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Deep Learning and Art

Aktivität: Vortrag oder PräsentationVortrag nach Bewerbung und AuswahlScience-to-public

Beschreibung

Deep Learning has emerged as one of the most successful fields of artificial intelligence with overwhelming success in industrial speech, language and vision benchmarks. Consequently it evolved into the central field of research for IT giants like Google, facebook, Microsoft, Baidu, and Amazon. Deep Learning is founded on novel neural network techniques, the recent availability of very fast computers, and massive data sets. At the JKU Linz, we apply Deep Learning to advance autonomous driving in the AUDI Deep Learning Center and with NVIDIA, ZF and Bosch. Using Deep Learning we won the NIH Tox21 challenge and deploy it to toxicity and target prediction in collaboration with pharma companies like Janssen, UCB, Merck, AstraZeneca, and Bayer. With local companies (e.g. FILL and DCS) we apply Deep Learning to task in the field of plant and machine engineering. Together with Zalando we use Deep Learning for analyzing fashion images and fashion blogs. Long Short-Term Memory (LSTM, invented by me) has been used to compose new music pieces and to write story-books of theater pieces. Deep learning with style-transfer has be used to transfer music of one style to another, has been used to transfer images from one painting style to another, has been used for supporting design in fashion. Recently, exhibitions dedicated to art made purely by deep learning were made in some galleries, e.g. in New York’s Chelsea gallery. See examples under http://nips4creativity.com/ and https://aiartists.org/ .
Zeitraum16 Nov. 2019
EreignistitelARTificial Intelligence - The Art of Intelligence
VeranstaltungstypKonferenz
OrtÖsterreichAuf Karte anzeigen

Wissenschaftszweige

  • 101031 Approximationstheorie
  • 102 Informatik
  • 305901 Computerunterstützte Diagnose und Therapie
  • 102033 Data Mining
  • 102032 Computational Intelligence
  • 101029 Mathematische Statistik
  • 102013 Human-Computer Interaction
  • 305905 Medizinische Informatik
  • 101028 Mathematische Modellierung
  • 101027 Dynamische Systeme
  • 101004 Biomathematik
  • 101026 Zeitreihenanalyse
  • 202017 Embedded Systems
  • 101024 Wahrscheinlichkeitstheorie
  • 305907 Medizinische Statistik
  • 102019 Machine Learning
  • 202037 Signalverarbeitung
  • 102018 Künstliche Neuronale Netze
  • 103029 Statistische Physik
  • 202036 Sensorik
  • 202035 Robotik
  • 106005 Bioinformatik
  • 106007 Biostatistik
  • 101019 Stochastik
  • 101018 Statistik
  • 101017 Spieltheorie
  • 101016 Optimierung
  • 102001 Artificial Intelligence
  • 101015 Operations Research
  • 102004 Bioinformatik
  • 101014 Numerische Mathematik
  • 102003 Bildverarbeitung

JKU-Schwerpunkte

  • Digital Transformation