Psychological state induction device and psychological state induction method

The psychological state induction device and method address the challenge of accurately predicting breathing transitions by employing a rhythm determination unit and breathing induction control unit to apply specific stimuli patterns, enhancing the driver's ability to synchronize with target breathing rhythms.

JP7794078B2Active Publication Date: 2026-01-06DENSO CORP
View PDF 8 Cites 0 Cited by

Patent Information

Application Number
JP2022091819
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-06
Publication Date
2026-01-06
Estimated Expiration
2042-06-06

AI Technical Summary

Technical Problem

Existing technologies for inducing breathing timing in drivers do not accurately match the switching between exhalation and inhalation periods, making it difficult for drivers to predict these transitions.

Method used

A psychological state induction device and method that includes a rhythm determination unit to set target respiratory rhythms and a breathing induction control unit to apply continuous and intermittent stimuli with different directions during inhalation and exhalation periods, respectively, to facilitate easier prediction of switching times.

Benefits of technology

Enhances the driver's ability to predict the timing of switching between inhalation and exhalation by using continuous and intermittent stimuli, improving the accuracy of breathing timing induction.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007794078000001
    Figure 0007794078000001
  • Figure 0007794078000002
    Figure 0007794078000002
  • Figure 0007794078000003
    Figure 0007794078000003
Patent Text Reader

Abstract

To allow a driver to more easily predict timing of switching between expiration and aspiration when guiding timing of respiration of the driver with the consecutive stimulation change.SOLUTION: A psychological state guidance device comprises: a rhythm decision unit 205 which decides a target respiration rhythm for changing the psychological state of a driver to the target state; and a respiration guidance control unit 206 which performs control of stimulation for guiding the driver to perform respiration according to the decided target respiration rhythm. The rhythm decision unit 205 decides an expiration period and an aspiration period as the target respiration rhythm. The respiration guidance control unit 206 causes second stimulation being the intermittent stimulation with a fixed interval in addition to first stimulation that is caused by allocating the consecutive stimulation changes in two patterns with different types of directivity for the same type of stimulation to the expiration period and the aspiration period.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a psychological state induction device and a psychological state induction method. [Background technology]

[0002] There is known a technology for inducing the psychological state of a subject by inducing the timing of the subject's breathing. Patent Document 1 discloses a technology that enables a driver to distinguish between an exhalation period, an inhalation period, and a grace period by continuously changing stimuli such as changes in the brightness or color of light emitted. The grace period is a switching period during which either exhalation or inhalation can be performed. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2020-62282 Summary of the Invention [Problem to be solved by the invention]

[0004] The technique disclosed in Patent Document 1 does not accurately match the timing of switching between exhalation and inhalation, as can be seen from the provision of a grace period.

[0005] One object of this disclosure is to provide a psychological state induction device and a psychological state induction method that enable a driver to more easily predict the timing of switching between exhalation and inhalation when inducing the driver's breathing timing through continuous changes in stimuli. [Means for solving the problem]

[0006] The above object is achieved by the combination of features recited in the independent claims, and the subclaims define further advantageous embodiments of the disclosure. The reference numerals in parentheses in the claims correspond to specific means described in the following embodiments as one aspect, and do not limit the technical scope of the present disclosure.

[0007] In order to achieve the above object, 1st The psychological state induction device includes a rhythm determination unit (205) that determines a target respiratory rhythm for changing the psychological state of a vehicle driver to a target psychological state, and a breathing induction control unit (206, 206a, 206b, 206c) that controls stimuli for inducing the driver to breathe in accordance with the target respiratory rhythm determined by the rhythm determination unit, the rhythm determination unit determines an inhalation period for inhalation and an exhalation period for exhalation as the target respiratory rhythm, and the breathing induction control unit performs a first stimulus in which two patterns of continuous stimulus changes with different directions for the same type of stimulus are assigned to the inhalation period and the exhalation period, respectively, and also performs a second stimulus which is an intermittent stimulus at a fixed interval. The target psychological states to be changed by the target respiratory rhythm determined by the rhythm determination unit include at least an alert state and a relaxed state of the driver, and the respiratory induction control unit sets the period of the constant intermittent stimulation in the second stimulus to a period shorter than the heartbeat-like period, which is a period within a predetermined range starting from a period of 60 times per minute, in the case of the target respiratory rhythm targeting a relaxed state, while sets the period of the constant intermittent stimulation in the second stimulus to a period longer than the heartbeat-like period, in the case of the target respiratory rhythm targeting a relaxed state. . In order to achieve the above object, the second psychological state induction device of the present disclosure includes a rhythm determination unit (205) that determines a target respiratory rhythm for changing the psychological state of a vehicle driver to a target psychological state, and a breathing induction control unit (206, 206a, 206b, 206c) that controls stimuli for inducing the driver to breathe in accordance with the target respiratory rhythm determined by the rhythm determination unit, wherein the rhythm determination unit determines an inhalation period for inhalation and an exhalation period for exhalation as the target respiratory rhythm, and the breathing induction control unit controls a first stimuli control unit (206) that assigns two patterns of continuous stimulus changes with different directions for the same type of stimulus to the inhalation period and the exhalation period, respectively, and performs the changes. In addition to the first stimulus, a second stimulus, which is an intermittent stimulus at regular intervals, is also applied. The target psychological states to be changed by the target respiratory rhythm determined by the rhythm determination unit include the driver's awake state and relaxed state, and a heart rate determination unit (232) is provided for determining the driver's heart rate. The respiratory induction control unit, based on the heart rate determined by the heart rate determination unit, sets the period of the second stimulus, which is an intermittent stimulus at regular intervals, to a shorter period than the period of the driver's heart rate in the case of a target respiratory rhythm which targets an awake state, while sets the period of the second stimulus, which is an intermittent stimulus at regular intervals, to a longer period than the period of the driver's heart rate in the case of a target respiratory rhythm which targets a relaxed state.

[0008] In order to achieve the above object, 1st The psychological state induction method includes a rhythm determination step executed by at least one processor, which determines a target breathing rhythm for changing the psychological state of a vehicle driver to a target psychological state, and a breathing induction control step, which controls stimuli for inducing the driver to breathe in accordance with the target breathing rhythm determined in the rhythm determination step. In the rhythm determination step, an inhalation period for inhalation and an exhalation period for exhalation are determined as the target breathing rhythm, and in the breathing induction control step, two patterns of continuous stimulus changes with different directions for the same type of stimulus are assigned to the inhalation period and the exhalation period, respectively, and in addition to a first stimulus, a second stimulus, which is an intermittent stimulus at a fixed interval, is also performed. The target psychological states to be changed by the target respiratory rhythm determined in the rhythm determination step include at least an alert state and a relaxed state of the driver, and in the respiratory induction control step, in the case of a target respiratory rhythm that targets an alert state, the period of the constant intermittent stimulation in the second stimulus is set to a period shorter than a heartbeat-like period that is a period within a predetermined range starting from a period of 60 times per minute, while in the case of a target respiratory rhythm that targets a relaxed state, the period of the constant intermittent stimulation in the second stimulus is set to a period longer than the heartbeat-like period. . In order to achieve the above object, a second psychological state induction method of the present disclosure includes a rhythm determination step executed by at least one processor, for determining a target respiratory rhythm for changing the psychological state of a vehicle driver to a target psychological state, and a breathing induction control step for controlling stimuli for inducing the driver to breathe in accordance with the target respiratory rhythm determined in the rhythm determination step, wherein the rhythm determination step determines an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed as the target respiratory rhythm, and the breathing induction control step assigns two patterns of continuous stimulus changes with different directions for the same type of stimulus to the inhalation period and the exhalation period, respectively, and causes the changes to be performed. In addition to the first stimulus, a second stimulus, which is an intermittent stimulus at a fixed interval, is also applied. The target psychological states to be changed by the target respiratory rhythm determined in the rhythm determination process include the driver's awake state and relaxed state, and a heart rate identification process is included to identify the driver's heart rate. In the respiratory induction control process, based on the heart rate identified in the heart rate identification process, in the case of a target respiratory rhythm that targets an awake state, the period of the intermittent stimulus at a fixed interval in the second stimulus is made shorter than the period of the driver's heart rate, while in the case of a target respiratory rhythm that targets a relaxed state, the period of the intermittent stimulus at a fixed interval in the second stimulus is made longer than the period of the driver's heart rate.

