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Sponsor: Caltrans

Evaluation of Incorporating Hybrid Vehicle Use of HOV Lanes

Status

Complete

Project Timeline

May 27, 2004 - December 31, 2005

Principal Investigator

Will Recker

Project Team

David Brownstone, Lianyu Chu, Thomas Golob, Nesamani Kalandiyur

Sponsor, Program & Award Number

Caltrans // PATH: TO 5315
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience Zero-Emission Vehicles & Low-Carbon Fuels

Team Departmental Affiliations

Civil and Environmental Engineering, Economics

Related Publications

research report | Oct 2008

Evaluation of Incorporating Hybrid Vehicle Use of HOV Lanes

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High Occupancy Vehicle (HOV) System Analysis Tools: Statewide HOV Facility Performance Analysis

Status

Complete

Project Timeline

May 1, 2009 - December 31, 2012

Principal Investigator

Will Recker

Project Team

Ming Yang, Lianyu Chu, Ethan Standen, Thi Bich Thuy (Vanessa) Luong, Hassan Ahmed, Secundino Arellano Iii, Lawrence Andres, Lawrence Andres, Rahul Shah, Amelia Regan, Choong Heon Yang

Sponsor, Program & Award Number

Caltrans // UCTC Caltrans Match: 6559
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience

Team Departmental Affiliations

Civil and Environmental Engineering, Computer Science

Project Summary

Despite wide adoption of HOV facilities by many states, Metropolitan Planning Organizations (MPOs) and cities, there still remain questions on the effectiveness of HOV systems. Among relevant factors that may impact the operation and safety performance of HOV facilities, operation policy and HOV-access configurations are being actively evaluated by Caltrans. One idea under investigation to improve HOV lane operation is to reconfigure the HOV lane system from Full-time Buffer-separated to a Full/part-time continuous-access facility. Furthermore, a recent study aimed at evaluating safety performance of California freeways equipped with HOV facilities led to an interesting conclusion—notably, the safety performances of the buffer-separated, limited-access HOV lanes typically seen in Southern California, when compared to those continuous-access facilities, limited-hour operation of HOV in Northern California, appear to offer no safety advantages. This is contrary to the common belief that buffer separation and restricted entrance and exits will provide additional protection for traffic moving in the HOV lanes. As a result, whether to support the idea to reconfigure the HOV lane system from Full-time Buffer-separated to a Full/part-time Continuous-access facility depends on whether or not the continuous-access HOV facility can provide better operational benefits than the buffer-separate HOV facility. This research is designed to address this issue by providing a methodology based on combined real-world data evaluation and simulation analysis to derive further understanding and insights for future policy setting and operational guidelines for HOV facilities, with the ultimate goal of achieving efficient and safe highways.

Related Publications

research report | Dec 2012

High Occupancy Vehicle (HOV) System Analysis Tools: Statewide HOV Facility Performance Analysis

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Corridor Deployment and Investigation of Anonymous Vehicle Tracking for Real-Time Traffic Performance Measurement

Status

Complete

Project Timeline

May 27, 2004 - December 31, 2006

Principal Investigator

Stephen Ritchie

Project Team

Seri Park, Cheol Oh, Shin-Ting (Cindy) Jeng, Andre (Yeow Chern) Tok

Sponsor, Program & Award Number

Caltrans // PATH: TO 5304
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience Intelligent Transportation Systems, Emerging Technologies, & Big Data

Team Departmental Affiliation

Civil and Environmental Engineering

Project Summary

To fully exploit the benefits of the new generation of Intelligent Transportation Systems now widely under development, including applications for performance measurement and homeland security, more accurate and appropriate real-time traffic data need to be collected from the urban highway transportation network and communicated to traffic management centers, traffic operations personnel, travelers, and other agencies. This research proposes to deploy and investigate at a corridor level anonymous vehicle tracking techniques that have been pioneered by the authors in previous PATH research. The objective of the research is to investigate and demonstrate real-time freeway and arterial performance measurement in a major real-world setting. This project represents a planned continuation of current PATH Task Order (TO) 4159 on Anonymous Vehicle Tracking for Real-Time Freeway and Arterial Street Performance Measurement. TO 4159 emphasized microscopic simulation in conjunction with individual intersection and freeway segment field implementations to develop and assess methods for tracking vehicles across multiple detector stations in a traffic network, based on real-time acquisition of vehicle inductive signatures, in order to provide improved freeway and arterial (and transit) performance measures to the Caltrans PeMS. Ultimately, however, the utility and effectiveness of such new network-based methods can only be judged through large-scale field implementation, as proposed here.

Related Publications

published journal article | Sep 2007

Anonymous vehicle reidentification using heterogeneous detection systems
IEEE Trans. Intell. Transport. Syst.

