according to this embodiment will be described. First, as a premise, the principle of reducing traffic congestion in thevehicle control device 10 a according to this embodiment will be described. As shown inFIGS. 2 and 3 , in the relationship between the amount of traffic and a vehicle speed, a region B in which there is the largest margin in the amount of traffic is disposed at a vehicle speed of about 60 km/h and an inter-vehicle distance of about 40 m immediately before traffic congestion. However, in practice, it is difficult to drive the vehicle while maintaining the region B in which there is the largest margin in the amount of traffic. When the inter-vehicle distance is gradually reduced, deceleration propagation in which the deceleration of the leading vehicle is sequentially propagated to the following vehicles occurs, or deceleration is amplified by the deceleration propagation. As a result, it is difficult to recover the vehicle speed and traffic congestion occurs (N2). - The inter-vehicle distance becomes too short due to the following causes. That is,
- (1) The vehicle speed is gradually reduced (N1) and the driver of the vehicle presses on his or her way to reduce the inter-vehicle distance.
- (2) At the position where the vehicle speed is locally reduced, such as a sag section, traffic congestion occurs and the amount of traffic increases partially.
- As a method of preventing the traffic congestion, the following methods are considered in which a road-side infrastructure checks traffic conditions and predicts traffic congestion on the basis of information from sensors which are provided on the road, thereby preventing the traffic congestion.
- (A) A method of reducing traffic inflow using a route distribution instruction
- (B) A method of restricting traffic inflow into a traffic congestion section by, for example, allowing the stopping and starting of the vehicle
- (C) A method of allowing the infrastructure side to instruct a change in, for example, vehicle speed and lane
- Alternatively, in order to prevent traffic congestion, the following method is considered in which the infrastructure side checks traffic conditions and predicts traffic congestion on the basis of information from a probe car.
- (D) A method of controlling a probe car such that a traffic flow is controlled
- However, since the methods (A) to (D) are performed on condition that the infrastructure is installed, they are not effective in the following traffic congestion.
- (a) Traffic congestion which is likely to occur at any position, such as traffic congestion caused by a breakdown, a falling object, a broken-down car, and road construction
- (b) Traffic congestion at the position where no infrastructure is installed even though the occurrence of traffic congestion has been determined
- In particular, the method (A) is performed on condition that there are (a plurality of) detour routes and is not used at positions other than the central area of a metropolitan. In addition, it is doubted whether the driver follows a detour instruction for preventing traffic congestion, not a detour instruction for avoiding traffic congestion which has occurred. In addition, each driver is likely to feel unfair (for example, difference in transit time or traveling distance) according to whether a detour instruction is given to the vehicle, which is not practical.
- The method (B) has no effect of preventing traffic congestion when traffic congestion occurs in an inflow restriction portion. In the method (C), even when a vehicle speed and a driving lane are instructed, traffic congestion occurs when the inter-vehicle distance is reduced. Therefore, the method (C) may have no effect according to the magnitude of the inter-vehicle distance. In addition, even when the driving lanes of a large number of vehicles are instructed, it is not expected that the vehicles will be moved in the way that is intended to prevent the concentration of the vehicles on the lanes. In addition, it is difficult to provide desired control information, such as the percentage and number of vehicles which are desired to change their lanes, to the drivers using a display on the road. The method (D) is suitable for a specific position and is a centralized method. Therefore, the method (D) is a large-scale method requiring standardization, which is not practical.
- Therefore, in this embodiment, before traffic congestion occurs, the inter-vehicle distance and speed of the vehicles are guided to the region B in which there is the largest margin in the amount of traffic, as shown in
FIGS. 2 and 3 (S1). That is, vehicle control is performed such that traffic congestion is less likely to occur. Specifically, in this embodiment, the vehicle control is performed by the following methods. - (1) When all the vehicles traveling on the road have a communication function and are provided with a vehicle speed control (for example, ACC/CC (Adaptive Cruise control/Cruise Control)) system, vehicle control is performed such that each vehicle has the above-mentioned inter-vehicle distance and vehicle speed. That is, the system-provided vehicle is controlled or guided to a vehicle speed and an inter-vehicle distance at which the amount of traffic is the maximum, according to the vehicle speed.
- (2) When a general vehicle without including the system is mixed on the road, vehicle control is performed such that the system-provided vehicle predicts the number of general vehicles between the system-provided vehicles and the inter-vehicle distance is maintained using the sum of the inter-vehicle distances as an upper limit.
- (3) When the inter-vehicle distance is controlled to be long after the vehicle enters a region in which the amount of traffic increases partially, such as a sag section, deceleration occurs, which results in traffic congestion. In order to prevent the problem, the system-provided vehicle predicts an inter-vehicle time (target inter-vehicle time) at the position (in the vicinity of the position where traffic congestion occurs) where the vehicle speed is the minimum before the sag section and starts vehicle speed and inter-vehicle distance control before the inter-vehicle time is equal or less than the predicted value. That is, the system-provided vehicle changes a control start position depending on the amount of traffic.
- Next, the detailed operation of the
vehicle control device 10 a according to this embodiment will be described. As shown inFIG. 4 , it is assumed that system-providedvehicles vehicle control device 10 a according to this embodiment and ageneral vehicle 200 which is not provided with thevehicle control device 10 a travel together on aroad 500. In each lane, the system-providedvehicle 100 b follows one leading system-providedvehicle 100 a. Severalgeneral vehicles 200 travel between the system-providedvehicle 100 a and the system-providedvehicle 100 b. Thevehicle control device 10 a of the following system-providedvehicle 100 b sets ACC1 and ACC2 sections in which the system-providedvehicle 100 b travels while performing inter-vehicle control and CC1 and CC2 sections in which the system-providedvehicle 100 b travels while performing cruise control, according to the distance relationship with thegeneral vehicle 200 p which travels immediately in front of the system-providedvehicle 100 b. - First, the operation of the second or subsequent system-provided
vehicle 100 b in each lane in a given section shown inFIG. 4 will be described (S11). The length of the given section is determined by the communicable distance between the system-providedvehicles vehicle 100 a in each lane is VP, the control start relative speed of the second or subsequent second system-providedvehicle 100 b in each lane is Vth, the speed of the second or subsequent system-providedvehicle 100 b in each lane is V, and the relative speed difference VP−V is less than the control start relative speed Vth (VP−V≦Vth) (S12), thevehicle control device 10 a of the system-providedvehicle 100 b performs traveling control for guiding the vehicle speed and the inter-vehicle distance (S13). For example, the time when the amount of traffic reaches 40 to 80 vehicles/minute in two lanes may be used as a traveling control start condition. Alternatively, the vehicle speed and the inter-vehicle distance at which the amount of traffic is obtained may be the traveling control start condition. - When the speed V of the system-provided
vehicle 100 b satisfies V>VOR or V>VOL (where VOR is the initial speed of the system-providedvehicle 100 b when the system-providedvehicle 100 b travels in a passing lane and traveling control starts and VOR is the initial speed of the system-providedvehicle 100 b when the system-providedvehicle 100 b travels in a driving lane and traveling control starts) (S14), thevehicle control device 10 a of the system-providedvehicle 100 b controls the speed V of the system-providedvehicle 100 b such that the speed V and the initial speeds satisfy the relationship V=VOR or V>VOL (S15). - When the target speed of the system-provided
vehicle 100 b is VRt, the additional upper limit of the target speed of the system-providedvehicle 100 b is Vd, the speed V of the system-providedvehicle 100 b satisfies V≦VRt+Vd (S16), thevehicle control device 10 a of the system-providedvehicle 100 b performs the subsequent steps. When the speed V of the system-providedvehicle 100 b satisfies V>VRt+Vd (S16), thevehicle control device 10 a of the system-providedvehicle 100 b performs Steps S13 to S16 again. The target vehicle speed VRt is appropriately changed depending on, for example, the number of other system-providedvehicles general vehicles 200, and whether there are a sag section, a curved road, a tunnel, and gradient in the region including theroad 500. For example, the target vehicle speed VRt may be set in the range of 40 km/h to 80 km/h and preferably, in the range of 60 km/h to 75 km/h. - Next, the operation of guiding the vehicle speed and the inter-vehicle distance in Step S13 will be described in detail. As shown in a case C1 of
FIGS. 6 and 4 , when the distance headway (the distance between the heads of two vehicles) between the system-providedvehicle 100 b and ageneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is LR, the speed of thegeneral vehicle 200 p is Vpre, the distance headway between the leading system-providedvehicle 100 a and the system-providedvehicle 100 b is LC, a predicted distance headway between the leading system-providedvehicle 100 a and the vehicle which is immediately in front of the system-providedvehicle 100 b is LRL, the predicted distance headway satisfies LC−LR<LRL, and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is within the predicted distance headway LRL, (S13 a), thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S13 b. - The predicted distance headway LRL between the leading system-provided
vehicle 100 a and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is calculated by the product of a target time headway TRL between the leading system-providedvehicle 100 a and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b and the target speed VRt of the leading system-providedvehicle 100 a (LRL=TRL·VRt). - It is assumed that the estimated value of the number of