[0009] According to these, a first stimulus is applied by allocating two patterns of continuous stimulus changes with different directions for the same type of stimulus to an inhalation period and an exhalation period, respectively. Therefore, by switching the pattern of continuous stimulus changes, the timing of switching between the inhalation period and the exhalation period becomes easier to understand. Furthermore, by applying a second stimulus, which is an intermittent stimulus at a fixed interval, in addition to the first stimulus, the timing of switching between the inhalation period and the exhalation period becomes easier to predict. As a result, when guiding the driver's breathing timing with continuous stimulus changes, the driver can more easily predict the timing of switching between inhalation and exhalation. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a diagram illustrating an example of a schematic configuration of a driving assistance system 1. FIG. [Figure 2] FIG. 2 is a diagram illustrating an example of a schematic configuration of an HCU 20. [Figure 3] 10 is a diagram for explaining an example of stimulation control in the HCU 20. FIG. [Figure 4] 10A and 10B are diagrams for explaining the effect of stimulus control in the HCU 20. [Figure 5] 10 is a diagram for explaining an example of stimulation control in the HCU 20. FIG. [Figure 6] 10 is a diagram for explaining an example of stimulation control in the HCU 20. FIG. [Figure 7] 10 is a diagram for explaining an example of stimulation control in the HCU 20. FIG. [Figure 8] 10 is a flowchart showing an example of the flow of psychological state induction-related processing in the HCU 20. [Figure 9] FIG. 2 is a diagram illustrating an example of a schematic configuration of an HCU 20a. DETAILED DESCRIPTION OF THE INVENTION

[0011] A number of embodiments for the purpose of disclosure will be described with reference to the drawings. For the sake of convenience, parts having the same functions as parts shown in the drawings used in the previous explanations in the number of embodiments will be given the same reference numerals, and their description may be omitted. For parts given the same reference numerals, the explanations in other embodiments may be referred to.

[0012] (Embodiment 1) <Outline of the driving assistance system 1> Hereinafter, this embodiment will be described with reference to the drawings. A driving assistance system 1 shown in FIG. 1 is used in an automobile (hereinafter simply referred to as a vehicle). The driving assistance system 1 includes an HMI (Human Machine Interface) system 2, a communication device 3, a locator 4, a map database (hereinafter referred to as a map DB) 5, a surroundings monitoring sensor 6, a driving assistance ECU 7, a vehicle state sensor 8, and a vehicle control ECU 9. The HMI system 2, the communication device 3, the locator 4, the map DB 5, the driving assistance ECU 7, the vehicle state sensor 8, and the vehicle control ECU 9 are assumed to be connected to, for example, an in-vehicle LAN. In the drawings, the in-vehicle LAN is referred to as LAN. A vehicle equipped with the driving assistance system 1 will hereinafter be referred to as the host vehicle.

[0013] The communication device 3 communicates with the center. The communication device 3 communicates with the center via a public communication network. The communication device 3 acquires traffic information, weather information, etc. from the center. Note that the communication device 3 may be configured to communicate with the center via a roadside device.

[0014] The locator 4 includes a GNSS (Global Navigation Satellite System) receiver and an inertial sensor. The GNSS receiver receives positioning signals from multiple artificial satellites. The inertial sensor includes, for example, a gyro sensor and an acceleration sensor. The locator 4 sequentially determines the vehicle position of the vehicle by combining the positioning signals received by the GNSS receiver with the measurement results of the inertial sensor. The vehicle position may be determined using a travel distance calculated from signals sequentially output from a vehicle speed sensor mounted on the vehicle.

[0015] The map DB 5 is a non-volatile memory that stores map data. The map data may include, for example, link data, node data, and road attribute data. Map data distributed from the center may be received via the communication device 3 and stored in the map DB 5. In this case, the map DB 5 may be a volatile memory.

[0016] The perimeter monitoring sensor 6 detects obstacles around the vehicle. It also detects road markings such as lane markings around the vehicle. The perimeter monitoring sensor 6 may be a perimeter monitoring camera, millimeter-wave radar, sonar, or LIDAR (Light Detection and Ranging / Laser Imaging Detection and Ranging). The perimeter monitoring camera captures an image of a predetermined area around the vehicle. The millimeter-wave radar, sonar, or LIDAR transmits a search wave within a predetermined area around the vehicle. Hereinafter, the millimeter-wave radar, sonar, and LIDAR will be referred to as a search wave sensor. The perimeter monitoring camera sequentially outputs the captured images to the driving assistance ECU 7 as sensing information. The search wave sensor sequentially outputs scanning results based on received signals obtained when receiving waves reflected by obstacles to the driving assistance ECU 7 as sensing information. The perimeter monitoring sensor 6 may also include a solar radiation sensor that detects solar radiation.

[0017] The driving assistance ECU 7 is an electronic control unit that assists the driving of the vehicle. The driving assistance ECU 7 recognizes the surrounding environment of the vehicle. To recognize the surrounding environment, the vehicle position of the vehicle acquired from the locator 4 is used. To recognize the surrounding environment, map data acquired from the map DB 5 is used. To recognize the surrounding environment, sensing information acquired from the periphery monitoring sensor 6 is used. For example, the driving assistance ECU 7 recognizes the shape and movement state of objects around the vehicle from the sensing information acquired from the periphery monitoring sensor 6. Then, by combining this recognition result with the vehicle position and map data of the vehicle, a virtual space that reproduces the actual driving environment in three dimensions is generated.

[0018] The driving assistance ECU 7 performs driving assistance for the host vehicle by controlling acceleration / deceleration and / or steering of the host vehicle based on the recognized surrounding environment. Examples of driving assistance include assistance for keeping the host vehicle within its lane, assistance for driving the host vehicle at a constant speed, assistance for automatically decelerating the host vehicle to avoid obstacles, etc. Furthermore, the driving assistance may be configured to perform automatic driving.

[0019] The vehicle state sensor 8 is a group of sensors for detecting the state of the host vehicle. The state of the host vehicle includes the running state, operation state, etc. The vehicle state sensor 8 includes a vehicle speed sensor that detects the speed of the host vehicle. The vehicle state sensor 8 includes a steering sensor that detects the steering angle of the host vehicle. The vehicle state sensor 8 includes an accelerator position sensor that detects the opening degree of the accelerator pedal of the host vehicle. The vehicle state sensor 8 includes a brake stroke sensor that detects the amount of depression of the brake pedal of the host vehicle. The vehicle state sensor 8 outputs the detection results to an in-vehicle LAN. The detection results of the vehicle state sensor 8 may be configured to be output to the in-vehicle LAN via an ECU installed in the host vehicle.

[0020] The HMI system 2 includes an HCU (Human Machine Interface Control Unit) 20, an in-vehicle environment sensor 21, a biosensor 22, a respiratory induction device 23, and an operation device 24. The HMI system 2 accepts input operations from the driver. The HMI system 2 monitors the driver's condition. The HMI system 2 presents information and stimuli to the driver.

[0021] The interior environment sensor 21 is a group of sensors for detecting the state of the interior environment of the vehicle. The interior environment sensor 21 includes a microphone that collects sounds inside the vehicle cabin. The interior environment sensor 21 includes an illuminance sensor that detects the brightness inside the vehicle cabin. The interior environment sensor 21 includes a vibration sensor that detects the degree of shaking inside the vehicle cabin.

[0022] The biosensor 22 measures biometric information of the driver. The biosensor 22 sequentially outputs the measured biometric information to the HCU 20. The biosensor 22 may be configured to be provided in the vehicle. In this case, the biosensor 22 may be provided on the steering wheel, the driver's seat, or the like. The biosensor 22 may also be configured to be provided in a wearable device worn by the driver. In this case, the HCU 20 may be configured to acquire the measurement results of the biosensor 22 via, for example, short-range wireless communication. Examples of biometric information measured by the biosensor 22 include respiration, pulse, heart rate, etc.

[0023] Examples of the biosensor 22 include pulse wave sensors such as a photoelectric pulse wave sensor and an impedance pulse wave sensor that measure the heart rate or pulse rate from the waveform of a pulse wave obtained by measurement. Other examples include a breathing sensor that detects breathing movements non-contactly using a Doppler sensor using microwaves in the GHz band. The breathing sensor may be a pressure sensor attached to a seat belt or seat back. Furthermore, when estimating breathing from a pulse wave, a pulse wave sensor may be used as the breathing sensor. The biosensor 22 is not limited to the above examples, and other sensors may be used. Furthermore, the biosensor 22 may be configured to measure biological information other than breathing, pulse, and heart rate. Examples include sensors that measure brain waves, heart rate fluctuations, sweating, body temperature, blood pressure, and skin conductance.

[0024] The breathing induction device 23 stimulates the driver's sensory organs to induce breathing. The breathing induction device 23 may induce breathing by stimulating any of the driver's vision, smell, touch, and hearing. The breathing induction device 23 may induce breathing by combining any of the driver's vision, smell, touch, and hearing. The breathing induction device 23 may induce breathing by presenting a stimulus to make the driver aware of the target breathing timing. Alternatively, the breathing induction device 23 may induce breathing by presenting a stimulus to make the driver breathe unconsciously. A visual stimulus is called a visual stimulus. An olfactory stimulus is called an olfactory stimulus. A tactile stimulus is called a tactile stimulus. A hearing stimulus is called an auditory stimulus.

