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T-Drive Enhancing Driving Directions with Taxi Drivers’ Intelligence
ABSTRACT:
This paper presents a smart driving direction system leveraging the intelligence of experienced
drivers. In this system, GPS-equipped taxis are employed as mobile sensors probing the traffic
rhythm of a city and taxi drivers’ intelligence in choosing driving directions in the physical
world.
We propose a time-dependent landmark graph to model the dynamic traffic pattern as well as the
intelligence of experienced drivers so as to provide a user with the practically fastest route to a
given destination at a given departure time. Then, a Variance-Entropy-Based Clustering
approach is devised to estimate the distribution of travel time between two landmarks in different
time slots. Based on this graph, we design a two-stage routing algorithm to compute the
practically fastest and customized route for end users.
We build our system based on a real-world trajectory data set generated by over 33,000 taxis in a
period of three months, and evaluate the system by conducting both synthetic experiments and
in-the-field evaluations. As a result, 60- 70 percent of the routes suggested by our method are
faster than the competing methods, and 20 percent of the routes share the same results. On
average, 50 percent of our routes are at least 20 percent faster than the competing approaches.
ECWAY TECHNOLOGIES
IEEE PROJECTS & SOFTWARE DEVELOPMENTS
OUR OFFICES @ CHENNAI / TRICHY / KARUR / ERODE / MADURAI / SALEM / COIMBATORE
CELL: +91 98949 17187, +91 875487 2111 / 3111 / 4111 / 5111 / 6111
VISIT: www.ecwayprojects.com MAIL TO: ecwaytechnologies@gmail.com

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Dotnet t-drive enhancing driving directions with taxi drivers’ intelligence

  • 1. T-Drive Enhancing Driving Directions with Taxi Drivers’ Intelligence ABSTRACT: This paper presents a smart driving direction system leveraging the intelligence of experienced drivers. In this system, GPS-equipped taxis are employed as mobile sensors probing the traffic rhythm of a city and taxi drivers’ intelligence in choosing driving directions in the physical world. We propose a time-dependent landmark graph to model the dynamic traffic pattern as well as the intelligence of experienced drivers so as to provide a user with the practically fastest route to a given destination at a given departure time. Then, a Variance-Entropy-Based Clustering approach is devised to estimate the distribution of travel time between two landmarks in different time slots. Based on this graph, we design a two-stage routing algorithm to compute the practically fastest and customized route for end users. We build our system based on a real-world trajectory data set generated by over 33,000 taxis in a period of three months, and evaluate the system by conducting both synthetic experiments and in-the-field evaluations. As a result, 60- 70 percent of the routes suggested by our method are faster than the competing methods, and 20 percent of the routes share the same results. On average, 50 percent of our routes are at least 20 percent faster than the competing approaches. ECWAY TECHNOLOGIES IEEE PROJECTS & SOFTWARE DEVELOPMENTS OUR OFFICES @ CHENNAI / TRICHY / KARUR / ERODE / MADURAI / SALEM / COIMBATORE CELL: +91 98949 17187, +91 875487 2111 / 3111 / 4111 / 5111 / 6111 VISIT: www.ecwayprojects.com MAIL TO: ecwaytechnologies@gmail.com