general vehicles 200 between the leading system-providedvehicle 100 a and the system-providedvehicle 100 b is N. When a predicted time headway between thegeneral vehicles 200 which travel in the passing lane is TpreR and a predicted time headway between thegeneral vehicles 200 which travel in the driving lane is TpreL, the estimated value N of the number ofgeneral vehicles 200 between the leading system-providedvehicle 100 a and the system-providedvehicle 100 b can be calculated as follows: N=(LC−LR)/(TPreR−Vp) or N=(LC−LR)/(TpreL·Vp). The predicted time headways TpreR and TpreL between thegeneral vehicles 200 or the number ofgeneral vehicles 200 may be estimated by observing the distance from the vehicle which travels in an adjacent lane using theradar 32. - When a target guide time headway between the
general vehicles 200 is kTL and the margin of the predicted time headway between thegeneral vehicles 200 is kRT0, the target time headway TRL between the leading system-providedvehicle 100 a and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is calculated as follows: TRL=func(N)=kTL·N+kRT0. - In addition, the target distance headway LRt between the system-provided
vehicle 100 b and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is calculated by the product of the target speed VRt of the system-providedvehicle 100 b and a target time headway TRt between the system-providedvehicle 100 b and the vehicle which is immediately in front of the system-providedvehicle 100 b (LRt=VRt·TRt). - When LRL+LRt<LC<LRL+LRt+LRC0 is not satisfied (S13 b), that is, when the system-provided
vehicle 100 b is not in the CC1 section shown inFIG. 4 from the distance relationship with thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b, thevehicle control device 10 a of the system-providedvehicle 100 b performs steps after Step S13 c. - When LC≧LRL+LRt+LRC0 is not satisfied (S13 c), that is, when the system-provided
vehicle 100 b is in the ACC1 section, not the CC2 section, inFIG. 4 in the distance relationship with thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b, thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S13 d. In this case, thevehicle control device 10 a of the system-providedvehicle 100 b sets a target acceleration calculation intermediate value αtc such that αtc=kαL((LRL+LRt)−LC) is established (S13 d) (where kαL is an acceleration gain when ACC is performed). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to move from the ACC1 section to the CC1 section. - In Step S13 d, when LRL+LRt<LC<LRL+LRt+LRC0 is satisfied, that is, when the system-provided
vehicle 100 b is in the CC1 section inFIG. 4 , thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV(Vp−V) is established (where kαV is an acceleration gain when CC is performed) (S13 f). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to stay in the CC1 section. - In Step S13 c, when LC≧LRL+LRt+LRC0 is satisfied, that is, when the system-provided
vehicle 100 b is in the CC2 section inFIG. 4 , thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vp+Vd)−V) is established (S13 g). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b such that the distance between the system-providedvehicle 100 b and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is reduced and the system-providedvehicle 100 b moves from the CC2 section to the CC1 section. - In Step S13 a, as shown in a case C2 of
FIG. 4 , when LC−LR<LRL is not satisfied and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is not within the predicted distance headway LRL (S13 a), thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S13 e. - As shown in detail in
FIG. 7 , in Step S13 e, when LR<LRt is not satisfied (S13 e-1) and LRt≦LR<LRt+LRC1 is not satisfied (where LRC1 is the distance of the ACC2 section in which the relative vehicle speed is adjusted in the case C2) (S13 e-2), that is, when the actual distance headway is more than the target distance headway and the system-providedvehicle 100 b is out of the ACC2 section in which the relative vehicle speed is adjusted, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vp+Vd)−V) is established (S13 e-3). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to move to the ACC2 section in the case C2 ofFIG. 4 . - In Step S13 g-1, when LR<LRt is satisfied (S13 e-1), that is, when the actual distance headway is less than the target distance headway and the system-provided
vehicle 100 b is in the ACC2 section, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαL(LRt−LR) is established (S13 e-3). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to travel while maintaining the distance headway between the system-providedvehicle 100 b and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b to be the target inter-vehicle distance LRt. - In Step S13 g-2, when LRt≦LR<LRt+LRC1 is satisfied (S13 e-2), that is, when the actual distance headway is more than the target distance headway and the system-provided
vehicle 100 b is in the ACC2 section in which the relative vehicle speed is adjusted, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vpre+Vk)−V) is established (where Vk is a target value of the speed of the system-providedvehicle 100 b relative to the speed Vpre of thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b in the ACC section in which the relative vehicle speed is adjusted) (S13 e-5). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b such that the relative speed thereof to thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is equal to the target value Vk and the system-providedvehicle 100 b moves to the ACC2 section in the case C2 ofFIG. 4 . - Returning to
FIG. 6 , when the maximum acceleration of the acceleration side is αa, the maximum acceleration of the deceleration side is αd, and αtc>αa or αtc<αd is satisfied (S13 h), that is, when the target acceleration calculation intermediate value αtc is more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, thevehicle control device 10 a of the system-providedvehicle 100 b sets a target acceleration αt of the system-provided vehicle to be equal to the maximum acceleration αa or αd (αt=αa or αt=αd) (S13 i). When αtc>αa or αtc<αd is not satisfied (S13 h), that is, when the target acceleration calculation intermediate value αtc is not more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration αt of the system-provided vehicle to be equal to the target acceleration calculation intermediate value αtc (αt=αtc) (S13 j). - As described with reference to
FIGS. 5 to 7 , after thevehicle control device 10 a of the system-providedvehicle 100 b performs control for guiding the vehicle speed and the inter-vehicle distance, it performs control for maintaining the guided vehicle speed and inter-vehicle distance, as shown inFIG. 8 (S17). When V>VRt+Vd is satisfied, that is, when the speed V of the system-providedvehicle 100 b is more than the sum of the target vehicle speed VRt and the target vehicle speed added upper limit Vd (S18), thevehicle control device 10 a of the system-providedvehicle 100 b sets the speed V such that V=VRt+Vd is established (S19). The system-providedvehicle 100 b which has been decelerated to VRt+Vd once is controlled to travel using the speed V=VRt+Vd as the upper limit speed. - Next, the operation of maintaining the guided vehicle speed and inter-vehicle distance in Step S17 will be described in detail. As shown in the case C1 of
FIGS. 9 and 4 , when LC−LR<LRL is satisfied and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is within the predicted distance headway LRL (S17 a), thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S17 b. When LRL+LRt<LC<LRL+LRt+LRC0 is not satisfied (S17 b), that is, when the system-providedvehicle 100 b is not in the CC1 section ofFIG. 4 from the distance relationship with thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b, thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S17 c. - When LC≧LRL+LRt+LRC0 is not satisfied (S17 c), that is, when the system-provided
vehicle 100 b is in the ACC1 section ofFIG. 4 , not the CC2 section, in the distance relationship with thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b, thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S17 d. In this case, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαL((LRL+LRt)−LC) is established (S17 d). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to move from the ACC1 section to the CC1 section. - In Step S17 b, when LRL+LRt<LC<LRL+LRt+LRC0 is satisfied, that is, when the system-provided
vehicle 100 b is in the CC1 section ofFIG. 4 , thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV(VRt−V) is established (S170. That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to stay in the CC1 section. - In Step S17 c, when LC≧LRL+LRt+LRC0 is satisfied, that is, when the system-provided
vehicle 100 b is in the CC2 section ofFIG. 4 , thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((VRt+Vd)−V) is established (S17 g). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b such that the inter-vehicle distance between the system-providedvehicle 100 b and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is reduced and the system-providedvehicle 100 b is moved from the CC2 section to the CC1 section. - In Step S17 a, as shown in the case C2 of
FIG. 4 , when LC−LR<LRL is not satisfied and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is not within the predicted distance headway LRL (S17 a), thevehicle control device 10 a of the system-providedvehicle 100 b performs Step S17 e. - As shown in detail in
FIG. 10 , in Step S17 e, when LR<LRt is not satisfied (S17 e-1) and LRt≦LR<LRt+LRC1 is not satisfied (where LRC1 is the distance of the ACC2 section in which the relative vehicle speed is adjusted in the case C2) (S17 e-2), that is, when the actual distance headway is more than the target distance headway and the system-providedvehicle 100 b is out of the ACC2 section in which the relative vehicle speed is adjusted, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vp+Vd)−V) is established (S17 e-3). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to move to the ACC2 section in the case C2 ofFIG. 4 . - In Step S17 e-1, when LR<LRt is satisfied (S17 e-1), that is, when the actual distance headway is less than the target distance headway and the system-provided
vehicle 100 b is in the ACC2 section, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαL(LRt−LR) is established (S17 e-3). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as travel while maintaining the distance headway between the system-providedvehicle 100 b and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b to be the target inter-vehicle distance LRt. - In Step S17 g-2, when LRt≦LR<LRt+LRC1 is satisfied (S17 e-2), that is, when the actual distance headway is more than the target distance headway and the system-provided
vehicle 100 b is in the ACC2 section in which the relative vehicle speed is adjusted, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vpre+Vk)−V) is established (where Vk is a target value of the relative vehicle speed in the ACC section in which the relative vehicle speed is adjusted) (S17 e-5). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b such that the relative speed thereof to thegeneral vehicle 200 p is equal to the target value Vk and the system-providedvehicle 100 b moves to the ACC2 section in the case C2 ofFIG. 4 . - Returning to