[0025] An example of a visual stimulus is the light emitted from a light-emitting device such as an LED. Another example of a visual stimulus is the display of a video or other display device. The light emission and display are to be located in a position visible to the driver. An example of an olfactory stimulus is the emission of an odor component from an aroma unit or the like. The odor component may be emitted from the front or side of the driver. Note that the aroma unit may be used in combination with an air conditioner, so that the odor component is emitted by the air blown from the air conditioner. An example of a tactile stimulus is pressure from the seat back of the driver's seat. The pressure may be generated by expanding and contracting a bag embedded in the seat back using air pressure. Another example of a tactile stimulus is the blowing of air from an air conditioner. The air from the air conditioner may be blown from an outlet facing the driver. Further examples of tactile stimuli include vibrations generated by a vibrator, fastening a seat belt, etc. The vibrator may be provided on a member that comes into contact with the driver, such as a steering wheel, a driver's seat back, or the seat surface of the driver's seat. Examples of auditory stimuli include music and environmental sounds output from an audio output device. Other examples of auditory stimuli include beeps output from a buzzer.

[0026] The operation device 24 is a group of switches operated by the driver. For example, as the operation device 24, there is a steering switch provided on the spoke part of the steering of the vehicle. The operation device 24 may be a touch switch integrated with the display.

[0027] The HCU 20 is mainly composed of a microcomputer including a processor, a memory, an I / O, and a bus connecting these. The HCU 20 executes various processes such as processes related to the induction of the driver's mental state (hereinafter referred to as mental state induction related processes) by executing a control program stored in the memory. The memory mentioned here is a non-transitory tangible storage medium that non-temporarily stores programs and data readable by a computer. The non-transitory tangible storage medium is realized by a semiconductor memory or a magnetic disk, etc. The details of the mental state induction related processes in the HCU 20 will be described later.

[0028] <Schematic configuration of the HCU 20> Subsequently, the schematic configuration of the HCU 20 will be described with reference to FIG. 2. The HCU 20 includes, as functional blocks, an environmental state identification unit 201, a driving load estimation unit 202, a driver state identification unit 203, an execution determination unit 204, a rhythm determination unit 205, a breathing induction control unit 206, and a target presence / absence determination unit 207 for processes related to mental state induction. This HCU 20 corresponds to the mental state induction device. Also, the execution of the processes of each functional block of the HCU 20 by a computer corresponds to the execution of the mental state induction method. Note that a part or all of the functions executed by the HCU 20 may be configured hardware-wise by one or a plurality of ICs, etc. Also, a part or all of the functional blocks included in the HCU 20 may be realized by a combination of software execution by a processor and hardware members.

[0029] The environmental condition identification unit 201 identifies the environmental conditions inside and outside the vehicle. The environmental condition identification unit 201 may identify the surrounding environment recognized by the driving assistance ECU 7 as the environmental condition outside the vehicle. Examples of the surrounding environment that can be identified include the following: The environmental condition identification unit 201 may identify traffic congestion from traffic information received by the communication device 3. The environmental condition identification unit 201 may identify weather from weather information received by the communication device 3. The environmental condition identification unit 201 may identify brightness outside the vehicle from sunlight detected by a sunlight sensor. The environmental condition identification unit 201 may identify the environment inside the vehicle from the detection result of the vehicle interior environment sensor 21. Examples of the environmental condition that can be identified inside the vehicle include the following: The environmental condition identification unit 201 may identify the volume of sound inside the vehicle from sound collected by a microphone. The environmental condition identification unit 201 may identify brightness inside the vehicle from illuminance detected by an illuminance sensor. The environmental condition determination unit 201 may determine the degree of shaking inside the vehicle from the degree of shaking detected by the vibration sensor.

[0030] The driving load estimation unit 202 estimates the driving load of the host vehicle. The driving load estimation unit 202 may estimate the level of the driving load of the host vehicle from the environmental state outside the vehicle identified by the environmental state identification unit 201. As an example, the driving load estimation unit 202 may estimate a high load when the number of vehicles around the host vehicle is equal to or greater than a threshold. The driving load estimation unit 202 may estimate a high load when a bicycle or pedestrian is present on the path of the host vehicle. The driving load estimation unit 202 may estimate a high load when the host vehicle is traveling on an expressway. The driving load estimation unit 202 may estimate a high driving load when the host vehicle is traveling on a curved road. The driving load estimation unit 202 may estimate a low load when the situation is not such that a sudden driving operation as described above is likely to be required.

[0031] Furthermore, the driving load estimation unit 202 may estimate the level of the driving load of the vehicle based on the detection result of the vehicle state sensor 8. In this case, the driving load estimation unit 202 may estimate the level of the driving load based on the complexity of the driver's driving operation. The complexity of the driver's driving operation may be indicated by changes in operation information of the accelerator pedal, brake pedal, and steering wheel of the vehicle. For example, the driving load estimation unit 202 may estimate a high load when the amount of change per unit time of a value detected by an accelerator position sensor is equal to or greater than a threshold. The driving load estimation unit 202 may also estimate a high load when the amount of change per unit time of a value detected by a brake stroke sensor is equal to or greater than a threshold. The driving load estimation unit 202 may also estimate a high load when the amount of change per unit time of a value detected by a steering angle sensor is equal to or greater than a threshold. The driving load estimation unit 202 may also estimate a high load when the amount of change per unit time of a value detected by a vehicle speed sensor is equal to or greater than a threshold.

[0032] The driver state identification unit 203 identifies the state of the driver. The driver state identification unit 203 includes a psychological state identification unit 231 and a heartbeat identification unit 232. The psychological state identification unit 231 identifies the psychological state of the driver. The psychological state identification unit 231 may identify the psychological state of the driver from the sensing result of the biosensor 22. As an example, the psychological state identification unit 231 identifies psychological states such as an "anger state," a "tension state," a "relaxed state," a "mindless (bored) state," and a "concentration state." The "anger state," "tension state," and "concentration state" are all states in which the tendency toward activity is strong among active and inactive states. The "anger state" and "tension state" are states in which the tendency toward discomfort is strong among pleasant and unpleasant states. The "concentration state" is a state in which the tendency toward discomfort is weak among pleasant and unpleasant states. The "relaxed state" and "mindless state" are both states in which the tendency toward inactivity is strong among active and inactive states. The "relaxed state" is a state in which the tendency toward pleasure is strong among pleasant and unpleasant states. The "inattentive state" is a state in which the unpleasant side of pleasure and unpleasantness is more prevalent. The psychological state can be explained, for example, by referring to Russell's circular model.

[0033] The psychological state identification unit 231 may identify the psychological state of the driver from the sensing result of the biometric sensor 22 based on the feature amount of the biometric information for each psychological state. This feature amount may include the heart rate identified by the heartbeat identification unit 232. The feature amount of the biometric information for each psychological state may be obtained in advance through experiments or the like and stored in the non-volatile memory of the HCU 20. The feature amount of the biometric information for each psychological state may also be obtained by machine learning. Note that the biometric information used to identify the psychological state in the psychological state identification unit 231 may be an image of the driver's face (hereinafter referred to as a face image). In this case, the biometric sensor 22 is a camera.

[0034] The psychological state identification unit 231 may identify the psychological state of the driver from information about the driver input via the operation device 24. This information may be a response to a medical interview for estimating the psychological state, or information declaring the psychological state.

[0035] The implementation determination unit 204 determines whether or not to implement respiratory guidance. The implementation determination unit 204 determines whether or not to implement respiratory guidance by the respiratory guidance device 23. The implementation determination unit 204 may determine whether or not to implement respiratory guidance by the respiratory guidance device 23 depending on the psychological state of the driver identified by the psychological state identification unit 231. As an example, when the psychological state of the driver deviates from a target psychological state (hereinafter referred to as a target state), it may be determined that respiratory guidance is to be implemented. On the other hand, when the psychological state corresponds to the target psychological state, it may be determined that respiratory guidance is not to be implemented. More specifically, when the psychological state deviates from the target state in the direction of activation / inactivation, it may be determined that respiratory guidance is to be implemented. For example, when the target state is a "concentration state," it may be determined that respiratory guidance is to be implemented in the case of a "distracted state." On the other hand, when the psychological state of the driver is a "concentration state," it may be determined that respiratory guidance is not to be implemented. Furthermore, when the target state is a "relaxed state," it may be determined that respiratory guidance is to be implemented in the cases of an "anger state" or a "tension state." On the other hand, if the driver's psychological state is "relaxed," it may be determined that breathing guidance should not be performed. This makes it possible to avoid performing breathing guidance if the driver's psychological state is not deviating from the target state.

