For radiation therapy, it is crucial to ensure that the delivered dose matches the planned dose. Errors in the dose calculations done in the treatment planning system (TPS), treatment delivery errors, other software bugs or data corruption during transfer might lead to significant differences between predicted and delivered doses. As such, patient specific quality assurance (QA) of dose distributions, through experimental validation of individual fields, is necessary. These measurement based approaches, however, are performed with 2D detectors, with limited resolution and in a water phantom. Moreover, they are work intensive and often impose a bottleneck to treatment efficiency. In this work, we investigated the potential to replace measure...
International audienceFor the independent validation of treatment plans, we developed a fully automa...
Objective: To develop and validate a versatile Monte Carlo (MC)-based dose calculation engine to sup...
International audienceMonte Carlo (MC) methods account for many details of the interactions of parti...
For radiation therapy, it is crucial to ensure that the delivered dose matches the planned dose. Err...
Radiation therapy aims at delivering a prescribed amount of radiation dose to cancerous targets whil...
The purpose of this work was to develop an end-to-end patient-specific quality assurance (QA) techni...
Independent dose verification with Monte Carlo (MC) simulations is an important feature of proton th...
During one year of clinical activity at the Italian National Center for Oncological Hadron Therapy 3...
PURPOSE: Patient specific quality assurance (PSQA) is required to verify the treatment delivery and ...
Radiotherapy is used in more than 50% of cancer treatments and is thus of the utmost importance in t...
Background and purpose: Although proton therapy is becoming increasingly common as a radiotherapy mo...
An intensity-modulated proton therapy (IMPT) patient-specific quality assurance (PSQA) program based...
Monte Carlo (MC)-based dose calculations are generally superior to analytical dose calculations (ADC...
The status of radiotherapy as an important treatment modality for cancer is indisputable. In externa...
International audienceFor the independent validation of treatment plans, we developed a fully automa...
Objective: To develop and validate a versatile Monte Carlo (MC)-based dose calculation engine to sup...
International audienceMonte Carlo (MC) methods account for many details of the interactions of parti...
For radiation therapy, it is crucial to ensure that the delivered dose matches the planned dose. Err...
Radiation therapy aims at delivering a prescribed amount of radiation dose to cancerous targets whil...
The purpose of this work was to develop an end-to-end patient-specific quality assurance (QA) techni...
Independent dose verification with Monte Carlo (MC) simulations is an important feature of proton th...
During one year of clinical activity at the Italian National Center for Oncological Hadron Therapy 3...
PURPOSE: Patient specific quality assurance (PSQA) is required to verify the treatment delivery and ...
Radiotherapy is used in more than 50% of cancer treatments and is thus of the utmost importance in t...
Background and purpose: Although proton therapy is becoming increasingly common as a radiotherapy mo...
An intensity-modulated proton therapy (IMPT) patient-specific quality assurance (PSQA) program based...
Monte Carlo (MC)-based dose calculations are generally superior to analytical dose calculations (ADC...
The status of radiotherapy as an important treatment modality for cancer is indisputable. In externa...
International audienceFor the independent validation of treatment plans, we developed a fully automa...
Objective: To develop and validate a versatile Monte Carlo (MC)-based dose calculation engine to sup...
International audienceMonte Carlo (MC) methods account for many details of the interactions of parti...