FIG. 9 , when αtc>αa or αtc<αd is satisfied (S17 h), that is, when the target acceleration calculation intermediate value αtc is more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration αt of the system-provided vehicle to be equal to the maximum acceleration αa or αd (αt=αa or αt=αd) (S17 i). When αtc>αd or αtc<αd is not satisfied (S17 h), that is, when the target acceleration calculation intermediate value αtc is not more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration αt of the system-provided vehicle to be equal to the target acceleration calculation intermediate value αtc (αt=αtc) (S17 j). - As described with reference to
FIGS. 8 to 10 , after thevehicle control device 10 a of the system-providedvehicle 100 b performs control for maintaining the guided vehicle speed and inter-vehicle distance, it performs control for returning to a normal vehicle speed and inter-vehicle distance since the system-providedvehicle 100 b has passed through the sag section, as shown inFIG. 8 (S20). - When the speed V of the system-provided
vehicle 100 b is more than the initial vehicle speed VOR or VOL (V>VOR or V>VOL) (S21), thevehicle control device 10 a of the system-providedvehicle 100 b performs traveling control such that the speed V of the system-providedvehicle 100 b is equal to the initial vehicle speed (V=VOR=VOL) (S22). The position Xpre of thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b reaches the final position Xmax of a controllable section (S23), thevehicle control device 10 a of the system-providedvehicle 100 b sets the distance LR from thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b to a fixed value (S24) and repeatedly performs Steps S20 to S23. - Next, the operation of returning the vehicle speed and the inter-vehicle distance to normal values since the system-provided
vehicle 100 b passes through the sag section in Step S20 will be described in detail. As shown inFIG. 12 , when LR<LRt is not satisfied (S20 a) and LRt≦LR<LRt+LRC2 is not satisfied (where LRC2 is the distance of the ACC section in which the relative vehicle speed is adjusted after the sag section ends (S20 b), that is, when the actual distance headway is more than the target distance headway and the system-providedvehicle 100 b is out of the ACC section in which the relative vehicle speed is adjusted after the sag section ends, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=ααV(VOR−V) or αtc=kαv(VOL−V) is established (S20 c). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to travel at the vehicle speed initial values VOR and VOL of each lane. - In Step S20 a, when LR<LRt is satisfied (S20 a), that is, the actual distance headway less than the target distance headway and the system-provided
vehicle 100 b is in an ACC section, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαL(LRt−LR) is established (S20 c). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b so as to travel while maintaining the distance headway between the system-providedvehicle 100 b and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b to be the target inter-vehicle distance LRt. - In Step S21 d, when LRt≦LR<LRt+LRC2 is satisfied (S20 b), that is, when the actual distance headway is more than the target distance headway and the system-provided
vehicle 100 b is in the ACC section in which the relative vehicle speed is adjusted after the sag section ends, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vpre+Vk)−V) is established (where Vk is the target value of the relative vehicle speed in the ACC section in which the relative vehicle speed is adjusted (S20 e). That is, thevehicle control device 10 a controls the system-providedvehicle 100 b such that the relative speed thereof to thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 b is the target value Vk and the system-providedvehicle 100 b moves to the ACC section. - When αtc>αa or αtc<αd is satisfied (S200, that is, when the target acceleration calculation intermediate value αtc is more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, the
vehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration αt of the system-provided vehicle to be equal to the maximum acceleration αa or αd (αt=αa or αt=αd) (S20 g). When αtc>αa or αtc<αd is not satisfied (S200, that is, when the target acceleration calculation intermediate value αtc is not more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, thevehicle control device 10 a of the system-providedvehicle 100 b sets the target acceleration αt of the system-provided vehicle to be equal to the target acceleration calculation intermediate value αtc (αt=αtc) (S20 h). - Next, the operation of the first system-provided
vehicle 100 a in each lane in a given section shown inFIG. 4 will be described (S11). As shown inFIG. 13 , when the coordinate X of the system-providedvehicle 100 a in the traveling direction reaches a position Xon where vehicle speed control starts (S25) and the speed V of the system-providedvehicle 100 a is more than the target vehicle speed VRt (V≦VRt) (S26), thevehicle control device 10 a of the system-providedvehicle 100 a performs a process when the system-providedvehicle 100 a has followed the vehicle in front (S27). - Next, the process when the system-provided
vehicle 100 a has followed the vehicle in front Step S27 will be described in detail. As shown inFIG. 14 , when LR<LRt is not satisfied (S27 a) and LRt≦LR<LRt+LRC4 and V>Vpre are not satisfied (where LRC4 is the distance of the ACC section in which the relative vehicle speed is adjusted during the guidance of the first system-providedvehicle 100 a) (S27 b), that is, when the actual distance headway is more than the target distance headway, the system-providedvehicle 100 a is out of the ACC section in which the relative vehicle speed is adjusted during the guidance of the first system-providedvehicle 100 a, the speed V of the system-providedvehicle 100 a is less than the speed Vpre of thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 a, thevehicle control device 10 a of the system-provided vehicle 200 a sets the target acceleration calculation intermediate value αtb such that αtb=(VRt 2−VXon 2)/2Xd is established (S27 c). - VXon is the speed of the first system-provided
vehicle 100 a in each lane when the first system-providedvehicle 100 a passes through the position Xon and Xd is the distance of the section in which the first system-providedvehicle 100 a is initially decelerated. That is, thevehicle control device 10 a controls the traveling of the system-providedvehicle 100 a such that the vehicle speed is VRt only in the initial section corresponding to the distance Xd. - In Step S27 a, when LR<LRt is satisfied (S27 a), that is, the actual distance headway is less than the target distance headway and the system-provided
vehicle 100 a is in the ACC section, thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration calculation intermediate value αtc such that αtc=kαL(LRt−LR) is established (S27 c). That is, thevehicle control device 10 a controls the system-providedvehicle 100 a so as to travel while maintaining the distance headway between the system-providedvehicle 100 a and thegeneral vehicle 200 p which is immediately in front of the system-providedvehicle 100 a to be the target inter-vehicle distance LRt. - In Step S27 b, when LRt≦LR<LRt+LRC4 and V>Vpre are satisfied (S27 b), that is, the actual distance headway is more than the target distance headway, the first system-provided
vehicle 100 a is out of the ACC section in which the relative vehicle speed is adjusted during guidance, and the speed V of the first system-providedvehicle 100 a is more than the speed Vpre of thegeneral vehicle 200 p in front, thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vpre+Vk)−V) is established (where Vk is a target value of the relative vehicle speed in the ACC section in which the relative vehicle speed is adjusted (S27 e). That is, thevehicle control device 10 a controls the system-providedvehicle 100 a such that the relative speed thereof to thegeneral vehicle 200 p immediately in front is equal to the target value Vk and the system-providedvehicle 100 a moves to the ACC section. - In Steps S27 d and S27 e, when αtc>αa or αtc<αd is satisfied (S27 f), that is, the target acceleration calculation intermediate value αtc is more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, the
vehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration αt of the system-provided vehicle to be equal to the maximum acceleration αa or αd (αt=αa or αt=αd) (S27 g). - In Step S27 c, S27 f, or S27 g, when αtb≦αtc is satisfied (S27 h), the
vehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration αt such that αt=αtb is established (S27 i). In Step S27 c, 527 f, or S27 g, when αtb>αtc is satisfied (S27 h), thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration αt such that αt=αtc is established (S27 j). - Returning to
FIG. 13 , in Step S26, when the speed V of the system-providedvehicle 100 a is equal to or less than the target vehicle speed VRt (V≦VRt) (S26), thevehicle control device 10 a of the system-providedvehicle 100 a performs control to maintain the guided vehicle speed (S28). - Next, the control process of maintaining the guided vehicle speed in Step S28 will be described in detail. As shown in
FIG. 15 , when LR<LRt is not satisfied (S28 a) and LRt≦LR<LRt+LRC3 is not satisfied (where LRC3 is the distance of the ACC section in which the relative vehicle speed is adjusted when the speed of the first system-providedvehicle 100 a is maintained) (S28 b), that is, when the actual distance headway is more than the target distance headway and the first system-providedvehicle 100 a is out of the ACC section in which the relative vehicle speed is adjusted when the vehicle speed is maintained, thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration calculation intermediate value αtc such that αtc=kαV(VRt−V) is established (S28 c). That is, thevehicle control device 10 a controls the system-providedvehicle 100 a so as to travel at the target vehicle speed VRt. - In Step S29 a, when LR<LRt is satisfied (S28 a), that is, the actual distance headway is less than the target distance headway and the system-provided
vehicle 100 a is in the ACC section, thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration calculation intermediate value αtc such that αtc=kαL(LRt−LR) is established (S28 d). That is, thevehicle control device 10 a controls the system-providedvehicle 100 a so as to travel while maintaining the distance headway between the system-providedvehicle 100 a and thegeneral vehicle 200 p immediately in front to be the target inter-vehicle distance LRt. - In Step S28 b, when LRt≦LR<LRt+LRC3 is satisfied (S28 b), that is, when the actual distance headway is more than the target distance headway and the system-provided
