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Urban travel mode comprehensive identification method based on mobile phone signaling data and containing road network correction

A mobile phone signaling and travel mode technology, applied in location-based services, geographic information databases, character and pattern recognition, etc., can solve the problems of limited number of samples, difficult implementation, unreasonable mode identification, etc.

Active Publication Date: 2020-09-11
NANJING RUIQI INTELLIGENT TRANSPORTATION TECH IND RES INST CO LTD
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  • Application Information

AI Technical Summary

Problems solved by technology

This method requires the survey object to cooperate with the collection of acceleration detection equipment data. This process is affected by multiple factors such as manpower and material resources. It is unreasonable to apply the algorithm model obtained from the collected data training to all future travel data.

Method used

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  • Urban travel mode comprehensive identification method based on mobile phone signaling data and containing road network correction
  • Urban travel mode comprehensive identification method based on mobile phone signaling data and containing road network correction
  • Urban travel mode comprehensive identification method based on mobile phone signaling data and containing road network correction

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Embodiment Construction

[0079] The present invention will be further described below in conjunction with embodiment, but protection scope of the present invention is not limited to this:

[0080] Mobile phone signaling data refers to a series of control instructions generated by the mobile communication network actively or passively, regularly or irregularly, to keep in touch with mobile terminals of mobile phone users, including mobile phone identification codes, time stamps, event types, base station numbers, Fields such as the latitude and longitude of the base station and the place where the number belongs contain the spatio-temporal information of each user's running track throughout the day, as shown in the following table:

[0081] dt msid start_time start_ci start_lng start_lat end_time end_ci end_lng end_lat 20190522 1 20190522000000 85132041 120.9892 31.4025 20190522000001 85132057 120.9892 31.4025 20190522 1 20190522000001 85132057 120.9892 ...

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Abstract

The invention discloses an urban travel mode comprehensive identification method based on mobile phone signaling data and containing road network correction. The method aims at mobile phone signalingdata generated by a target city all day long, and identifies a parking point and an all-day travel OD of each person, and the method includes: firstly, accurately identifying all underground rail transit travel modes through a subway special base station, then, comparing the underground rail transit travel modes with the real navigation data of the Advanced GPS on the basis of extracting mobile phone data characteristic parameters, and identifying the traffic mode of resident travel by utilizing an unsupervised machine learning algorithm. In order to further improve the accuracy and rationality of the mode division result, the result is further corrected by combining the design of the public transport network of the target city and the setting and management and control conditions of the real road. The method gives full consideration to the setting of different levels of roads in different urban roads at the supply side, the management and control rules of different local specific roadsections and the impact on the travel mode from the real bus network arrangement condition, and corrects the recognition result of the traffic mode.

Description

technical field [0001] The invention relates to the field of traffic planning, in particular to the field of traffic demand prediction. Background technique [0002] Traffic demand forecasting is the basis of urban traffic planning, and it is of great significance to accurately predict urban traffic demand for rational management and control of urban traffic system. Existing traffic demand forecasting methods (such as traffic allocation models) are highly dependent on the travel demand estimates under different travel modes. However, due to its highly complex nature, it is difficult to accurately predict the needs of different approaches. This is due to the fact that the temporal / spatial fluctuations in the operation of the transportation system and the traffic flow are undetectable, thus, the effective identification of traffic modes is the key to the current technology. [0003] In the past, there were many defects in the method of obtaining traffic information such as t...

Claims

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Application Information

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IPC IPC(8): G08G1/01G06F16/28G06F16/29G06K9/62H04W4/024H04W4/029H04W4/20H04W4/42
CPCG08G1/0125G08G1/0137G06F16/285G06F16/29H04W4/024H04W4/029H04W4/20H04W4/42G06F18/23213
Inventor 陆振波张改夏井新张念启余启航李效汪斌刘娟万紫吟张静芬
Owner NANJING RUIQI INTELLIGENT TRANSPORTATION TECH IND RES INST CO LTD
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