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Hasil Pencarian

Ditemukan 80 dokumen yang sesuai dengan query
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"This book highlights the latest research presented at the International Conference on Translational Medicine and Imaging (ICTMI) 2017. This event brought together the worlds leading scientists, engineers and clinicians from a wide range of disciplines in the field of medical imaging. Bioimaging has continued to evolve across a wide spectrum of applications from diagnostics and personalized therapy to the mechanistic understanding of biological processes, and as a result there is ever-increasing demand for more robust methods and their integration with clinical and molecular data. This book presents a number of these methods."
Singapore: Springer Nature, 2019
e20509655
eBooks  Universitas Indonesia Library
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"A state-of-the-art review of key topics in medical image perception science and practice, including associated techniques, illustrations and examples. This second edition contains extensive updates and substantial new content. Written by key figures in the field, it covers a wide range of topics including signal detection, image interpretation and advanced image analysis (e.g. deep learning) techniques for interpretive and computational perception. It provides an overview of the key techniques of medical image perception and observer performance research, and includes examples and applications across clinical disciplines including radiology, pathology and oncology. A final chapter discusses the future prospects of medical image perception and assesses upcoming challenges and possibilities, enabling readers to identify new areas for research. Written for both newcomers to the field and experienced researchers and clinicians, this book provides a comprehensive reference for those interested in medical image perception as means to advance knowledge and improve human health."
Cambridge: Cambridge University Press, 2019
e20519169
eBooks  Universitas Indonesia Library
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Tortora, Gerard J.
Hoboken, N.J. : John Wiley & Sons, 2006
R 611.71 TOR b (1)
Buku Referensi  Universitas Indonesia Library
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Edinburgh: Mosby/Elsevier, 2011
R 611 IMA
Buku Referensi  Universitas Indonesia Library
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Edinburgh Churchill Livingstone: Elsevier, 2015
R 616.075 7 GRA
Buku Referensi  Universitas Indonesia Library
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"Advances in imaging devices and Image processing stem from cross-fertilization between many fields of research such as chemistry, physics, mathematics and computer sciences. This bioImaging community feel the urge to integrate more intensively its various results, discoveries and innovation into ready to use tools that can address all the new exciting challenges that life scientists (Biologists, Medical doctors ...) keep providing, almost on a daily basis. Devising innovative chemical probes, for example, is an archetypal goal in which image quality improvement must be driven by the physics of acquisition, the image processing and analysis algorithms and the chemical skills in order to design an optimal bioprobe."
Berlin: Springer, 2012
e20397758
eBooks  Universitas Indonesia Library
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Dougherty, Geoff
Cambridge, UK: Cambridge university press, 2009
616.075 4 DOU d
Buku Teks  Universitas Indonesia Library
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Pray Somaldo
"ABSTRAK
Diabetik Retinopati adalah kelainan retina akibat komplikasi diabetes yang menyebabkan kebutaan. Seiring berkembangnya teknologi pengolahan citra, pendeteksian Diabetik Retinopati DR dimungkinkan melalui gambar retina yang disebut citra fundus dengan menggunakan ekstraksi ?tur. Dalam penelitian ini, diusulkan metode ekstraksi ?tur menggunakan Gray Level Co-occurrence Matrix GLCM . Penelitian ini mengusulkan sebuah metode dengan enam ?tur tekstur GLCM dengan klasi?kasi Naive Bayes. Dengan menggunakan tiga metode pengujian dan offset GLCM untuk dibandingkan, offset GLCM menghasilkan hasil yang lebih baik dengan accuracy 82.05 pada metode pengujian 70 train 30 test, accuracy 80 pada metode pengujian 5-Fold Cross Validation, accuracy 80.77 pada metode pengujian 10-Fold Cross Validation. Hasil ini akan menjelaskan seberapa akurat Naive Bayes untuk mengklasi?kasikan citra fundus normal atau citra DR.

ABSTRAK
Diabetic Retinopathy is retinal disorders resulting from diabetes complications that lead to blindness. As the development of technology in image processing, detection of Diabetic Retinopathy DR was possible through retinal images called fundus image using feature extraction. In this paper, a feature extraction method using Gray Level Co occurrence Matrix GLCM is proposed. This paper proposed a method with six textural features of GLCM with Naive Bayes classifier. Using three testing methods and offset of GLCM to compare with, the offset of GLCM achieves a better result with an Accuracy of 82.05 for 70 training data and 30 testing data method, Accuracy of 80.00 for 5 fold Cross Validation method, Accuracy of 80.77 for 10 fold Cross Validation method. These results will explain how accurate Naive Bayes to classify normal fundus image or DR fundus image."
2017
S69377
UI - Skripsi Membership  Universitas Indonesia Library
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Patel, Pradip R.
Jakarta : Erlangga, 2005
616.075 7 PAT l
Buku Teks  Universitas Indonesia Library
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Kransdorf, Mark J.
Philadelphia: Wolters Kluwer Health/Lippincott Williams & Wilkins, 2014
616.994 KRA i
Buku Teks  Universitas Indonesia Library
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