vehicle 100 a is in the ACC section in which the relative vehicle speed is adjusted during the maintenance of the vehicle speed, thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration calculation intermediate value αtc such that αtc=kαV((Vpre+Vk)−V) is established (where Vk is the target value of the relative vehicle speed in the ACC section in which the relative vehicle speed is adjusted) (S28 e). That is, thevehicle control device 10 a controls the system-providedvehicle 100 a such that the relative speed thereof to thegeneral vehicle 200 p immediately in front is equal to the target value Vk and the system-providedvehicle 100 a moves to the ACC section. - When αtc>αa or αtc<αd is satisfied (S28 f), that is, the target acceleration calculation intermediate value αtc is more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, the
vehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration αt of the system-provided vehicle to be equal to the maximum acceleration αa or αd (αt=αa or αt=αd) (S28 g). When αtc>αa or αtc<αd is not satisfied (S28 f), that is, when the target acceleration calculation intermediate value αtc is not more than the maximum acceleration αa or αd of the acceleration side or the deceleration side, thevehicle control device 10 a of the system-providedvehicle 100 a sets the target acceleration αt of the system-provided vehicle to be equal to the target acceleration calculation intermediate value αtc (αt=ttc (S28 h). - Returning to
FIG. 13 , when V>VRt is satisfied, that is, when the speed V of the system-providedvehicle 100 a is more than the target vehicle speed VRt (S29), thevehicle control device 10 a of the system-providedvehicle 100 a sets the speed V to be equal to VRt and controls the system-providedvehicle 100 a so as to travel using the speed V=VRt as the upper limit speed. - The amount of traffic on the road is greatly affected by both the inter-vehicle distance and the vehicle speed. According to this embodiment, when the amount of traffic is increases and is more than a threshold value, the
ECU 20 and theACC 30 controls the inter-vehicle distance and the vehicle speed such that the amount of traffic becomes a value equal to or more than the threshold value. In this way, it is possible to effectively suppress traffic congestion. - In this embodiment, the
ECU 20 and theACC 30 changes the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the threshold value, according to the number of system-providedvehicles vehicle - In this embodiment, the
ECU 20 and theACC 30 changes the inter-vehicle distance such that the amount of traffic is equal to or more than the threshold value, according to the number N ofgeneral vehicles 200 disposed between the system-providedvehicles vehicle - In this embodiment, the
ECU 20 and theACC 30 change the threshold value for starting the control of the inter-vehicle distance and the vehicle speed, depending on the region including the road. Therefore, for example, when the road is in the region in which traffic congestion occurs frequently, such as a sag section, theECU 20 and theACC 30 change the threshold value depending on the region. Therefore, it is possible to effectively suppress traffic congestion. - Next, a second embodiment of the invention will be described. As shown in
FIG. 16 , avehicle control device 10 b according to this embodiment differs from the vehicle control device according to the first embodiment in that it does not include the vehicle-to-vehicle communication device 12 and the road-to-vehicle communication device 14 and an MM (Multimedia)communication device 18 is connected to thenavigation system 16. TheMM communication device 18 is for receiving information related to the penetration rate of the system-providedvehicles - In this embodiment, the vehicle control device does not have a communication function, but the system-provided vehicle having a vehicle speed and inter-vehicle distance control function, such as the function of an
ACC 30, predicts the percentage of the system-provided vehicles from information related to the penetration rate of the system-provided vehicles received by theMM communication device 18, predicts the number of general vehicles disposed between the system-provided vehicles on the basis of the predicted percentage, and adjusts the inter-vehicle distance using the sum of the inter-vehicle distances as the upper limit, similarly to the first embodiment. Therefore, in this embodiment, it is possible to perform vehicle control for preventing traffic congestion, without a communication function or even in the section other than the communicable range. - Next, a third embodiment of the invention will be described. In this embodiment, vehicle control is performed to uniformly distribute the vehicles traveling in the lane, thereby preventing traffic congestion. As shown in
FIG. 17 , avehicle control device 10 c according to this embodiment is provided in a vehicle and includes aninput unit 50, a calculatingunit 60, and acontrol unit 70. - The
input unit 50 includes an infrastructureinformation receiving system 51, a vehicle-to-vehicle communication system 52, a vehicle-in-frontspeed detecting system 53, and a drivinglane recognizing system 54. The infrastructureinformation receiving system 51 receives information, such as the average speed of the road in each lane, the amount of traffic (the number of vehicles per unit time), and the possibility of traffic congestion transmitted from, for example, a management center, from an optical beacon communication device, which is a road infrastructure. The vehicle-to-vehicle communication system 52 performs vehicle-to-vehicle communication to transmit or receive information about the position or speed system-provided vehicles other than the host vehicle, or information about whether to turn on or off vehicle control for preventing traffic congestion. Specifically, the vehicle-in-frontspeed detecting system 53 is, for example, an inter-vehicle distance sensor that measures the distance from the vehicle in front. The travelinglane recognizing system 54 detects the lane in which the host vehicle travels using an autonomous sensor, such as a camera. - The calculating
unit 60 includes a traffic flowimprovement control system 61. The traffic flowimprovement control system 61 performs control for improving the traffic flow of the road on the basis of various kinds of information acquired by theinput unit 50. Thecontrol unit 70 includes anengine control ECU 71 that controls an engine on the basis of a command signal from the calculatingunit 60, abrake control ECU 72 that controls a brake, and asteering control ECU 73 that controls steering. - Next, the operation of the
vehicle control device 10 c according to this embodiment will be described. First, as a premise, a situation in which thevehicle control device 10 c according to this embodiment is applied will be described. As shown inFIG. 18 , it is assumed that the amount of traffic increases immediately before traffic congestion occurs in aroad 500. In this case, as shown in a portion surrounded by a dashed line inFIG. 18 , thegeneral vehicles 200 that quicken their pace are concentrated on the driving lane. In this state, when there is a vehicle which reduces its speed due to, for example, a sag section, traffic congestion occurs. - As shown in
FIG. 19 , statistical data proved that the traffic capacity of the road increased more effectively when the vehicles traveled in the low speed range than when the vehicles traveled at the maximum speed. Therefore, in this embodiment, traffic congestion is prevented by the following procedure. - As shown in
FIGS. 20 and 23 , a system-providedvehicle 100 including the travelingcontrol device 10 c recognizes the lane in which the host vehicle travels using the traveling lane recognizing system 54 (S101). An optical beacon communication device transmits the traffic conditions, such as the number of vehicles per unit time in each lane and the average speed detected by aroad infrastructure 600 and the system-providedvehicle 100 receives the traffic conditions using the infrastructure information receiving system 51 (S102). In the example shown inFIG. 23 , as shown in a portion surrounded by a dashed line on the left side ofFIG. 23 , the general vehicle changes its lane to the driving lane which is on the left side in the traveling direction and the vehicles are concentrated on the driving lane. - The traffic flow
improvement control system 61 of the calculatingunit 60 compares various kinds of information of each lane acquired by theinput unit 50, such as the amount of traffic σ=as(n) of the lane of the host vehicle, the amount of traffic σ=ar(n) of other lanes, the average vehicle speed V=vs(n) of the lane of the host vehicle, and the average vehicle speed V=vr(n) of other lanes (S103). The traffic flowimprovement control system 61 of the calculatingunit 60 determines which of a region R1 and a region R2 includes the traffic conditions of the lane of the host vehicle and which of the regions R1 and R2 includes the traffic conditions of other lanes in the map shown inFIG. 21 (S104). This determination may be performed by the road infrastructure and the determination result may be transmitted to the system-providedvehicle 100. - When other lanes are included in the region R1 and the lane of the host vehicle is included in the region R2, that is, when the amount of traffic of the lane of the host vehicle is more than the amount of traffic of other lane (S105), the traffic flow
improvement control system 61 performs control to reduce the speed of the host vehicle to an arbitrary set vehicle speed (S106). In this case, the traffic flowimprovement control system 61 reduces the speed of the host vehicle by a predetermined value V1. The traffic flowimprovement control system 61 sufficiently reduces acceleration −a1. Alternatively, in this case, the traffic flowimprovement control system 61 may reduce the speed of the host vehicle by V2 with respect to the average vehicle speed vr(n) of other lanes. When both the lane of the host vehicle and other lanes are included in the region R2, the amount of traffic of the lane of the host vehicle may be more than that of other lanes. - In this case, as shown in a portion surrounded by a dashed lie on the right side of
FIG. 23 , since the speed of the lane of the host vehicle is reduced and the amount of traffic of another adjacent lane is less than the amount of traffic of the lane of the host vehicle, the host vehicle is guided to change its lane to another adjacent lane. In this case, when the concentration of the vehicles on the lane of the host vehicle is not removed, the traffic flowimprovement control system 61 reduces the speed of the host vehicle again. - When other lanes are included in the region R1 and the lane of the host vehicle is not included in the region R2, that is, when the amount of traffic of the lane of the host vehicle is not more than the amount of traffic of other lanes and the concentration of the vehicles on the lane of the host vehicle is removed (S107), during speed reduction control (S108), the traffic flow
improvement control system 61 gradually returns the vehicle speed to an arbitrary set vehicle speed while detecting the distance from the vehicle in front using the vehicle-in-front speed detecting system 53 (S109). The reason is that, when the vehicle speeds are alternately reduced in each lane, the vehicle speed becomes too low. - In this case, the traffic flow
