pubmed-article:16723003 | rdf:type | pubmed:Citation | lld:pubmed |
pubmed-article:16723003 | lifeskim:mentions | umls-concept:C1882071 | lld:lifeskim |
pubmed-article:16723003 | lifeskim:mentions | umls-concept:C0033684 | lld:lifeskim |
pubmed-article:16723003 | lifeskim:mentions | umls-concept:C0699794 | lld:lifeskim |
pubmed-article:16723003 | pubmed:dateCreated | 2006-5-25 | lld:pubmed |
pubmed-article:16723003 | pubmed:abstractText | Biologists regularly search DNA or protein databases for sequences that share an evolutionary or functional relationship with a given query sequence. Traditional search methods, such as BLAST and PSI-BLAST, focus on detecting statistically significant pairwise sequence alignments and often miss more subtle sequence similarity. Recent work in the machine learning community has shown that exploiting the global structure of the network defined by these pairwise similarities can help detect more remote relationships than a purely local measure. | lld:pubmed |
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pubmed-article:16723003 | pubmed:language | eng | lld:pubmed |
pubmed-article:16723003 | pubmed:journal | http://linkedlifedata.com/r... | lld:pubmed |
pubmed-article:16723003 | pubmed:citationSubset | IM | lld:pubmed |
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pubmed-article:16723003 | pubmed:chemical | http://linkedlifedata.com/r... | lld:pubmed |
pubmed-article:16723003 | pubmed:status | MEDLINE | lld:pubmed |
pubmed-article:16723003 | pubmed:issn | 1471-2105 | lld:pubmed |
pubmed-article:16723003 | pubmed:author | pubmed-author:NobleWilliam... | lld:pubmed |
pubmed-article:16723003 | pubmed:author | pubmed-author:LeslieChristi... | lld:pubmed |
pubmed-article:16723003 | pubmed:author | pubmed-author:WestonJasonJ | lld:pubmed |
pubmed-article:16723003 | pubmed:author | pubmed-author:KuangRuiR | lld:pubmed |
pubmed-article:16723003 | pubmed:issnType | Electronic | lld:pubmed |
pubmed-article:16723003 | pubmed:volume | 7 Suppl 1 | lld:pubmed |
pubmed-article:16723003 | pubmed:owner | NLM | lld:pubmed |
pubmed-article:16723003 | pubmed:authorsComplete | Y | lld:pubmed |
pubmed-article:16723003 | pubmed:pagination | S10 | lld:pubmed |
pubmed-article:16723003 | pubmed:dateRevised | 2009-11-18 | lld:pubmed |
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pubmed-article:16723003 | pubmed:year | 2006 | lld:pubmed |
pubmed-article:16723003 | pubmed:articleTitle | Protein ranking by semi-supervised network propagation. | lld:pubmed |
pubmed-article:16723003 | pubmed:affiliation | NEC LABS AMERICA, 4 Independence Way, Princeton, NJ, USA. jasonw@nec-labs.com | lld:pubmed |
pubmed-article:16723003 | pubmed:publicationType | Journal Article | lld:pubmed |
pubmed-article:16723003 | pubmed:publicationType | Research Support, U.S. Gov't, Non-P.H.S. | lld:pubmed |
pubmed-article:16723003 | pubmed:publicationType | Research Support, Non-U.S. Gov't | lld:pubmed |
pubmed-article:16723003 | pubmed:publicationType | Research Support, N.I.H., Extramural | lld:pubmed |
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