Book Chapter10.1007/978-1-59745-290-8_8
Machine-Learning Techniques
Rob Sullivan
- 01 Jan 2012
- pp 363-454
132
TL;DR: These two broad classifications of machine-learning methods will ground us as the authors discuss a broad range of techniques and where they are currently being applied in life sciences research, expanding their toolkit and enabling us to take a very different path in their analysis efforts.
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Abstract: Our ultimate objective in data mining is to identify any hidden patterns or relationships between our data elements, and in one sense, machine learning provides us with a set of techniques to do just that: techniques that allow us to learn the patterns without any outside influence (unsupervised learning). However, just as is the case with anything, that power comes at a price, but the results can be very interesting and very significant. In other cases, we have some sense on what the results should be and so can guide the learning techniques through an initial “training” phase, directing our system and honing the results (supervised learning). These two broad classifications of machine-learning methods will ground us as we discuss a broad range of techniques and where they are currently being applied in life sciences research, expanding our toolkit and enabling us to take a very different path in our analysis efforts: using an artificial intelligence discipline and letting the data tell us what it contains. As datasets grow, these techniques become more important.
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Citations
A real-time prediction method for tunnel boring machine cutter-head torque using bidirectional long short-term memory networks optimized by multi-algorithms
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34
Detection of event-related potentials in individual subjects using support vector machines.
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A methodological approach of QRA for slow-moving landslides at a regional scale
Francesco Caleca,Veronica Tofani,Samuele Segoni,Federico Raspini,Ascanio Rosi,Marco Natali,Filippo Catani,Nicola Casagli +7 more
TL;DR: In this article , a landslide quantitative risk assessment (QRA) is proposed for slow-moving landslides, aiming at national replicability, which is applied at the basin scale in the Arno River basin (9100 km2, Central Italy), where most landslides are slow moving.
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PCS -- A Roadmap for Exoearth Imaging with the ELT
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TL;DR: The Planetary Camera and Spectrograph (PCS) for the Extremely Large Telescope (ELT) will be dedicated to detecting and characterising nearby exoplanets with sizes from sub-Neptune to Earth-size in the neighbourhood of the Sun as mentioned in this paper.
26
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A tutorial on hidden Markov models and selected applications in speech recognition
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