首页> 外文OA文献 >Pembentukan Pohon Klasifikasi Biner dengan Algoritma Cart (Classification And Regression Trees) (Studi Kasus: Kredit Macet di Pd. Bpr-bkk Purwokerto Utara)
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Pembentukan Pohon Klasifikasi Biner dengan Algoritma Cart (Classification And Regression Trees) (Studi Kasus: Kredit Macet di Pd. Bpr-bkk Purwokerto Utara)

机译:用购物车(分类和回归树)算法形成二元分类树(案例研究:Pd。Bpr-bkk Purwokerto Utara的不良信用)

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摘要

Modernization and globalization of the world today has entered into various lines of Indonesian society. One consequence is people\u27s lifestyles are more consumptive. This lifestyle causes people take out a loan at a bank or other financial institution to fulfill his wish. Some people pay the loan on credit. But in implementation, there is a variety of things causes the credit not running properly or called with problem loan. As a service provider of credit institutions, PD. BPR-BKK Purwokerto Utara is also not free from this problem. Therefore, it is necessary to classify customers based on demographic variables using Classification and Regression Trees (CART) to minimize the chances of problem loans. Based on analysis of customer credit status data PD. BPR-BKK Purwokerto Utara, optimal classification tree formed by the number of terminal nodes as much as 6 nodes. This means there are 6 characteristics of customers PD. BPR-BKK Purwokerto Utara. And level of accuracy of the classification tree in classifying credit status of customers is 81.0 % .
机译:当今世界的现代化和全球化已进入印尼社会的各个领域。结果之一是人们的生活方式更加消费。这种生活方式导致人们向银行或其他金融机构贷款以实现他的愿望。有些人以信贷方式偿还贷款。但是在实施过程中,有多种原因导致信用无法正常运行或因问题贷款而被调用。作为信贷机构的服务提供商,PD。 BPR-BKK Purwokerto Utara也无法摆脱这个问题。因此,有必要使用分类树和回归树(CART)根据人口统计变量对客户进行分类,以最大程度地减少出现问题贷款的机会。基于对客户信用状态数据PD的分析。 BPR-BKK Purwokerto Utara,由多达6个节点的终端节点形成的最佳分类树。这意味着客户PD有6个特征。 BPR-BKK Purwokerto Utara。客户信用状况的分类树准确度为81.0%。

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