MILLIMETRE-WAVE SEAT OCCUPATION RADAR SENSOR
20170039835 ยท 2017-02-09
Inventors
- Veselin Brankovic (Belgrade, RS)
- Dusan GRUJIC (Belgrade, RS)
- Pavle JOVANOVIC (Belgrade, RS)
- Veljko Mihajlovic (Belgrade, RS)
- Milan SAVIC (Belgrade, RS)
- Darko Tasovac (Belgrade, RS)
Cpc classification
H01Q1/3233
ELECTRICITY
B60R21/01534
PERFORMING OPERATIONS; TRANSPORTING
H01Q1/2283
ELECTRICITY
H01Q1/3291
ELECTRICITY
B60N2/0023
PERFORMING OPERATIONS; TRANSPORTING
B60N2/0026
PERFORMING OPERATIONS; TRANSPORTING
B60N2/267
PERFORMING OPERATIONS; TRANSPORTING
H01Q19/108
ELECTRICITY
B60N2230/30
PERFORMING OPERATIONS; TRANSPORTING
G01S7/415
PHYSICS
B60N2/0022
PERFORMING OPERATIONS; TRANSPORTING
International classification
H01Q9/28
ELECTRICITY
H01Q1/22
ELECTRICITY
B60N2/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention discloses a mm-wave radar sensor to be deployed in the vehicles for seat occupation detection applications. The key system relevant components are utilization of mm-wave integrated radar, specific planar high-gain antenna radiation pattern, and analyzing of the heartbeat and optionally also respiratory dynamics. The method of operation calculates probability of the seat occupation event regarding: detection of the passenger on the seat, detection of a baby or a child on the seat, detection of the presence of a baby or a child in the vehicle after the driver has left the vehicle, detection of the human or animal presence of intrusion in specific vehicle environment. In case that probability is above a predefined threshold, typically the interaction with vehicle control system is initiated using arbitrary automotive interfaces. Corresponding predefined actions are taken in that case. The predefined actions could be one or combination of the following: audio signal alerts to driver, inside cabin light condition change, engine operation condition change, opening of the windows or corresponding communication using arbitrary wireless means to outside vehicle environment. Optionally, the system is utilizing additional parameters like vehicle cabin temperature and/or timing information about engine stop and driver leaving the car. Preferably, the system is using 60 GHz or 77-79 GHz integrated radar front end working in Doppler operation mode, with 44 Tx and Rx planar radiation elements, with physical size typically in the range 421 cm, or smaller.
Claims
1: MM-wave Seat Occupation Sensor Apparatus and Method of Operation 100, where mm wave declares operation between 30 and 300 GHz is including: 1. High-gain planar antenna for transmitting mm-wave radio signals 22, where the high-gain planar antenna has at least two radiation elements; 2. High-gain planar antenna for receiving mm-wave radio signals 21, where the high-gain planar antenna has at least two radiation elements; 3. Integrated mm-wave radio front end 10, implemented in arbitrary semiconductor technology, having on-chip integrated mm-wave voltage control oscillator, mm-wave power amplifier, mm-wave low noise amplifier, mm-wave down conversion mixer, digital control interface, power supply; and PLL 4. Analog to digital conversion entity 30; 5. Digital processing functionality 40 including controlling functionality 41 and calculation and memory capacity for performing digital signal processing by arbitrary type of the realization options; 6. Interface to vehicle infrastructure, including one or more standardized automotive wired interfaces; 7. Supporting circuitry 50, including mechanical interface to vehicle infrastructure and supporting electronic circuitry for power supply of 100. where apparatus 100 is integrated in the vehicle chassis, facing passenger, with direct line-of-sight operation, where the method of operation includes: Transmission of mm-wave signals generated in 10 using 22; Receiving mm-wave signals reflected from driver body using 21; Amplification of the reflected signal in 10; Down-conversion of the signals by mixing with the same signal of the same frequency as the transmitted signal in 10; Amplification of the converted signal after mixer in 10; Analog filtering of the signals after amplification in 10; Signal conditioning in 10 for subsequent analog to digital conversion performed by 30; Digital processing of the signal in 40, by: Extracting the heartbeat rate from the previous arbitrary processed signal; Digital processing in Seat occupation event decision functionality 70 which includes the following steps: Evaluation if the heartbeat rate is within the specified range 711; Digital processing in seat occupation event calculation decision functionality 720 is performed, which: Calculates the score by processing the information provided through entities 711-717 weighted by the specified coefficients, where the score is related to the probability of the seat occupation event; In case that the calculated score is above predefined threshold, decision on positive seat occupation event is made; In case of the positive the seat occupation event the entity 720 sends the decision information and the corresponding score to the entity 71; In case of the positive the seat occupation event the entity 71 initiates appropriate specified actions of the entity 60 and/or entity 50. where the seat occupation event denotes the presence of the human on the seat.
2: System according to claim 1, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes extraction of the rate of change of the heartbeat rate from the previous arbitrary processed signal; Evaluation if the rate of change of the heartbeat rate is within specified range 713.
