Literature DB >> 21359877

Automatic definition of the central-chest lymph-node stations.

Kongkuo Lu1, Pinyo Taeprasartsit, Rebecca Bascom, Rickhesvar P M Mahraj, William E Higgins.   

Abstract

PURPOSE: Lung cancer remains the leading cause of cancer death in the United States. Central to the lung-cancer diagnosis and staging process is the assessment of the central-chest lymph nodes. This assessment requires two steps: (1) examination of the lymph-node stations and identification of diagnostically important nodes in a three-dimensional (3D) multidetector computed tomography (MDCT) chest scan; (2) tissue sampling of the identified nodes. We describe a computer-based system for automatically defining the central-chest lymph-node stations in a 3D MDCT chest scan.
METHODS: Automated methods first construct a 3D chest model, consisting of the airway tree, aorta, pulmonary artery, and other anatomical structures. Subsequent automated analysis then defines the 3D regional nodal stations, as specified by the internationally standardized TNM lung-cancer staging system. This analysis involves extracting over 140 pertinent anatomical landmarks from structures contained in the 3D chest model. Next, the physician uses data mining tools within the system to interactively select diagnostically important lymph nodes contained in the regional nodal stations.
RESULTS: Results from a ground-truth database of unlabeled lymph nodes identified in 32 MDCT scans verify the system's performance. The system automatically defined 3D regional nodal stations that correctly labeled 96% of the database's lymph nodes, with 93% of the stations correctly labeling 100% of their constituent nodes.
CONCLUSIONS: The system accurately defines the regional nodal stations in a given high-resolution 3D MDCT chest scan and eases a physician's burden for analyzing a given MDCT scan for lymph-node station assessment. It also shows potential as an aid for preplanning lung-cancer staging procedures.

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Year:  2011        PMID: 21359877      PMCID: PMC3111859          DOI: 10.1007/s11548-011-0547-7

Source DB:  PubMed          Journal:  Int J Comput Assist Radiol Surg        ISSN: 1861-6410            Impact factor:   2.924


  26 in total

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3.  Evaluation of the human airway with multi-detector x-ray-computed tomography and optical imaging.

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4.  CT-based definition of thoracic lymph node stations: an atlas from the University of Michigan.

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  6 in total

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Authors:  Jason D Gibbs; Michael W Graham; Rebecca Bascom; Duane C Cornish; Rahul Khare; William E Higgins
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5.  Mediastinal lymph node detection and station mapping on chest CT using spatial priors and random forest.

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6.  Multimodal Registration for Image-Guided EBUS Bronchoscopy.

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  6 in total

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