improvement control system 61 returns the speed of the host vehicle to the value before the speed reduction control is performed. In addition, in this case, the traffic flowimprovement control system 61 sufficiently reduces acceleration a2. In addition, the traffic flowimprovement control system 61 increases the speed of the host vehicle by V2 with respect to the average vehicle speed vr(n) of other lanes. Alternatively, the traffic flowimprovement control system 61 may set the speed of the host vehicle to be equal to the average vehicle speed vr(n) of other lanes. As shown inFIG. 22 , the vehicle speeds of the driving lane and the passing lane are alternately increased and decreased by the above-mentioned control operation and the concentration of the vehicles on the lane is removed. - In addition, a situation in which information cannot be acquired from the road infrastructure is considered. In this case, the vehicle tends to move to the lane in which the average speed is more than that in other lanes. Therefore, it is possible to reduce the concentration of the vehicles on the lane by sharing information, which is related to the lane and speed of the vehicles traveling, between the system-provided
vehicles 100 using the vehicle-to-vehicle communication system 52 and alternately increasing and decreasing the vehicle speed. - In this case, as shown in
FIG. 24 , the system-providedvehicle 100 provided with the travelingcontrol device 10 c recognizes the lane of the host vehicle using the traveling lane recognizing system 54 (S201). The system-providedvehicles 100 share the information related to the lane and the vehicle speed using the vehicle-to-vehicle communication system 52 (S202). In this case, the traveling control device may acquire data for the position where traffic congestion occurs, such as a sag section, from, for example, a navigation system and start control at a position X2 km ahead of the sag section, and cancel the control after the vehicle passes through the sag section. - The traffic flow
improvement control system 61 of the calculatingunit 60 calculates the average vehicle speed V=vs(n) of the lane of the host vehicle and the average vehicle speed V=vr(n) of other lanes in the range of X1 m before and after the host vehicle on the basis of the information of each lane acquired by the vehicle-to-vehicle communication system 52 (S203). When vs(n)>vr(n)+ΔV1 is satisfied, that is, the average vehicle speed of the lane of the host vehicle is more than the sum of the average vehicle speed of other lanes and a predetermined threshold value ΔV1 (S204) and the state is maintained for a unit time T1 (S205), the traffic flowimprovement control system 61 performs control to reduce the speed of the host vehicle to an arbitrary set vehicle speed (S206). - On the other hand, when vs(n)>vr(n)+ΔV1 is not satisfied, that is, the average vehicle speed of the lane of the host vehicle is not more than the sum of the average vehicle speed of other lanes and the predetermined threshold value ΔV1 (S204) and the state is maintained for the unit time T1 (S207), the traffic flow
improvement control system 61 performs control to increase the speed of the host vehicle to an arbitrary set vehicle speed (S208). - As such, in this embodiment, speed control is performed when the conditions of Step S204 are maintained for the unit time T1. In this way, after the speed is changed, the vehicle speed is maintained for the time T1 and then the setting of the vehicle speed of each lane is changed. In this case, the average vehicle speed vr of other lanes are set such that the accelerational at that time is sufficiently reduced. In addition, the set vehicle speed of each lane may be, for example, V3=|vs(n)−vr(n)|+Δv2.
- The amount of traffic on the road is greatly affected by the concentration of the amount of traffic in each lane. According to this embodiment, the traffic flow
improvement control system 61 of the calculatingunit 60 controls at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by theinput unit 50. Therefore, it is possible to effectively suppress traffic congestion according to the concentration of the amount of traffic in each lane. - The exemplary embodiments of the invention have been described above, but the invention is not limited to the above-described embodiments. Various modifications and changes of the invention can be made. For example, in the above-described embodiments, the vehicle control device provided in each system-provided vehicle performs vehicle control for preventing traffic congestion. However, for example, the vehicle control device may be provided only in the management center and transmit commands from the management center to each vehicle using communication, thereby performing the vehicle control for preventing traffic congestion.
- According to the invention, it is possible to effectively suppress traffic congestion when the penetration rate of system-provided vehicles including the vehicle control device according to the invention is low.
-
-
- 10 a, 10 b, 10 c: VEHICLE CONTROL DEVICE
- 12: VEHICLE-TO-VEHICLE COMMUNICATION DEVICE
- 14: ROAD-TO-VEHICLE COMMUNICATION DEVICE
- 16: NAVIGATION SYSTEM
- 18: MM COMMUNICATION DEVICE
- 20: ECU
- 30: ACC
- 32: RADAR
- 50: INPUT UNIT
- 51: INFRASTRUCTURE INFORMATION RECEIVING SYSTEM
- 52: VEHICLE-TO-VEHICLE COMMUNICATION SYSTEM
- 53: VEHICLE-IN-FRONT SPEED DETECTING SYSTEM (FOR EXAMPLE, INTER-VEHICLE DISTANCE SENSOR)
- 54: TRAVELING LANE RECOGNIZING SYSTEM (FOR EXAMPLE, CAMERA)
- 60: CALCULATING UNIT
- 61: TRAFFIC FLOW IMPROVEMENT CONTROL SYSTEM
- 70: CONTROL UNIT
- 71: ENGINE CONTROL ECU
- 72: BRAKE CONTROL ECU
- 73: STEERING CONTROL ECU
- 100, 100 a, 100 b: SYSTEM-PROVIDED VEHICLE
- 200, 200 p: GENERAL VEHICLE
- 500: ROAD
- 600: OPTICAL BEACON COMMUNICATION DEVICE
Claims (16)
1-15. (canceled)
16: A vehicle control device comprising:
information acquiring unit for acquiring information related to the amount of traffic on a road on which a host vehicle travels; and
traveling control unit for, when the amount of traffic related to the information acquired by the information acquiring unit is more than a first threshold value, controlling an inter-vehicle distance between the host vehicle and other vehicles traveling on the road and the speed of the host vehicle such that the amount of traffic is equal to or more than a second threshold value.
17: The vehicle control device according to claim 16 ,
wherein the traveling control unit changes the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of other vehicles which can communicate with the host vehicle.
18: The vehicle control device according to claim 16 ,
wherein the information acquiring unit acquires information related to the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle, and
the traveling control unit changes the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle related to the information acquired by the information acquiring unit.
19: The vehicle control device according to claim 16 ,
wherein the traveling control unit changes the first threshold value, depending on a region including the road.
20: The vehicle control device according to claim 17 ,
wherein the information acquiring unit acquires information related to the amount of traffic in each lane of the road, and
the traveling control unit controls at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information acquiring unit.
21: A vehicle control method comprising:
a step of acquiring information related to the amount of traffic on a road on which a host vehicle travels; and
a step of, when the amount of traffic related to the acquired information is more than a first threshold value, controlling an inter-vehicle distance between the host vehicle and other vehicles traveling on the road and the speed of the host vehicle such that the amount of traffic is equal to or more than a second threshold value.
22: The vehicle control method according to claim 21 ,
wherein, in the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value are changed depending on the number of other vehicles which can communicate with the host vehicle.
23: The vehicle control method according to claim 21 ,
wherein, in the step of acquiring the information related to the amount of traffic on the road on which the host vehicle travels, information related to the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle is acquired, and
in the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value is changed depending on the number of other vehicles which cannot communicate with the host vehicle between the host vehicle and other vehicles which can communicate with the host vehicle related to the acquired information.
24: The vehicle control method according to claim 21 ,
wherein, in the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, the first threshold value is changed depending on a region including the road.
25: The vehicle control method according to claim 22 ,
wherein, in the step of acquiring the information related to the amount of traffic on the road on which the host vehicle travels, information related to the amount of traffic in each lane of the road is acquired, and
in the step of controlling the inter-vehicle distance and the vehicle speed such that the amount of traffic is equal to or more than the second threshold value, at least one of the inter-vehicle distance and the vehicle speed is controlled on the basis of the amount of traffic in each lane of the road related to the information acquired.
26: A vehicle control system comprising:
information acquiring unit for acquiring information related to the amount of traffic on a road on which a plurality of vehicles travel; and
traveling control unit for, when the amount of traffic related to the information acquired by the information acquiring unit is more than a first threshold value, controlling an inter-vehicle distance between at least two of the vehicles traveling on the road and the speed of at least one of the vehicles such that the amount of traffic is equal to or more than a second threshold value.
27: The vehicle control system according to claim 26 ,
wherein the traveling control unit changes the inter-vehicle distance and the vehicle speed at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which can communicate with each other.
28: The vehicle control system according to claim 26 ,
wherein the information acquiring unit acquires information related to the number of vehicles which cannot communicate with each other between the vehicles which can communicate with each other, and
the traveling control unit changes the inter-vehicle distance at which the amount of traffic is equal to or more than the second threshold value, depending on the number of vehicles which cannot communicate with each other between the vehicles which can communicate with each other related to the information acquired by the information acquiring unit.
29: The vehicle control system according to claim 26 ,
wherein the traveling control unit changes the first threshold value, depending on a region including the road.
