2014
DOI: 10.1007/s10586-014-0362-3
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Adaptive Combiner for MapReduce on cloud computing

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Cited by 7 publications
(3 citation statements)
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“…When evaluating collision risks for pairs of vessels, some pairs do not have to be examined because the likelihood of collision is very small. For selecting candidate pairs, we investigated indexing data structures like the R tree [21], PPR tree [22], and R * tree [23]. These data structures are efficient for entities that are stationary or nearly stationary, but the management cost is high in maritime traffic monitoring services in which vessels keep moving for a majority of their time.…”
Section: Adaptive Information Visualization Methods For Maritime Trmentioning
confidence: 99%
“…When evaluating collision risks for pairs of vessels, some pairs do not have to be examined because the likelihood of collision is very small. For selecting candidate pairs, we investigated indexing data structures like the R tree [21], PPR tree [22], and R * tree [23]. These data structures are efficient for entities that are stationary or nearly stationary, but the management cost is high in maritime traffic monitoring services in which vessels keep moving for a majority of their time.…”
Section: Adaptive Information Visualization Methods For Maritime Trmentioning
confidence: 99%
“…For instance, some applications require a certain type of sequential container. This is the case of MapReduce systems, where, by default, containers of the first phase (map) need to finish before the containers of the second phase (reduce) start [7,8].…”
Section: Constraintmentioning
confidence: 99%
“…For instance, some applications require a certain type of sequential containers. This is the case of MapReduce systems, where by default, containers of the first phase (map) need to finish before the containers of the second phase (reduce) start [102,60].…”
Section: Constraint Filteringmentioning
confidence: 99%