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عنوان
The impact of financial and non-financial measures on banks' financial strength ratings :

پدید آورنده
Abdallah, W. M.

موضوع

رده

کتابخانه
مرکز و کتابخانه مطالعات اسلامی به زبان‌های اروپایی

محل استقرار
استان: قم ـ شهر: قم

مرکز و کتابخانه مطالعات اسلامی به زبان‌های اروپایی

تماس با کتابخانه : 32910706-025

شماره کتابشناسی ملی

شماره
TLets588705

عنوان و نام پديدآور

عنوان اصلي
The impact of financial and non-financial measures on banks' financial strength ratings :
نام عام مواد
[Thesis]
نام نخستين پديدآور
Abdallah, W. M.
عنوان اصلي به قلم نويسنده ديگر
the case of the Middle East

وضعیت نشر و پخش و غیره

نام ناشر، پخش کننده و غيره
University of Salford
تاریخ نشرو بخش و غیره
2013

یادداشتهای مربوط به پایان نامه ها

جزئيات پايان نامه و نوع درجه آن
Thesis (Ph.D.)
امتياز متن
2013

یادداشتهای مربوط به خلاصه یا چکیده

متن يادداشت
The relationship between bank performance measures, namely financial and nonfinancial, and financial strength ratings (FSRs) has created an interesting area of research for many years. This thesis examines econometric qualities including explanatory, discriminatory and predictive powers. The main aims of this thesis are as follows: (1) to identify the main bank performance measures associated with high-FSRs versus low-FSRs; (2) to determine the bank performance measures that can discriminate banks associated with high-FSRs versus low-FSRs; and (3) to compare the predictive capabilities of conventional techniques versus machine-learning techniques in predicting banks' FSR group memberships in the Middle East. The analysis is performed in three stages: (1) the analysis identifies the association between banks' FSRs and performance measures by applying a multinomial logit technique; (2) the analysis uses the outcome of the first stage as an input to discriminate high-FSRs from low-FSRs using discriminant analysis; and (3) machine-learning techniques (i.e., CHAID, CART and multilayer perceptron neural networks) and conventional techniques (i.e., discriminant analysis and logistic regression) are used to predict banks' FSR group memberships. Various performance evaluation criteria (i.e., average correct classification rate, misclassification cost and gains charts) are used to evaluate the predictive capabilities of various modeling techniques. The data set covers the Middle Eastern countries' commercial banks from 2001 to 2009. Results from the first stage indicate that high-FSR banks in the Middle East are well capitalised, and profitability is associated with the highest relative explanatory power. Second stage results show that three financial variables (i.e., loan loss provision to total loans ratio, asset utilisation ratio and equity to net loans ratio) contribute greatly to the model's discriminatory power. On the other hand, results for nonfinancial variables reveal that bank size and sovereign rating are the most important to the model's discriminatory power. The results indicate that financial variables outperform nonfinancial variables in terms of overall discriminatory power. Finally, in the last stage, results show that the predictive capability of CHAID outperforms other machine-learning techniques (i.e., CART and multilayer perceptron neural networks). Regarding conventional techniques, the predictive capability of discriminant analysis is superior to logistic regression. In terms of comparing various predictive techniques, results of the performance evaluation criteria reveal that machine-learning techniques outperform conventional techniques in predicting banks' FSR group memberships.

نام شخص به منزله سر شناسه - (مسئولیت معنوی درجه اول )

مستند نام اشخاص تاييد نشده
Abdallah, W. M.

شناسه افزوده (تنالگان)

مستند نام تنالگان تاييد نشده
University of Salford

دسترسی و محل الکترونیکی

نام الکترونيکي
 مطالعه متن کتاب 

وضعیت انتشار

فرمت انتشار
p

اطلاعات رکورد کتابشناسی

نوع ماده
[Thesis]
کد کاربرگه
276903

اطلاعات دسترسی رکورد

سطح دسترسي
a
تكميل شده
Y

پیشنهاد / گزارش اشکال

اخطار! اطلاعات را با دقت وارد کنید
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این پایگاه با مشارکت موسسه علمی - فرهنگی دارالحدیث و مرکز تحقیقات کامپیوتری علوم اسلامی (نور) اداره می شود
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