3: System according to claim 1, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes extraction of the respiratory rate from the previous arbitrary processed signal; Evaluation if the respiratory rate is within the specified range 712.
4: System according to claim 3, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes extraction of the rate of change of the respiratory rate from the previous arbitrary processed signal; Evaluation if the rate of change of the respiratory rate is within specified range 714.
5: System according to claim 1, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes statistical evaluation of the heartbeat rate data history 715.
6: System according to claim 2, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes statistical evaluation of the rate of change of the heartbeat rate data history 715.
7: System according to claim 3, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes statistical evaluation of the respiratory rate data history 716.
8: System according to claim 4, in which apparatus 100 and Method of operation are incorporating: Digital processing of the signal in 40 which additionally includes statistical evaluation of the rate of change of the respiratory rate data history 716.
9: System according to previous claims, in which entity 718 provides information about the vehicle cabin temperature to entity 720, and where this information influences seat occupation event score calculation in Method of operation.
10: System according to previous claims 1-8, in which entity 717 provides information on time elapsed since the engine stopped 720, and where this information influences seat occupation event score calculation in Method of operation.
11: System according to previous claims, in which optional information from vehicle cabin gas sensor 719 is provided to entity 720, and where this information influences seat occupation event score calculation in Method of operation, in case that increased CO.sub.2 concentration is detected.
12: System according to previous claims, in which the supporting circuitry 50 contains audio and/or visual alerting and/or indication capabilities of arbitrary realization, which are activated in case the seat occupation event is detected by the entity 71.
13: System according to previous claims where the seat occupation event is the presence of a baby on a seat.
14: System according to previous claims where the seat occupation vent is the presence of baby on a seat after the driver has left the car.
15: System according to previous claims where the seat occupation event is the presence of a human in dedicated vehicle area.
16: System according to previous claims where the seat occupation event is the presence of an animal in dedicated vehicle area.
17: System according to previous claims where appropriate specified action of the entity 60 and/or entity 50 is activating audio alarm.
18: System according to previous claims where appropriate specified action of the entity 60 and/or entity 50 is activating visual alarm.
19: System according to previous claims where appropriate specified action of the entity 60 is initiating mechanical actions of the vehicle sub-systems.
20. System according to previous claims, in which the sensor apparatus and method of operation 100 has only one high gain antenna for transmitting and receiving mm-wave radio signals 24, where the high-gain planar antenna has at least two radiation elements and isolator functionality 23 being released by plurality of the realization option, providing isolation between Rx and Tx chains, and related Rx and Tx connection to high gain antenna 24.
21. System according to previous claims, in which the sensor apparatus and method of operation 100 has entity 10 having instead of mm-wave down conversion mixer, the IQ Demodulator, and two signal conditioning chains instead of one.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0065] Apparatus 100 is preferably integrated in the vehicle, having Line-of-Sight (LOS), i.e. no obstacles, between the system and the human body, as shown in the
[0066] The crucial block of the proposed apparatus 100 is the Integrated mm-wave front end, -System on Chip- 10. It contains the complete RF functionality, and includes power amplifier functionality attached to the antenna system 22, low noise amplifier attached to antenna system 21, integrated PLL, used both for up-conversion in transmit and down-conversion in receive, one analog pre filtered an amplified signal or providing two analog pre-filtered and amplified signals as IQ outputs to A/D conversion functionality 30. The entity 10 has test functionality, voltage regulation, and digital interface to the Controlling functionality 41, which is a part of the Digital Processing functionality 40. More detailed structure of the integrated front end 10 is given in
[0067] Digital processing functionality 40 may be realized by the plurality of technologies, such as: advanced CPUs, FPGAs, advanced C, DSP, or ASIC, or their combinations, where the digital processing may be performed by soft approach or by hard-wired approach or by their combination. Preferably functionalities 60 and 40 are integrated on a simple ASIC, having CPU on one digital SOC. Digital processing functionality 40 includes functionalities 41, 421-429 and 70-71 as described in
[0074] Comparison thresholds may be predefined or statistically calculated based on the stored data
[0075] Time information entity 717 is providing optional additional information to entity 720 including: [0076] time information on the vehicle engine being on or off; [0077] current local time information.
[0078] Optional entity 719 is providing information form the external cabin gas sensor to entity 720, preferably including CO.sub.2 concentration. Optional entity 718 provides information of the vehicle cabin temperature to entity 720. This information may be provided from external sensors embedded in vehicle provided to apparatus 100 through entity 60.
