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ZENODO
Dataset . 2017
License: CC BY
Data sources: Datacite
image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/
ZENODO
Dataset . 2017
License: CC BY
Data sources: Datacite
image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/
ZENODO
Dataset . 2017
License: CC BY
Data sources: ZENODO
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Concept Spread Results For 2 Concept Environments

Authors: Archbold, James;

Concept Spread Results For 2 Concept Environments

Abstract

Raw data for multiple concepts spreading within a network. We have two concepts spreading, Concept 0, which is our target concept, and Concept 1 which is the concept that we can control. Concept 0 selects its seeds randomly. Concept 1 selects seeds based on chosen heuristic. Heuristics have a number ID for ease of labelling files. The following numbers are used within this data: 0 - Random selection 2 - Single Discount 3 - Degree 9 - Degree Discount 16 - MPG 17 - MoBoo File names follow this format: [number of seeds]_[number of nodes]_[heuristic number]_[Relationship strength * 10]_[average LT threshold * 10]_[IC probability of infection * 100]_[burn in time]_[run number]_[network type]_[network characteristic]_[controllable Concept]Boost[target Concept].txt So, for example, if we are performing run 38 on a 25000 node small-world graph, with a seed set size of 100, clustering exponent of 0.25, burn in time of 2 time steps, the controllable concept selecting seeds using degree discount, both concepts using the independent cascade model of spread, with a probability of infection of 0.1, a LTM average threshold of 0.8 and relationship strength of 0.2 the file would be: 100_25000_9_2_80_10_2_38_SW_25_ICBoostIC.txt Files follow this format: 10 line preamble listing the parameters of the run/runs Dashed line break "Run #" where # is the current run number Time in milliseconds of start "Timestep n" - n starting at 0 "Infections [conceptType]0: [Number of infected nodes in current time step for target]" "Infections [conceptType]1: [Number of infected nodes in current time step for controllable]" These three lines repeat for each time step. Before a final result heading, with the final infections. Time in milliseconds that run ended. Dashed line divider. Then, if the file contains a single run the file will end or, if it contains multiple runs, will proceed to the next run.

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Keywords

influence spread, concept interaction, MPG, influence limitation

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selected citations
These citations are derived from selected sources.
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
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