WO2023101070A1 - 차량용 통신 장치 및 이를 구비하는 차량용 디스플레이 장치 - Google Patents
차량용 통신 장치 및 이를 구비하는 차량용 디스플레이 장치 Download PDFInfo
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- WO2023101070A1 WO2023101070A1 PCT/KR2021/018251 KR2021018251W WO2023101070A1 WO 2023101070 A1 WO2023101070 A1 WO 2023101070A1 KR 2021018251 W KR2021018251 W KR 2021018251W WO 2023101070 A1 WO2023101070 A1 WO 2023101070A1
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- vehicle
- communication
- data
- sensor devices
- signal processing
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Definitions
- the present invention relates to a vehicle communication device and a vehicle display device having the same, and more particularly, to a vehicle display device capable of simply implementing a wiring harness between a plurality of sensor devices and a signal processing device.
- a vehicle is a device that allows a user to move in a desired direction.
- a typical example is a car.
- a plurality of sensor devices and a vehicle display device are mounted at various locations inside the vehicle.
- a wiring harness is used to transmit signals sensed by a plurality of sensor devices inside the vehicle to a signal processing device.
- An object of the present invention is to provide a vehicle display device capable of simply implementing a wiring harness between a plurality of sensor devices and a signal processing device.
- another object of the present invention is to provide a vehicle display device capable of performing high-speed data communication between a plurality of virtual machines.
- another object of the present invention is to provide a display device for a vehicle capable of performing high-speed data communication even when a plurality of virtual machines are driven by different operating systems.
- a vehicle communication device is disposed in a plurality of areas of a vehicle, and includes sensor devices disposed in a plurality of areas of a vehicle among a plurality of sensor devices mounted on a vehicle.
- a plurality of communication modules that receive signals from the plurality of communication modules and transmit at least some of the received signals to the outside, and are disposed between a plurality of areas of the vehicle and receive signals from the plurality of communication modules to perform signal processing. It includes a signal processing device, and each communication module comprises: a first connector for receiving signals from some sensor devices among a plurality of sensor devices at a first communication rate; and a second communication rate faster than the first communication rate.
- a second connector communicating with the signal processing device and an Ethernet switch disposed between the first connector and the second connector perform switching.
- each communication module further includes a processor electrically connected to the Ethernet switch, the processor processes signals from sensor devices disposed in a plurality of areas of the vehicle, and converts the processed signals to a second connector. Through, it can be controlled to be transmitted to the signal processing device.
- each communication module may transmit signals from sensor devices disposed in a plurality of areas of the vehicle to the signal processing device.
- the signal processing device includes an Ethernet switch that operates based on the second communication rate, the Ethernet switch of the signal processing device operates as a master Ethernet device, and the Ethernet switch in each communication module has the first communication rate. Alternatively, based on the second communication speed, it may operate as a slave Ethernet device.
- the first connector may perform serial communication
- the second connector may perform parallel communication
- the plurality of communication modules include a first communication module for receiving signals from sensor devices disposed in a first area of the vehicle among the plurality of sensor devices and transmitting the signals to a signal processing device; and among the plurality of sensor devices A second communication module for receiving signals from sensor devices disposed in the second area of the vehicle and transmitting the signals to the signal processing device may be included.
- the plurality of communication modules include a first communication module for receiving signals from sensor devices disposed in a first area of the vehicle among the plurality of sensor devices and transmitting the signals to a signal processing device; and among the plurality of sensor devices A second communication module for receiving signals from sensor devices disposed in the second area of the vehicle and transmitting the signals to the signal processing device, and sensor devices disposed in the third area of the vehicle among the plurality of sensor devices. A third communication module for receiving signals and transmitting signals to the signal processing device, receiving signals from sensor devices disposed in a fourth area of the vehicle among a plurality of sensor devices, and transmitting signals to the signal processing device A fourth communication module may be included.
- each communication module may output a vehicle control signal including door control and seat control while the vehicle is driving.
- the plurality of sensor devices may include a camera, lidar, radar, or position sensor.
- the signal processing apparatus includes a processor that performs signal processing for a display mounted on a vehicle, and the processor executes first to third virtualization machines on a hypervisor in the processor, and a second virtualization machine. operates for the first display, the third virtualization machine operates for the second display, and the first virtualization machine in the processor, to the second virtualization machine and the third virtualization machine, for data transmission, based on the hypervisor of shared memory can be controlled to be set.
- the first virtual machine in the processor may control the hypervisor-based shared memory to be set for the same data transfer to the second virtual machine and the third virtual machine.
- the first virtualization machine in the processor may receive, process, and provide location information data that varies according to movement from any one of a plurality of communication modules to the second virtualization machine or the third virtualization machine.
- the second virtual machine and the third virtual machine may be driven by different operating systems.
- the first virtualization machine in the processor may transmit information about the shared memory including key data for data access to the second virtualization machine and the third virtualization machine.
- the first virtualization machine in the processor may include an input/output server interface and a security manager
- the second virtualization machine and the third virtualization machine may each include an input/output client interface.
- the security manager allocates a shared memory, and the I/O client interface transmits a connection request to the I/O server interface after allocating the shared memory.
- the I/O server interface after allocating the shared memory, transmits information about the shared memory including key data for data access to the I/O client interface, and the I/O client interface accesses the shared memory based on the key data.
- the input/output server interface receives information about an empty first buffer of the shared memory, writes first data into the first buffer in the shared memory, and transfers the buffer information of the first buffer to the second virtualization machine and the third buffer. It can be transmitted to each I/O client interface in the virtualization machine.
- the reference count of the first buffer is changed in the first direction, and when copying of the first data in the first buffer is completed, the reference count of the first buffer is set to the first It may be changed in a second direction opposite to the direction.
- the shared memory includes a plurality of buffers, and the first virtual machine writes the first frame data to the third frame data into the first buffer to the third buffer among the plurality of buffers, respectively, and the second virtual machine and the second virtual machine 3
- Each of the input/output client interfaces in the virtualization machine may sequentially copy first frame data to third frame data from the first buffer to the third buffer.
- the second virtual machine may copy the second frame data from the second buffer after the input/output client interface in the third virtual machine finishes copying the first frame data from the first buffer.
- the signal processing apparatus further includes a legacy virtualization machine for receiving and processing Ethernet data
- the first virtualization machine includes vehicle sensor data, location information data, camera image data, and audio data.
- touch input data may be received, processed or processed, and then output.
- the first virtualization machine in the processor receives vehicle sensor data, location information data, or camera image data from at least one of a plurality of communication modules, and processes or processes the second virtualization machine or the third virtualization machine.
- wheel speed sensor data of a vehicle may be received from at least one of a plurality of communication modules, processed, and the processed wheel speed sensor data may be transmitted to at least one of a second virtualization machine and a third virtualization machine.
- a vehicle communication device is disposed in a plurality of areas of a vehicle and receives signals from sensor devices disposed in a plurality of areas of a vehicle among a plurality of sensor devices mounted on the vehicle. , Includes a plurality of communication modules for transmitting at least a part of the received signal to the outside, each communication module includes a first connector for receiving signals from the plurality of sensors at a first communication rate, and a first communication rate higher than the first communication rate A second connector performing communication with an adjacent communication module at a high second communication speed, and an Ethernet switch disposed between the first connector and the second connector to perform switching.
- a vehicle display device includes a first display, a second display, a first display, a second display, and a vehicle communication device, and a signal processing device in the vehicle communication device , a processor that performs signal processing for the first display and the second display.
- a vehicle communication device is disposed in a plurality of regions of a vehicle and receives signals from sensor devices disposed in a plurality of regions of a vehicle among a plurality of sensor devices mounted on the vehicle.
- a plurality of communication modules for transmitting at least some of the received signals to the outside, and a signal processing device disposed between a plurality of areas of the vehicle and receiving signals from the plurality of communication modules and performing signal processing;
- Each communication module communicates with a signal processing device by a first connector for receiving signals from some sensor devices among a plurality of sensor devices at a first communication rate and a second communication rate faster than the first communication rate.
- It may include a second connector to perform and an Ethernet switch disposed between the first connector and the second connector to perform switching.
- a second connector to perform and an Ethernet switch disposed between the first connector and the second connector to perform switching.
- Ethernet which is a common communication protocol, efficient and stable data communication is possible.
- each communication module may transmit signals from sensor devices disposed in a plurality of areas of the vehicle to the signal processing device. Accordingly, efficient and stable data communication is possible.
- the signal processing device includes an Ethernet switch that operates based on the second communication rate, the Ethernet switch of the signal processing device operates as a master Ethernet device, and the Ethernet switch in each communication module has the first communication rate. Alternatively, based on the second communication speed, it may operate as a slave Ethernet device. Accordingly, efficient and stable data communication is possible.
- the first connector may perform serial communication
- the second connector may perform parallel communication. Accordingly, efficient and stable data communication is possible.
- the plurality of communication modules include a first communication module for receiving signals from sensor devices disposed in a first area of the vehicle among the plurality of sensor devices and transmitting the signals to a signal processing device; and among the plurality of sensor devices A second communication module for receiving signals from sensor devices disposed in the second area of the vehicle and transmitting the signals to the signal processing device may be included.
