ログイン
言語:

WEKO3

  • トップ
  • ランキング
To
lat lon distance
To

Field does not validate



インデックスリンク

インデックスツリー

メールアドレスを入力してください。

WEKO

One fine body…

WEKO

One fine body…

アイテム

  1. プロシーディングス

Modeling respiratory motion variations in the 4D NCAT phantom

https://repo.qst.go.jp/records/54082
https://repo.qst.go.jp/records/54082
302a1e83-3cf8-45c2-8cc8-293591d4d4fd
Item type 会議発表論文 / Conference Paper(1)
公開日 2008-12-15
タイトル
タイトル Modeling respiratory motion variations in the 4D NCAT phantom
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_5794
資源タイプ conference paper
アクセス権
アクセス権 metadata only access
アクセス権URI http://purl.org/coar/access_right/c_14cb
著者 Segar, Paul

× Segar, Paul

WEKO 552022

Segar, Paul

Search repository
Mori, Shinichiro

× Mori, Shinichiro

WEKO 552023

Mori, Shinichiro

Search repository
Chen, George

× Chen, George

WEKO 552024

Chen, George

Search repository
et.al

× et.al

WEKO 552025

et.al

Search repository
森 慎一郎

× 森 慎一郎

WEKO 552026

en 森 慎一郎

Search repository
抄録
内容記述タイプ Abstract
内容記述 The current 4D NCAT phantom includes a flexible, parameterized respiratory model based on respiratory-gated CT data of a normal subject. A limitation of this model is that it is based on only one realization of the normal respiratory motion. The data upon which it was based also had a resolution lower than that offered by more advanced CT scanners and consisted of only four time frames that did not adequately cover normal tidal breathing. We further develop the 4D NCAT to more accurately model normal and abnormal states of respiration. Over two-hundred sets of 4D respiratory gated CT image data from normal and abnormal patients obtained from the Massachusetts General Hospital were used to characterize variations in the respiratory motion. Each dataset contains twenty time frames over the respiratory cycle with the patient breathing normally. With the improved resolution and better coverage of tidal breathing, this data was used to improve the respiratory model of the 4D NCAT phantom. Using automatic and semiautomatic techniques, the different respiratory structures were segmented from each time frame of each CT dataset. The time series of segmented structures were used to characterize the respiratory motion in each case. From an analysis of all normal and abnormal patient datasets, we determined the range of sizes and shapes of the right and left lungs and the range in motion (expansion in the anterior and inferior (diaphragm) directions) in the different lung regions. This analysis was used to further parameterize the general respiratory model of the 4D NCAT to more realistically model normal and abnormal variations in anatomy and in the respiratory motion. With the ability to model variations in the respiratory motion indicative of a patient population, the phantom will be a great resource to investigate the effects of respiratory motion on medical imaging and to develop compensation methods for these effects.
書誌情報 IEEE Nuclear Science Symposium Conference Record : Nuclear Science Symposium, Medical Imaging Conference

巻 4, p. 2677-2679, 発行日 2008-01
戻る
0
views
See details
Views

Versions

Ver.1 2023-05-15 23:05:06.184971
Show All versions

Share

Mendeley Twitter Facebook Print Addthis

Cite as

エクスポート

OAI-PMH
  • OAI-PMH JPCOAR 2.0
  • OAI-PMH JPCOAR 1.0
  • OAI-PMH DublinCore
  • OAI-PMH DDI
Other Formats
  • JSON
  • BIBTEX

Confirm


Powered by WEKO3


Powered by WEKO3