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Publication
Featured researches published by Jeffrey Scott McCarley.
Archive | 2002
Satya Dharanipragada; Martin Franz; Jeffrey Scott McCarley; Todd Ward; Wei-Jing Zhu
IBM’s story segmentation uses a combination of decision tree and maximum entropy models. They take a variety of lexical, prosodic, semantic, and structural features as their inputs. Both types of models are source-specific, and we substantially lower C seg by combining them. IBM’s topic detection system introduces a minimal hierarchy into the clustering: each cluster is comprised of one or more microclusters. We investigate the importance of merging microclusters together, and propose a merging strategy which improves our performance.
Archive | 1998
Jeffrey Scott McCarley; Salim Roukos
Archive | 1998
Jeffrey Scott McCarley
Archive | 2004
Radu Florian; Martin Franz; Jeffrey Scott McCarley; Robert Todd Ward
Archive | 2001
Martin Franz; Jeffrey Scott McCarley
Archive | 2002
Martin Franz; Jeffrey Scott McCarley
Topic detection and tracking | 2002
Satya Dharanipragada; Martin Franz; Jeffrey Scott McCarley; Todd Ward; Wei-Jing Zhu
Archive | 2000
Martin Franz; Jeffrey Scott McCarley
Archive | 2010
Jeffrey Scott McCarley; Leiming R. Qian
Archive | 2011
Jeffrey Scott McCarley; Leiming R. Qian