Kod, roboten ”Sophia”. Arkivbilder. (TT / AFP)

Hedgefondjätte satsar på AI: ”Intressanta resultat”

Brittiska Man Group, världens största noterade hedgefondbolag, satsar stort på maskininlärning. Vd:n Luke Ellis hoppas att självlärande datorsystem leder till att bolaget tjänar mer pengar på finansmarknaderna.

– Vi har åstadkommit en del intressanta resultat av maskininlärning inom kapitalförvaltning de senaste åren och vi satsar betydande resurser, säger han till DI.

Economist konstaterar att innovativa fintechbolag har börjat applicera tekniken på allt från skydd mot bedrägerier till tradingstrategier.

”Det är en garanti för att det inte bara är det enformiga rutinarbetet i back office som kommer att vändas upp och ner, utan även det mer synliga och glamorösa arbetet”, skriver tidningen.

 
Maskininlärning
Wikipedia (en)
Machine learning is the subfield of computer science that, according to Arthur Samuel in 1959, gives "computers the ability to learn without being explicitly programmed." Evolved from the study of pattern recognition and computational learning theory in artificial intelligence, machine learning explores the study and construction of algorithms that can learn from and make predictions on data – such algorithms overcome following strictly static program instructions by making data-driven predictions or decisions, through building a model from sample inputs. Machine learning is employed in a range of computing tasks where designing and programming explicit algorithms with good performance is difficult or infeasible; example applications include email filtering, detection of network intruders or malicious insiders working towards a data breach, optical character recognition (OCR), learning to rank, and computer vision. Machine learning is closely related to (and often overlaps with) computational statistics, which also focuses on prediction-making through the use of computers. It has strong ties to mathematical optimization, which delivers methods, theory and application domains to the field. Machine learning is sometimes conflated with data mining, where the latter subfield focuses more on exploratory data analysis and is known as unsupervised learning. Machine learning can also be unsupervised and be used to learn and establish baseline behavioral profiles for various entities and then used to find meaningful anomalies. Within the field of data analytics, machine learning is a method used to devise complex models and algorithms that lend themselves to prediction; in commercial use, this is known as predictive analytics. These analytical models allow researchers, data scientists, engineers, and analysts to "produce reliable, repeatable decisions and results" and uncover "hidden insights" through learning from historical relationships and trends in the data. As of 2016, machine learning is a buzzword, and according to the Gartner hype cycle of 2016, at its peak of inflated expectations. Because finding patterns is hard, often not enough training data is available, and also because of the high expectations it often fails to deliver.
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