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Home > فیصل آباد ایجو کیشن بورڈ کی انعام یافتہ کتب کا تحقیقی و تنقیدی جائزہ

فیصل آباد ایجو کیشن بورڈ کی انعام یافتہ کتب کا تحقیقی و تنقیدی جائزہ

Thesis Info

Author

خالد محمود خاں

Supervisor

Jameel Asghar

Program

Mphil

Institute

Riphah International University

Institute Type

Private

Campus Location

Faisalabad Campus

City

Faisalabad

Country

Pakistan

Thesis Completing Year

2016

Thesis Completion Status

Completed

Page

ii, 133 . ; 30 cm.

Subject

Urdu Literature

Language

Urdu

Other

Submitted in fulfillment of the requirements for the degree of Master of Urdu to the Faculty of Social Sciences and Humanities.; Includes bibliographical references; Thesis (M.Phil)--Riphah International University, 2016; Urdu; Call No: 891.43 KHA

Added

2021-02-17 19:49:13

Modified

2023-02-19 12:33:56

ARI ID

1676712229535

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3 ۔حدِ سرقہ

3 ۔حدِ سرقہ
لغوی مفہوم
سرقہ سے مرادکسی چیز کو خفیہ طریقے سے لینا ،جیسا کہ ابن فارس سرقہ کے بارے میں لکھتے ہیں
السين والراء والقاف أصلٌ يدلُّ على أخْذ شيء في خفاء وسِتر. يقال سَرَقَ يَسْرق سَرِقَةً. والمسروق سَرَقٌ. واستَرَقَ السَّمع، إذا تسمَّع مختفياً. ومما شذَّ عن هذا الباب السَّرَق: جمعَ سَرَقة، وهي القطعة من الحرير۔105
مادہ " سَرَقَ " ہے اس کا معنی ہے کسی چیز کو خفیہ طریقے سے لینا جیسے کہا جاتا ہے سَرَقَ يَسْرق سَرِقَةً. والمسروق سَرَقٌ اور واستَرَقَ السَّمع کا معنی ہے کسی بات کو چھپ کر سننا اور اس کی جمع سرقہ ہے اور یہ ریشم کے ٹکڑے کو بھی کہتے ہیں۔
سرقہ مال چوری کرنے کو کہتے ہیں ابن منظور افریقی کے بقول
قالوا سَرَقَهُ مالاً وفي المثل سُرِقَ السارقُ فانتحَر والسَّرَق مصدر فعل السارق تقول بَرِئْتُ إليك من الإباق والسَّرَق في بيع العبد ورجل سارِق من قوم سَرَقةٍ ۔ 106
"کہتے ہیں کہ اس کا مال چوری کیا اور ضرب المثل ہے چور کا پیچھا کیا گیا وہ بھاگ گیا السرق سارق کا مصدر ہے جیسے تو غلام کو بیچنے میں کہے کہ میں اس کے بھاگنے اور چوری کرنے میں بری ہوں اور رجل سارق چور قوم کے کسی فرد کو کہتے ہیں ۔ "
اصطلاحی مفہوم
امام راغب اصفہانی کے نزدیک سرقہ کی اصطلاحی تعریف یہ ہے
"السرقۃاخذ ما لیس لہاخذہفی خفاءِ وصار فی ذلک فی الشرع لتناول الشی ء من موضع مخصوص وقدرمخصوص۔" 107
"کسی چیز کو دوسرے سے خفیہ طور پر اور چھپا کر لے لینا اور اس کے بارے میں کہا جاتا ہے کسی چیز کو محفوظ جگہ سے مخصوص مقدار میں خفیہ طور پر لینا۔ "
چوری کی حرمت
اسلامی تعلیمات میں جس طرح ایک انسانی جان قیمتی سمجھی جاتی ہے ، اسی طرح اس کا مال...

دور الـخطاب القرآني في وسطية الأمة الـمسلمة: دراسة موضوعية

This is a subjective study explains the role of Quranic speech in the Islamic nation, wassatia the study explains the meaning of wassatia in language and legitimate. The wassatia standing out in religion in all fields for Islamic nation, like in dogmatic, in worshiping, in relationship, in dealings and in spending. The wassatia Appears through balance in all fields without exaggeration this appears through examples and samples with evidence from Quran and Sunnah.

Machine Learning Based Approach for Facial Expression Classification

Facial expressions deliver intensive information about human emotions and the most valuable way of social collaborations, despite difference in ethnicity, culture, and geography. These differences addresses the three main problems, which are; facial appearance variation, facial structure variation, and inter-expression resemblance. Due to these problems the existing facial expression recognition techniques are very inconsistent. This study presents several computational algorithms to handle these problems in order to get high expression recognition accuracy. We proposed a novel ensemble classifier for cross-cultural facial expression recognition. The proposed ensemble classifier consists of three stages; base-level, meta-level and predictor, where binary neural network adopted as base-level classifier, neural network ensemble (NNE) collections as meta-level classifier and naive Bayes (NB) with Bernoulli distribution as predictor. The NB classifier takes the binary output of NNE collections and classifies the sample image as one of the possible facial expressions. The Viola-Jones algorithm is used to detect the face and expression concentration region. The acted still images of three databases JAFFE, TFEID, and RadBoud originate from four different cultures are combined to form multi-culture facial expression dataset. Three different feature extraction techniques LBP, ULBP and PCA are applied for facial feature representation. Further, boosted NNE collections are developed to enhance the facial expression recognition accuracy. The proposed boosting technique combines multiple NNEs which are complement to each other. The combination of boosted NNE collections with HOG-PCA feature vector perform significantly better than NNE collections. Later on the multi-culture dataset is extended by adding more cultural diversity from KDEF and CK+ databases, which is used to train the SVM based ensemble collections. The introduction of SVM ensemble collections at meta-level provides strong generalization ability to learn the vast variety of cultural variations in expression representation. Moreover, sensitivity analysis and inter-expression resemblance analysis are performed to quantify the level of complexity in cross-cultural facial expression recognition. It shows that expressions of happiness, surprise and anger are easy to recognize as compare to expressions of sadness and fear. It proves that these expressions are innate and universal across all cultures with minor variations. The experimental results demonstrate that proposed cross-cultural facial expression recognition techniques perform significantly better than state of the art techniques.