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Home > تصورعدل واحسان:اسلام اوراہم مذاہب کی تعلیمات کی روشنی میں

تصورعدل واحسان:اسلام اوراہم مذاہب کی تعلیمات کی روشنی میں

Thesis Info

Author

طاہرہ عبد القدوس

Supervisor

جمیلہ شوکت

Department

شیخ زایداسلامک سنٹر

Program

Mphil

Institute

University of the Punjab

Institute Type

Public

City

Lahore

Province

Punjab

Country

Pakistan

Degree Starting Year

2006

Subject

Comparative Religion

Language

Urdu

Keywords

ادیان عالم
World religions

Added

2021-02-17 19:49:13

Modified

2023-02-19 12:33:56

ARI ID

1676709293443

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اکرامؔ سانبوی

اکرامؔ سانبوی (۱۹۴۲ء۔۲۰۱۱ء) کا اصل نام محمد اکرام ہے۔ آپ ریاست جموں کشمیر کے سرمائی صدر مقام جموں میں پیدا ہوئے۔ آباؤ اجداد کا تعلق ضلع جموں کی تحصل سانبہ سے تھا۔ اسی لیے اکرام سانبوی کہلاتے تھے۔ قیام پاکستان کے بعد جموں سے ہجرت کر کے سیالکوٹ کے محلہ پورن نگر میں آباد ہوئے۔ آپ نے ایم ۔اے اردو اورنیٹل کالج لاہور سے کیا اور اس کے بعد جناح اسلامیہ کالج سیالکوٹ میں اردو کے لیکچرا ر کی حیثیت سے آپ کا تقرر ہوگیا۔(۹۸۷)

اکرام ؔغزل اور نظم کے شاعر ہیں۔ کالج کے زمانے میں انھوں نے کئی مزاحیہ مضامین اور افسانے لکھے جو کالج میگزین کے علاوہ کئی سطح کے ادبوں رسالوں میں شائع ہوئے۔ تنقیدی مضامین اور خصوصاً شاعری کا شوق بڑی عمر میں ہوا۔ اس لحاظ سے ان کی شاعری کی عمر کچھ زیادہ نہیں تاہم ان کے کلام سے ظاہر ہوتا ہے کہ ان میں ایک اچھا شاعر بننے کی پوری صلاحیت ہے۔ اکرامؔ کے کلام میں ہمیں گہرا سماجی شعور ملتاہے۔انھوں نے بڑی خوبصورتی سے اپنی شاعری میں اپنے ماحول کی شعری زبان میں عکاسی کی ہے ۔اور اس کے ساتھ ساتھ اپنے وقت کے مسائل کو بھی بڑی عمدگی سے پیش کیا ہے۔ ان کے ہاں ہمیں افسردگی اور بے چینی نظر آتی ہے۔ جو ان کے دل کی دنیا کی بھر پور عکاسی کرتی ہے:

ہر طرف یاس کا اندھیرا ہے

 

/زندگی ہو گی اب بسر کیسے

 

-بے ثمر ہو گئے شجر کیسے

 

-بے صدا ہو گئے نگر کیسے

(۹۸۸)

 

 

 

 

زبان شعر...

سائیں رفیق رانجھا تے بابا جی قصور مند

This article covers the poetic and research services of Sufi poet Sain Muhammad Rafique Ranjha from Hamza Ghous Sialkot. He is a Punjabi "Sofi "poet and a compiler. In this article, I have already mentioned his own poetry collection and life. In his own book, he has used a dozen genres of poetry. This Sufi poet, who is experimenting with new and old genres, but “Rubai” is his favorite genre. The first book "Warasat-e- Faqr" by Sain Muhammad Rafique Ranja consists of 418 pages which has been composed. While the second book “Suchay Moti” is by the famous Punjabi poet of Gujarat Baba Ji Qasoor Mand which has 290 pages. It is published in 2017. Both books contain mystical poetry. Along with the books, brief information about the lives of the authors is also given.

Predicting Financial Distress Using Machine Learning Techniques in Services Sector of Pakistan

Financial distress is an active research area particularly for business community of Pakistan due to economic conditions, electricity shortage and political situation. Banks are also taking keen interest in this area after the global financial crisis of year 2008. Therefore, the question that how financial distress can be predicted accurately has been widely debated by many scholars by using traditional statistical models. However, earlier research has not adequately addressed the issue of predicting financial distress. Adding to that the rate of financial distress is also getting harder to estimate by using traditional statistical models, because firms are becoming more complex and creating refined plans to hide their real financial situation. To prevent this condition latest prediction models are adopted by many countries which can give early indication of firm?s financial distress with highly accurate results. In this regard, prediction of financial distress by Neural Network Model is not much explored in Pakistan for foreseeing the financial health of firms. This paper addresses this issue and uses Neural Network Model to predict financial distress of firms in Pakistan by selecting suitable independent variables. The sample of 22 private sector conventional banks listed at Pakistan Stock Exchange is selected. The time series financial statements of these banks are selected for 15 years (2001 to 2015).Selected sample time frame is (pre-crisis 2001-2007), (crisis 2008) and (post-crisis 2009-2015). To test first hypothesis,4 Altman''s ratios from revised Altman''s Z-Score Model are calculated from these financial statements of selected banks. This study used three layered Neural Network Model consisting of input layer, hidden layer and output layer. The 4 independent explanatory variables/ input are 4 Altman''s ratios and 1 dependent variable/output is probable financial distress. After determining the Neural Network architecture, cross-validation re-sampling procedure is used to train, validate, and test a Neural Network by using commerciallyavailable MATLAB software. The best and most appropriate Neural Networks model, constructed by combining input variables of 4 Altman''s ratios, resulted in the R value of 0.99 that shows a relatively high accuracy given the error ratio in the input variables. These results confirmed the second hypothesis. By testing third hypothesis, distressed and non distressed banks are correctly classified with reference to Altman?s ratio