- a first communication module for receiving signals from sensor devices disposed in a first area of the vehicle among the plurality of sensor devices and transmitting the signals to a signal processing device
- a second communication module for receiving signals from sensor devices disposed in the second area of the vehicle and transmitting the signals to the signal processing device may be included.
- the plurality of communication modules include a first communication module for receiving signals from sensor devices disposed in a first area of the vehicle among the plurality of sensor devices and transmitting the signals to a signal processing device; and among the plurality of sensor devices A second communication module for receiving signals from sensor devices disposed in the second area of the vehicle and transmitting the signals to the signal processing device, and sensor devices disposed in the third area of the vehicle among the plurality of sensor devices. A third communication module for receiving signals and transmitting signals to the signal processing device, receiving signals from sensor devices disposed in a fourth area of the vehicle among a plurality of sensor devices, and transmitting signals to the signal processing device A fourth communication module may be included. In this way, by arranging a plurality of communication modules for each region, it is possible to simply implement a wiring harness between a plurality of sensor devices and a signal processing device. In addition, efficient and stable data communication becomes possible.
- each communication module may output a vehicle control signal including door control and seat control while the vehicle is driving. Accordingly, vehicle control through each communication module is possible.
- the plurality of sensor devices may include a camera, lidar, radar, or position sensor. Accordingly, signals from various types of sensor devices can be efficiently and stably transmitted to the signal processing device.
- the signal processing apparatus includes a processor that performs signal processing for a display mounted on a vehicle, and the processor executes first to third virtualization machines on a hypervisor in the processor, and a second virtualization machine. operates for the first display, the third virtualization machine operates for the second display, and the first virtualization machine in the processor, to the second virtualization machine and the third virtualization machine, for data transmission, based on the hypervisor of shared memory can be controlled to be set. Accordingly, it is possible to perform high-speed data communication between a plurality of virtual machines.
- the first virtual machine in the processor may control the hypervisor-based shared memory to be set for the same data transfer to the second virtual machine and the third virtual machine. Accordingly, it is possible to synchronize and display the same image on a plurality of displays in the vehicle.
- the first virtualization machine in the processor may receive, process, and provide location information data that varies according to movement from any one of a plurality of communication modules to the second virtualization machine or the third virtualization machine. Accordingly, location information data received from the sensor device can be shared between virtual machines.
- the second virtual machine and the third virtual machine may be driven by different operating systems. Accordingly, even if a plurality of virtual machines are driven by different operating systems, high-speed data communication can be performed.
- the first virtualization machine in the processor may transmit information about the shared memory including key data for data access to the second virtualization machine and the third virtualization machine.
- the first virtualization machine in the processor may include an input/output server interface and a security manager
- the second virtualization machine and the third virtualization machine may each include an input/output client interface. Accordingly, access to the shared memory is enabled in the second virtual machine and the third virtual machine.
- the same image can be synchronized and displayed on a plurality of displays in the vehicle.
- 1:N data communication is possible.
- the security manager allocates a shared memory, and the I/O client interface transmits a connection request to the I/O server interface after allocating the shared memory. can Accordingly, access to the shared memory is enabled in the second virtual machine and the third virtual machine.
- the I/O server interface after allocating the shared memory, transmits information about the shared memory including key data for data access to the I/O client interface, and the I/O client interface accesses the shared memory based on the key data.
- access to the shared memory is enabled in the second virtual machine and the third virtual machine.
- the input/output server interface receives information about an empty first buffer of the shared memory, writes first data into the first buffer in the shared memory, and transfers the buffer information of the first buffer to the second virtualization machine and the third buffer. It can be transmitted to each I/O client interface in the virtualization machine. Accordingly, access to the shared memory is enabled in the second virtual machine and the third virtual machine.
- the reference count of the first buffer is changed in the first direction, and when copying of the first data in the first buffer is completed, the reference count of the first buffer is set to the first It may be changed in a second direction opposite to the direction. Accordingly, it is possible to write new data in the first buffer after copying is completed.
- the shared memory includes a plurality of buffers, and the first virtual machine writes the first frame data to the third frame data into the first buffer to the third buffer among the plurality of buffers, respectively, and the second virtual machine and the second virtual machine 3
- Each of the input/output client interfaces in the virtualization machine may sequentially copy first frame data to third frame data from the first buffer to the third buffer.
- the second virtual machine may copy the second frame data from the second buffer after the input/output client interface in the third virtual machine finishes copying the first frame data from the first buffer. Accordingly, access to the shared memory is enabled in the second virtual machine and the third virtual machine.
- the signal processing apparatus further includes a legacy virtualization machine for receiving and processing Ethernet data
- the first virtualization machine includes vehicle sensor data, location information data, camera image data, and audio data.
- touch input data may be received, processed or processed, and then output. Accordingly, data processing can be performed efficiently.
- 1:N data sharing is possible.
- the first virtualization machine in the processor receives vehicle sensor data, location information data, or camera image data from at least one of a plurality of communication modules, and processes or processes the second virtualization machine or the third virtualization machine.
- wheel speed sensor data of a vehicle may be received from at least one of a plurality of communication modules, processed, and the processed wheel speed sensor data may be transmitted to at least one of a second virtualization machine and a third virtualization machine. Accordingly, wheel speed sensor data of the vehicle can be shared with at least one virtual machine or the like.
- a vehicle communication device is disposed in a plurality of areas of a vehicle and receives signals from sensor devices disposed in a plurality of areas of a vehicle among a plurality of sensor devices mounted on the vehicle. , Includes a plurality of communication modules for transmitting at least a part of the received signal to the outside, each communication module includes a first connector for receiving signals from the plurality of sensors at a first communication rate, and a first communication rate higher than the first communication rate A second connector performing communication with an adjacent communication module at a high second communication speed, and an Ethernet switch disposed between the first connector and the second connector to perform switching.
- a vehicle display device includes a first display, a second display, a first display, a second display, and a vehicle communication device, and a signal processing device in the vehicle communication device , a processor that performs signal processing for the first display and the second display.
- a signal processing device in the vehicle communication device
- a processor that performs signal processing for the first display and the second display.
- FIG. 1 is a view showing an example of a vehicle exterior and a vehicle interior.
- FIG. 2 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle related to the present invention.
- FIG. 3 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle according to an embodiment of the present invention.
- FIG. 4 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle according to another embodiment of the present invention.
- 5A and 5B are diagrams referred to in the description of FIG. 4 .
- FIG. 6 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle according to another embodiment of the present invention.
- FIG. 7A is a view showing another example of the interior of a vehicle.
- FIG. 7B is a diagram illustrating an appearance of a display device for a vehicle according to an embodiment of the present invention.
- FIG. 8 illustrates an example of an internal block diagram of the vehicle display device of FIG. 7B.
- FIG. 9 is a diagram showing a system driven by a signal processing device related to the present invention.
- FIG. 10 is a diagram showing an example of a system driven by a signal processing apparatus according to an embodiment of the present invention.
- FIG. 11 is a diagram referenced for describing the operation of a system driven by a signal processing apparatus according to an embodiment of the present invention.
- FIG. 12A to 20 are views referred to in the description of FIG. 10 or 11 .
- module and “unit” for the components used in the following description are simply given in consideration of ease of writing this specification, and do not themselves give a particularly important meaning or role. Accordingly, the “module” and “unit” may be used interchangeably.
- FIG. 1 is a view showing an example of a vehicle exterior and a vehicle interior.
- the vehicle 200 is operated by a plurality of wheels 103FR, 103FL, 103RL, .. rotated by a power source, and a steering wheel 150 for adjusting the traveling direction of the vehicle 200. .
- the vehicle 200 may further include a camera 195 for obtaining an image of the front of the vehicle.
- the vehicle 200 may include a plurality of displays 180a and 180b for displaying images and information therein.
- FIG. 1 illustrates a cluster display 180a and an audio video navigation (AVN) display 180b as the plurality of displays 180a and 180b.
- APN audio video navigation
- HUD Head Up Display
- the AVN (Audio Video Navigation) display 180b may also be named a center information display (Center Information Dislpay).
- the plurality of displays 180a and 180b may synchronize and display the same image.
- the signal processing device 170 in the vehicle display device 100 synchronizes and transmits the same data to a plurality of virtual machines, and controls images displayed on the plurality of displays to be the same. This will be described with reference to FIG. 10 below.
- the vehicle 200 described in this specification may be a concept that includes all of a vehicle including an engine as a power source, a hybrid vehicle including an engine and an electric motor as a power source, and an electric vehicle including an electric motor as a power source. there is.
- FIG. 2 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle related to the present invention.
- an in-vehicle communication device 300x inside a vehicle related to the present invention receives signals from a plurality of sensor devices SNa1 to SNd6 mounted on a vehicle 200 and a plurality of sensor devices SNa1 to SNd6.
- a receiving signal processing device 170x may be provided.
- sensor devices SNa1 to SNd6 of a first area on the right front inside the vehicle sensor devices SNb1 to SNb6 of a second area on the left front inside the vehicle, and vehicle
- sensor devices SNc1 to SNc6 of the third area at the left rear of the inside and the sensor devices SNd1 to SNd6 of the fourth area at the right rear of the inside of the vehicle are exemplified.