30: The vehicle control system according to claim 27 ,
wherein the information acquiring unit acquires information related to the amount of traffic in each lane of the road, and
the traveling control unit controls at least one of the inter-vehicle distance and the vehicle speed on the basis of the amount of traffic in each lane of the road related to the information acquired by the information acquiring unit.
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
PCT/JP2009/063426 WO2011013202A1 (en) | 2009-07-28 | 2009-07-28 | Vehicle control device, vehicle control method, and vehicle control system |
Related Parent Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/JP2009/063426 A-371-Of-International WO2011013202A1 (en) | 2009-07-28 | 2009-07-28 | Vehicle control device, vehicle control method, and vehicle control system |
Related Child Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US14/026,873 Division US8781707B2 (en) | 2009-07-28 | 2013-09-13 | Vehicle control device, vehicle control method, and vehicle control system |
Publications (1)
Publication Number | Publication Date |
---|---|
US20120123660A1 true US20120123660A1 (en) | 2012-05-17 |
Family
ID=43528879
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US13/387,284 Abandoned US20120123660A1 (en) | 2009-07-28 | 2009-07-28 | Vehicle control device, vehicle control method, and vehicle control system |
US14/026,873 Active US8781707B2 (en) | 2009-07-28 | 2013-09-13 | Vehicle control device, vehicle control method, and vehicle control system |
Family Applications After (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US14/026,873 Active US8781707B2 (en) | 2009-07-28 | 2013-09-13 | Vehicle control device, vehicle control method, and vehicle control system |
Country Status (5)
Country | Link |
---|---|
US (2) | US20120123660A1 (en) |
EP (2) | EP2461303A4 (en) |
JP (1) | JPWO2011013202A1 (en) |
CN (1) | CN102470869A (en) |
WO (1) | WO2011013202A1 (en) |
Cited By (32)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20130103294A1 (en) * | 2010-06-29 | 2013-04-25 | Honda Motor Co., Ltd | Method of displaying traffic congestion estimation |
JP2013206055A (en) * | 2012-03-28 | 2013-10-07 | Fujitsu Ltd | Traveling situation management method and traveling situation management device |
US20130268152A1 (en) * | 2012-04-04 | 2013-10-10 | Honda Motor Co., Ltd. | Electric vehicle driving support system |
US20140095059A1 (en) * | 2012-09-28 | 2014-04-03 | Skobbler Gmbh | Method to determine traffic characteristics in road traffic |
US8781707B2 (en) | 2009-07-28 | 2014-07-15 | Toyota Jidosha Kabushiki Kaisha | Vehicle control device, vehicle control method, and vehicle control system |
US20140207357A1 (en) * | 2011-11-10 | 2014-07-24 | Mitsubishi Electric Corporation | Vehicle-side system |
US20140365104A1 (en) * | 2011-06-22 | 2014-12-11 | Nissan Motor Co., Ltd. | Vehicle driving control system |
US8972080B2 (en) | 2010-07-29 | 2015-03-03 | Toyota Jidosha Kabushiki Kaisha | Traffic control system, vehicle control system, traffic regulation system, and traffic control method |
US20150166085A1 (en) * | 2013-12-18 | 2015-06-18 | Thales Canada Inc | Communication system for guideway mounted vehicle and method of using the same |
US9150221B2 (en) | 2009-07-29 | 2015-10-06 | Toyota Jidosha Kabushiki Kaisha | Vehicle controller, control method for vehicle and control system for vehicle |
US9174643B2 (en) | 2009-07-28 | 2015-11-03 | Toyota Jidosha Kabushiki Kaisha | Vehicle control device, vehicle control method, and vehicle control system |
EP3081447A1 (en) | 2015-04-14 | 2016-10-19 | Honda Research Institute Europe GmbH | Intelligent gap setting for adaptive cruise control |
US9616888B2 (en) * | 2014-12-08 | 2017-04-11 | Ford Global Technologies, Llc | Vehicle speed adjustment |
US20170168503A1 (en) * | 2015-12-11 | 2017-06-15 | Avishtech, Llc | Autonomous vehicle towing system and method |
US20180047292A1 (en) * | 2016-08-10 | 2018-02-15 | Toyota Jidosha Kabushiki Kaisha | Autonomous driving system and autonomous driving vehicle |
US20180061236A1 (en) * | 2015-03-18 | 2018-03-01 | Nec Corporation | Driving control device, driving control method, and vehicle-to-vehicle communication system |
US9928746B1 (en) | 2016-09-16 | 2018-03-27 | Ford Global Technologies, Llc | Vehicle-to-vehicle cooperation to marshal traffic |
US10356643B2 (en) * | 2015-09-02 | 2019-07-16 | Panasonic Intellectual Property Management Co., Ltd. | Base station apparatus and communication method |
US10369998B2 (en) | 2016-08-22 | 2019-08-06 | Peloton Technology, Inc. | Dynamic gap control for automated driving |
US20190263403A1 (en) * | 2018-02-27 | 2019-08-29 | Mando Corporation | Adaptive cruise control system and method based on peripheral situations of vehicle |
US10520952B1 (en) | 2011-07-06 | 2019-12-31 | Peloton Technology, Inc. | Devices, systems, and methods for transmitting vehicle data |
US10732645B2 (en) | 2011-07-06 | 2020-08-04 | Peloton Technology, Inc. | Methods and systems for semi-autonomous vehicular convoys |
US10762791B2 (en) | 2018-10-29 | 2020-09-01 | Peloton Technology, Inc. | Systems and methods for managing communications between vehicles |
US20210020034A1 (en) * | 2018-02-14 | 2021-01-21 | Tomtom Traffic B.V. | Methods and Systems for Generating Traffic Volume or Traffic Density Data |
US10899323B2 (en) | 2018-07-08 | 2021-01-26 | Peloton Technology, Inc. | Devices, systems, and methods for vehicle braking |
US20210387651A1 (en) * | 2020-06-15 | 2021-12-16 | Toyota Jidosha Kabushiki Kaisha | Vehicle controller and method for controlling vehicle |
US11334092B2 (en) | 2011-07-06 | 2022-05-17 | Peloton Technology, Inc. | Devices, systems, and methods for transmitting vehicle data |
US11360485B2 (en) | 2011-07-06 | 2022-06-14 | Peloton Technology, Inc. | Gap measurement for vehicle convoying |
US11427196B2 (en) | 2019-04-15 | 2022-08-30 | Peloton Technology, Inc. | Systems and methods for managing tractor-trailers |
US20230077036A1 (en) * | 2020-04-17 | 2023-03-09 | Mitsubishi Electric Corporation | Vehicle travel control device |
US11694548B2 (en) | 2018-11-28 | 2023-07-04 | Toyota Jidosha Kabushiki Kaisha | Mitigation of traffic oscillation on roadway |
US11967230B2 (en) | 2018-05-16 | 2024-04-23 | NoTraffic Ltd. | System and method for using V2X and sensor data |
Families Citing this family (23)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US8688321B2 (en) * | 2011-07-11 | 2014-04-01 | Ford Global Technologies, Llc | Traffic density estimation |
DE102012210069A1 (en) | 2012-06-14 | 2013-12-19 | Continental Teves Ag & Co. Ohg | Method and system for adapting a vehicle start-up behavior to a traffic signal system and use of the system |
JP5668741B2 (en) * | 2012-10-04 | 2015-02-12 | 株式会社デンソー | Convoy travel device |
JP5737316B2 (en) * | 2013-04-17 | 2015-06-17 | 株式会社デンソー | Convoy travel system |
JP6507839B2 (en) * | 2015-05-19 | 2019-05-08 | 株式会社デンソー | Vehicle travel control device |
US9666079B2 (en) * | 2015-08-20 | 2017-05-30 | Harman International Industries, Incorporated | Systems and methods for driver assistance |
JP6623906B2 (en) * | 2015-09-08 | 2019-12-25 | 株式会社Jvcケンウッド | VEHICLE DISPLAY AND VEHICLE DISPLAY METHOD |
US9671785B1 (en) * | 2016-03-29 | 2017-06-06 | Delphi Technologies, Inc. | V2X object-location verification system for automated vehicles |
US10126136B2 (en) | 2016-06-14 | 2018-11-13 | nuTonomy Inc. | Route planning for an autonomous vehicle |
US11092446B2 (en) | 2016-06-14 | 2021-08-17 | Motional Ad Llc | Route planning for an autonomous vehicle |
US10309792B2 (en) | 2016-06-14 | 2019-06-04 | nuTonomy Inc. | Route planning for an autonomous vehicle |
US9747793B1 (en) * | 2016-08-21 | 2017-08-29 | International Business Machines Corporation | Transportation vehicle traffic management |
CN107967802B (en) * | 2016-10-19 | 2020-06-16 | 阿里巴巴(中国)有限公司 | Bus speed determination method and device |
US10331129B2 (en) | 2016-10-20 | 2019-06-25 | nuTonomy Inc. | Identifying a stopping place for an autonomous vehicle |
US10681513B2 (en) | 2016-10-20 | 2020-06-09 | nuTonomy Inc. | Identifying a stopping place for an autonomous vehicle |
