COLONINFO · Improving COLOrectal cancer screening: Novel INverse and FOrward algorithms for a new real-time microwave endoscopy
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2018-07-01 → 2020-08-19
- Финансиране от ЕС
- 158 122 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Нов софтуер за микроволнова ендоскопия се разработва, за да открива рак на дебелото черво чрез разлики в тъканите. Това помага за по-точното засичане на полипи, които стандартните камери могат да пропуснат поради ограниченото си зрително поле.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Improving COLOrectal cancer screening: Novel INverse and FOrward algorithms for a new real-time microwave endoscopy
Colorectal cancer (CRC) is the third leading cause of cancer-related deaths when women and men are combined. The most likely screening detection technique is the endoscopy, but its reduced optical field of vision (<180º) can miss some polyps, for example due to angulations of the colon. To overcome this limitation, the host invented a low-cost hardware pre-prototype aiming to combine colonoscopy with microwave imaging (MWI). The physical basis of MWI is the dielectric contrast of the different tissues. These properties involve the relative permittivity and the conductivity, and their differences, are mainly related to water content. Malignant tissues have a higher rate of metabolism and more blood content, resulting in a higher dielectric contrast and electromagnetic (EM) scatter. But, in addition to equipment, medical in-body MWI needs new software that allow highlighting of tissue differentiation and precise cancer detection. However, the foundations of the software require high skills in mathematics, computer science and physics. This project aimed to develop a reconstruction software able to detect CRC in a 360º field of view, and to provide techniques studying quantification, while reducing the computational burden. The most successful MWI applications (breast cancer and stroke monitoring) locate many microwave antennas surrounding the imaging region at a specific distance and in a non-reflection medium. Instead, inside the colon, the number of antennas is restricted by the small organ’s sizes, the medium has reflections, the antenna’s location is unknown, and new geometrical configurations are involved. These changes restrict or inability the use of existing algorithms for other MWI reconstruction. In this project, first a software based on a tomographic EM model was developed to simulate in-silico data. Then, the best developed detection software was tested over more than two thousand MWI in-silico datasets, to optimize the controllable parameters through a sensibility analysis. Finally, quantitative linear problems were developed, and an algorithm combining an iterative solver with an algorithm commonly used in compressed sensing (for problems dealing with few data) was adapted to reconstruct the quantitative MWI. The detection software was able to detect the angular location of the CRC tissue, with a negligible angular error below 22.5º (smaller than the separation between the antennas). The quantification software showed its performance dealing with in-body scenarios such as the colon one, but for tissues with higher percentage (around 200%) of relative permittivity differences between malignant and healthy tissues. The project served to transfer software to a new spin-off aiming to commercialize the pre-prototype.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
More than 470,000 European citizens are diagnosed every year with colorectal cancer (CRC), accounting 12.2% of the total number of cancer deaths. The cumulative risk of CRC in persons aged under 75 is 4.17% in men and 2.3% in women. Screening options are used in EU for the early detection of CRC and the most likely one (after positive faecal test) is the endoscopy. However, the reduced field of vision of the endoscopic camera (<180°), the non-homogenous illumination, the polyp concealment due to angulations and folds of the colon or poor colon cleansing, and the dependence on the experience of the clinician who performs endoscopy, result in lack of efficacy of this technique. It is estimated that after a negative colonoscopy the risk of having CRC is 60-70%.The host has just invented MiWEndo, a low cost system of microwave image generation for clinical endoscopic applications. The pre-prototyped device is a small endoscope head composed by an array of antennas that transmits and receives microwave signals, and it will form anatomical and functional images of the interior of the gastro-intestinal tract as the endoscope travels along it. The goal is to provide real-time (360°) images in endoscopic explorations and interventions, offer a better understanding of the CRC behavior (by allowing quantification), and guide diagnosis and therapy. The objective of this MSCA is to ensure the computational efficiency and robustness (in terms of resolution and computational time) by developing a reconstruction software able to guide diagnostic and allowing quantification in real-time (not yet possible). This project will be completed in a leading multi-disciplinary research group. The applicant brings mathematical and bioengineering skills that will facilitate research in the group and the transfer of ideas. The proposed work will expand her experience, research competencies and professional networks, enhancing the development of her career as an independent researcher.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSIDAD POMPEU FABRA · BarcelonaКоординаторИспания
Връзки
Данни: CORDIS, © Европейски съюз
