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Home > پاکستان کی اسلامی، مذہبی، سیاسی تحریکوں کے معاشرے پر اثرات کا تنقیدی جائزہ

پاکستان کی اسلامی، مذہبی، سیاسی تحریکوں کے معاشرے پر اثرات کا تنقیدی جائزہ

Thesis Info

Author

نسیم انور

Supervisor

شمس البصر

Program

Mphil

Institute

The Islamia University of Bahawalpur

City

بہاولپور

Degree Starting Year

2007

Language

Urdu

Keywords

تحریکات , مجموعی جائزہ

Added

2023-02-16 17:15:59

Modified

2023-02-19 12:33:56

ARI ID

1676731228462

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۔طاہر وحید

چلو.....پھر"

چلو اب "عرصہء ہجرت" میں مدت لے کے آئیں...

چلو گھر لوٹ جائیں،

چلو بارش کو رنج-رائیگانی سے بچائیں...!

چلو ہم بھیگ آئیں،

چلو پیروں سے لپٹے راستوں کو پائمالی سے بچائیں...!

چلو منزل کو اب گھر لے کے آئیں،

چلو منظر کی ویرانی سے آنکھوں کو بچائیں...!

چلو خوابوں کو ان میں لا بٹھائیں،

چلو آئینے کو بے چہرہ لوگوں کی رفاقت سے چھڑائیں...!

چلو ہم خود کو اس کے روبرو لائیں،

چلو اب منجمد رشتوں کو تجدیدِ تعلق سے جگائیں...!

چلو "دل اوک" میں جذبوں کی تھوڑی دھوپ بھر لائیں،

چلو کم مائیگی میں مبتلا لفظوں کی قسمت جگمگائیں...!

چلو ان میں تمہارا "نام" رکھ آئیں،

چلو پھر عشرتِ ابر-رواں سے حظ اٹھائیں...!

چلو پھر حسرت-کوزہ گراں کو آزمائیں،

چلو اپنی دعا کو نارسائی کی اذیت سے بچائیں...!

چلو باب-دعا "خود" کھول آئیں،



 

برصغیر کی نادر فارسی تفسیر تبجیل التنزیل (جزء سورۃ الفاتحہ) کا تحقیقی مطالعہ

The intellectual heritage in British–India includes literature of Christian missionaries which focusses missionary perspective and the literature of Muslim missionary in response. In this Case, literature based on polemic method from both sides has become quite important. Specialists of Muslim Christian relations and religious students should be aware of debates of this ere. The criticism on Quran seems quite abundance on social media from opponents and enemies as well as their efforts are quite evident on minds of habitual valiance to precariousness and skepticism. That’s why, the preacher and student of Islamic religion should bring in light the effort being made by Muslim scholars in response to their claims. One of selected flowers in the caravan of Muslim scholars is Abu Mansoor Dehlvi (1902 AD). Tabjil al Tanzil is one of the prominent Quranic Interpretation which focuses on the replies to objections raised against Islam and Quran by Christians in Sub continent. In this paper, author tried to find out this un-published interpretation (as it is supposed) and analyzed its first part containing on surah al fatiha (manuscript). In the result, he finds that polemic method is prevailed. And objections against Islam has been silently condemned.

Exploiting Machine Learning Techniques for Cancer Classification in Histopathology

The advancement in microscopic imaging techniques results in the generation of a large amount of high quality data in no time. The accurate, real time and autonomous analysis of this data is crucial for the theoretical biomedical research and clinical diagnosis. A lot of vigorous attempts are dedicated for the evolution of computer aided techniques, which improve human diagnosis by increasing efficiency, decreasing variability in the observations and reducing the human effort on labelling and classifying images. Among such determined attempts, histology image classification is one of the most significant fields due to its extensive application in pathological diagnosis such as tumor/cancer diagnosis. Inherent heterogeneous nature and random spatial intensity differences of histopathology images make the histology tissue classification a complex task. In this thesis four novel, robust and adaptive frameworks are proposed for automated and correct classification of histopathology images. The goal of this research is to achieve the expert pathologists’s diagnosis by catering inherent complexity and prevailing the variations in the opinion of different pathologists. The key contributions of this reseach are: First, a histopathological classification problem is explored from all the perspectives by performing pattern analysis at image level and cell level individually and collectively. The first proposed framework is an abstract feature based framework which performs image-level analysis to capture global texture information. The second framework performs cell-level analysis to get nuclei structure and texture. The third and fourth frameworks perform cell-level and image-level analysis to get nuclei structure and image global texture. Second, the exploration of RGB colour space is preferred to mimic the pathologists’ diagnosis process. The imperative role of RGB color channels is investigated in histopathology image classification by extracting nuclear and global image features across these color channels. Third, instead of analyzing various colour spaces a number of feature measures are explored from spatial and frequency domain to encounter maximum diversity. The individual and combined effect of a large number of statistical, structural and spectral feature measures are analyzed including co-occurrence matrices, run-length matrices, local binary patterns with Fourier transforms, morphology features and intensity features. Fourth, an extensive investigation of rank-based feature selection schemes is performed and proved that elitism is not an optimal strategy for feature selection in histopathology image classification. An abstract feature i.e. an optimal combination of functionally collaborating features having implicit linkages is identified based on classification accuracy through evolutionary search process. Fifth, a number of classifiers are explored and an automatic selection of parameters of classification model (classifier and classifier’s parameters) is performed through Genetic Algorithm based evolutionary technique. The experimentation is performed on images of grade-I benign meningioma four subtypes (meningothelial, fibroblastic, transitional and psammomatous) and pre-invasive breast lesions four classes (usual ductal hyperplasia (UDH) and three nuclear grades of ductal carcinoma in situ (DCIS)). The proposed frameworks achieved the promising classification results for four meningioma subtypes and breast lesions grades. In most of the cases, optimal sets of features obtained from the combination of three color channels and classified through linear support vector machine classifier presented the highest classification accuracy. The extraction of nuclear texture in spatial and frequency domain presented promising classification results.