Dengue classification system using clonal selection algorithm / Karimah Mohd
Dengue remains to be significant public health concern in tropical climate country including Malaysia. As the number of dengue cases is increasing faster in Malaysia, more work need to be done in order to prevent it. Dengue classification and detectionsystem will classify if a person have dengue or...
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| Format: | Thesis |
| Language: | English |
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2012
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| Online Access: | https://ir.uitm.edu.my/id/eprint/35037/ |
| _version_ | 1848808690190123008 |
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| author | Mohd, Karimah |
| author_facet | Mohd, Karimah |
| author_sort | Mohd, Karimah |
| building | UiTM Institutional Repository |
| collection | Online Access |
| description | Dengue remains to be significant public health concern in tropical climate country including Malaysia. As the number of dengue cases is increasing faster in Malaysia, more work need to be done in order to prevent it. Dengue classification and detectionsystem will classify if a person have dengue or not based on symptoms. This project focused on three main objectives: to investigate dengue data and Clonal Selection Algorithm for classification of Dengue, to design and develops Clonal Selection Classification System (CSCS) and to evaluate Clonal Selection Classification System symptoms. Some popular intelligent techniques like Genetic Algorithm, Fuzzy Logic and Artificial Neural Network are often used by reasearcher to perform classifcation problems. At this point, Artificial Immune System (AIS) is one of the inspired biology technique which provide effective solutions for optimization and classificaton problems. One of AIS Algorithm is Clonal Selection Algorithm (CSA) is to classify dengue disease is a suitable to solve classification problem in this project . The rules generated from the training of the dengue data are embedded in the prototype of the classifiction system. Some of the dengue data are used to test the dengue classification system to produce the classification accuracy. The expected end is to automatically generate dengue classification. The evaluation conducted in this project has shown a promising accuracy. This project can be improved by making a comparative study on Artificial Immune System and other techniques or algorithms used to solve dengue classification problems. |
| first_indexed | 2025-11-14T23:02:43Z |
| format | Thesis |
| id | uitm-35037 |
| institution | Universiti Teknologi MARA |
| institution_category | Local University |
| language | English |
| last_indexed | 2025-11-14T23:02:43Z |
| publishDate | 2012 |
| recordtype | eprints |
| repository_type | Digital Repository |
| spelling | uitm-350372020-10-07T07:52:40Z https://ir.uitm.edu.my/id/eprint/35037/ Dengue classification system using clonal selection algorithm / Karimah Mohd Mohd, Karimah Public health. Hygiene. Preventive Medicine Communicable diseases and public health Dengue Dengue remains to be significant public health concern in tropical climate country including Malaysia. As the number of dengue cases is increasing faster in Malaysia, more work need to be done in order to prevent it. Dengue classification and detectionsystem will classify if a person have dengue or not based on symptoms. This project focused on three main objectives: to investigate dengue data and Clonal Selection Algorithm for classification of Dengue, to design and develops Clonal Selection Classification System (CSCS) and to evaluate Clonal Selection Classification System symptoms. Some popular intelligent techniques like Genetic Algorithm, Fuzzy Logic and Artificial Neural Network are often used by reasearcher to perform classifcation problems. At this point, Artificial Immune System (AIS) is one of the inspired biology technique which provide effective solutions for optimization and classificaton problems. One of AIS Algorithm is Clonal Selection Algorithm (CSA) is to classify dengue disease is a suitable to solve classification problem in this project . The rules generated from the training of the dengue data are embedded in the prototype of the classifiction system. Some of the dengue data are used to test the dengue classification system to produce the classification accuracy. The expected end is to automatically generate dengue classification. The evaluation conducted in this project has shown a promising accuracy. This project can be improved by making a comparative study on Artificial Immune System and other techniques or algorithms used to solve dengue classification problems. 2012-07 Thesis NonPeerReviewed text en https://ir.uitm.edu.my/id/eprint/35037/1/35037.pdf Mohd, Karimah (2012) Dengue classification system using clonal selection algorithm / Karimah Mohd. (2012) Degree thesis, thesis, Universiti Teknologi MARA. |
| spellingShingle | Public health. Hygiene. Preventive Medicine Communicable diseases and public health Dengue Mohd, Karimah Dengue classification system using clonal selection algorithm / Karimah Mohd |
| title | Dengue classification system using clonal selection algorithm / Karimah Mohd |
| title_full | Dengue classification system using clonal selection algorithm / Karimah Mohd |
| title_fullStr | Dengue classification system using clonal selection algorithm / Karimah Mohd |
| title_full_unstemmed | Dengue classification system using clonal selection algorithm / Karimah Mohd |
| title_short | Dengue classification system using clonal selection algorithm / Karimah Mohd |
| title_sort | dengue classification system using clonal selection algorithm / karimah mohd |
| topic | Public health. Hygiene. Preventive Medicine Communicable diseases and public health Dengue |
| url | https://ir.uitm.edu.my/id/eprint/35037/ |