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CORDIS

Intelligent digital tools for screening of brain connectivity and dementia risk estimation in people affected by mild cognitive impairment.

Livrables

User guidelines for clinicians and scientific dissemination

User guidelines for clinicians and scientific dissemination Task 73 M12 60 OUS

Report map of MCI diagnostics and management

Report map of MCI diagnostics and management Task 11 OUS M6

Report on ethics and acceptability of digital diagnostic solutions

Report on ethics and acceptability of digital diagnostic solutions. (Task 1.5, AE, M18)

Clinical study dossier (Clinical study protocol, Informed Consent Form)

Clinical study dossier Clinical study protocol Informed Consent Form Standardised clinical information procedures are approved by the national regulatory authorities from the 4 clinical centres Task 51 IRCCS M9

Standardisation of available and prospective data collection

Standardisation of available and prospective data collection Report on the defined protocol for standardising MEEG NPT and genotyping data collection Task 21 HUH M8

Midterm report on the AI-Mind Predictor versus SOA including report on use of digitalised cognitive tests

Midterm report on the AI-Mind Predictor versus SOA inclusive report on use of digitalised cognitive tests. Report on the comparative analysis on clinical prediction value of the AI-Mind Predictor versus state-of-the-art procedures and Report on comparative analysis of traditional clinical neuropsychological tests and digital version in clinical use for clinical recommen-dations (Task 5.4, IRCCS/OUS, M30)

2 UI/UX Design and Validation Guidelines

UI/UX Design and Validation Guidelines. User personas, scenarios and journey maps; prototypes; use-case stories and guidelines (Task 4.2, TLU, M15)

Decision analytical model for early assessment

Decision analytical model for early assessment. This decision model will be delivered as an interactive dashboard in which parameters of the decision analytical (e.g. expected sensitivity and specificity of new diagnostic tool) could be changed and which shows the impact of the new diagnostic tool on health outcomes of patients and its cost effectiveness. (Task 6.2, RUMC, M18)

Implementation of the central databank

Implementation of the central databank Implementation of a central data storage platform at the TSDSSD server at UiO Task 22 DNV GL M12

AI-Medical Device software compliance requirements map

AIMedical Device software compliance requirements map Task 12 OsloMet M8

Guidelines for data management and sharing (Data Governance Plan)

Guidelines for data management and data sharing Data Governance Plan Task 13 DNV GL M9

Health technology assessment framework for AI-Mind

Health technology assessment framework for AI-Mind. The deliverable will describe a detailed plan for the HTA approach covering all relevant aspects of each HTA domain, including indicators, time frame, tools and collaborations. (Task 6.1, UCSC, M7)

Dissemination and Communication Plan

Dissemination and Communication Plan Task 71 M12 accelCH

AI-Mind data governance and data management protection framework

AIMind data governance and data management protection framework Report describing how the data will be managed and processed to ensure legal compliance including security measures Task 14 DNV GL M12

Midterm report on the AI-Mind Connector specifications

Midterm report on the AI-Mind Connector specifications. Report on the comparative analysis on clinical value of the AI-Mind Connector as a biomarker. (Task 5.3, IRCCS/OUS, M30)

Website establishment and focus group organisation

Website establishment and focus group organisation (Task 7.4, M3, accelCH)

Publications

User Interface Design for AI-Based Clinical Decision-Support System

Auteurs: Beltrão, Gabriela; Paramonova, Iuliia; Sousa, Sonia
Publié dans: 17th Iberian Conference on Information Systems and Technologies (CISTI), Numéro 14, 2022, ISSN 2166-0727
Éditeur: IEEE
DOI: 10.23919/cisti54924.2022.9820378

A systematic literature review of user trust in AI-enabled systems: an HCI perspective

Auteurs: Amna Khana, Tita Alissa Bach, Harry Hallockb, Gabriela Beltrão, and Sonia Sousa
Publié dans: International Journal of Human–Computer Interaction, 2022, ISSN 1044-7318
Éditeur: Lawrence Erlbaum Associates Inc.
DOI: 10.1080/10447318.2022.2138826

Challenges and Trends in User Trust Discourse in AI Popularity

Auteurs: Sonia Sousa , José Cravino and Paulo Martins
Publié dans: Multimodal Technologies and Interactions, Numéro vol 7, 2, 2023, Page(s) 13, ISSN 2414-4088
Éditeur: MDPI
DOI: 10.3390/mti7020013

Introducing Region Based Pooling for handling a varied number of EEG channels for deep learning models

Auteurs: Thomas Tveitstøl, Mats Tveter, Ana S. Pérez T., Christoffer Hatlestad-Hall, Anis Yazisi, Hugo L. Hammer, Ira R. J. Hebold Haraldsen
Publié dans: Frontiers in Neuroinformatics, Numéro Vol. 17, 2024, ISSN 1662-5196
Éditeur: Frontiers Research Foundation
DOI: 10.3389/fninf.2023.1272791

Intelligent digital tools for screening of brain connectivity and dementia risk estimation in people affected by mild cognitive impairment: The AI-Mind clinical study protocol

Auteurs: Ira H Haraldsen, Christoffer Hatlestad-Hall, Camillo Marra, Hanna Renvall, Fernando Maestú, Jorge Acosta-Hernández, Soraya Alfonsin, Vebjørn Andersson, Abhilash Anand, Victor Ayllón, Aleksandar Babic, Asma Belhadi, Cindy Birck, Ricardo Bruña, Naike Caraglia, Claudia Carrarini, Erik Christensen, Americo Cicchetti, Signe Daugbjerg, Rossella Di Bidino, Ana Diaz-Ponce, Ainar Drews, Guido Maria Gi
Publié dans: Frontiers in Neurorobotics, Numéro Vol. 17, 2024, ISSN 1662-5218
Éditeur: Frontiers Research Foundation
DOI: 10.3389/fnbot.2023.1289406

Early dementia diagnosis, MCI-to-dementia risk prediction, and the role of machine learning methods for feature extraction from integrated biomarkers, in particular for EEG signal analysis.

Auteurs: Prof. Paolo Maria Rossini, Fabrizio Vecchio, Francesca Miraglia
Publié dans: Alzheimer's & Dementia: The Journal of the Alzheimer's Association, Numéro vol 18, 12, 2022, Page(s) 2699-2706, ISSN 1552-5279
Éditeur: Wiley
DOI: 10.1002/alz.12645

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