- the wiring harnesses HNa1 to HNa6 are connected to the sensor devices SNa1 to SNa6 of the first area on the right front inside the vehicle, and the sensor devices SNb1 to SNb6 of the second area on the left front inside the vehicle
- the wiring harnesses HNb1 to HNb6 are connected to the sensor devices SNc1 to SNc6 of the third area on the left rear inside the vehicle, and the wiring harnesses HNc1 to HNc6 are connected to the sensor devices SNc1 to SNc6 on the right rear inside the vehicle. It is exemplified that the wiring harnesses HNd1 to HNd6 are connected to the sensor devices SNd1 to SNd6 of the 4 areas.
- FIG. 3 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle according to an embodiment of the present invention.
- a vehicle communication device 300a is disposed in a plurality of areas of the vehicle 200 and includes a plurality of sensor devices SNa1 to SNd6 mounted in the vehicle 200. a plurality of communication modules (EMaa and EMab) for receiving signals from the sensor devices (SNa1 to SNd6) disposed in each of a plurality of areas of the vehicle 200 and transmitting at least a part of the received signals to the outside;
- the signal processing device 170 is disposed between a plurality of areas of the vehicle 200 and receives signals from the plurality of communication modules EMaa and EMab and performs signal processing.
- the plurality of communication modules EMaa and EMab receive signals from the sensor devices SNa1 to SNb6 disposed in the first area of the vehicle 200 among the plurality of sensor devices SNa1 to SNd6, and receive signals from the sensor devices SNa1 to SNb6. from the first communication module EMaa that transmits to the signal processing device 170 and the sensor devices SNc1 to SNd6 disposed in the second area of the vehicle 200 among the plurality of sensor devices SNa1 to SNd6 A second communication module EMab for receiving a signal and transmitting the signal to the signal processing device 170 may be included.
- the vehicle communication device 300a of FIG. 3 includes a first communication module EMaa disposed at the front inside the vehicle, a second communication module EMab disposed at the rear inside the vehicle, and a first communication module ( A signal processing device 170 receiving signals from the EMaa) and the second communication module EMab may be provided.
- the first communication module EMaa of FIG. 3 is connected to the sensor devices SNa1 to SNa6 of the first area in front of the vehicle among the plurality of sensor devices SNa1 to SNd6 through a wiring harness HN1a, It is connected to the sensor devices SNb1 to SNb6 of the second area on the left front inside the vehicle through the wiring harness HN1b.
- the second communication module EMab of FIG. 3 is configured through the sensor devices SNc1 to SNc6 of the third area at the left rear of the vehicle interior among the plurality of sensor devices SNa1 to SNd6 and the wiring harness HN1c. It is connected to the sensor devices SNd1 to SNd6 of the fourth area at the right rear inside the vehicle through the wiring harness HN1d.
- the first communication module EMaa and the signal processing device 170 are connected through the wiring harness HNma, and the second communication module EMab and the signal processing device 170 are connected through the wiring harness HNmb. ) is connected through
- a plurality of sensor devices SNa1 to SNd6 inside the vehicle are divided into a plurality of areas or zones, and communication modules are disposed for each of the plurality of areas or zones.
- each of the communication modules EMaa and EMab may output a vehicle control signal including door control and seat control while the vehicle 200 is driving. Accordingly, vehicle control through each communication module communication module (EMaa, EMab) is possible.
- the plurality of sensor devices SNa1 to SNd6 may include a camera, lidar, radar, or position sensor. Accordingly, signals from various types of sensor devices can be efficiently and stably transmitted to the signal processing device 170 .
- FIG. 4 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle according to another embodiment of the present invention.
- a vehicle communication device 300b includes a plurality of sensor devices SNa1 to SNd6 disposed in a plurality of areas of the vehicle 200 and mounted in the vehicle 200. a plurality of communication modules EM1 to EM4 for receiving signals from the sensor devices SNa1 to SNd6 disposed in each of a plurality of areas of the vehicle 200 and transmitting at least a part of the received signals to the outside; A signal processing device 170 is disposed between a plurality of areas of the vehicle 200 and receives signals from the plurality of communication modules EM1 to EM4 and performs signal processing.
- the plurality of communication modules EM1 to EM4 receive signals from the sensor devices SNa1 to SNa6 disposed in the first area of the vehicle 200 among the plurality of sensor devices SNa1 to SNd6, and receive signals from the sensor devices SNa1 to SNa6.
- the second communication module EM2 for receiving signals and transmitting the signals to the signal processing device 170, and sensor devices disposed in the third area of the vehicle 200 among the plurality of sensor devices SNa1 to SNd6 (
- the third communication module EM3 for receiving signals from SNc1 to SNc6 and transmitting the signals to the signal processing device 170 and the fourth area of the vehicle 200 among the plurality of sensor devices SNa1 to SNd6
- a fourth communication module EM4 for receiving signals from the disposed sensor devices SNd1 to SNd6 and transmitting the signals to the signal processing device 170 may be included.
- the vehicle communication device 300b of FIG. 4 includes a first communication module EM1 disposed on the front right side of the vehicle interior, a second communication module EM2 disposed on the left front side inside the vehicle, and A signal processing device 170 for receiving signals from a second communication module EM2 disposed at the rear left side, a fourth communication module EM4 disposed at the rear right side inside the vehicle, and respective communication modules EM1 to EM4 can be provided.
- the first communication module EM1 of FIG. 4 is connected to the sensor devices SNa1 to SNa6 of the first area in front of the vehicle among the plurality of sensor devices SNa1 to SNd6 through the wiring harness HN1a.
- the second communication module EM2 is connected to the sensor devices SNb1 to SNb6 of the second area on the front left side of the vehicle through the wiring harness HN1b.
- the third communication module EM3 is connected to the sensor devices SNc1 to SNc6 of the third area at the left rear of the vehicle interior among the plurality of sensor devices SNa1 to SNd6 through the wiring harness HN1c.
- the fourth communication module EM4 is connected to the sensor devices SNd1 to SNd6 of the fourth area at the right rear inside the vehicle through the wiring harness HN1d.
- the first communication module EM1 and the signal processing device 170 are connected through the wiring harness HNm1, and the second communication module EM2 and the signal processing device 170 are connected through the wiring harness HNm2.
- the third communication module EM3 and the signal processing device 170 are connected through the wiring harness HNm3
- the fourth communication module EM4 and the signal processing device 170 are connected through a wire. It is connected through the ring harness (HNm4).
- the plurality of sensor devices SNa1 to SNd6 inside the vehicle are divided into four areas or zones, and communication modules are disposed for each of the plurality of areas or zones.
- the plurality of sensor devices SNa1 to SNd6 may include a camera, lidar, radar, or position sensor. Accordingly, signals from various types of sensor devices can be efficiently and stably transmitted to the signal processing device 170 .
- each of the communication modules EM1 to EM4 may output a vehicle control signal including door control and seat control while the vehicle 200 is running. Accordingly, vehicle control through each of the communication modules EM1 to EM4 is possible.
- each of the communication modules EM1 to EM4 may transmit signals from the sensor devices SNa1 to SNd6 disposed in each area of the vehicle 200 to the signal processing device 170 . Accordingly, efficient and stable data communication is possible.
- 5A and 5B are diagrams referred to in the description of FIG. 4 .
- FIG. 5A is an example of an internal block diagram of each communication module of FIG. 3 or 4 .
- Each communication module (EM) includes a first connector (COMa) for receiving signals from some sensor devices among a plurality of sensor devices (SNa1 to SNd6) according to a first communication speed; A second connector (COMb) communicating with the signal processing device 170 by a second communication speed faster than the first communication speed, and is disposed between the second connector (COMb) and the second connector (COMb) to perform switching. It includes an Ethernet switch (ETS) that
- an Ethernet switch can communicate from 10M to 10G and can use a multi-connector.
- Ethernet switch may perform PCIe communication for data communication with the signal processing device 170 .
- Ethernet switch may perform 10Base-T1S-based data communication for data communication with each sensor device.
- the first connector COMa may perform serial communication
- the second connector COMb may perform parallel communication. Accordingly, efficient and stable data communication is possible.
- the first connector COMa may be a dedicated high-speed connector for Ethernet communication based on 10GBase-T1. Accordingly, a 10 GHz based physical layer converter (PHa) may be disposed between the first connector (COMa) and the Ethernet switch (ETS).
- PHa 10 GHz based physical layer converter
- the second connector (COMb) may perform data communication based on 10Base-T1S.
- each communication module may further include a third connector (COMc) for communication based on 1000Base-T1 and 100Base-T1 and a fourth connector (COMd) for communication based on 1000Base-T1.
- a physical layer converter Pb may be disposed between the fourth connector (COMd) and the Ethernet switch (ETS).
- each communication module may further include a processor (CPP) electrically connected to the Ethernet switch (ETS).