Read more
research report | Oct 2008

Corridor Deployment and Investigation of Anonymous Vehicle Tracking for Real-Time Traffic Performance Measurement

Read more

Developing Large Network Tools for Microscopic Traffic Simulation

Status

Complete

Project Timeline

June 28, 2004 - December 31, 2006

Principal Investigator

r-jayakrishnanR. (Jay) Jayakrishnan

Sponsor, Program & Award Number

Caltrans // PATH: UCB-35404
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience Travel Behavior, Land Use, & the Built Environment

Team Departmental Affiliation

Civil and Environmental Engineering

Assessing the Quality and Applicability of Local Travel Demand Models

Status

Complete

Project Timeline

November 1, 2004 - June 30, 2007

Principal Investigator

Michael McNally

Sponsor & Award Number

Caltrans: 65A0187

Areas of Expertise

Travel Behavior, Land Use, & the Built Environment

Team Departmental Affiliation

Civil and Environmental Engineering

Project Summary

This study is addressing local travel forecasting models through a fundamental and comprehensive examination of the state of the practice, focused on data, methodologies, software, and operational practice elements. The study will identify modeling practice relating to local and region-wide impacts and benefits of land use location, density, design, and configuration. Sensitivity analysis will assess how the elements of modeling practice affect model quality and applicability for testing land use and multimodal strategies. The introduction of state of the art modeling techniques for local travel demand models will be considered to identify potential improvement measures.

Network-Wide Signal Control with Distributed Real-Time Travel Data

Status

Complete

Project Timeline

September 1, 2006 - July 31, 2007

Principal Investigator

r-jayakrishnanR. (Jay) Jayakrishnan

Sponsor, Program & Award Number

Caltrans // UCTC Caltrans Match: SA5492
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience Intelligent Transportation Systems, Emerging Technologies, & Big Data

Team Departmental Affiliation

Civil and Environmental Engineering

Project Summary

Though most existing signal systems include some optimization schemes, their performance suffers from inaccurate route travel prediction due to the limitations of data. In the Persistent Traffic Cookies (PTC) system being researched in UC Irvine, the path-based variables including path flow and path travel time can be obtained from the historical trip tables and current movement information stored in individual vehicles. The information is automatically updated by intersection wireless hardware every time the drivers return to those locations, and can be read by the same hardware, unless the drivers choose to withhold it. With such path variables data diary, the improved traffic control schemes can be introduced for a group of intersections called a sub-network. For network-level control, the path flows are estimated from the inference of individual vehicle movement to capture a movement along several intersections. The future path flow is predicted based on the current path flow and historical data. Based on it, we present a scheme to group a series of intersections as a sub-network for signal optimization. First, the interaction between any two intersections is estimated by the path flow between them. After choosing a Critical Intersection in a network, a group of intersections having a certain interaction with it is selected and formed a sub-network. The signal optimization in a sub-network is accomplished by a Mixed Integer Linear Problem with the objective to minimize the total delay and a set of constraints. To our knowledge, this is the first real-time traffic control optimization scheme developed using travel diaries.

Related Publications

Phd Dissertation | Jan 2009

Network-wide signal control with distributed real-time travel data

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Comprehensive Microscopic Simulation Modeling of California Corridor Networks: I-5 in Orange County

Status

Complete

Project Timeline

July 1, 2006 - September 30, 2009

Principal Investigator

r-jayakrishnanR. (Jay) Jayakrishnan

Sponsor, Program & Award Number

Caltrans // PATH: SA5524-15965
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience

Team Departmental Affiliation

Civil and Environmental Engineering

Section Related Measures of Traffic System Performance

Status

Complete

Project Timeline

October 1, 1995 - November 30, 1998

Principal Investigator

Stephen Ritchie

Project Team

Carlos Sun

Sponsor, Program & Award Number

Caltrans // PATH: MOU 224
(Subcontract to UC Berkeley)

Areas of Expertise

Infrastructure Delivery, Operations, & Resilience

Team Departmental Affiliation

Civil and Environmental Engineering

Related Publications

research report | Nov 1998

Section Related Measures of Traffic System Performance: Final Report

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Simulation of ITS on the Irvine FOT Area Using Paramics Scalable Microscopic Traffic Simulator

Status

Complete

Project Timeline

September 23, 1997 - June 30, 1999

Principal Investigator

Will Recker

Sponsor, Program & Award Number

Caltrans // PATH: MOU 359
(Subcontract to UC Berkeley)

Areas of Expertise

Intelligent Transportation Systems, Emerging Technologies, & Big Data

Team Departmental Affiliation

Civil and Environmental Engineering

Related Publications

research report | Apr 1999

Simulation of ITS on the Irvine FOT Area Using "Paramics 1.5" Scalable Microscopic Traffic Simulator: Phase I: Model Calibration and Validation

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Evaluation of the Irvine Integrated Fwy Ramp Meter/Arterial Field Operational Test

Status

Complete

Project Timeline

October 1, 1994 - March 31, 1999

Principal Investigator

Michael McNally

Sponsor, Program & Award Number

Caltrans // PATH: 65V313 Task order 5

Team Departmental Affiliation

Civil and Environmental Engineering

Related Publications

research report | Sep 2001

Documentation of the Irvine Integrated Corridor Freeway Ramp Metering and Arterial Adaptive Control Field Operational Test

Read more
published journal article | Jan 2002

Field Operational Test of Integrated Freeway Ramp Metering/Arterial Adaptive Signal Control: Lessons Learned in Irvine, California
Transportation Research Record: Journal of the Transportation Research Board

Read more
conference paper | Jan 2002

Field operational test of integrated freeway ramp metering/arterial adaptive signal control - Lessons learned in Irvine, California
ADVANCED TRAFFIC MANAGEMENT SYSTEMS FOR FREEWAYS AND TRAFFIC SIGNAL SYSTEMS 2002: HIGHWAY OPERATIONS, CAPACITY, AND TRAFFIC CONTROL

Read more

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