Mixed Reality Visualization of Radiation Dose for Health Professionals and Patients in Interventional Radiology.

For interventional radiology, dose management has persisted as a crucially important issue to reduce radiation exposure to patients and medical staff. This study designed a real-time dose visualization system for interventional radiology designed with mixed reality technology and Monte Carlo simulat...

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Publicado en:Journal of Medical Systems Vol. 45; no. 4; pp. 1 - 9
Autores principales: Takata, Takeshi, Nakabayashi, Susumu, Kondo, Hiroshi, Yamamoto, Masayoshi, Furui, Shigeru, Shiraishi, Kenshiro, Kobayashi, Takenori, Oba, Hiroshi, Okamoto, Takahide, Kotoku, Jun'ichi
Formato: pictorial research tables/charts Journal Article
Publicado: Springer Nature Apr2021
Acceso en línea:Ver este registro en EBSCOhost
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      dt: Apr2021
      vid: 45
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      pub: Springer Nature
      place: New York, New York
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        10.1007/s10916-020-01700-9
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        atl: Mixed Reality Visualization of Radiation Dose for Health Professionals and Patients in Interventional Radiology.
      aug:
        au:
          Takata, Takeshi
          Nakabayashi, Susumu
          Kondo, Hiroshi
          Yamamoto, Masayoshi
          Furui, Shigeru
          Shiraishi, Kenshiro
          Kobayashi, Takenori
          Oba, Hiroshi
          Okamoto, Takahide
          Kotoku, Jun'ichi
        affil: Graduate School of Medical Care and Technology, Teikyo University, Tokyo, Japan
      sug:
        subj:
          Radiography, Interventional
          Radiation Dosage Adverse Effects
          Data Display
          Augmented Reality
          Radiation Injuries Prevention and Control
          Patient Safety
          Occupational Exposure Prevention and Control
          Health Personnel
          Occupational Safety
          Dosage Calculation Equipment and Supplies
          Human
          Funding Source
          Radiation Safety
          Skin
          Radioactive Pollution
          Fluoroscopy
          Wearable Sensors
          Models, Structural
          Holography
          Qualitative Studies
          Phantoms, Imaging
          Workload Measurement
          Descriptive Statistics
          Summated Rating Scaling
      ab: For interventional radiology, dose management has persisted as a crucially important issue to reduce radiation exposure to patients and medical staff. This study designed a real-time dose visualization system for interventional radiology designed with mixed reality technology and Monte Carlo simulation. An earlier report described a Monte-Carlo-based estimation system, which simulates a patient's skin dose and air dose distributions, adopted for our system. We also developed a system of acquiring fluoroscopic conditions to input them into the Monte Carlo system. Then we combined the Monte Carlo system with a wearable device for three-dimensional holographic visualization. The estimated doses were transferred sequentially to the device. The patient's dose distribution was then projected on the patient body. The visualization system also has a mechanism to detect one's position in a room to estimate the user's exposure dose to detect and display the exposure level. Qualitative tests were conducted to evaluate the workload and usability of our mixed reality system. An end-to-end system test was performed using a human phantom. The acquisition system accurately recognized conditions that were necessary for real-time dose estimation. The dose hologram represents the patient dose. The user dose was changed correctly, depending on conditions and positions. The perceived overall workload score (33.50) was lower than the scores reported in the literature for medical tasks (50.60) for computer activities (54.00). Mixed reality dose visualization is expected to improve exposure dose management for patients and health professionals by exhibiting the invisible radiation exposure in real space.
      pubtype: Academic Journal
      doctype:
        pictorial
        research
        tables/charts
        Journal Article
      ougenre: Article
    language: English
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