ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)

The Kumarawamy distribution was introduced by Poondi Kumaraswamy in 1980. Firstly, this distribution was formulated to model random variables in the hydrological field, such as daily rainfall and waterflow. The Kumaraswamy Log-Logistic Gompertz, K-LLGo, distribution are new distribution that develop...

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Main Author: Amalia Maresti, Fatia
Format: Theses
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/50097
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Institution: Institut Teknologi Bandung
Language: Indonesia
id id-itb.:50097
spelling id-itb.:500972020-09-22T13:13:19ZANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY) Amalia Maresti, Fatia Indonesia Theses K-LLGo distribution, Kumaraswamy distribution, LLGo distribution, genetic algorithm, IR, TBER. INSTITUT TEKNOLOGI BANDUNG https://digilib.itb.ac.id/gdl/view/50097 The Kumarawamy distribution was introduced by Poondi Kumaraswamy in 1980. Firstly, this distribution was formulated to model random variables in the hydrological field, such as daily rainfall and waterflow. The Kumaraswamy Log-Logistic Gompertz, K-LLGo, distribution are new distribution that develop by combining the generelized Kumaraswamy, Kw-G, and Log-Logistic Gompertz, LLGo, distribution. The Kw-G distribution has various forms of probability density functions. Log-Logistic is a heavy-tailed distribution and the Gompertz distribution is often used to model lifetime data. So that the new distribution has various forms of probability density functions and can be used to model time data with outliers. Some structural properties of the new distribution are series expansions equation, identify of heavy-tailed distribution, hazard, and moment function. The numerical method of genetic algorithm is adopted for estimating the distribution parameters. The usefulness of the new distribution is illustrated in real dataset. Cyber crime data in Bandung City such as the Inter-Reporting, IR, and the Time Between Events and Reporting, TBER, data. of cyber crime. Data reported in West Java Regions Police from 2017 to 2019. Fitting IR data was also applied to others distribution namely, LLGo, 3 parameters Weibull, and Pareto. This new distribution becomes the best distribution with the highest fitness. The measure of goodness models is the smallest number of sum residual square. text
institution Institut Teknologi Bandung
building Institut Teknologi Bandung Library
continent Asia
country Indonesia
Indonesia
content_provider Institut Teknologi Bandung
collection Digital ITB
language Indonesia
description The Kumarawamy distribution was introduced by Poondi Kumaraswamy in 1980. Firstly, this distribution was formulated to model random variables in the hydrological field, such as daily rainfall and waterflow. The Kumaraswamy Log-Logistic Gompertz, K-LLGo, distribution are new distribution that develop by combining the generelized Kumaraswamy, Kw-G, and Log-Logistic Gompertz, LLGo, distribution. The Kw-G distribution has various forms of probability density functions. Log-Logistic is a heavy-tailed distribution and the Gompertz distribution is often used to model lifetime data. So that the new distribution has various forms of probability density functions and can be used to model time data with outliers. Some structural properties of the new distribution are series expansions equation, identify of heavy-tailed distribution, hazard, and moment function. The numerical method of genetic algorithm is adopted for estimating the distribution parameters. The usefulness of the new distribution is illustrated in real dataset. Cyber crime data in Bandung City such as the Inter-Reporting, IR, and the Time Between Events and Reporting, TBER, data. of cyber crime. Data reported in West Java Regions Police from 2017 to 2019. Fitting IR data was also applied to others distribution namely, LLGo, 3 parameters Weibull, and Pareto. This new distribution becomes the best distribution with the highest fitness. The measure of goodness models is the smallest number of sum residual square.
format Theses
author Amalia Maresti, Fatia
spellingShingle Amalia Maresti, Fatia
ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)
author_facet Amalia Maresti, Fatia
author_sort Amalia Maresti, Fatia
title ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)
title_short ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)
title_full ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)
title_fullStr ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)
title_full_unstemmed ANALYSIS OF KUMARASWAMY LOG-LOGISTIC GOMPERTZ (CASE STUDY: CYBER CRIME DATA IN BANDUNG CITY)
title_sort analysis of kumaraswamy log-logistic gompertz (case study: cyber crime data in bandung city)
url https://digilib.itb.ac.id/gdl/view/50097
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