- CPP processor
- Ethernet switch ETS
- the processor CPP processes signals from the sensor devices SNa1 to SNd6 disposed in each of a plurality of areas of the vehicle 200, and converts the processed signals to the signal processing device through the second connector COMb. It can be controlled to transmit to (170).
- the processor CPP may have a lower processing speed or lower processing capacity than the signal processing device 170 .
- 5B is a diagram illustrating a communication method between a master Ethernet device and a slave Ethernet device.
- the signal processing device 170 operates as a master Ethernet device and the communication module EM operates as a slave Ethernet device.
- the signal processing device 170 which is a master Ethernet device, may perform serial communication with the communication module (EM), and the communication module (EM), which is a slave Ethernet device, may perform parallel communication with each sensor device. Accordingly, efficient and stable data communication is possible.
- the signal processing device 170 may include an Ethernet switch (ETS) that operates based on the second communication rate.
- ETS Ethernet switch
- Ethernet switches ETS in each communication module EM1 to EM4 may perform communication based on a first communication rate or a second communication rate faster than the first communication rate.
- FIG. 6 is a diagram illustrating the arrangement of a vehicle communication device inside a vehicle according to another embodiment of the present invention.
- a vehicle communication device 300c inside a vehicle is disposed in a plurality of areas of the vehicle 200 and a plurality of sensor devices mounted on the vehicle 200 ( A plurality of communication modules EM1 to EM1 to receive signals from the sensor devices SNa1 to SNd6 disposed in each area of the vehicle 200 among SNa1 to SNd6 and transmit at least a part of the received signals to the outside. EM4).
- the vehicular communication device 300c of FIG. 6 is similar to the vehicular communication device 300b of FIG. 4 , but differs in that the signal processing device 170 of FIG. 4 is omitted.
- the first communication module EM1 and the second communication module EM2 are connected through the wiring harness HM1
- the second communication module EM2 and the third communication module EM3 are connected through the wiring harness HM2
- the third communication module EM3 and the fourth communication module EM4 are connected through the wiring harness HM3, 4
- the communication module EM4 and the first communication module EM1 are connected through a wiring harness HM4.
- each of the communication modules EM1 to EM4 receives signals from the plurality of sensor devices SNa1 to SNd6 disposed in each area, and communicates at least a part of the received signals with an adjacent communication module.
- each communication module (EM1 to EM4) communicates with the second connector (COMb) for receiving signals from a plurality of sensors at a first communication rate and adjacent communication at a second communication rate faster than the first communication rate.
- a second connector (COMb) communicating with the module and an Ethernet switch (ETS) disposed between the second connectors (COMb) and performing switching are included.
- the plurality of sensor devices SNa1 to SNd6 inside the vehicle are divided into four areas or zones, and communication modules are disposed for each of the plurality of areas or zones. In comparison, it is possible to reduce the number of wiring harnesses and the wiring length.
- each of the communication modules EM1 to EM4 may output a vehicle control signal including door control and seat control while the vehicle 200 is driving. Accordingly, vehicle control through each of the communication modules EM1 to EM4 is possible.
- FIG. 7A is a view showing another example of the interior of a vehicle.
- a cluster display 180a inside the vehicle, a cluster display 180a, an AVN (Audio Video Navigation) display 180b, rear seat entertainment displays 180c and 180d, a room mirror display (not shown), and the like are provided.
- AVN Audio Video Navigation
- rear seat entertainment displays 180c and 180d a room mirror display (not shown), and the like are provided.
- An embodiment of the present invention proposes a method of synchronizing and displaying the same image on the plurality of displays 180a to 180d in the vehicle display device 100 having the plurality of displays 180a to 180d. This will be described with reference to FIG. 10 below.
- FIG. 7B is a diagram illustrating an appearance of a display device for a vehicle according to an embodiment of the present invention.
- a vehicle display device 100 is a signal processing device that performs signal processing for displaying images and information on a plurality of displays 180a to 180b and a plurality of displays 180a to 180b. (170) may be provided.
- the first display 180a is a cluster display 180a for displaying driving conditions and operation information
- the second display 180b displays vehicle driving information, navigation maps, and various other information. It may be an AVN (Audio Video Navigation) display 180b for displaying entertainment information or images.
- AVN Audio Video Navigation
- the signal processing device 170 includes a processor 175 therein, and may execute first to third virtual machines 520 to 540 on the hypervisor 505 in the processor 175 .
- the second virtualization machine 530 may operate for the first display 180a, and the third virtualization machine 540 may operate for the second display 180b.
- the hypervisor 505-based shared memory 508 can be controlled to be set. Accordingly, the same information or the same image can be synchronized and displayed on the first display 180a and the second display 180b in the vehicle.
- the first virtualization machine 520 in the processor 175 shares at least a portion of data with the second virtualization machine 530 and the third virtualization machine 540 for data sharing processing. Accordingly, it is possible to divide and process data in a plurality of virtual machines for a plurality of displays in the vehicle.
- the first virtualization machine 520 in the processor 175 receives and processes wheel speed sensor data of the vehicle, and processes the processed data into at least one of the second virtualization machine 530 and the third virtualization machine 540.
- Wheel speed sensor data can be transmitted. Accordingly, wheel speed sensor data of the vehicle can be shared with at least one virtual machine or the like.
- the vehicle display device 100 further includes a rear seat entertainment display 180c for displaying driving state information, simple navigation information, various entertainment information or images.
- a rear seat entertainment display 180c for displaying driving state information, simple navigation information, various entertainment information or images.
- the signal processing device 170 executes a fourth virtual machine (not shown) in addition to the first virtual machine to the third virtual machine 520 to 540 on the hypervisor 505 in the processor 175 to perform RSE.
- the display 180c may be controlled.
- some of the plurality of displays 180a to 180c may operate based on a Linux OS, and some may operate based on a web OS.
- the signal processing device 170 can control displays 180a to 180c operating under various operating systems (OS) to synchronize and display the same information or the same image.
- OS operating systems
- the vehicle speed indicator 212a and the vehicle internal temperature indicator 213a are displayed on the first display 180a, and a plurality of applications and the vehicle speed indicator 212b are displayed on the second display 180b. and the vehicle interior temperature indicator 213b are displayed, and a second home screen 222b including a plurality of applications and the vehicle interior temperature indicator 213c is displayed on the third display 180c. Illustrate what is displayed.
- FIG. 8 illustrates an example of an internal block diagram of a display device for a vehicle according to an embodiment of the present invention.
- a vehicle display device 100 includes an input unit 110, a communication unit 120 for communication with an external device, and a plurality of communication modules EMa to EMd for internal communication. , a memory 140, a signal processing device 170, a plurality of displays 180a to 180c, an audio output unit 185, and a power supply unit 190.
- the vehicle communication device 300 may include a plurality of communication modules EMa to EMd and a signal processing device 170 .
- the signal processing device 170 may include an Ethernet switch (ETSm) for data communication with each of the communication modules EM1 to EM4 therein.
- ETSm Ethernet switch
- the Ethernet switch (ETS) in each communication module may operate as a slave Ethernet device based on the first communication rate or the second communication rate
- the Ethernet switch (ETSm) of the signal processing device 170 may operate as a master Ethernet device based on the second communication rate.
- Each of the communication modules EM1 to EM4 may perform data communication with the plurality of sensor devices SNa1 to SNd6.
- the plurality of sensor devices SNa1 to SNd6 may include a camera 195 , a lidar 196 , a radar 197 , or a position sensor 198 .
- the input unit 110 may include a physical button or pad for button input or touch input.
- the input unit 110 may include a microphone (not shown) for user voice input.
- the communication unit 120 may exchange data with the mobile terminal 800 or the server 900 in a wireless manner.
- the communication unit 120 may wirelessly exchange data with a vehicle driver's mobile terminal.
- a wireless data communication method various data communication methods such as Bluetooth, WiFi, WiFi Direct, and APiX are possible.
- the communication unit 120 may receive weather information and road traffic condition information, eg, Transport Protocol Expert Group (TPEG) information, from the mobile terminal 800 or the server 900 . To this end, the communication unit 120 may include a mobile communication module (not shown).
- TPEG Transport Protocol Expert Group
- the plurality of communication modules EM1 to EM4 may receive sensor information or the like from the ECU 770 or the sensor device 760 and transmit the received information to the signal processing device 170 .
- the sensor information includes vehicle direction information, vehicle location information (GPS information), vehicle angle information, vehicle speed information, vehicle acceleration information, vehicle tilt information, vehicle forward/reverse information, battery information, fuel information, tire information, vehicle It may include at least one of lamp information, vehicle internal temperature information, and vehicle internal humidity information.
- Such sensor information includes heading sensor, yaw sensor, gyro sensor, position module, vehicle forward/backward sensor, wheel sensor, vehicle speed sensor, It may be obtained from a vehicle body tilt detection sensor, a battery sensor, a fuel sensor, a tire sensor, a steering sensor by steering wheel rotation, a vehicle internal temperature sensor, a vehicle internal humidity sensor, and the like.
- the position module may include a GPS module or a location sensor 198 for receiving GPS information.
- At least one of the plurality of communication modules EM1 to EM4 may transmit location information data sensed by the GPS module or the location sensor 198 to the signal processing device 170 .
