A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario

Cryptocurrencies have been receiving the sustained attention of investors since 2009. These new investment vehicles are digitally native, meaning that they are traded exclusively on 24/7 digital platforms. Consequently, they offer an excellent scenario to test the Efficient Market Hypothesis, by dev...

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Main Authors: Romina Torres, Miguel A. Solis, Rodrigo Salas, Aurelio F. Bariviera
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9300216/
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spelling doaj-881ee26c2b714808895aa44946f31cf92021-03-30T04:26:02ZengIEEEIEEE Access2169-35362020-01-01822851422852410.1109/ACCESS.2020.30459239300216A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment ScenarioRomina Torres0https://orcid.org/0000-0003-2705-4298Miguel A. Solis1https://orcid.org/0000-0002-5735-8834Rodrigo Salas2https://orcid.org/0000-0002-0350-6811Aurelio F. Bariviera3https://orcid.org/0000-0003-1014-1010Facultad de Ingeniería, Universidad Andres Bello, Viña del Mar-Santiago, ChileFacultad de Ingeniería, Universidad Andres Bello, Viña del Mar-Santiago, ChileEscuela de Ingeniería C. Biomédica, Universidad de Valparaíso, Valparaíso, ChileDepartment of Business, Universitat Rovira i Virgili, Reus, SpainCryptocurrencies have been receiving the sustained attention of investors since 2009. These new investment vehicles are digitally native, meaning that they are traded exclusively on 24/7 digital platforms. Consequently, they offer an excellent scenario to test the Efficient Market Hypothesis, by developing algorithm-based trading strategies. Such strategies aim to beat the market. It has been previously reported that daily returns do not exhibit long range dependence. However, daily volatility in major cryptocurrencies is highly persistent. Therefore, buy/hold/sell decision support systems could be able to capture such market inefficiency. This is especially important for investors interested in periodically trading a set of cryptocurrencies, in order to maximize their wealth. This paper presents a dynamic linguistic decision making approach for building decision models to support cryptocurrency investors in buy/hold/sell decisions. This approach exhibits a good computational performance for obtaining recommendations based on quantitative data. Moreover, this procedure is able to identify some inefficient cryptocurrency behaviors which are not captured by traditional econometric techniques. Our results uncover arbitrage opportunities that outperform buy-and-hold or random strategies.https://ieeexplore.ieee.org/document/9300216/Cryptocurrencylinguistic decision modelsmulti-period multi-attribute decision making
collection DOAJ
language English
format Article
sources DOAJ
author Romina Torres
Miguel A. Solis
Rodrigo Salas
Aurelio F. Bariviera
spellingShingle Romina Torres
Miguel A. Solis
Rodrigo Salas
Aurelio F. Bariviera
A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario
IEEE Access
Cryptocurrency
linguistic decision models
multi-period multi-attribute decision making
author_facet Romina Torres
Miguel A. Solis
Rodrigo Salas
Aurelio F. Bariviera
author_sort Romina Torres
title A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario
title_short A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario
title_full A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario
title_fullStr A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario
title_full_unstemmed A Dynamic Linguistic Decision Making Approach for a Cryptocurrency Investment Scenario
title_sort dynamic linguistic decision making approach for a cryptocurrency investment scenario
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Cryptocurrencies have been receiving the sustained attention of investors since 2009. These new investment vehicles are digitally native, meaning that they are traded exclusively on 24/7 digital platforms. Consequently, they offer an excellent scenario to test the Efficient Market Hypothesis, by developing algorithm-based trading strategies. Such strategies aim to beat the market. It has been previously reported that daily returns do not exhibit long range dependence. However, daily volatility in major cryptocurrencies is highly persistent. Therefore, buy/hold/sell decision support systems could be able to capture such market inefficiency. This is especially important for investors interested in periodically trading a set of cryptocurrencies, in order to maximize their wealth. This paper presents a dynamic linguistic decision making approach for building decision models to support cryptocurrency investors in buy/hold/sell decisions. This approach exhibits a good computational performance for obtaining recommendations based on quantitative data. Moreover, this procedure is able to identify some inefficient cryptocurrency behaviors which are not captured by traditional econometric techniques. Our results uncover arbitrage opportunities that outperform buy-and-hold or random strategies.
topic Cryptocurrency
linguistic decision models
multi-period multi-attribute decision making
url https://ieeexplore.ieee.org/document/9300216/
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