[0036] The target state may be configured to be set in advance as a default. In this case, a psychological state estimated to be suitable for driving may be set as the target state. The target state may be set according to the psychological state of the driver. For example, if the psychological state of the driver is "angry" or "tense," the target state may be set to "relaxed." Also, if the psychological state of the driver is "absentminded," the target state may be set to "concentrated." The target state may be set by the driver via the operation device 24. The target state may be determined as appropriate by the system of the vehicle.

[0037] The implementation determination unit 204 may determine whether to implement respiratory guidance by the respiratory guidance device 23, in accordance with an input received from the driver via the operation device 24. The implementation determination unit 204 may determine to implement respiratory guidance when receiving an input instructing the implementation of respiratory guidance via the operation device 24. On the other hand, the implementation determination unit 204 may determine not to implement respiratory guidance when receiving an input instructing the suspension of respiratory guidance via the operation device 24. This makes it possible to start and suspend respiratory guidance by the respiratory guidance device 23 at a timing desired by the driver.

[0038] The rhythm determination unit 205 determines a target breathing rhythm for changing the psychological state of the driver to the target state. This processing by the rhythm determination unit 205 corresponds to a rhythm determination step. The rhythm determination unit 205 determines an inhalation period and an exhalation period as the target breathing rhythm. The inhalation period is a period during which the driver inhales, that is, a period during which inhalation is performed. The exhalation period is a period during which the driver exhales, that is, a period during which exhalation is performed. The rhythm determination unit 205 performs processing when the implementation determination unit 204 determines that respiratory guidance is to be performed.

[0039] The rhythm determination unit 205 may determine a target respiratory rhythm according to the target state. For example, if the target state is a "relaxed state," the target respiratory rhythm may be set to lengthen the expiratory period relative to the inhalation period. This will give dominance to the parasympathetic nervous system, leading to a "relaxed state." "Lengthening the expiratory period relative to the inhalation period" may mean lengthening the expiratory period relative to the inhalation period. "Lengthening the expiratory period relative to the inhalation period" may mean lengthening the expiratory period relative to the inhalation period, compared to a driver's normal inhalation period. Furthermore, if the target state is a "concentrated state," the target respiratory rhythm may be set to shorten the expiratory period relative to the inhalation period. This will give dominance to the sympathetic nervous system, leading to a "concentrated state." "Shortening the expiratory period relative to the inhalation period" may mean shortening the expiratory period relative to the inhalation period. "Shortening the expiratory period relative to the inhalation period" may mean shortening the expiratory period relative to the inhalation period, compared to a driver's normal inhalation period. This makes it possible to determine a target breathing rhythm that is easy to induce to each target state. The normal inhalation period and exhalation period can be determined from the inhalation period and exhalation period of the driver measured when breathing induction is not being performed by the breathing induction device 23. The inhalation period and exhalation period can be measured using the biological sensor 22.

[0040] The breathing induction control unit 206 controls a stimulus (hereinafter referred to as an induction stimulus) for inducing the driver to breathe in accordance with the target breathing rhythm determined by the rhythm determination unit 205. The breathing induction control unit 206 controls the induction stimulus by controlling the breathing induction device 23. The processing in the breathing induction control unit 206 corresponds to a breathing induction control step.

[0041] The respiratory guidance control unit 206 assigns two patterns of continuous stimulus changes with different directions for the same type of stimulus to the inhalation period and the exhalation period, respectively. These stimuli are called first stimuli. For example, tactile stimuli, auditory stimuli, or visual stimuli can be used as the first stimuli. The first stimuli switch the pattern of continuous stimulus changes, making it easier to understand the timing of switching between the inhalation period and the exhalation period.

[0042] The tactile stimulus corresponding to the first stimulus is a pressure applied to the driver's back and waist, varying in strength. This tactile stimulus can be achieved by pressing from the seat back of the driver's seat. In this case, during the inhalation period, the pressure applied to the waist area can be gradually increased. This straightens the driver's spine and expands the thorax, encouraging the driver to inhale. During the exhalation period, the pressure applied to the waist area can be gradually decreased. This relaxes the driver and encourages the driver to exhale.

[0043] The tactile stimulus corresponding to the first stimulus may be the strength of the pressure on the seat surface of the driver's seat. The tactile stimulus corresponding to the first stimulus may be the strength of the vibration of the driver's seat. The part of the seat where the vibration occurs may be the seat back or the seat surface. The tactile stimulus corresponding to the first stimulus may be a change in the position of the vibration of the driver's seat. The change in the position of the vibration may be in two patterns: upward and downward. The change in the position of the vibration may be in two patterns: rightward and leftward. The change in the position of the vibration may be in two patterns: concentrated and diffused. To enable the change in the position of the vibration, multiple vibrators may be used. The tactile stimulus corresponding to the first stimulus may be a change in the length of the vibration period of the driver's seat. In addition to seat vibration, the vibration may also be vibration of the steering wheel. Similar to the seat vibration, two patterns of stimulation may be considered for the steering wheel vibration. The tactile stimulus corresponding to the first stimulus may be winding and rewinding of the driver's seat belt. This tactile stimulus may be realized by a motor that winds and rewinds the seat belt. The tactile stimulus corresponding to the first stimulus may be a combination of these. Furthermore, the tactile stimulus corresponding to the first stimulus may be any other stimulus as long as it is two patterns of continuous stimulus changes with different directions for the same type of stimulus. The correspondence between the two patterns of continuous tactile stimulus changes with different directions and the inhalation period and exhalation period may be set arbitrarily.

[0044] The auditory stimulus corresponding to the first stimulus may be an increase or decrease in volume. The auditory stimulus corresponding to the first stimulus may be the distance of a sound image. The auditory stimulus may be realized by sound output. The distance of a sound image may be realized by using multiple speakers. It is preferable that the auditory stimulus corresponding to the first stimulus is a combination of an increase or decrease in volume and the distance of a sound image. In this case, during the inhalation period, the volume may be gradually increased and the sound image may be moved closer to the driver's seat. This gives the driver a feeling of being enveloped in sound, and encourages the driver to inhale. During the exhalation period, the volume may be gradually decreased and the sound image may be moved farther away from the driver's seat. This gives the driver a feeling of the sound receding, and encourages the driver to exhale. The sound may be any of music, environmental sounds, and beeps. Alternatively, these may be combined.

[0045] The auditory stimulus corresponding to the first stimulus may be a change in pitch. The auditory stimulus corresponding to the first stimulus may be a change in rhythm of sound. The auditory stimulus corresponding to the first stimulus may be a combination of these. Furthermore, the auditory stimulus corresponding to the first stimulus may be any other stimulus as long as it is two patterns of continuous stimulus changes with different directions for the same type of stimulus. The correspondence between the two patterns of continuous auditory stimulus changes with different directions and the inhalation period and exhalation period may be set arbitrarily.

[0046] The visual stimulus corresponding to the first stimulus may be an increase or decrease in the brightness of the light emitted. In this case, the brightness may be gradually increased during the inhalation period. This gives the driver the sensation of being enveloped in light, encouraging the driver to inhale. The brightness may be gradually decreased during the exhalation period. This gives the driver the sensation of the light receding, encouraging the driver to exhale. The visual stimulus corresponding to the first stimulus may be an increase or decrease in the brightness of the image.

[0047] The visual stimulus corresponding to the first stimulus may be a change in the hue of the light emitted. One example is a change between warm and cool colors. Another example is a change between colored and colorless. The visual stimulus corresponding to the first stimulus may be the distance between the light-emitting position. The distance between the light-emitting position may be achieved by using multiple light-emitting devices. In this case, during the inhalation period, the light-emitting position may be gradually moved closer to the driver's seat. This gives the driver a sense of the light approaching, encouraging the driver to inhale. During the exhalation period, the light-emitting position may be gradually moved away from the driver's seat. This gives the driver a sense of the light receding, encouraging the driver to exhale. The visual stimulus corresponding to the first stimulus may be the size of the range of the light emitted. The size of the range of the light emitted may be achieved by using multiple light-emitting devices. In this case, during the inhalation period, the light-emitting range may be gradually expanded. This gives the driver a sense of being enveloped in light, encouraging the driver to inhale. During the exhalation period, the light-emitting range may be gradually narrowed. This gives the driver the sensation of a receding light, encouraging the driver to exhale. The visual stimulus serving as the first stimulus may be a combination of these. The visual stimulus serving as the first stimulus may also be any other stimulus as long as it is two patterns of continuous stimulus changes with different directions for the same type of stimulus. The correspondence between the two patterns of continuous visual stimulus changes with different directions and the inhalation period and exhalation period may be set arbitrarily.

