JOURNAL ARTICLE

Improving Location Prediction by Exploring Spatial‐Temporal‐Social Ties

Wen LiShixiong XiaFeng LiuLei Zhang

Year: 2014 Journal:   Mathematical Problems in Engineering Vol: 2014 (1)   Publisher: Hindawi Publishing Corporation

Abstract

As there is great differences of movement patterns and social correlation between weekdays and weekends, we propose a fallback social‐temporal‐hierarchic Markov model (FSTHM) to predict individual’s future location. The division of weekdays and weekends is used to decompose the original state of traditional Markov model into two different states and distinguish the difference of the strength of social ties on weekdays and weekends. Except for the time division, the distribution of the visit time for each state is also considered to improve the predictive performance. In addition, in order to best suit the characteristics of Markov model, we introduce the modified cross‐sample entropy to quantify the similarities between the individual and his friends. The experiments based on real location‐based social network show the FSTHM model gives a 9% improvement over the Markov model and 2% improvement over the social Markov models which use cosine similarity or mutual information to measure the social correlation.

Keywords:
Markov chain Markov model Hidden Markov model Maximum-entropy Markov model Entropy (arrow of time) Computer science Correlation Social network (sociolinguistics) Markov process Cross entropy Interpersonal ties Econometrics Artificial intelligence Markov property Statistics Mathematics Machine learning Principle of maximum entropy Psychology Social media Social psychology

Metrics

9
Cited By
2.78
FWCI (Field Weighted Citation Impact)
17
Refs
0.92
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Human Mobility and Location-Based Analysis
Social Sciences →  Social Sciences →  Transportation
Complex Network Analysis Techniques
Physical Sciences →  Physics and Astronomy →  Statistical and Nonlinear Physics
Transportation Planning and Optimization
Social Sciences →  Social Sciences →  Transportation

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