D. Praveen’s scientific contributions

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Publications (1)


Figure 7: Analysis of output against specific boundaries. 5.2 Parameter Analysis In Its reduce unnecessary information considerations which will be select as a numeric value , while we address this topic separately with specific boundaries to examine the effect of boundaries on results. The boundary influence on the suggested information is shown at Figure. 7 by various functions methods explained at 4.1.3, Various limits not greatly influence efficiency to its data.
Figure i2: An example of the POI definition from various sources.
Heterogeneous inter-Clue designing of POI Popularity Analysis with discrepancy Tourism Data
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December 2020

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34 Reads

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2 Citations

IOP Conference Series Materials Science and Engineering

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G. Sunil

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Koteshwar Rao Donthamala

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D. Praveen

The prevalence of Predicting Point of Interest (POI) has been extremely important to location-based applications, such as reviews on POIs. Many current approaches are rarely able to achieve adequate efficiency due to the shortage of POI knowledge. This tendentious restricts the advice to famous locations and lacks equally important qualities in unlikely attractions. This paper introduces a novel method to forecasting the performance of POIs, dubbed Hierarchical Multi-Clue Fusion (HMCF). In general, to address sparsity issues, it is proposed that POIs be defined in a simple way usage different method of User-Generated Content (UGC) By different origin. And there is construct a hierarchically powerful POI modeling framework that concurrently injects semantonal Awareness and multiple layer representation regulation of POIs. Users are building a multi-view POI database for assessment by compiling both text and visual information from four conventional tourism channels from many separate provinces in China during 2006 to 2017. Extensive experimental findings indicate that the new technique will substantially improve the output of forecasting the success of attractions relative to a variety of reference methodologies.

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Citations (1)


... The fuzzy network structure model of green tourism satisfaction under the background of regional cultural differences is established. Through decision-making scheduling and parameter optimization methods, green tourism satisfaction under the background of regional cultural differences is fused, and the prediction is made according to the information fusion results [34][35][36]. ...

Reference:

A wireless network-based machine intelligence model for green tourism satisfaction analysis
Heterogeneous inter-Clue designing of POI Popularity Analysis with discrepancy Tourism Data

IOP Conference Series Materials Science and Engineering