US10857994B2 (en) | 2016-10-20 | 2020-12-08 | Motional Ad Llc | Identifying a stopping place for an autonomous vehicle |
US10473470B2 (en) | 2016-10-20 | 2019-11-12 | nuTonomy Inc. | Identifying a stopping place for an autonomous vehicle |
JP6586685B2 (en) * | 2017-12-27 | 2019-10-09 | 本田技研工業株式会社 | Vehicle control device, vehicle control method, and program |
JP7062959B2 (en) * | 2018-01-12 | 2022-05-09 | オムロン株式会社 | Vehicle detectors, vehicle detection methods, and vehicle detection programs |
CN108257405A (en) * | 2018-02-02 | 2018-07-06 | 斑马网络技术有限公司 | Wagon flow managing and control system and its wagon flow management-control method |
JP7029322B2 (en) * | 2018-03-15 | 2022-03-03 | 本田技研工業株式会社 | Vehicle control devices, vehicle control methods, and programs |
CN112887896B (en) * | 2019-11-13 | 2023-04-07 | 中移物联网有限公司 | Scenic spot traffic flow statistical method, device and server |
US11749108B2 (en) * | 2021-03-31 | 2023-09-05 | Honda Motor Co., Ltd. | System and method for lane level traffic state estimation |
Citations (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20020059017A1 (en) * | 2000-10-16 | 2002-05-16 | Kenichiro Yamane | Probe car control method and traffic control system |
US20060155427A1 (en) * | 2003-02-27 | 2006-07-13 | Shaopeng Yang | Road traffic control method and traffic facilities |
US7206686B2 (en) * | 2003-11-10 | 2007-04-17 | Honda Motor Co., Ltd. | System and method for detecting an object ahead of a vehicle and controlling the vehicle in response to the detected object |
US7804423B2 (en) * | 2008-06-16 | 2010-09-28 | Gm Global Technology Operations, Inc. | Real time traffic aide |
US20120072089A1 (en) * | 2009-05-11 | 2012-03-22 | Toyota Jidosha Kabushiki Kaisha | Vehicle group control method and vehicle |
US8185300B2 (en) * | 2008-08-07 | 2012-05-22 | Aisin Aw Co., Ltd. | Safe driving evaluation system, method, and program |
US20120239253A1 (en) * | 2011-03-16 | 2012-09-20 | GM Global Technology Operations LLC | Method for operating a driver assistance system and driver assistance system |
US20130138320A1 (en) * | 2010-08-09 | 2013-05-30 | Toyota Jidosha Kabushiki Kaisha | Vehicle control device, vehicle control system and traffic control system |
Family Cites Families (22)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP3191621B2 (en) * | 1995-03-14 | 2001-07-23 | トヨタ自動車株式会社 | Vehicle travel guidance system |
JP3656293B2 (en) * | 1995-09-29 | 2005-06-08 | 株式会社エクォス・リサーチ | Automatic transmission control device for vehicle |
JPH11250396A (en) | 1998-02-27 | 1999-09-17 | Hitachi Ltd | Device and method for displaying vehicle position information |
JP4384798B2 (en) * | 2000-10-17 | 2009-12-16 | 本田技研工業株式会社 | Auto cruise equipment |
JP3777970B2 (en) | 2000-11-02 | 2006-05-24 | 日産自動車株式会社 | Preceding vehicle tracking control device |
JP2002298281A (en) * | 2001-03-30 | 2002-10-11 | Foundation For The Promotion Of Industrial Science | Traffic volume prediction device, traffic volume prediction method, traffic information center and onboard navigation system |
US6882923B2 (en) | 2002-10-17 | 2005-04-19 | Ford Global Technologies, Llc | Adaptive cruise control system using shared vehicle network data |
US7554982B2 (en) | 2003-05-16 | 2009-06-30 | Oki Electric Industry Co., Ltd. | Communication terminal and communication network |
JP4432587B2 (en) * | 2004-04-06 | 2010-03-17 | トヨタ自動車株式会社 | Vehicle driving force control device and driving force control method |
JP2006185136A (en) * | 2004-12-27 | 2006-07-13 | Nissan Motor Co Ltd | Travel supporting device for vehicle |
JP4912007B2 (en) | 2005-03-28 | 2012-04-04 | 株式会社Ihi | Traffic jam mitigation device and method |
US7454288B2 (en) | 2005-07-29 | 2008-11-18 | Gm Global Technology Operations, Inc. | System and method for clustering probe vehicles for real-time traffic application |
US20070083318A1 (en) | 2005-10-07 | 2007-04-12 | Parikh Jayendra S | Adaptive cruise control using vehicle-to-vehicle wireless communication |
JP4806618B2 (en) * | 2006-10-02 | 2011-11-02 | ルネサスエレクトロニクス株式会社 | In-vehicle control device and congestion relief support method |
JP2008094167A (en) | 2006-10-06 | 2008-04-24 | Toyota Motor Corp | Travelling control support system, and travelling controller and travelling stability determination device constituting the system |
JP4539666B2 (en) * | 2007-03-19 | 2010-09-08 | アイシン・エィ・ダブリュ株式会社 | Traffic condition calculation system |
JP4715826B2 (en) * | 2007-09-28 | 2011-07-06 | 住友電気工業株式会社 | Vehicle driving support system, driving support device, vehicle, and vehicle driving support method |
JP5273250B2 (en) | 2009-07-28 | 2013-08-28 | トヨタ自動車株式会社 | Vehicle control apparatus, vehicle control method, and vehicle control system |
EP2461303A4 (en) * | 2009-07-28 | 2015-05-27 | Toyota Motor Co Ltd | Vehicle control device, vehicle control method, and vehicle control system |
JP5583377B2 (en) | 2009-09-28 | 2014-09-03 | 秀明 奥 | Traffic jam prevention assist device and method |
US8452771B2 (en) * | 2011-01-03 | 2013-05-28 | Honda Motor Co., Ltd. | Method for differentiating traffic data obtained from probe vehicles |
JP5472248B2 (en) * | 2011-09-27 | 2014-04-16 | 株式会社デンソー | Convoy travel device |
-
2009
- 2009-07-28 EP EP09847794.6A patent/EP2461303A4/en not_active Withdrawn
- 2009-07-28 JP JP2011524564A patent/JPWO2011013202A1/en active Pending
- 2009-07-28 CN CN2009801605969A patent/CN102470869A/en active Pending
- 2009-07-28 WO PCT/JP2009/063426 patent/WO2011013202A1/en active Application Filing
- 2009-07-28 EP EP14197756.1A patent/EP2876621A1/en not_active Withdrawn
- 2009-07-28 US US13/387,284 patent/US20120123660A1/en not_active Abandoned
-
2013
- 2013-09-13 US US14/026,873 patent/US8781707B2/en active Active
Patent Citations (9)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20020059017A1 (en) * | 2000-10-16 | 2002-05-16 | Kenichiro Yamane | Probe car control method and traffic control system |
US20060155427A1 (en) * | 2003-02-27 | 2006-07-13 | Shaopeng Yang | Road traffic control method and traffic facilities |
US7860639B2 (en) * | 2003-02-27 | 2010-12-28 | Shaoping Yang | Road traffic control method and traffic facilities |
US7206686B2 (en) * | 2003-11-10 | 2007-04-17 | Honda Motor Co., Ltd. | System and method for detecting an object ahead of a vehicle and controlling the vehicle in response to the detected object |
US7804423B2 (en) * | 2008-06-16 | 2010-09-28 | Gm Global Technology Operations, Inc. | Real time traffic aide |
US8185300B2 (en) * | 2008-08-07 | 2012-05-22 | Aisin Aw Co., Ltd. | Safe driving evaluation system, method, and program |
US20120072089A1 (en) * | 2009-05-11 | 2012-03-22 | Toyota Jidosha Kabushiki Kaisha | Vehicle group control method and vehicle |
US20130138320A1 (en) * | 2010-08-09 | 2013-05-30 | Toyota Jidosha Kabushiki Kaisha | Vehicle control device, vehicle control system and traffic control system |
US20120239253A1 (en) * | 2011-03-16 | 2012-09-20 | GM Global Technology Operations LLC | Method for operating a driver assistance system and driver assistance system |
Cited By (47)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US9174643B2 (en) | 2009-07-28 | 2015-11-03 | Toyota Jidosha Kabushiki Kaisha | Vehicle control device, vehicle control method, and vehicle control system |
US8781707B2 (en) | 2009-07-28 | 2014-07-15 | Toyota Jidosha Kabushiki Kaisha | Vehicle control device, vehicle control method, and vehicle control system |
US9150221B2 (en) | 2009-07-29 | 2015-10-06 | Toyota Jidosha Kabushiki Kaisha | Vehicle controller, control method for vehicle and control system for vehicle |
US20130103294A1 (en) * | 2010-06-29 | 2013-04-25 | Honda Motor Co., Ltd | Method of displaying traffic congestion estimation |
US9443424B2 (en) * | 2010-06-29 | 2016-09-13 | Honda Motor Co., Ltd. | Method of displaying traffic congestion estimation |
US8972080B2 (en) | 2010-07-29 | 2015-03-03 | Toyota Jidosha Kabushiki Kaisha | Traffic control system, vehicle control system, traffic regulation system, and traffic control method |
US20140365104A1 (en) * | 2011-06-22 | 2014-12-11 | Nissan Motor Co., Ltd. | Vehicle driving control system |
