UGC Approved Journal no 63975(19)

ISSN: 2349-5162 | ESTD Year : 2014
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Published in:

Volume 6 Issue 3
March-2019
eISSN: 2349-5162

UGC and ISSN approved 7.95 impact factor UGC Approved Journal no 63975

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Published Paper ID:
JETIRAU06001


Registration ID:
202320

Page Number

1-5

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Title

PREDICTION OF ROAD TRAFFIC FROM MULTIPLE SOURCES USING GAUSSIAN APPROACH

Abstract

Prediction of road traffic from multiple sources using Gaussian approach is most import in intelligent transport systems. Existing works are only focused on non-intrusive sensors that are very expensive. Sensors are detecting traffic conditions and image recognitionetc. The maintains of these sensors are very difficult. To address the issue, this paper aims to improve road traffic speed prediction by using tweet sensors and social media. This includes many challenges, including location uncertainty of low-resolution data, language ambiguity of traffic description in text etc. To response these challenges we provide a uniform modeling probabilistic framework called Topic Enhanced Gaussian Aggregation model (TEGPAM). It consists of three components location disaggregation model, traffic topic model, Traffic speed Gaussian model.

Key Words

Gaussian process, multiple-sources.

Cite This Article

"PREDICTION OF ROAD TRAFFIC FROM MULTIPLE SOURCES USING GAUSSIAN APPROACH ", International Journal of Emerging Technologies and Innovative Research (www.jetir.org), ISSN:2349-5162, Vol.6, Issue 3, page no.1-5, March-2019, Available :http://www.jetir.org/papers/JETIRAU06001.pdf

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2349-5162 | Impact Factor 7.95 Calculate by Google Scholar

An International Scholarly Open Access Journal, Peer-Reviewed, Refereed Journal Impact Factor 7.95 Calculate by Google Scholar and Semantic Scholar | AI-Powered Research Tool, Multidisciplinary, Monthly, Multilanguage Journal Indexing in All Major Database & Metadata, Citation Generator

Cite This Article

"PREDICTION OF ROAD TRAFFIC FROM MULTIPLE SOURCES USING GAUSSIAN APPROACH ", International Journal of Emerging Technologies and Innovative Research (www.jetir.org | UGC and issn Approved), ISSN:2349-5162, Vol.6, Issue 3, page no. pp1-5, March-2019, Available at : http://www.jetir.org/papers/JETIRAU06001.pdf

Publication Details

Published Paper ID: JETIRAU06001
Registration ID: 202320
Published In: Volume 6 | Issue 3 | Year March-2019
DOI (Digital Object Identifier):
Page No: 1-5
Country: -, -, - .
Area: Engineering
ISSN Number: 2349-5162
Publisher: IJ Publication


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