[0048] The first stimulus may be a combination of tactile, auditory, and visual stimuli. In this embodiment, a case where tactile, auditory, and visual stimuli are used in combination will be described as an example. The tactile stimulus is the strength of the pressure on the back. The auditory stimulus is the increase or decrease in volume and the distance of the sound image. The visual stimulus is the size of the range of light emission. In this example, two types of stimuli are used as auditory stimuli: the increase or decrease in volume and the distance of the sound image. With the above configuration, the driver is given the sensation of being enveloped in light along with the sound, which encourages the driver to inhale. The driver is also given the sensation of the light receding along with the sound, which encourages the driver to exhale.

[0049] The first stimulus will now be described with reference to FIG. 3. For convenience, in FIG. 3, the first stimulus will be described using varying strength of pressure on the back as an example. As shown in FIG. 3, during the inhalation period, the tactile stimulus is continuously changed so that the pressure on the back gradually increases. On the other hand, during the exhalation period, the tactile stimulus is continuously changed so that the pressure on the back gradually decreases. When combining multiple types of stimuli as the first stimulus, the respiratory guidance control unit 206 matches the timing at which the direction of change in the stimuli changes across the multiple types of stimuli.

[0050] It is preferable that the respiratory guidance control unit 206 assigns two patterns of continuous stimulus changes in opposite directions to the inhalation period and the exhalation period as the first stimulus for the same type of stimulus. This makes it easier to understand the change in the stimulus patterns assigned to the inhalation period and the exhalation period. The change in strength of the pressure on the back shown in Figure 3 corresponds to two patterns of continuous stimulus changes in opposite directions. Examples of stimulus changes in opposite directions include strength and weakness, increase and decrease, enlargement and reduction, and perspective.

[0051] It is preferable that the breathing induction control unit 206 performs two patterns of continuous stimulus changes with different directions, which are estimated to easily evoke the driver's inhalation and exhalation, respectively. This makes it easier to induce the driver's inhalation and exhalation. As a result, it becomes possible to more naturally synchronize breathing with the target breathing rhythm. It is estimated that the change in strength of the pressure on the back shown in FIG. 3 will easily evoke the driver's inhalation and exhalation, respectively. It is estimated that an increase or decrease in volume and the distance of the sound image will also easily evoke the driver's inhalation and exhalation, respectively. It is estimated that an increase or decrease in the brightness of the light emission and an increase or decrease in the range will also easily evoke the driver's inhalation and exhalation, respectively.

[0052] In addition to the first stimulus, the breathing induction control unit 206 also applies an intermittent stimulus at regular intervals. This stimulus is called the second stimulus. The second stimulus may be, for example, a tactile stimulus, an auditory stimulus, or a visual stimulus. The first stimulus and the second stimulus are different types of stimuli. By adding the second stimulus to the first stimulus, the driver can more easily predict the timing of switching between the inhalation period and the exhalation period by relying on the second stimulus. This is because the second stimulus is an intermittent stimulus at regular intervals, and therefore, by combining it with the first stimulus, it becomes easier to measure the timing. As a result, when the driver's breathing timing is guided by continuously changing stimuli, the driver can more easily predict the timing of switching between inhalation and exhalation. The intensity of the second stimulus may or may not be constant.

[0053] The tactile stimulus corresponding to the second stimulus may be vibration of the driver's seat. The part of the seat that generates the vibration may be the seat back or the seat surface. This tactile stimulus may be realized by a vibrator provided in the driver's seat. The tactile stimulus corresponding to the second stimulus may be vibration of the steering wheel. This tactile stimulus may be realized by a vibrator provided in the steering wheel. The tactile stimulus corresponding to the second stimulus may be vibration of the floor of the vehicle. This tactile stimulus may be realized by a vibrator provided on the floor of the vehicle. The tactile stimulus corresponding to the second stimulus may be repeated winding up and unwinding of the driver's seat belt. This tactile stimulus may be realized by a motor that winds up and unwinds the seat belt.

[0054] The auditory stimulus, which corresponds to the second stimulus, is the output of sound at regular intervals. Examples of the sound that can be used include beeps, beats, and environmental sounds at regular intervals. Sounds that mimic heartbeats may also be used. The visual stimulus that corresponds to the second stimulus is a flashing light.

[0055] The second stimulus may be a combination of tactile, auditory, and visual stimuli. In this embodiment, a case where a beat sound is used as the second stimulus will be described as an example. Here, the second stimulus will be described with reference to FIG. 3. In FIG. 3, a beat sound is used as an example of the second stimulus. As shown in FIG. 3, the second stimulus is a sound that is output intermittently at regular intervals. In the example of FIG. 3, the volume of the sound is constant when it is output.

[0056] Here, using Figure 4, we will explain the actual effect of respiratory guidance by adding a second stimulus to the first stimulus. Figure 4 shows the results of a test to determine the ease of timing the switch between the inhalation and exhalation periods when respiratory guidance was performed by adding a second stimulus to the first stimulus. For comparison, Figure 4 also uses the results of the ease of timing the switch when respiratory guidance was performed using only the first stimulus. Ten participants participated in the test. Five combinations of inhalation and exhalation periods were used. The first combination was a 2.5-second inhalation period and a 5-second exhalation period. The second combination was a 3-second inhalation period and a 6-second exhalation period. The third combination was a 3.5-second inhalation period and a 7-second exhalation period. The fourth combination was a 24-second inhalation period and an 8-second exhalation period. The fifth combination was a 4.5-second inhalation period and an 8-second exhalation period. The ease of timing the switch was evaluated by the test participants on a 7-point scale from 1 to 8. As shown in Figure 4, adding a second stimulus to the first stimulus made it significantly easier to synchronize the timing compared to using only the first stimulus. It has also been verified that adding a second stimulus to the first stimulus makes it easier to synchronize the timing compared to breathing guidance using a single voice guide. The single voice guide consists of utterances such as "inhale" and "exhale."

[0057] It is preferable that the respiratory induction control unit 206 matches the timing of presentation of the second stimulus with the timing of switching between the inhalation period and the exhalation period. An example is as shown in FIG. 3. This makes it easier to predict the timing of the next switch between inhalation and exhalation. As a result, it becomes easier for the driver to adjust breathing to match the target breathing rhythm. In this case, the respiratory induction control unit 206 sets the cycle of the second stimulus so that the timing of presentation of the second stimulus matches the timing of switching between the inhalation period and the exhalation period.

[0058] It is preferable that the respiratory induction control unit 206 adjusts the period of the constant-intermittent second stimulus to the same period as the driver's heartbeat. The respiratory induction control unit 206 can achieve this based on the heartbeat identified by the heartbeat identification unit 232. For example, if the heartbeat rate is 60 beats per minute, the stimulus period should also be 60 beats per minute. The "same period" referred to here may include an error range that can be considered approximately the same. This makes the rhythm of the second stimulus the same as the driver's heartbeat. This increases the driver's acceptance of the second stimulus. As a result, the driver is less likely to be distracted by the second stimulus. Hereinafter, the period of the constant-intermittent second stimulus will be referred to as the "second stimulus period."

[0059] When the target state is an "awake state," the respiratory induction control unit 206 preferably sets the second stimulation period to a period shorter than the period of the driver's heartbeat. The respiratory induction control unit 206 may achieve this based on the heartbeat identified by the heartbeat identification unit 232. The case where the target state is an "awake state" can be rephrased as a case where a target respiratory rhythm targets the "awake state." By providing a stimulus with a period shorter than the driver's heartbeat, the psychological state is induced in an active direction. Therefore, with the above configuration, it is easier to induce the "awake state." On the other hand, when the target state is a "relaxed state," the respiratory induction control unit 206 preferably sets the second stimulation period to a period longer than the period of the driver's heartbeat. The respiratory induction control unit 206 may achieve this based on the heartbeat identified by the heartbeat identification unit 232. The case where the target state is a "relaxed state" can be rephrased as a case where a target respiratory rhythm targets the "relaxed state." By providing a stimulus with a longer cycle than the driver's heartbeat, the driver's psychological state is induced to be inactive. Therefore, with the above configuration, it becomes easier to induce a "relaxed state."

[0060] Presenting a visual stimulus to the driver may cause distraction to the driver. Therefore, the breathing guidance control unit 206 may not use visual stimuli as the first stimulus and the second stimulus when the host vehicle is moving. On the other hand, the breathing guidance control unit 206 may use visual stimuli as the first stimulus and the second stimulus when the host vehicle is stopped. Verification has confirmed that not providing visual stimuli while the host vehicle is moving allows the driver to receive breathing guidance more comfortably. On the other hand, verification has confirmed that providing visual stimuli while the vehicle is stopped allows the driver to receive breathing guidance more comfortably. Therefore, with the above configuration, it is possible to allow the driver to receive breathing guidance more comfortably depending on whether the host vehicle is moving or stopped.

