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Časovne vrste in razvrščanje z zavrnitvijo
ID
Kovačič, Nace
(
Author
),
ID
Zupan, Blaž
(
Mentor
)
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Abstract
V diplomskem delu predstavimo pristop k napovedovanju dogodkov drastičnih sprememb valutnega tečaja kriptovalut. Za napovedovanje uporabimo modela XGBClassifier in konvolucijsko nevronsko mrežo. Primerjamo njuno točnost napovedi in spremembo točnosti napovedi pri napovedovanju z možnostjo zavrnitve.
Language:
Slovenian
Keywords:
časovne vrste
,
časovne vrste z zavrnitvijo
,
konvolucijske nevronske mreže
Work type:
Bachelor thesis/paper
Typology:
2.11 - Undergraduate Thesis
Organization:
FRI - Faculty of Computer and Information Science
Year:
2023
PID:
20.500.12556/RUL-152731
COBISS.SI-ID:
169130755
Publication date in RUL:
04.12.2023
Views:
630
Downloads:
66
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Secondary language
Language:
English
Title:
Time Series with Classification and Rejection
Abstract:
In this thesis we present an approach to predicting events of drastic changes in the exchange rate of cryptocurrencies. For prediction we use the XGBClassifier model and the convolutional neural network. We compare their prediction accuracy and the change in prediction accuracy when predicting with the option of rejection.
Keywords:
timeseries
,
timeseries with rejection
,
convolutional neural networks
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