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MLB2017

Machine Learning for Biologists

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In collaboration with

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Venue: Fondazione Edmund Mach, San Michele all'Adige, Trento, IT

Date: 04-07/09/2017

Instructors and helpers


Organisers

  • Alessandro Cestaro (Local Organizer, Fondazione E. Mach, Trento, IT )
  • Vincenza Colonna (ELIXIR-IIB Training Coordinator Deputy, CNR, IT)

Course Material

Days Lessons Tutorials
day 1 Introduction to "omics" data. Principles of data exploration and analysis Practicals on principles of data exploration and analysis
day 2 Univariate and Multivariate analysis A gentle introduction to Machine Learning
day 3 Gene Expression Analysis, Data Analysis Plan DAP practicals

Programme

Monday 04 September 2017 - Introduction

14:00-15:30 Course opening Participants’ self-presentations
15:30-16:15 Plenary lecture P. Franceschi, S. Riccadonna Introduction to "omics" data. Principles of data exploration and analysis
16:15-16:45 Coffee break
16.45-19:00 Practical P. Franceschi, S. Riccadonna Practicals on principles of data exploration and analysis
19:30-21:00 Welcome aperitivo at Cantina storica Istituto Agrario San Michele

Tuesday 05 September 2017 - Machine Learning

09:30-09:40 Previously On Recap of previous lessons by participants
09:40-10:30 Lecture D. Albanese, P. Franceschi, S. Riccadonna Univariate and Multivariate analysis
10:30-11:00 Coffee break
11:00-13:00 Practical D. Albanese, P. Franceschi, S. Riccadonna Univariate and Multivariate analysis. Practical session with R
13:00-14:30 Lunch
14:30-16:15 Lecture D. Albanese, P. Franceschi, S. Ricadonna Machine Learning: introduction and applications to biological data. Classification basics, model selection and prediction
16:15-16:45 Coffee Break
16:45-18:30 Practical D. Albanese, P. Franceschi, S. Riccadonna Performance measures and diagnostic plots

Wednesday 06 September 2017

09:30-09:40 Previously On Recap of previous lessons by participants
09:40-10:30 Lecture P. Sonego, S. Riccadonna Analyzing Gene Expression Data
10:30-11:00 Coffee break
11:00-13:00 Practical P. Sonego, S. Riccadonna Analyzing Gene Expression Data
13:00-14:30 Lunch
14:30-16:15 Lecture M. Chierici, G. Jurman The Data Analysis Plan (DAP) - intro to unbiased pipelines for (binary) classification
16:15-16:45 Coffee Break
16:45-18:30 Practical M. Chierici, G. Jurman Implementation of a basic DAP in Python (Scikit-Learn) with feature ranking and classification
19:30-22:00 Social Dinner at Albergo Ai Spiazzi

Thursday 07 September 2017

09:15-09:25 Previously On Recap of previous lessons by participants
09:25-10:00 Lecture M. Moretto, A. Cestaro Gene prediction methods as an example of ML on genomic data
10:00-10:30 Coffee Break
10:30-12:30 Practical M. Moretto, A. Cestaro Training a gene prediciton method
12:30-13:00 Wrap-up and feedback

Computing facility instruction

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Practical information

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