[0061] Furthermore, the respiratory guidance control unit 206 may be configured to weaken the intensity of the visual stimulation when the host vehicle is moving compared to when the host vehicle is stopped. This configuration also makes it possible to prevent the driver from being distracted while the vehicle is moving.

[0062] It is preferable that the respiratory guidance control unit 206 applies a third stimulus, which is a type of stimulus different from the first and second stimuli, at the timing of switching between the inhalation period and the exhalation period. This makes it easier to understand the timing of switching between inhalation and exhalation. For example, an auditory stimulus or an olfactory stimulus can be used as the third stimulus.

[0063] An auditory stimulus corresponding to the third stimulus is the output of a sound that imitates the sound of air escaping (hereinafter referred to as "escaping sound"). This sound can be output at the timing when the inhalation period switches to the exhalation period. This makes it easier for the driver to intuitively recognize the timing when the inhalation period switches to the exhalation period. An olfactory stimulus corresponding to the third stimulus is the emission of an odor component. The odor component can be an aromatic (i.e., a pleasant smell). The odor component can be emitted at the timing when the exhalation period switches to the inhalation period. This will cause the driver to inhale air at the timing when the inhalation period switches to the inhalation period in order to smell the odor. It is preferable that the odor component be an odor component that corresponds to the target state. For example, if the target state is a "relaxed state," an odor component with a relaxing effect, such as cedrol, can be used.

[0064] The third stimulus may be a combination of an auditory stimulus and an olfactory stimulus. The third stimulus may be either an auditory stimulus or an olfactory stimulus. Here, the third stimulus will be described with reference to FIG. 5. In FIG. 5, the third stimulus will be described using the output of a drop sound as an example. As shown in FIG. 5, the drop sound as the third stimulus is output at the timing when the inhalation period switches to the exhalation period. At the timing when the exhalation period switches to the inhalation period, an aromatic odor component may be output.

[0065] When the driving load estimation unit 202 estimates that the driving load is high, it is preferable that the respiratory guidance control unit 206 weakens the intensity of the stimulus to the driver compared to when the driving load is estimated to be low. When the driving load is high, the cognitive load of respiratory guidance may have a significant impact on the driver's driving. In contrast, with the above configuration, when the driving load is high, the cognitive load of respiratory guidance can be reduced. As a result, it is possible to perform respiratory guidance with reduced impact on driving. The stimuli to be weakened in intensity may be all or some of the first stimulus, second stimulus, and third stimulus. A configuration may be adopted in which the stimuli that can be weakened in intensity among the first stimulus, second stimulus, and third stimulus are weakened. Note that weakening the intensity of the odor component may mean lowering the concentration of the odor component.

[0066] Here, using FIG. 6, the stimulation when the driving load is high will be described. In FIG. 6, the example of FIG. 3 will be used for comparison. Of the lines representing the change in stimulation intensity in FIG. 6, the dashed line represents the stimulation when the load is low. The change in stimulation intensity in this low load corresponds to the change in stimulation intensity shown in FIG. 3. Of the lines representing the change in stimulation intensity in FIG. 6, the solid line represents the change in stimulation intensity when the load is high. As shown in FIG. 6, in the case of a high load, the respiratory guidance control unit 206 weakens the intensity of both the first and second stimulations compared to the case of a low load. Although FIG. 6 does not describe the third stimulation, if the third stimulation is also performed, the same can be done for the third stimulation.

[0067] The target presence / absence determination unit 207 determines the presence or absence of a stimulus (hereinafter referred to as a target stimulus) that is caused by a large noise in the environmental state among the stimuli controlled by the breathing guidance control unit 206. The target presence / absence determination unit 207 determines the presence or absence of a target stimulus based on the environmental state identified by the environmental state identification unit 201. As an example, if the volume of sound collected by the microphone is equal to or greater than a threshold, it may be determined that a target stimulus corresponding to sound is present. If the brightness detected by the sunlight sensor and illuminance sensor is equal to or greater than a threshold, it may be determined that a target stimulus corresponding to light or display is present. If the degree of shaking detected by the vibration sensor is equal to or greater than a threshold, it may be determined that a target stimulus corresponding to vibration is present.

[0068] When the presence / absence determination unit 207 determines that there is a target stimulus, it is preferable for the respiration guidance control unit 206 to increase the intensity of the target stimulus. For example, when it is determined that there is a target stimulus corresponding to sound, the volume of the sound may be increased. When it is determined that there is a target stimulus corresponding to light or display, the brightness of the light or display may be increased. When it is determined that there is a target stimulus corresponding to vibration, the vibration may be strengthened. According to this, it becomes possible to prevent the induction stimulus from becoming difficult for the driver to perceive.

[0069] Here, with reference to FIG. 7, the stimulus when increasing the intensity of the target stimulus will be described. Among the lines representing the intensity change of the stimulus in FIG. 7, the dashed-dotted line indicates the intensity change of the target stimulus. Among the lines representing the intensity change of the stimulus in FIG. 7, the solid line indicates the intensity change of the stimulus other than the target stimulus. The stimulus corresponding to the target stimulus shall also show the intensity change indicated by the solid line when it does not correspond to the target stimulus. As shown in FIG. 7, the respiration guidance control unit 206 increases the intensity of the target stimulus compared to the case where it does not correspond to the target stimulus.

[0070] Also, when the respiration guidance control unit 206 determines that there is a target stimulus, it may increase the intensity of the stimulus other than the target stimulus among the stimuli controlled by the respiration guidance control unit 206. For example, when it is determined that there is a target stimulus corresponding to sound, the brightness of the light or display may be increased or the vibration may be strengthened. When it is determined that there is a target stimulus corresponding to light or display, the volume of the sound may be increased or the vibration may be strengthened. When it is determined that there is a target stimulus corresponding to vibration, the brightness of the light or display may be increased or the volume of the sound may be increased. According to this, by the stimuli complementing each other, it becomes possible to prevent the induction stimulus from becoming difficult for the driver to perceive.

[0071] <Psychological state induction related processing in HCU20> Next, an example of the flow of the psychological state induction-related processing in the HCU 20 will be described using the flowchart of Fig. 8. The flowchart of Fig. 8 may be configured to start, for example, when a power switch of the vehicle is turned on. The power switch is a switch for starting an internal combustion engine or a motor generator of the vehicle. When the power switch is turned on, the power of the HCU 20 may also be turned on. Another condition may be that a function for executing the psychological state induction-related processing is set to on via the operation device 24.

[0072] First, in step S1, identification of various conditions is started. In S1, environmental condition identification unit 201 starts identifying the environmental condition of the vehicle. In S1, driver condition identification unit 203 starts identifying the driver's condition. This driver's condition also includes heart rate. In step S2, implementation determination unit 204 determines whether or not to implement respiratory guidance. Then, if it is determined that respiratory guidance is to be implemented (YES in S2), the process proceeds to step S3. On the other hand, if it is determined that respiratory guidance is not to be implemented (NO in S2), the process proceeds to step S11.

[0073] In step S3, the rhythm determination unit 205 determines a target breathing rhythm for changing the psychological state of the driver to the target state. In step S4, the respiratory induction control unit 206 sets the second stimulation period to the same period as the period of the driver's heartbeat. In S4, this setting may be performed based on the heartbeat determined in S1.

[0074] In step S5, the respiratory induction control unit 206 resets the second stimulation period if necessary depending on the target state. In S5, if the target state is an "awake state", the second stimulation period is reset to a period shorter than the period of the driver's heartbeat. In S5, if the target state is a "relaxed state", the second stimulation period is reset to a period longer than the period of the driver's heartbeat.

[0075] In step S6, the respiratory induction control unit 206 sets the intensity of the induction stimulus according to the traveling state of the host vehicle. In S6, when the host vehicle is traveling, the intensity of the visual stimulus is set to be weaker than when the host vehicle is stopped. In S6, when the host vehicle is traveling, the intensity of the visual stimulus may be set to be not provided. If the rhythm determination unit 205 has not determined an induction stimulus including a visual stimulus, S6 may be omitted. Note that, when the target presence / absence determination unit 207 determines that a target stimulus is present, the respiratory induction control unit 206 may set the intensity of the target stimulus to be increased. Furthermore, when the respiratory induction control unit 206 determines that a target stimulus is present, the respiratory induction control unit 206 may set the intensity of stimuli other than the target stimulus to be controlled by the target respiratory rhythm to be increased.

[0076] In step S7, the breathing induction control unit 206 starts to control the breathing induction device 23 so that the driver breathes in accordance with the target breathing rhythm determined in S3. In S7, the induction stimulus is controlled according to the settings in S3 to S6.