- At least one of the plurality of communication modules EM1 to EM4 includes image data from the front of the vehicle, image data from the side of the vehicle, image data from the rear of the vehicle, and obstacles around the vehicle from the camera 195, lidar 196, or radar 197. Distance information may be received, and the received information may be transmitted to the signal processing device 170 .
- the memory 140 may store various data for overall operation of the vehicle display device 100, such as a program for processing or controlling the signal processing device 170.
- the memory 140 may store data related to a hypervisor and first to third virtual machines to be executed in the processor 175 .
- the audio output unit 185 converts the electrical signal from the signal processing device 170 into an audio signal and outputs it. To this end, a speaker or the like may be provided.
- the power supply 190 may supply power required for operation of each component under the control of the signal processing device 170 .
- the power supply unit 190 may receive power from a battery inside the vehicle.
- the signal processing device 170 controls the overall operation of each unit in the vehicle display device 100 .
- it may include a processor 175 that performs signal processing for vehicle displays 180a and 180b.
- the processor 175 may execute the first to third virtual machines 520 to 540 on a hypervisor (505 in FIG. 10) within the processor 175.
- the first virtual machine 520 may be referred to as a server virtual machine
- the second virtual machine to the third virtual machine (530 ⁇ 540) can be named a guest virtual machine (Guest Virtual Machine).
- the second virtualization machine 530 may operate for the first display 180a
- the third virtualization machine 540 may operate for the second display 180b.
- the first virtualization machine 520 in the processor 175 converts sensor data from a plurality of sensor devices, eg, vehicle sensor data, location information data, camera image data, audio data, or touch input data. It can be received, processed or processed and output.
- sensor data eg, vehicle sensor data, location information data, camera image data, audio data, or touch input data. It can be received, processed or processed and output.
- the first virtual machine 520 directly receives and processes CAN communication data, audio data, radio data, USB data, and wireless communication data for the second to third virtual machines 530 to 540. can do.
- the first virtual machine 520 may transmit the processed data to the second virtual machine to the third virtual machine 530 to 540 .
- the first virtual machine 520 among the first to third virtual machines 520 to 540 receives sensor data, communication data, or external input data from a plurality of sensor devices, and performs signal processing.
- the burden of signal processing on other virtual machines is reduced, 1:N data communication is possible, and synchronization in data sharing is possible.
- the first virtualization machine 520 may record data in the shared memory 508 and control the second virtualization machine 530 and the third virtualization machine 540 to share the same data.
- the first virtualization machine 520 records the vehicle sensor data, the location information data, the camera image data, or the touch input data in the shared memory 508, and the second virtualization machine 530 and It can be controlled to share the same data with the third virtualization machine 540 . Accordingly, it is possible to share data in a 1:N manner.
- the hypervisor 505-based shared memory 508 can be controlled to be set.
- the first virtualization machine 520 in the processor 175 uses the shared memory 508 based on the hypervisor 505, the second virtualization machine 530 and the third virtualization machine 540, the same Data can be synchronized and transmitted. Accordingly, the same image can be synchronized and displayed on the plurality of displays 180a to 180b in the vehicle.
- the signal processing device 170 may process various signals such as audio signals, video signals, and data signals.
- the signal processing device 170 may be implemented in the form of a System On Chip (SOC).
- SOC System On Chip
- FIG. 9 is a diagram showing a system driven by a signal processing device related to the present invention.
- FIG. 9 is a diagram illustrating that virtual machines are used for the cluster display 180a and the AVN display 180b, respectively.
- the cluster virtualization machine 430 and the AVN virtualization machine 440 are executed on the hypervisor 405 in the processor 175 .
- the system 400 driven by the signal processing apparatus of FIG. 9 illustrates that a legacy virtual machine 410 is also executed on the hypervisor 405 in the processor 175 .
- the legacy virtualization machine 410 includes an interface 412 for data communication with the memory 140 and an interface 413 for Ethernet communication.
- the cluster virtual machine 430 includes an interface 431 for CAN communication, an interface 432 for communication with the interface 412 of the legacy virtual machine 410, and a legacy virtual machine 410 An interface 433 for communication with the interface 413 of ) may be provided.
- the AVN virtualization machine 440 includes an interface 441 for input/output of audio data, radio data, USB data, and wireless communication data, and an interface for communication with the interface 412 of the legacy virtualization machine 410. 442, and an interface 443 for communication with the interface 413 of the legacy virtualization machine 410.
- the AVN virtualization machine 440 since CAN communication data is input and output only in the cluster virtualization machine 430, the AVN virtualization machine 440 has a disadvantage in that CAN communication data cannot be utilized.
- the cluster virtualization machine 430 and the AVN virtualization machine 440 have to have separate interfaces 431, 432, 441, 442, respectively. there is.
- FIG. 9 a method for improving the system of FIG. 9 is proposed. That is, unlike FIG. 9, the virtual machine is divided into a server virtual machine and a guest virtual machine, and various memory data, communication data, etc. are input and output from the server virtual machine rather than from the guest virtual machine. This will be described with reference to FIG. 10 below.
- FIG. 10 is a diagram showing an example of a system driven by a signal processing apparatus according to an embodiment of the present invention.
- the system 500 of FIG. 10 includes a first virtualization machine 520, which is a server virtualization machine, and a second virtualization machine 520, which is a guest virtualization machine, on a hypervisor 505 in a processor 175 in a signal processing device 170.
- the second virtualization machine 530 and the guest virtualization machine exemplify that the third virtualization machine 540 is executed.
- the second virtualization machine 530 may be a virtualization machine for the cluster display 180a
- the third virtualization machine 540 may be a virtualization machine for the AVN display 180b.
- the second virtualization machine 530 and the third virtualization machine 540 may operate for image rendering of the cluster display 180a and the AVN display 180b, respectively.
- system 500 driven by the signal processing device 170 of FIG. 10 illustrates that a legacy virtual machine 510 is also executed on the hypervisor 505 in the processor 175 .
- the legacy virtualization machine 510 may include an interface 511 for data communication with the memory 140 and Ethernet communication with the plurality of communication modules EM1 to EM4.
- the legacy virtual machine 510 may further include a virtio-backend interface 512 for data communication with the second to third virtual machines 530 and 540 .
- the first virtual machine 520 may include an interface 521 for input/output of audio data, radio data, USB data, and wireless communication data, and an input/output server interface 522 for data communication with a guest virtual machine. .
- the first virtualization machine 520 which is a server virtualization machine, transfers I/Os that are difficult to virtualize by standard virtualization technology (VirtIO) to a plurality of guest virtualization machines, for example, the second to third virtualization machines 530 and 540. etc. can be provided.
- VirtualIO virtualization technology
- the first virtualization machine 520 which is a server virtualization machine, controls radio data and audio data at the supervisor level and provides them to a plurality of guest virtualization machines, for example, second to third virtualization machines 530 and 540. can do.
- the first virtualization machine 520 which is a server virtualization machine, processes vehicle data, sensor data, information around the vehicle, and the like, and transfers the processed data or information to a plurality of guest virtualization machines, for example, second to second virtualization machines.
- 3 virtual machines 530 and 540 may be provided.
- the first virtual machine 520 may provide supervisory services such as vehicle data processing and audio routing management.
- the second virtual machine 530 may include an input/output client interface 532 for data communication with the first virtual machine 520 and APIs 533 that control the input/output client interface 532. .
- the second virtualization machine 530 may have a virtio-backend interface for data communication with the legacy virtualization machine 510 .
- the second virtualization machine 530 transmits memory data by communication with the memory 140 from an interface 512 of the legacy virtualization machine 510 through a virtio-backend interface. , Ethernet data can be received by Ethernet communication.
- the third virtual machine 540 may include an input/output client interface 542 for data communication with the first virtual machine 520 and APIs 543 controlling the input/output client interface 542.
- the third virtualization machine 540 may have a virtio-backend interface for data communication with the legacy virtualization machine 510 .
- the third virtualization machine 540 transmits memory data by communication with the memory 140 from an interface 512 of the legacy virtualization machine 510 through a virtio-backend interface. , Ethernet data can be received by Ethernet communication.
- the legacy (legacy) virtual machine 510 unlike FIG. 10, it is also possible to be provided in the first virtual machine 520.
- CAN communication data or Ethernet data from the plurality of communication modules EM1 to EM4 are input and output only in the first virtual machine 520, but data processing in the first virtual machine 520 is performed.
- a plurality of guest virtualization machines for example, second to third virtualization machines 530 and 540 may be provided. Accordingly, 1:N data communication by processing of the first virtualization machine 520 is possible.
- audio data, radio data, USB data, and wireless communication data are input and output only in the first virtual machine 520, but through data processing in the first virtual machine 520.
- a plurality of guest virtual machines, for example, second to third virtual machines 530 and 540 may be provided. Accordingly, 1:N data communication by processing of the first virtualization machine 520 is possible.
- the second to third virtual machines 530 and 540 may operate based on different OSs.
- the second virtualization machine 530 may operate based on a Linux OS
- the third virtualization machine 540 may operate based on a web OS.
- the first virtual machine 520 is set by the hypervisor 505-based shared memory 508 for data sharing, even though the second to third virtual machines 530 and 540 operate under different OS bases. Accordingly, even if the second to third virtual machines 530 and 540 operate under different operating systems (OS), the same data or the same image can be synchronized and shared. As a result, the same data or the same image can be synchronized and displayed on the plurality of displays 180a and 180b.
- OS operating systems
- FIG. 11 is a diagram referred to for describing an operation of a system driven by a signal processing apparatus according to an embodiment of the present invention
- FIGS. 12A to 20 are diagrams referred to for description of FIG. 10 or FIG. 11 .
- the processor 175 in the signal processing device 170, on the hypervisor 505 in the processor 175, the first to third virtual machines 520 to 540 ), and the first virtual machine 520 in the processor 175 is shared based on the hypervisor 505 for the same data transfer to the second virtual machine 530 and the third virtual machine 540. Controls the memory 508 to be set.
- the same image data may be exemplified as the same data. Accordingly, the same image can be synchronized and displayed on the plurality of displays 180a to 180b in the vehicle.
- CAN communication data, audio data, radio data, USB data, wireless communication data, location information data, or touch data may be exemplified as the same data. Accordingly, the same data can be synchronized and displayed on the plurality of displays 180a to 180b in the vehicle.
- the first virtualization machine 520 in the processor 175 receives, from any one of the plurality of communication modules, location information data that varies according to movement, processes it, and converts it to the second virtualization machine 530 or the second virtualization machine 530. 3 It can be provided as a virtual machine (540). Accordingly, instead of 1:1 data communication between virtual machines, 1:N data communication is possible using shared memory.
- the second virtual machine 530 and the third virtual machine 540 may be driven by different operating systems. Accordingly, even if a plurality of virtual machines are driven by different operating systems, high-speed data communication can be performed.
- the legacy virtual machine 510 transfers memory data from the memory 140 and Ethernet data through Ethernet communication with the plurality of communication modules EM1 to EM4 to the hypervisor 505.
- the second virtual machine 530 and the third virtual machine 540 may be synchronized and transmitted. That is, 1:N data communication for memory data or Ethernet data can be performed. Accordingly, the same data can be synchronized and transmitted.
- 12A illustrates the operation of three virtual machines 420, 430, and 440 in system 400b.
- the first virtualization machine 420 is a Linux-based virtualization machine, may include an input/output server interface 422 for data transmission, and a second virtualization machine 430 and a third virtualization machine ( 440 ) may include input/output client interfaces 432 and 442 for data communication with the input/output server interface 422 .
- the first shared memory 408a is used in the hypervisor 405, and the first virtualization machine ( 420), in order to transmit the same first data to the third virtualization machine 440, a first shared memory 408a and a separate second shared memory 408b must be set in the hypervisor 405.
- FIG. 12B shows that the second virtual machine 430 displays the image data received through the first shared memory 408a on the first display 180a by the system 400b of FIG. 12A, and the third virtual machine Step 440 illustrates displaying image data received through the second shared memory 408b on the second display 180b.
- the image 705a displayed on the first display 180a and the image 705b displayed on the second display 180b are not synchronized, and the image 705b displayed on the second display 180b This corresponds to a frame previous to the image 705a displayed on the first display 180a.
- the present invention proposes a method of allocating one shared memory when transmitting the same data. Accordingly, 1:N day communication is performed and synchronized data transmission is possible.
- FIG. 13 shows that the first to third virtual machines 520 to 540 are executed on the hypervisor 505 in the processor 175 in the system 500 according to an embodiment of the present invention, and the processor 175
- the first virtual machine 520 in the second virtual machine 530 and the third virtual machine 540 controls the hypervisor 505-based shared memory 508 to be set exemplify that
- the same data or the same image can be synchronized and displayed on the plurality of displays 180a to 180b in the vehicle.
- the first virtualization machine 520 in the processor 175 transmits the data processed by the first virtualization machine 520 to another virtualization machine
- the number of memories corresponding to the number of virtualization machines is not allocated.
- one shared memory 508 can be used. Accordingly, instead of 1:1 data communication between virtual machines, 1:N data communication is possible using the shared memory 508 .
- the first virtualization machine 520 in the processor 175 may include an input/output server interface 522 and a security manager 526 .
- the second virtual machine 530 and the third virtual machine 540 may include input/output client interfaces 532 and 542, respectively. Accordingly, it is possible to perform high-speed data communication between a plurality of virtual machines using the input/output server interface 522 and the input/output client interfaces 532 and 542 .
- the input/output server interface 522 in the first virtual machine 520 receives the same data transfer request from each of the input/output client interfaces 532 and 542 in the second virtual machine 530 and the third virtual machine 540, Based on this, shared data may be transmitted to the shared memory 508 through the security manager 526 .
- the input/output server interface 522 in the first virtual machine 520 transmits a request for allocation of the shared memory 508 to the security manager 526 (S1).
- the security manager 526 may allocate the shared memory 508 using the hypervisor 505 (S2) and record shared data in the shared memory 508.
- the I/O client interfaces 532 and 542 may transmit a connection request to the I/O server interface 522 after allocating the shared memory 508 (S3).
- the I/O server interface 522 after allocating the shared memory 508, transmits information about the shared memory 508 including key data to the I/O client interfaces 532 and 542 (S4).
- the key data at this time may be private key data for data access.
- the input/output client interfaces 532 and 542 may access the shared memory 508 based on the received key data (S5) and copy the shared data from the shared memory 508.
- the shared memory 508 can be accessed by the second virtualization machine 530 and the third virtualization machine 540, and eventually, shared data can be shared.
- the shared data is image data
- the second virtual machine 530 and the third virtual machine 540 share the image data, and eventually the plurality of displays 180a to 180b in the vehicle share the same. Images can be synchronized and displayed.
- FIG. 14B shows that, by the system 500b of FIG. 14A, the second virtualization machine 530 displays the image data received through the shared memory 508 on the first display 180a, and the third virtualization machine 540 ) illustrates displaying image data received through the shared memory 508 on the second display 180b.
- the image 905 displayed on the first display 180a is synchronized with the image 905 displayed on the second display 180b, and the same images 905a and 905b are displayed at time T1, respectively. exemplify what is
- the image data processed by the first virtualization machine 520 in the processor 175 is transmitted to the second virtualization machine 530 and the third virtualization machine 540 through the shared memory 508, and the image data Based on this, the first image 905 displayed on the first display 180a and the second image 905 displayed on the second display 180b may be identical to each other. Accordingly, the same image can be synchronized and displayed on the plurality of displays 180a to 180b in the vehicle. In addition, it is possible to perform high-speed data communication between a plurality of virtual machines.
- FIG. 15 is a detailed diagram of the output server interface 522 of FIG. 13 .
- a plurality of buffers 507a, 507b, and 507c may be set in the shared memory 508.
- each of the input/output client interfaces 532 and 542 in the second virtual machine 530 and the third virtual machine 540 may include consumers 533 and 543, respectively.
- the output server interface 522 in the first virtualization machine 520 includes a producer 1010 that creates a synchronization object for graphic synchronization, a recvQueue 1020 that manages and receives a queue, and a queue ), WorkThread 1030 for managing and controlling operations, and SendQueue 1040 for managing and particularly transmitting queues.
- the producer 1010 receives information about an empty buffer index among the plurality of buffers 507a, 507b, and 507c in the shared memory 508 from the recvQueue 1020 (Sa1). For example, when the first buffer 507a of the plurality of buffers 507a, 507b, and 507c is empty, information on the first buffer 507a is received (Sa1).
- the producer 1010 receives information about the first buffer 507a whose reference count refcnt is 0 from the recvQueue 1020.
- the producer 1010 creates a synchronization object for graphics synchronization for writing to the first buffer 507a (Sa2).
- the producer 1010 writes the data of the created synchronization object to the first buffer 507a in the shared memory 508 (Sa3).
- the producer 1010 queues information on the first buffer 507a, for example, a buffer index, through SendQueue 1040 (Sa4).
- the WorkThread 1030 detects, and receives or reads, when data enters the SendQueue 1040 that is monitored periodically (Sa5).
- the WorkThread 1030 receives information about the first buffer 507a from the SendQueue 1040 being monitored.
- the WorkThread 1030 waits until the frame for the created synchronization object is completely drawn (Sa6).
- the WorkThread 1030 increases the reference count (refcnt) of the buffer corresponding to the first buffer 507a by the number of consumers or the number of input/output client interfaces (Sa7).
- the reference count (refcnt) of the buffer corresponding to the first buffer 507a is increased from 0 to 2.
- the WorkThread 1030 transfers the buffer index to the Consumers 533 and 543 (Sa8). For example, information corresponding to the first buffer 507a is transmitted (Sa8).
- the Consumers 533 and 543 access the first buffer 507a in the shared memory 508 using the received buffer index, and copy data (Sa9).
- the Consumers 533 and 543 return the buffer index to the Producer 1010 or the WorkThread 1030 again after the data copy is completed (Sa10).
- the producer 1010 decreases the reference count RefCnt for the first buffer 507a by 1 based on the buffer index or information received after data copy completion for each consumer 533 or 543.
- the reference count RefCnt for the first buffer 507a decreases from 2 to 1.
- the reference count RefCnt for the first buffer 507a is decreased from 1 to 0.
- the corresponding buffer can be used by the producer 1010 again.
- the first frame data is shared using the first buffer 507a
- the second frame data is shared using the second buffer 507b
- the third buffer 507c The third frame data can be shared using , and thereafter, the fourth frame data can be shared again using the first buffer 507a.
- the input/output server interface 522 receives information about an empty first buffer 507a of the shared memory 508, writes first data into the first buffer 507a of the shared memory 508, and , Buffer information of the first buffer 507a may be transmitted to the input/output client interfaces 532 and 542 in the second virtual machine 530 and the third virtual machine 540.
- the reference count of the first buffer 507a changes in the first direction (eg, the reference count increases), and the first buffer 507a
- the reference count of the first buffer 507a may be changed in a second direction opposite to the first direction (eg, a reference count decreases).
- each consumer 533 and 543 in each input/output client interface 532 and 542 in the second virtual machine 530 and the third virtual machine 540 records the first data in the first buffer 507a. Accordingly, the reference count of the first buffer 507a may be changed in the first direction (eg, the reference count may increase).
- the producer 1010 in the input/output server interface 522 in the first virtual machine 520 when copying the first data of the first buffer 507a is completed, sets the reference count of the first buffer 507a. It may be changed in a second direction opposite to the first direction (eg, a reference count decreases). Accordingly, after copying is completed, new data can be written to the first buffer 507a.
- the first virtualization machine 520 writes the first frame data to the third frame data in the first buffer to the third buffer 507a to 507c among the plurality of buffers 507a to 507c, respectively, and the second Each of the input/output client interfaces 532 and 542 in the virtualization machine 530 and the third virtualization machine 540 receives first frame data to third frame data from the first buffer) to the third buffers 507a to 507c. Can be copied sequentially.
- the second virtualization machine 530 after the input/output client interface 542 in the third virtualization machine 540 completes copying the first frame data from the first buffer 507a, the second buffer 507b ) may copy the second frame data from. Accordingly, synchronization at the time of data sharing can be performed between the second virtual machine 530 and the third virtual machine 540 .
- 16 is a diagram illustrating that various drivers DRa, DRb, and DRc are provided in the first virtual machine 520.
- the first virtualization machine 520 includes a location information driver DRa for processing location information, a touch driver DRb for processing touch input, and a camera driver for image processing from a camera. (DRc) may be provided.
- the first virtual machine 520 may set the hypervisor 505-based shared memory for each location information driver DRa, touch driver DRb, and camera driver DRc.
- the input/output server interface 522 sets the first shared memory 508a for transmission of video data from the camera driver DRc and the second shared memory 508a for transmission of location information from the location information driver DRa.
- a shared memory 508b may be set.
- the key data of the first shared memory 508a and the key data of the second shared memory 508b are transmitted to the second virtual machine 530 and the third virtual machine 540, and the second virtual machine ( 530) and the third virtualization machine 540, based on the key data of the first shared memory 508a and the key data of the second shared memory 508b, the first shared memory 508a and the second shared memory (508b).
- the security manager 526 when sharing different types of shared data, the security manager 526 generates key data information for data access, virtual machine information, information for each device, allocated memory address information, buffer index information, creation Created key data information in the form of a table and register it.
- the input/output client interfaces 532 and 542 in the second virtual machine 530 and the third virtual machine 540, respectively, connect to the security manager 526 refer to a table in the security manager 526, Key data may be requested and received, and a corresponding shared memory may be accessed using the received key data.
- 17A illustrates that the same images 1210a and 1210b are displayed on the first display 180a and the second display 180b inside the vehicle, respectively.
- the second virtualization machine 530 operates for rendering of the first display 180a and the third virtualization machine 540 operates for rendering of the second display 180b, as shown in the drawing, 1:N data communication by the first virtualization machine 520 is performed, and synchronized image display is performed.
- 17B shows that the same images 1210a, 1210b, 1210c, and 1210d are displayed on the first display 180a, the second display 180b, the second display 180c, and the fourth display 180d inside the vehicle, respectively. foreshadow
- the second virtualization machine 530 operates for rendering of the first display 180a
- the third virtualization machine 540 operates for rendering of the second display 180b
- the fourth virtualization machine When a fifth virtual machine (not shown) operates for rendering of the third display 180c and a fifth virtual machine (not shown) operates for rendering of the fourth display 180 o, as shown in the drawing, the first virtual machine 520 ), 1:N data communication is performed, and a synchronized image is displayed.
- 17C illustrates that a display 180e is formed on a room mirror inside a vehicle to display an image 1210e.
- FIGS. 17A and 17C are linked, the same images 1210a, 1210b, and 1210e are displayed on the first display 180a, the second display 180b, and the room mirror display 180e inside the vehicle, respectively. It can be.
- the second virtualization machine 530 operates for rendering of the first display 180a
- the third virtualization machine 540 operates for rendering of the second display 180b
- a fourth virtualization machine (not shown)
- 1:N data communication by the first virtual machine 520 is performed, and synchronized image display is performed.
- FIGS. 17 and 17C are linked, the first display 180a and the second display 180b, the third display 180c and the fourth display 180d, and the room mirror display 180e inside the vehicle It is exemplified that the same images 1210a, 1210b, 1210c, 1210d, and 1210e are displayed respectively.
- FIG. 18 illustrates the arrangement of a HUD display 180f inside a vehicle.
- the vehicle display device 100 may include a first display 180a corresponding to a cluster, a second display 180b corresponding to AVN, and a HUD display 180f.
- the signal processing device 170 includes first image data processed by the first virtual machine 520, second image data processed by the second virtual machine 530, and processed by the third virtual machine 540. Control may be performed to synthesize the third image data and display the synthesized image on the third display 180c.
- the first virtual machine 520 processes rearview mirror image data Imga and side mirror image data Imgb
- the second virtual machine 530 processes front camera image data Imgc
- the third The navigation image data Imgd is processed by the virtualization machine 540, and a synthesized image obtained by synthesizing four image data is displayed on the HUD display 180f as a third display.
- the image 1300 corresponding to the front camera image data (Imgc) is the background, and images 1310 corresponding to the navigation image data (Imgd), the side mirror image data (Imgb), and the rearview mirror image data (Imga), respectively. ,1320,1330) are displayed together. Accordingly, each synchronized image can be displayed together. Accordingly, the user can check all images around the vehicle through the HUD display 180f.
- FIG 19 illustrates that some of the images (OBa, OBb) displayed on the second display 180b are processed and displayed in synchronization with the RSE display, the third display 180c and the fourth display 180d, respectively. do.
- the partial image OBad on the third display 180c and the other partial image OBbd on the fourth display 180d are synchronized and displayed.
- FIG. 20 illustrates that the image 1510b displayed on the second display 180b is processed and displayed in synchronization with the RSE display, the third display 180c and the fourth display 180d, respectively.
- the same image 1510c on the third display 180c and the same image 1510d on the fourth display 180d are synchronized and displayed.
- the first virtualization machine 520 in the signal processing device 170 in the vehicle display device 100 converts a first touch input on the first display 180a into a second virtualization device.
- Image data received through the machine 530 and processed based on the first touch input is transmitted to the second virtual machine 530 and the third virtual machine 540 through the shared memory 508, and the first display 180a and the second display 180b may display the same image corresponding to the first touch input. Accordingly, the same image can be synchronized and displayed on the plurality of displays 180a to 180b in the vehicle.
