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        <dc:title>Behaviourally meaningful representations from normalisation and context-guided denoising</dc:title>
        <dc:creator>Valpola, Harri</dc:creator>
        <dc:subject>Computational Neuroscience</dc:subject>
        <dc:subject>Machine Learning</dc:subject>
        <dc:subject>Neural Nets</dc:subject>
        <dc:subject>Artificial Intelligence</dc:subject>
        <dc:description>Many existing independent component analysis algorithms include a preprocessing stage where the inputs are sphered.  This amounts to normalising the data such that all correlations between the variables are removed.  In this work, I show that sphering allows very weak contextual modulation to steer the development of meaningful features. Context-biased competition has been proposed as a model of covert attention and I propose that sphering-like normalisation also allows weaker top-down bias to guide attention.
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        <dc:date>2004-05</dc:date>
        <dc:type>Departmental Technical Report</dc:type>
        <dc:type>NonPeerReviewed</dc:type>
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        <dc:identifier>http://cogprints.org/3633/1/tr04a.pdf</dc:identifier>
        <dc:identifier>  Valpola, Harri  (2004) Behaviourally meaningful representations from normalisation and context-guided denoising.  [Departmental Technical Report]     </dc:identifier>
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