[0077] In step S8, if the timing for implementing respiratory guidance has ended (YES in S8), the process proceeds to step S10. As an example, the timing for implementing respiratory guidance ends when the psychological state of the driver identified by the psychological state identification unit 231 becomes the target state. On the other hand, if the timing for implementing respiratory guidance has not ended (NO in S8), the process proceeds to step S9.

[0078] In step S9, if it is time to end the psychological state induction-related processing (YES in S9), the breathing induction control unit 206 ends the breathing induction. Then, the psychological state induction-related processing ends. On the other hand, if it is not time to end the psychological state induction-related processing (NO in S9), the process returns to S6 and repeats. An example of the timing to end the psychological state induction-related processing is when the power switch of the vehicle is turned off. Another example of the timing to end the psychological state induction-related processing is when the function that executes the psychological state induction-related processing is switched off.

[0079] In step S10, the breathing induction control unit 206 pauses breathing induction. In step S11, if it is time to end the psychological state induction-related process (YES in S11), the psychological state induction-related process is ended. On the other hand, if it is not time to end the psychological state induction-related process (NO in S11), the process returns to S2 and is repeated.

[0080] (Embodiment 2) The configuration of the driving assistance system 1 of the second embodiment is not limited to the configuration of the first embodiment, and may be the configuration of the following second embodiment. An example of the configuration of the second embodiment will be described below with reference to the drawings. The driving assistance system 1 of the second embodiment is similar to the driving assistance system 1 of the first embodiment, except that the driving assistance system 1 of the second embodiment includes an HCU 20a instead of the HCU 20.

[0081] Here, the schematic configuration of the HCU 20a will be described with reference to Fig. 9. The HCU 20a includes, as functional blocks for psychological state induction-related processing, an environmental state identification unit 201, a driving load estimation unit 202, a driver state identification unit 203, an implementation determination unit 204, a rhythm determination unit 205, a respiratory induction control unit 206a, and a target presence / absence determination unit 207. The HCU 20a is similar to the HCU 20 of the first embodiment except that it includes the respiratory induction control unit 206a instead of the respiratory induction control unit 206. This HCU 20a also corresponds to a psychological state induction device. Execution of processing of each functional block of the HCU 20a by a computer also corresponds to execution of a psychological state induction method.

[0082] The respiratory induction control unit 206a is similar to the respiratory induction control unit 206 except for some differences in processing. The respiratory induction control unit 206a sets the second stimulation period to a period within a predetermined range starting from a period of 60 beats per minute (hereinafter referred to as a heartbeat-like period). The respiratory induction control unit 206a does not set the second stimulation period based on the heartbeat identified by the heartbeat identification unit 232. The predetermined range referred to here may be an average range of a person's heartbeat in normal times. This range may be set in advance through experiments, etc. For example, normal times may be a state in which both activity / inactivity and comfort / discomfort are intermediate in Russell's circular model. The heartbeat-like period is a period estimated to be a period of a person's heartbeat in normal times. For example, the heartbeat-like period may be set to a period of 60 to 80 beats per minute. As an example, a period of 75 beats per minute may be set.

[0083] When the target state is an "awake state," the respiratory induction control unit 206a preferably sets the second stimulation period to a period shorter than the heartbeat-like period. By providing a stimulation with a period shorter than the heartbeat-like period estimated to be a normal human heartbeat, the driver's psychological state is likely to be induced toward an active state. Therefore, with the above configuration, it becomes easier to induce the driver into an "awake state." On the other hand, when the target state is a "relaxed state," the respiratory induction control unit 206 preferably sets the second stimulation period to a period longer than the heartbeat-like period. By providing a stimulation with a period longer than the heartbeat-like period estimated to be a normal human heartbeat, the driver's psychological state is likely to be induced toward an inactive state. Therefore, with the above configuration, it becomes easier to induce the driver into a "relaxed state."

[0084] (Embodiment 3) In the above-described embodiment, the HCU 20, 20a is responsible for the psychological state induction-related processing, but this is not necessarily limited to this. For example, the psychological state induction-related processing may be performed by the HCU 20, 20a and another ECU. The psychological state induction-related processing may be performed by an ECU other than the HCU 20, 20a.

[0085] The present disclosure is not limited to the above-described embodiments, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also within the technical scope of the present disclosure. Furthermore, the control unit and method described in the present disclosure may be implemented by a special-purpose computer comprising a processor programmed to execute one or more functions embodied in a computer program. Alternatively, the apparatus and method described in the present disclosure may be implemented by a special-purpose hardware logic circuit. Alternatively, the apparatus and method described in the present disclosure may be implemented by one or more special-purpose computers configured by combining a processor executing a computer program with one or more hardware logic circuits. Furthermore, the computer program may be stored as instructions executed by a computer on a computer-readable non-transitory tangible recording medium.

[0086] (Disclosed technical idea) This specification discloses multiple technical ideas described in the following multiple clauses. Some clauses may be written in a multiple dependent form, with subsequent clauses alternatively referencing preceding clauses. Furthermore, some clauses may be written in a multiple dependent form, with subsequent clauses alternatively referencing preceding clauses. These multiple dependent clauses define multiple technical ideas.

[0087] Technical thought 1 a rhythm determination unit (205) for determining a target breathing rhythm for changing the psychological state of the vehicle driver to a target psychological state; a breathing induction control unit (206, 206a, 206b, 206c) that controls a stimulus to induce the driver to breathe in accordance with the target breathing rhythm determined by the rhythm determination unit, the rhythm determination unit determines, as the target breathing rhythm, an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed; The respiratory induction control unit is a psychological state induction device that performs a first stimulus, which is a continuous stimulus change of two patterns with different directions for the same type of stimulus, by assigning it to the inhalation period and the exhalation period, respectively, and also performs a second stimulus, which is an intermittent stimulus at a fixed interval.

[0088] Technical thought 2 A psychological state induction device according to Technical Idea 1, The respiratory induction control unit is a psychological state induction device that applies a third stimulus, which is a different type of stimulus from the first stimulus and the second stimulus, at the timing of switching between the inhalation period and the exhalation period.

[0089] Technical thought 3 The psychological state induction device according to Technical Idea 1 or 2, The respiratory induction control unit is a psychological state induction device that assigns two patterns of continuous stimulus changes with opposite directions for the same type of stimulus as the first stimulus to the inhalation period and the exhalation period, respectively.

[0090] Technical thought 4 A psychological state induction device according to any one of technical concepts 1 to 3, The breathing induction control unit is a psychological state induction device that performs changes in the two patterns of continuous stimuli with different directions, which are estimated to make the driver more likely to inhale and exhale, respectively.

[0091] Technical thought 5 A psychological state induction device according to any one of technical concepts 1 to 4, The respiratory induction control unit is a psychological state induction device that matches the timing of presentation of the second stimulus with the timing of switching between the inhalation period and the exhalation period.

[0092] technical thought 6 A psychological state induction device according to any one of technical concepts 1 to 5, The respiratory induction control unit is a psychological state induction device that sets the period of the intermittent stimulation at regular intervals in the second stimulation to a heartbeat-like period that is within a predetermined range starting from a period of 60 times per minute.

[0093] Technical thought 7 A psychological state induction device according to any one of technical concepts 1 to 5, the target psychological state to be changed by the target respiratory rhythm determined by the rhythm determination unit includes at least an alertness state and a relaxation state of the driver; The respiratory induction control unit, in the case of the target respiratory rhythm targeting the awake state, sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period shorter than a heartbeat-like period, which is a period within a predetermined range starting from a period of 60 times per minute, while, in the case of the target respiratory rhythm targeting the relaxed state, sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period longer than the heartbeat-like period.

[0094] Technical thought 8 A psychological state induction device according to any one of technical concepts 1 to 5, a heartbeat determination unit (232) for determining the heartbeat of the driver; The breathing induction control unit is a psychological state induction device that, based on the heart rate identified by the heart rate identification unit, makes the period of the intermittent stimulation at a fixed interval in the second stimulation the same as the period of the driver's heart rate.

[0095] Technical thought 9 A psychological state induction device according to any one of technical concepts 1 to 5, a target psychological state to be changed by the target respiratory rhythm determined by the rhythm determination unit includes an alertness state and a relaxation state of the driver; a heartbeat determination unit (232) for determining the heartbeat of the driver; The respiratory induction control unit, based on the heart rate identified by the heart rate identification unit, sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period shorter than the period of the driver's heart rate in the case of the target respiratory rhythm that aims for the awake state, while sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period longer than the period of the driver's heart rate in the case of the target respiratory rhythm that aims for the relaxed state.