US9607519B2 (en) * | 2011-06-22 | 2017-03-28 | Nissan Motor Co., Ltd. | Vehicle driving control system |
US10732645B2 (en) | 2011-07-06 | 2020-08-04 | Peloton Technology, Inc. | Methods and systems for semi-autonomous vehicular convoys |
US10520952B1 (en) | 2011-07-06 | 2019-12-31 | Peloton Technology, Inc. | Devices, systems, and methods for transmitting vehicle data |
US11360485B2 (en) | 2011-07-06 | 2022-06-14 | Peloton Technology, Inc. | Gap measurement for vehicle convoying |
US11334092B2 (en) | 2011-07-06 | 2022-05-17 | Peloton Technology, Inc. | Devices, systems, and methods for transmitting vehicle data |
US20140207357A1 (en) * | 2011-11-10 | 2014-07-24 | Mitsubishi Electric Corporation | Vehicle-side system |
JP2013206055A (en) * | 2012-03-28 | 2013-10-07 | Fujitsu Ltd | Traveling situation management method and traveling situation management device |
US9174550B2 (en) * | 2012-04-04 | 2015-11-03 | Honda Motor Co., Ltd. | Electric vehicle driving support system |
US20130268152A1 (en) * | 2012-04-04 | 2013-10-10 | Honda Motor Co., Ltd. | Electric vehicle driving support system |
US20140095059A1 (en) * | 2012-09-28 | 2014-04-03 | Skobbler Gmbh | Method to determine traffic characteristics in road traffic |
US20150166085A1 (en) * | 2013-12-18 | 2015-06-18 | Thales Canada Inc | Communication system for guideway mounted vehicle and method of using the same |
US9828011B2 (en) * | 2013-12-18 | 2017-11-28 | Thales Canada Inc | Communication system for guideway mounted vehicle and method of using the same |
US9616888B2 (en) * | 2014-12-08 | 2017-04-11 | Ford Global Technologies, Llc | Vehicle speed adjustment |
US20180061236A1 (en) * | 2015-03-18 | 2018-03-01 | Nec Corporation | Driving control device, driving control method, and vehicle-to-vehicle communication system |
US10621869B2 (en) * | 2015-03-18 | 2020-04-14 | Nec Corporation | Driving control device, driving control method, and vehicle-to-vehicle communication system |
US9969393B2 (en) | 2015-04-14 | 2018-05-15 | Honda Research Institute Europe Gmbh | Intelligent gap setting for adaptive cruise control |
EP3081447A1 (en) | 2015-04-14 | 2016-10-19 | Honda Research Institute Europe GmbH | Intelligent gap setting for adaptive cruise control |
US10356643B2 (en) * | 2015-09-02 | 2019-07-16 | Panasonic Intellectual Property Management Co., Ltd. | Base station apparatus and communication method |
US10007271B2 (en) * | 2015-12-11 | 2018-06-26 | Avishtech, Llc | Autonomous vehicle towing system and method |
US20170168503A1 (en) * | 2015-12-11 | 2017-06-15 | Avishtech, Llc | Autonomous vehicle towing system and method |
US11860642B2 (en) | 2015-12-11 | 2024-01-02 | Avishtech, Inc. | Autonomous vehicle towing system and method |
US10983531B2 (en) | 2015-12-11 | 2021-04-20 | Avishtech, Llc | Autonomous vehicle towing system and method |
US10699579B2 (en) * | 2016-08-10 | 2020-06-30 | Toyota Jidosha Kabushiki Kaisha | Autonomous driving system and autonomous driving vehicle |
US20180047292A1 (en) * | 2016-08-10 | 2018-02-15 | Toyota Jidosha Kabushiki Kaisha | Autonomous driving system and autonomous driving vehicle |
US10906544B2 (en) | 2016-08-22 | 2021-02-02 | Peloton Technology, Inc. | Dynamic gap control for automated driving |
US10369998B2 (en) | 2016-08-22 | 2019-08-06 | Peloton Technology, Inc. | Dynamic gap control for automated driving |
US9928746B1 (en) | 2016-09-16 | 2018-03-27 | Ford Global Technologies, Llc | Vehicle-to-vehicle cooperation to marshal traffic |
US20210020034A1 (en) * | 2018-02-14 | 2021-01-21 | Tomtom Traffic B.V. | Methods and Systems for Generating Traffic Volume or Traffic Density Data |
US11922802B2 (en) * | 2018-02-14 | 2024-03-05 | Tomtom Traffic B.V. | Methods and systems for generating traffic volume or traffic density data |
US10933871B2 (en) * | 2018-02-27 | 2021-03-02 | Mando Corporation | Adaptive cruise control system and method based on peripheral situations of vehicle |
US20190263403A1 (en) * | 2018-02-27 | 2019-08-29 | Mando Corporation | Adaptive cruise control system and method based on peripheral situations of vehicle |
US11967230B2 (en) | 2018-05-16 | 2024-04-23 | NoTraffic Ltd. | System and method for using V2X and sensor data |
US10899323B2 (en) | 2018-07-08 | 2021-01-26 | Peloton Technology, Inc. | Devices, systems, and methods for vehicle braking |
US10762791B2 (en) | 2018-10-29 | 2020-09-01 | Peloton Technology, Inc. | Systems and methods for managing communications between vehicles |
US11341856B2 (en) | 2018-10-29 | 2022-05-24 | Peloton Technology, Inc. | Systems and methods for managing communications between vehicles |
US11694548B2 (en) | 2018-11-28 | 2023-07-04 | Toyota Jidosha Kabushiki Kaisha | Mitigation of traffic oscillation on roadway |
US11427196B2 (en) | 2019-04-15 | 2022-08-30 | Peloton Technology, Inc. | Systems and methods for managing tractor-trailers |
US20230077036A1 (en) * | 2020-04-17 | 2023-03-09 | Mitsubishi Electric Corporation | Vehicle travel control device |
US11938972B2 (en) * | 2020-06-15 | 2024-03-26 | Toyota Jidosha Kabushiki Kaisha | Vehicle controller and method for controlling vehicle |
US20210387651A1 (en) * | 2020-06-15 | 2021-12-16 | Toyota Jidosha Kabushiki Kaisha | Vehicle controller and method for controlling vehicle |
Also Published As
Publication number | Publication date |
---|---|
US20140012480A1 (en) | 2014-01-09 |
EP2461303A1 (en) | 2012-06-06 |
US8781707B2 (en) | 2014-07-15 |
EP2876621A1 (en) | 2015-05-27 |
JPWO2011013202A1 (en) | 2013-01-07 |
CN102470869A (en) | 2012-05-23 |
WO2011013202A1 (en) | 2011-02-03 |
EP2461303A4 (en) | 2015-05-27 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US8781707B2 (en) | Vehicle control device, vehicle control method, and vehicle control system | |
EP2460706B1 (en) | Vehicle control device, vehicle control method, and vehicle control system | |
US8810431B2 (en) | Highway merge assistant and control | |
US9150221B2 (en) | Vehicle controller, control method for vehicle and control system for vehicle | |
US9174643B2 (en) | Vehicle control device, vehicle control method, and vehicle control system | |
CN110775060B (en) | Single-lane double-row type intelligent control system for formation of small cars and formation method | |
US10013876B2 (en) | Method and device for operating a vehicle | |
JP3094106B1 (en) | Lane departure prevention system | |
CN111994071B (en) | Active backward collision avoidance method, system and storage medium | |
CN111391833A (en) | Method and auxiliary system for preparing and/or carrying out lane changes | |
JP2012043094A (en) | Traffic control system and vehicle control system | |
CN112005183A (en) | Method for controlling a vehicle fleet | |
CN105723435A (en) | Method and device for operating a vehicle | |
JP5725068B2 (en) | Vehicle control apparatus, vehicle control method, and vehicle control system | |
CN112977458A (en) | System for the coordinated control of a vehicle movement in the region of a lane intersection, vehicle, movement control device and computer program product | |
CN112224202B (en) | Multi-vehicle cooperative collision avoidance system and method under emergency working condition | |
KR20200096827A (en) | Method and device for automatic control of vehicle longitudinal dynamic behavior | |
CN111824136A (en) | Method for operating a driving assistance system and driving assistance system | |
CN115593398A (en) | Passing method on narrow road | |
JP7304875B2 (en) | AUTOMATIC OPERATION CONTROL METHOD AND AUTOMATIC OPERATION CONTROL SYSTEM | |
US20190272744A1 (en) | Vehicle control device | |
JP6451560B2 (en) | Vehicle recognition device | |
US20220413486A1 (en) | Evacuation running assistance system | |
KR20240060071A (en) | method and device for test evaluation of autonomous car driving | |
JP2011034129A (en) | Vehicle group controller and vehicle group control system |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: TOYOTA JIDOSHA KABUSHIKI KAISHA, JAPAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:KAGAWA, KAZUNORI;HOSHINO, MASAYOSHI;SIGNING DATES FROM 20120112 TO 20120113;REEL/FRAME:027602/0148 |
|
STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |