Method, apparatus and computer program product for estimation of road traffic condition using traffic signal data
US-2018151064-A1 · May 31, 2018 · US
US10380886B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10380886-B2 |
| Application number | US-201715628331-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 20, 2017 |
| Priority date | May 17, 2017 |
| Publication date | Aug 13, 2019 |
| Grant date | Aug 13, 2019 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
This invention provides a system-oriented and fully-controlled connected automated vehicle highway system for various levels of connected and automated vehicles and highways. The system comprises one or more of: 1) a hierarchical traffic control network of Traffic Control Centers (TCC's), local traffic controller units (TCUs), 2) A RSU (Road Side Unit) network (with integrated functionalities of vehicle sensors, I2V communication to deliver control instructions), 3) OBU (On-Board Unit with sensor and V2I communication units) network embedded in connected and automated vehicles, and 4) wireless communication and security system with local and global connectivity. This system provides a safer, more reliable and more cost-effective solution by redistributing vehicle driving tasks to the hierarchical traffic control network and RSU network.
Opening claim text (preview).
We claim: 1. A transportation management system that provides full vehicle operations and control for connected and automated vehicle and highway systems by sending individual vehicles with detailed and time-sensitive control instructions for vehicle following, lane changing, route guidance, and related information, said transportation management system comprising: a) a hierarchy of traffic control centers/traffic control units (TCCs/TCUs) that process information and give traffic operations instructions, wherein said TCCs and TCUs are automatic or semi-automated computational modules that focus on data gathering, information processing, network optimization, and traffic control; and wherein said hierarchy of TCCs/TCUs comprises one or more of macroscopic TCCs, regional TCCs, corridor TCCs, segment TCUs, point TCUs, and/or RSUs, wherein said: 1) macroscopic TCCs process information from the regional TCCs and provide control targets to the regional TCCs; 2) regional TCCs process information from the corridor TCCs and provide control targets to the corridor TCCs; 3) corridor TCCs process information from the macroscopic TCUs and the segment TCUs and provide control targets to the segment TCUs; 4) segment TCUs process information from the corridor TCCs and the point TCUs and provide control targets to the point TCUs; and 5) point TCUs process information from the segment TCUs and the RSUs and provide vehicle-based control instructions to one or more RSU; b) a network of roadside units (RSUs) that receive data flow from connected vehicles, detect traffic conditions, and send targeted instructions to vehicles, wherein said RSU network focuses on data sensing, data processing, control signal delivery, and information distribution, and wherein an RSU of the RSU network can be combined or integrated with a TCU; c) a vehicle sub-system, comprising a mixed traffic flow of vehicles at different levels of connectivity and automation; and d) communications systems that provide wired and wireless communication services to all the entities in the transportation management system. 2. The transportation management system of claim 1 , wherein the transportation management system is configured to be operational on a portion of the available lane(s) or on all the lanes of a highway. 3. The transportation management system of claim 1 , wherein information is customized for each individual vehicle served by the transportation management system; said information includes weather, pavement conditions, and estimated travel time; and said information includes vehicle control instructions selected from the group consisting of speed, spacing, lane designation, and routing. 4. The transportation management system of claim 1 , wherein information is sent from an upper level TCC/TCU to a lower level TCC/TCU and includes one or more of: a) a desirable speed, b) a desirable spacing of vehicles, c) a desirable traffic volume, d) a desirable traffic split at access points, and e) traffic signal timing parameters. 5. The transportation management system of claim 1 wherein said transportation management system employs hardware comprising one or more of: a) a power supply, b) traffic sensors, c) wired and wireless communication modules, and d) a data storage device and database. 6. The transportation management system of claim 1 configured for use with a sensor selected from the group consisting of: a) a microwave system; b) an inductive loop system; c) an infrared system; d) a video camera system; and e) a laser system. 7. The transportation management system of claim 1 , wherein said macroscopic TCC: a) provides control targets to said regional TCCs; b) collects related data from said regional TCCs; c) archives historical data in a data center to support information processing and a strategy optimizer; d) provides an automatic or semi-automated computational center that focuses on data gathering, information processing, network optimization, and traffic control signals; and e) controls multiple regional TCCs in a large scale area and communicates with regional TCCs using high volume capacity and low latency communication media. 8. The transportation management system of claim 1 , wherein said Regional TCC: a) provides control targets to said corridor TCCs; b) collects related data from said corridor TCCs; c) archives historical data in a data center to support the information processing and a strategy optimizer; d) provides an automatic or semi-automated computational center that focuses on data gathering, information processing, network optimization, and traffic control signals for a region; and e) controls multiple corridor TCCs within its coverage and communicates with corridor TCCs and a macroscopic TCC using high volume capacity and low latency communication media. 9. The transportation management system of claim 1 , wherein said corridor TCC: a) provides control targets to said segment TCUs; b) collects related data from said segment TCUs; c) provides optimizer and processor modules to process information and provide control targets; d) provides an automatic or semi-automated computational center that focuses on data gathering, information processing, network optimization, and traffic control signals for a long roadway corridor; and e) comprises a calculation server, a data warehouse, data transfer units, and computing ability for processing image and sensor data. 10. The transportation management system of claim 1 , wherein said segment TCU: a) provides control targets to said point TCUs; b) collects related data from said point TCUs; c) provides optimizer and processor modules to process information and provide control targets; d) provides traffic control for a small roadway area; and e) comprises a LAN data switching system and an engineer server and communicates with said point TCC using wired or wireless communication media. 11. The transportation management system of claim 1 , wherein said point TCU: a) provides vehicle based control instructions to said RSUs; b) collects related data from said RSUs; c) provides optimizer and processor modules to process information and provide control targets; and d) provides traffic control for a short distance of a roadway, ramp metering, or intersections; and e) communicates with a one or more other RSU units. 12. The transportation management system of claim 1 , comprising a vehicle sub-system comprising one or more modules for: a) vehicle-control; b) traffic detection and data collection; c) wireless communication; and d) data collection and communication. 13. The transportation management system of claim 1 , comprising an in-vehicle interface comprising one or more of: a) voice control and text-to-voice; b) display heads-up display (HUD); and c) vibration. 14. The transportation management system of claim 1 , wherein vehicle identification and tracking functions operate on any or any combination of: a) CV security certificate; b) on-board unit (OBU) ID; c) mobile device ID; d) DGPS; e) vision sensors in combination with video recognition and object detection; and f) mobile LiDAR, sensors. 15. A method comprising: managing traffic using a transportation management system of claim 1 . 16. The transportation management system of claim 7 wherein said high volume capacity and low latency communication media is optical fiber. 17. The transportation management system of claim 8 wherein said high volume capacity and low latency communication media
specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks · CPC title
Network arrangements or protocols for supporting network services or applications (user-to-user messaging H04L51/00; network arrangements, protocols or services for supporting real-time applications in data packet communications networks H04L65/00) · CPC title
identifying vehicles (G08G1/015, G08G1/054 take precedence) · CPC title
for classifying traffic situation · CPC title
Moving wireless networks · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.