[0096] Technical thought 10 A psychological state induction device according to any one of technical concepts 1 to 9, a driving load estimation unit (202) for estimating the level of the driving load of the driver, The respiratory induction control unit is a psychological state induction device that, when the driving load estimation unit estimates the driving load to be high, weakens the intensity of stimulation to the driver compared to when the driving load is estimated to be low.

[0097] Technical thought 11 A psychological state induction device according to any one of technical concepts 1 to 10, an environmental condition determination unit (201) that determines an environmental condition inside and outside the vehicle; a target presence / absence determination unit (207) that determines, based on the environmental condition identified by the environmental condition identification unit, the presence or absence of a target stimulus, which is a stimulus in which the environmental condition becomes a large noise, among stimuli controlled by the respiratory guidance control unit; The respiratory induction control unit is a psychological state induction device that, when the target presence / absence determination unit determines that the target stimulus is present, increases the intensity of the target stimulus or increases the intensity of stimuli other than the target stimulus among the stimuli controlled by the respiratory induction control unit.

[0098] Technical thought 12 Executed by at least one processor, a rhythm determination step of determining a target breathing rhythm for changing the psychological state of the driver of the vehicle to a target psychological state; a breathing induction control step of controlling a stimulus to induce the driver to breathe in accordance with the target breathing rhythm determined in the rhythm determination step, the rhythm determining step determines an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed as the target breathing rhythm; In the respiratory induction control process, in addition to the first stimulus, which is a first stimulus that is a continuous stimulus change of two patterns with different directions for the same type of stimulus, and is assigned to the inhalation period and the exhalation period, respectively, a second stimulus, which is an intermittent stimulus at a fixed interval, is also performed. [Explanation of symbols]

[0099] 1 Driving assistance system, 2 HMI system, 20, 20a, 20b, 20c HCU (mental state induction device), 23 Respiratory induction device, 201 Environmental state identification unit, 202 Driving load estimation unit, 205 Rhythm determination unit, 206, 206a, 206b, 206c Respiratory induction control unit, 207 Target presence / absence determination unit, 232 Heart rate identification unit

Claims

1. a rhythm determination unit (205) for determining a target breathing rhythm for changing the psychological state of a driver of a vehicle to a target psychological state; a breathing induction control unit (206, 206a, 206b, 206c) that controls a stimulus to induce the driver to breathe in accordance with the target breathing rhythm determined by the rhythm determination unit, the rhythm determination unit determines, as the target breathing rhythm, an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed; the respiratory guidance control unit performs a first stimulus that is a continuous stimulus change of two patterns with different directions for the same type of stimulus, by allocating the change to the inhalation period and the exhalation period, respectively, and also performs a second stimulus that is an intermittent stimulus at a fixed interval; the target psychological state to be changed by the target respiratory rhythm determined by the rhythm determination unit includes at least an alertness state and a relaxation state of the driver; The respiratory induction control unit, in the case of the target respiratory rhythm targeting the awake state, sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period shorter than a heartbeat-like period, which is a period within a predetermined range starting from a period of 60 times per minute, while, in the case of the target respiratory rhythm targeting the relaxed state, sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period longer than the heartbeat-like period.

2. a rhythm determination unit (205) for determining a target breathing rhythm for changing the psychological state of a driver of a vehicle to a target psychological state; a breathing induction control unit (206, 206a, 206b, 206c) that controls a stimulus to induce the driver to breathe in accordance with the target breathing rhythm determined by the rhythm determination unit, the rhythm determination unit determines, as the target breathing rhythm, an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed; the respiratory guidance control unit performs a first stimulus that is a continuous stimulus change of two patterns with different directions for the same type of stimulus, by allocating the change to the inhalation period and the exhalation period, respectively, and also performs a second stimulus that is an intermittent stimulus at a fixed interval; a target psychological state to be changed by the target respiratory rhythm determined by the rhythm determination unit includes an alertness state and a relaxation state of the driver; a heartbeat identification unit (232) for identifying the heartbeat of the driver; The respiratory induction control unit, based on the heart rate identified by the heart rate identification unit, sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period shorter than the period of the driver's heart rate in the case of the target respiratory rhythm that targets the awake state, while sets the period of the intermittent stimulation at regular intervals in the second stimulus to a period longer than the period of the driver's heart rate in the case of the target respiratory rhythm that targets the relaxed state.

3. The psychological state induction device according to claim 1 or 2, The respiratory induction control unit is a psychological state induction device that applies a third stimulus, which is a different type of stimulus from the first stimulus and the second stimulus, at the timing of switching between the inhalation period and the exhalation period.

4. The psychological state induction device according to claim 1 or 2, The respiratory induction control unit is a psychological state induction device that assigns two patterns of continuous stimulus changes with opposite directions to the inhalation period and the exhalation period as the first stimulus for the same type of stimulus.

5. The psychological state induction device according to claim 1 or 2, The breathing induction control unit is a psychological state induction device that performs changes in the two patterns of continuous stimuli with different directions, which are estimated to make the driver more likely to inhale and exhale, respectively.

6. The psychological state induction device according to claim 1 or 2, The respiratory induction control unit is a psychological state induction device that matches the timing of presenting the second stimulus with the timing of switching between the inhalation period and the exhalation period.

7. The psychological state induction device according to claim 1 or 2, A driving load estimation unit (202) for estimating the level of the driving load of the driver, The respiratory induction control unit is a psychological state induction device that, when the driving load estimation unit estimates the driving load to be high, weakens the intensity of stimulation to the driver compared to when the driving load is estimated to be low.

8. The psychological state induction device according to claim 1 or 2, an environmental condition identification unit (201) that identifies an environmental condition inside and outside the vehicle; a target presence / absence determination unit (207) that determines, based on the environmental condition identified by the environmental condition identification unit, the presence or absence of a target stimulus, which is a stimulus in which the environmental condition becomes a large noise, among stimuli controlled by the respiratory guidance control unit; The respiratory induction control unit is a psychological state induction device that, when the target presence / absence determination unit determines that the target stimulus is present, increases the intensity of the target stimulus or increases the intensity of stimuli other than the target stimulus among the stimuli controlled by the respiratory induction control unit.

9. Executed by at least one processor, a rhythm determination step of determining a target breathing rhythm for changing the psychological state of the driver of the vehicle to a target psychological state; a breathing induction control step of controlling a stimulus to induce the driver to breathe in accordance with the target breathing rhythm determined in the rhythm determination step, the rhythm determining step determines an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed as the target breathing rhythm; In the respiratory induction control step, in addition to a first stimulus that is a first stimulus in which two patterns of continuous stimulus changes having different directions are assigned to the inhalation period and the exhalation period, respectively, for the same type of stimulus, a second stimulus that is an intermittent stimulus at a fixed interval is also performed, the target psychological state to be changed by the target respiratory rhythm determined in the rhythm determining step includes at least an alertness state and a relaxation state of the driver; In the respiratory induction control step, in the case of the target respiratory rhythm that aims at the wakeful state, the period of the intermittent stimulation at regular intervals in the second stimulus is set to a period shorter than a heartbeat-like period, which is a period within a predetermined range starting from a period of 60 times per minute, while in the case of the target respiratory rhythm that aims at the relaxed state, the period of the intermittent stimulation at regular intervals in the second stimulus is set to a period longer than the heartbeat-like period.

10. Executed by at least one processor, a rhythm determination step of determining a target breathing rhythm for changing the psychological state of the driver of the vehicle to a target psychological state; a breathing induction control step of controlling a stimulus to induce the driver to breathe in accordance with the target breathing rhythm determined in the rhythm determination step, the rhythm determining step determines an inhalation period during which inhalation is performed and an exhalation period during which exhalation is performed as the target breathing rhythm; In the respiratory induction control step, in addition to a first stimulus that is a first stimulus in which two patterns of continuous stimulus changes having different directions are assigned to the inhalation period and the exhalation period, respectively, for the same type of stimulus, a second stimulus that is an intermittent stimulus at a fixed interval is also performed, a target psychological state to be changed by the target respiratory rhythm determined in the rhythm determining step includes an alertness state and a relaxation state of the driver; a heart rate determining step of determining the heart rate of the driver, In the respiratory induction control step, based on the heart rate identified in the heart rate identification step, in the case of the target respiratory rhythm that aims at the awake state, the period of the intermittent stimulation at regular intervals in the second stimulus is made shorter than the period of the driver's heart rate, while in the case of the target respiratory rhythm that aims at the relaxed state, the period of the intermittent stimulation at regular intervals in the second stimulus is made longer than the period of the driver's heart rate.

Citation Information

Patent Citations

  • Relaxation controller

    JP2005342049A

  • Respiration inducing system, respiration inducing method and respiration inducing program

    JP2010104455A

  • Respiration guiding device

    JP2012019852A

  • Comfort generator

    JP2016158632A

  • Wakefulness maintaining device

    JP2019008427A