Background: Major challenges in the application of intensity-modulated proton therapy (IMPT) for lung cancer patients include the uncertainties associated with breathing motion, its mitigation and its consideration in IMPT optimization. The primary objective of this research was to evaluate the potential of four-dimensional robust optimization (4DRO) methodology to make IMPT dose distributions resilient to respiratory motion as well as to setup and range uncertainties; Methods: The effect of respiratory motion, characterized by different phases of 4D computed tomography (4DCT), was incorporated into an in-house 4DRO system. Dose distributions from multiple setup and range uncertainty scenarios were calculated for each of the ten phases of C...
INTRODUCTION: Robust planning is essential in proton therapy for ensuring adequate treatment deliver...
We report on development of a new four-dimensional (4D) optimisation approach for scanned proton bea...
This is the version of the article before peer review or editing, as submitted by an author to Physi...
A major challenge in the application of intensity-modulated proton therapy (IMPT) for lung cancer pa...
Purpose Intensity-modulated proton therapy (IMPT) for lung tumors with a large tumor movement is cha...
Particle therapy (PT) with scanned carbon ions has been shown to improve the treatment of stage IV l...
Background and purpose: There is no consensus about an ideal robust optimization (RO) strategy for p...
Intensity modulated particle therapy (IMPT) with carbon ions can generate highly conformal treatment...
Purpose: To investigate the impact of setup and range uncertainties, breathing motion, and interplay...
PURPOSE: Robust optimization is becoming the gold standard for generating robust plans against vario...
PURPOSE: Compared to volumetric modulated arc therapy (VMAT), clinical benefits are anticipated when...
Purpose: Breathing motion and approximate dose calculation engines may increase proton range uncerta...
Pencil beam scanning (PBS) proton therapy is due to its steep dose gradients a promising treatment o...
Background: The aim of this study was to compare adaptive intensity modulated proton therapy (IMPT) ...
INTRODUCTION: Robust planning is essential in proton therapy for ensuring adequate treatment deliver...
We report on development of a new four-dimensional (4D) optimisation approach for scanned proton bea...
This is the version of the article before peer review or editing, as submitted by an author to Physi...
A major challenge in the application of intensity-modulated proton therapy (IMPT) for lung cancer pa...
Purpose Intensity-modulated proton therapy (IMPT) for lung tumors with a large tumor movement is cha...
Particle therapy (PT) with scanned carbon ions has been shown to improve the treatment of stage IV l...
Background and purpose: There is no consensus about an ideal robust optimization (RO) strategy for p...
Intensity modulated particle therapy (IMPT) with carbon ions can generate highly conformal treatment...
Purpose: To investigate the impact of setup and range uncertainties, breathing motion, and interplay...
PURPOSE: Robust optimization is becoming the gold standard for generating robust plans against vario...
PURPOSE: Compared to volumetric modulated arc therapy (VMAT), clinical benefits are anticipated when...
Purpose: Breathing motion and approximate dose calculation engines may increase proton range uncerta...
Pencil beam scanning (PBS) proton therapy is due to its steep dose gradients a promising treatment o...
Background: The aim of this study was to compare adaptive intensity modulated proton therapy (IMPT) ...
INTRODUCTION: Robust planning is essential in proton therapy for ensuring adequate treatment deliver...
We report on development of a new four-dimensional (4D) optimisation approach for scanned proton bea...
This is the version of the article before peer review or editing, as submitted by an author to Physi...