[0079] Seat occupation event calculation entity 720 calculates seat occupation score based on a weighted sum of the following information set, with possible zero weights in case corresponding optional blocks are not present: [0080] Heartbeat rate existing; [0081] Heartbeat rate existing in predefined thresholds detecting adult; [0082] Heartbeat rate existing in predefined thresholds detecting child; [0083] Heartbeat rate existing in predefined thresholds detecting baby; [0084] Rate of change of the heartbeat rate achieved calculated or predefined threshold for baby; [0085] Respiratory rate existing; [0086] Respiratory rate existing in predefined thresholds detecting adult; [0087] Respiratory rate existing in predefined thresholds detecting child; [0088] Respiratory rate existing in predefined thresholds detecting baby; [0089] Rate of change of the respiratory rate achieved calculated or predefined threshold for baby; [0090] Time duration since engine was stopped; [0091] Vehicle cabin temperature; [0092] CO.sub.2 concentration achieved specific predefined threshold; [0093] Part of the day: early morning, daytime, twilight, night, late night.
[0094] The weighting factors are predefined or determined based on the information set, predefined values and behavior statistics. If the score is above the threshold, the different seat occupation events are detected. Based on the score value, the seat occupation events are determined. This information is communicated to the entity 71. Based on this information, the entity 71 is initiating predefined actions using entity 60 and/or entity 50 where optional audio and optional visual indication/alerting capabilities are included.
[0095] Predefined seat occupation events are: [0096] 1. Decision: Seat is occupied by person [0097] a. Cause: [0098] Detected heartbeat. [0099] b. Possible action: [0100] Provide the information to the vehicle infrastructure so it can influence safety belt alarming and airbag activation. [0101] 2. Decision: Seat is occupied by a baby or a child [0102] a. Cause: [0103] Detected heartbeat rate value is within the specified range for a baby or a [0104] Optionally detected respiratory rate value is within the specified range for a baby or a child. [0105] b. Possible action: [0106] Provide the information to the vehicle infrastructure so it can influence safety belt alarming, airbag activation, and the control of the airbag explosion. [0107] 3. Decision: A baby or a child is left in car [0108] a. Cause: [0109] Detected heartbeat rate value is within the specified range for a baby or a child; [0110] Optionally detected respiratory rate value is within the specified range for a baby or a child; [0111] Engine stopped and the specified time elapsed since; [0112] Optionally other adult left the vehicle; [0113] Optionally driver left the vehicle; [0114] Optionally the temperature in cabin is raised; [0115] Optionally heartbeat rate of a baby or a child changed; [0116] Optionally respiratory rate of a baby or a child changed. [0117] b. Possible action: [0118] Provide the information to the vehicle infrastructure so it can initiate audio and/or visual alarms, optionally open the windows, optionally request driver's confirmation, optionally send emergency alarm through e-call; [0119] Activate the audio and/or video alarm system of apparatus 100 if existing. [0120] 4. Decision: Monitored vital signs, i.e. heartbeat and optionally respirations, of a person exhibit abnormal behavior [0121] a. Cause: [0122] Monitored heartbeat rate is not within the predefined range; [0123] Optionally monitored respiratory is not within the predefined range; [0124] Optionally, the rate of change of the heartbeat rate is not within the predefined range; [0125] Optionally, rate of change of the respiratory rate is not within the predefined range. [0126] b. Possible action: [0127] Inform vehicle or other monitoring system to issue specific predefined alarm, and/or initiate emergency action. [0128] 5. Decision: Person or animal left the observing area or died [0129] a. Cause: [0130] Monitored heartbeat stopped in the observing area; [0131] Optionally monitored respirations stopped in the observing area. [0132] b. Possible action: [0133] inform vehicle or other monitoring system to issue specific predefined alarm, and/or initiate emergency action.
[0134] If the apparatus detects the abrupt stop of the heartbeat confirmed with the cease of respiratory activity, alerts to the driver are initiated. In case the driver does not respond, emergency condition is confirmed and emergency actions are initiated. Emergency actions may include appropriate engine and brake systems control, and/or emergency calls.
[0135] In
[0136] Supporting circuitry 50 as a part of the apparatus 100 may include loudspeaker and/or light source functionality having plurality of possible realizations. This feature would allow apparatus 100 to be independent of the vehicle infrastructure by initializing appropriate audio and/or visual warnings and/or indications. These options are useful for all types of the aftermarket applications, where the apparatus 100 is assembled in vehicles after production.
[0137] Alternatively instead of using two high gain antennas one for Tx 22 and one for Rx 21, the proposed system may be realized by one high gain antenna for both Rx and Tx functionality, 24 like in
[0138] The usage of the IQ demodulator instead of signal mixer in entity 10, would provide the two analog baseband down converted quadrature signals to the entity 30. Having two signals in the signal processing path additional information about phase changes between two signal may be used. This may increase the accuracy in the digital signal processing and some redundancy, by the expense of the more chip size of entity 10 and more processing efforts of the entity 40. The method of operation may use the straight forward information obtained from the one down conversion chain from I or from Q chain, and do not process the information from other chain, as long there is no need in more accurate information extraction. The existence of the both chains, with 90 degrees moved zero crossings, may have practical advantages. By evaluating the phase changes of the IQ signals, with the typical accuracy of 1-2 degrees resolution, micro movements of the objects may be evaluated with more accuracy, within one wave length typically in m region. This may increase the capability of the frequency extraction.