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Abstract
Description
Claims (20)
- 차량의 복수의 각 영역에 배치되며, 상기 차량에 장착되는 복수의 센서 장치 중 상기 차량의 복수의 각 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 수신된 신호의 적어도 일부를 외부로 전송하는 복수의 통신 모듈;상기 차량의 복수의 각 영역 사이에 배치되며, 상기 복수의 통신 모듈로부터의 신호를 수신하여 신호 처리를 수행하는 신호 처리 장치;를 포함하고,상기 각 통신 모듈은,제1 통신 속도에 의해 상기 복수의 센서 장치 중 일부의 센서 장치로부터의 신호를 수신하는 제1 커넥터;상기 제1 통신 속도 보다 빠른 제2 통신 속도에 의해 상기 신호 처리 장치와 통신을 수행하는 제2 커넥터;상기 제1 커넥터와 상기 제2 커넥터 사이에 배치되어 스위칭을 수행하는 이더넷 스위치;를 포함하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 각 통신 모듈은,상기 이더넷 스위치에 전기적으로 접속되는 프로세서;를 더 포함하고,상기 프로세서는,상기 차량의 복수의 각 영역에 배치되는 센서 장치들로부터의 신호를 프로세싱하여, 상기 프로세싱된 신호를, 상기 제2 커넥터를 통해, 상기 신호 처리 장치로 전송하도록 제어하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 각 통신 모듈은,상기 차량의 복수의 각 영역에 배치되는 센서 장치들로부터의 신호를 상기 신호 처리 장치로 전송하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 신호 처리 장치는,상기 제2 통신 속도에 기초하여, 동작하는 이더넷 스위치를 포함하고,상기 신호 처리 장치의 이더넷 스위치는, 마스터 이더넷 장치로 동작하고,상기 각 통신 모듈 내의 이더넷 스위치는, 상기 제1 통신 속도 또는 상기 제2 통신 속도에 기초하여, 슬레이브 이더넷 장치로 동작하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 제1 커넥터는 직렬 통신을 수행하고, 상기 제2 커넥터는 병렬 통신을 수행하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 복수의 통신 모듈은,상기 복수의 센서 장치 중 상기 차량의 제1 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 상기 신호를 상기 신호 처리 장치로 전송하는 제1 통신 모듈;상기 복수의 센서 장치 중 상기 차량의 제2 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 상기 신호를 상기 신호 처리 장치로 전송하는 제2 통신 모듈;을 포함하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 복수의 통신 모듈은,상기 복수의 센서 장치 중 상기 차량의 제1 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 상기 신호를 상기 신호 처리 장치로 전송하는 제1 통신 모듈;상기 복수의 센서 장치 중 상기 차량의 제2 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 상기 신호를 상기 신호 처리 장치로 전송하는 제2 통신 모듈;상기 복수의 센서 장치 중 상기 차량의 제3 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 상기 신호를 상기 신호 처리 장치로 전송하는 제3 통신 모듈;상기 복수의 센서 장치 중 상기 차량의 제4 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 상기 신호를 상기 신호 처리 장치로 전송하는 제4 통신 모듈;을 포함하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 각 통신 모듈은,상기 차량의 주행 중에 도어 제어와 시트 제어를 포함하는 차량 제어 신호를 출력하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 복수의 센서 장치는,카메라, 라이더, 레이더 또는 위치 센서를 포함하는 것을 특징으로 하는 차량용 통신 장치.
- 제1항에 있어서,상기 신호 처리 장치는,차량에 장착되는 디스플레이를 위한 신호 처리를 수행하는 프로세서를 포함하며,상기 프로세서는,상기 프로세서 내의 하이퍼바이저 상에서, 제1 가상화 머신 내지 제3 가상화 머신을 실행하며,상기 제2 가상화 머신은 제1 디스플레이를 위해 동작하며, 상기 제3 가상화 머신은, 제2 디스플레이를 위해 동작하며,상기 프로세서 내의 상기 제1 가상화 머신은,상기 제2 가상화 머신 및 상기 제3 가상화 머신으로, 데이터 전송을 위해, 상기 하이퍼바이저 기반의 공유 메모리가 설정되도록 제어하는 것을 특징으로 하는 차량용 통신 장치.
- 제10항에 있어서,상기 프로세서 내의 상기 제1 가상화 머신은,상기 제2 가상화 머신 및 상기 제3 가상화 머신으로, 동일한 데이터 전송을 위해, 상기 하이퍼바이저 기반의 공유 메모리가 설정되도록 제어하는 것을 특징으로 하는 차량용 통신 장치.
- 제10항에 있어서,상기 프로세서 내의 상기 제1 가상화 머신은,상기 공유 메모리의 설정 이후, 데이터 억세스를 위한 키 데이터를 포함하는 상기 공유 메모리에 대한 정보를, 상기 제2 가상화 머신 및 상기 제3 가상화 머신으로 전송하는 것을 특징으로 하는 차량용 통신 장치.
- 제10항에 있어서,상기 프로세서 내의 상기 제1 가상화 머신은, 입출력 서버 인터페이스와 보안 매니저를 포함하고,상기 제2 가상화 머신 및 상기 제3 가상화 머신은, 각각 입출력 클라이언트 인터페이스를 포함하는 것을 특징으로 하는 차량용 통신 장치.
- 제13항에 있어서,상기 제1 가상화 머신 내의 상기 입출력 서버 인터페이스로부터, 상기 입출력 클라이언트 인터페이스로의 데이터 전송을 위해,상기 보안 매니저는, 상기 공유 메모리를 할당하고,상기 입출력 클라이언트 인터페이스는, 상기 공유 메모리 할당 이후, 상기 입출력 서버 인터페이스로 연결 요청을 전송하는 것을 특징으로 하는 차량용 통신 장치.
- 제13항에 있어서,상기 입출력 서버 인터페이스는,상기 공유 메모리 할당 이후, 상기 입출력 클라이언트 인터페이스로, 데이터 억세스를 위한 키 데이터를 포함하는 상기 공유 메모리에 대한 정보를 전송하며,상기 입출력 클라이언트 인터페이스는, 상기 키 데이터에 기초하여 상기 공유 메모리에 억세스하는 것을 특징으로 하는 차량용 통신 장치.
- 제12항에 있어서,상기 입출력 서버 인터페이스는,상기 공유 메모리 중 비어있는 제1 버퍼에 대한 정보를 수신하고,상기 공유 메모리 내의 상기 제1 버퍼 내에 제1 데이터를 기록하고,상기 제1 버퍼의 버퍼 정보를 상기 제2 가상화 머신 및 상기 제3 가상화 머신 내의 각 입출력 클라이언트 인터페이스로 전송하는 것을 특징으로 하는 차량용 통신 장치.
- 제10항에 있어서,상기 프로세서 내의 상기 제1 가상화 머신은,상기 복수의 통신 모듈 중 적어도 하나로부터의 차량 센서 데이터, 위치 정보 데이터, 또는 카메라 영상 데이터를 수신하고, 처리 또는 가공하여, 상기 제2 가상화 머신 또는 상기 제3 가상화 머신으로 제공하는 것을 특징으로 하는 차량용 통신 장치.
- 제10항에 있어서,상기 제1 가상화 머신은,상기 복수의 통신 모듈 중 적어도 하나로부터 상기 차량의 휠 속도 센서 데이터를 수신하고, 처리하여, 상기 제2 가상화 머신 또는 상기 제3 가상화 머신 중 적어도 하나로, 상기 처리된 휠 속도 센서 데이터를 전송하는 것을 특징으로 하는 차량용 통신 장치.
- 차량의 복수의 각 영역에 배치되며, 상기 차량에 장착되는 복수의 센서 장치 중 상기 차량의 복수의 각 영역에 배치되는 센서 장치들로부터의 신호를 수신하고, 수신된 신호의 적어도 일부를 외부로 전송하는 복수의 통신 모듈;를 포함하고,상기 각 통신 모듈은,제1 통신 속도에 의해 상기 복수의 센서로부터의 신호를 수신하는 제1 커넥터;상기 제1 통신 속도 보다 빠른 제2 통신 속도에 의해 인접하는 통신 모듈과 통신을 수행하는 제2 커넥터;상기 제1 커넥터와 상기 제2 커넥터 사이에 배치되어 스위칭을 수행하는 이더넷 스위치;를 포함하는 것을 특징으로 하는 차량용 통신 장치.
- 제1 디스플레이;제2 디스플레이;제1항 내지 제19항 중 어느 한 항의 차량용 통신 장치;를 포함하고,상기 차량용 통신 장치 내의 신호 처리 장치는,상기 제1 디스플레이 및 상기 제2 디스플레이를 위한 신호 처리를 수행하는 프로세서를 포함하는 것을 특징으로 하는 차량용 디스플레이 장치.
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EP21966496.8A EP4300917A1 (en) | 2021-12-03 | 2021-12-03 | Communication device for vehicle and display device for vehicle, having same |
US18/278,337 US20240140334A1 (en) | 2021-12-03 | 2021-12-03 | Vehicle communication device and display apparatus for vehicle including the same |
PCT/KR2021/018251 WO2023101070A1 (ko) | 2021-12-03 | 2021-12-03 | 차량용 통신 장치 및 이를 구비하는 차량용 디스플레이 장치 |
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JP6523298B2 (ja) * | 2014-01-06 | 2019-05-29 | ジョンソン コントロールズ テクノロジー カンパニーJohnson Controls Technology Company | コンピュータシステムと車両インターフェースシステム |
KR20200125133A (ko) * | 2019-04-26 | 2020-11-04 | 현대자동차주식회사 | 차량 및 차량 내 메시지 전송 방법 |
KR102244569B1 (ko) * | 2018-11-26 | 2021-04-26 | 한국전자통신연구원 | 오토모티브 이더넷에 기초하여 차량 내부 네트워크에서 차량 내 디바이스간 통신 방법 및 장치 |
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KR100561636B1 (ko) * | 2004-11-22 | 2006-03-15 | 한국전자통신연구원 | 이더넷 패킷 스위치 장치 |
JP2013102393A (ja) * | 2011-11-09 | 2013-05-23 | Denso Corp | 車両用通信装置及びその車両用通信装置を用いた車両用データ通信システム |
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KR102244569B1 (ko) * | 2018-11-26 | 2021-04-26 | 한국전자통신연구원 | 오토모티브 이더넷에 기초하여 차량 내부 네트워크에서 차량 내 디바이스간 통신 방법 및 장치 |
KR20200125133A (ko) * | 2019-04-26 | 2020-11-04 | 현대자동차주식회사 | 차량 및 차량 내 메시지 전송 방법 |
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