Privacy Preservation of Genomic and Medical Data

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Publisher : John Wiley & Sons
ISBN 13 : 1394212623
Total Pages : 564 pages
Book Rating : 4.3/5 (942 download)

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Book Synopsis Privacy Preservation of Genomic and Medical Data by : Amit Kumar Tyagi

Download or read book Privacy Preservation of Genomic and Medical Data written by Amit Kumar Tyagi and published by John Wiley & Sons. This book was released on 2024-01-04 with total page 564 pages. Available in PDF, EPUB and Kindle. Book excerpt: PRIVACY PRESERVATION of GENOMIC and MEDICAL DATA Discusses topics concerning the privacy preservation of genomic data in the digital era, including data security, data standards, and privacy laws so that researchers in biomedical informatics, computer privacy and ELSI can assess the latest advances in privacy-preserving techniques for the protection of human genomic data. Privacy Preservation of Genomic and Medical Data focuses on genomic data sources, analytical tools, and the importance of privacy preservation. Topics discussed include tensor flow and Bio-Weka, privacy laws, HIPAA, and other emerging technologies like Internet of Things, IoT-based cloud environments, cloud computing, edge computing, and blockchain technology for smart applications. The book starts with an introduction to genomes, genomics, genetics, transcriptomes, proteomes, and other basic concepts of modern molecular biology. DNA sequencing methodology, DNA-binding proteins, and other related terms concerning genomes and genetics, and the privacy issues are discussed in detail. The book also focuses on genomic data sources, analyzing tools, and the importance of privacy preservation. It concludes with future predictions for genomic and genomic privacy, emerging technologies, and applications. Audience Researchers in information technology, data mining, health informatics and health technologies, clinical informatics, bioinformatics, security and privacy in healthcare, as well as health policy developers in public and private health departments and public health.

Privacy Preservation of Genomic and Medical Data

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Author :
Publisher : John Wiley & Sons
ISBN 13 : 1394213700
Total Pages : 432 pages
Book Rating : 4.3/5 (942 download)

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Book Synopsis Privacy Preservation of Genomic and Medical Data by : Amit Kumar Tyagi

Download or read book Privacy Preservation of Genomic and Medical Data written by Amit Kumar Tyagi and published by John Wiley & Sons. This book was released on 2023-11-16 with total page 432 pages. Available in PDF, EPUB and Kindle. Book excerpt: PRIVACY PRESERVATION of GENOMIC and MEDICAL DATA Discusses topics concerning the privacy preservation of genomic data in the digital era, including data security, data standards, and privacy laws so that researchers in biomedical informatics, computer privacy and ELSI can assess the latest advances in privacy-preserving techniques for the protection of human genomic data. Privacy Preservation of Genomic and Medical Data focuses on genomic data sources, analytical tools, and the importance of privacy preservation. Topics discussed include tensor flow and Bio-Weka, privacy laws, HIPAA, and other emerging technologies like Internet of Things, IoT-based cloud environments, cloud computing, edge computing, and blockchain technology for smart applications. The book starts with an introduction to genomes, genomics, genetics, transcriptomes, proteomes, and other basic concepts of modern molecular biology. DNA sequencing methodology, DNA-binding proteins, and other related terms concerning genomes and genetics, and the privacy issues are discussed in detail. The book also focuses on genomic data sources, analyzing tools, and the importance of privacy preservation. It concludes with future predictions for genomic and genomic privacy, emerging technologies, and applications. Audience Researchers in information technology, data mining, health informatics and health technologies, clinical informatics, bioinformatics, security and privacy in healthcare, as well as health policy developers in public and private health departments and public health.

Privacy, Confidentiality, and Health Research

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Author :
Publisher : Cambridge University Press
ISBN 13 : 1139510827
Total Pages : 203 pages
Book Rating : 4.1/5 (395 download)

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Book Synopsis Privacy, Confidentiality, and Health Research by : William W. Lowrance

Download or read book Privacy, Confidentiality, and Health Research written by William W. Lowrance and published by Cambridge University Press. This book was released on 2012-06-21 with total page 203 pages. Available in PDF, EPUB and Kindle. Book excerpt: The potential of the e-health revolution, increased data sharing, database linking, biobanks and new techniques such as geolocation and genomics to advance human health is immense. For the full potential to be realized, though, privacy and confidentiality will have to be dealt with carefully. Problematically, many conventional approaches to such pivotal matters as consent, identifiability, and safeguarding and security are inadequate. In many places, research is impeded by an overgrown thicket of laws, regulations, guidance and governance. The challenges are being heightened by the increasing use of biospecimens, and by the globalization of research in a world that has not globalized privacy protection. Drawing on examples from many developed countries and legal jurisdictions, the book critiques the issues, summarizes various ethics, policy, and legal positions (and revisions underway), describes innovative solutions, provides extensive references and suggests ways forward.

Privacy-preserving Genomic Data Publishing Via Differential Privacy

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Publisher :
ISBN 13 :
Total Pages : 68 pages
Book Rating : 4.:/5 (123 download)

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Book Synopsis Privacy-preserving Genomic Data Publishing Via Differential Privacy by : Tanya Khatri

Download or read book Privacy-preserving Genomic Data Publishing Via Differential Privacy written by Tanya Khatri and published by . This book was released on 2018 with total page 68 pages. Available in PDF, EPUB and Kindle. Book excerpt: "Privacy-preserving data publishing is a mechanism for sharing data while ensuring the privacy of individuals is preserved in the published data and utility is maintained for data mining and analysis. There is a huge need for sharing genomic data to advance medical and health research. However, since genomic data is highly sensitive and the ultimate identifier, it is a big challenge to publish genomic data while protecting the privacy of individuals in the data. In this thesis, we address the aforementioned challenge by presenting an approach for privacy-preserving genomic data publishing via differentially-private suffix tree. The proposed algorithm uses a top-down approach and utilizes Laplace mechanism to divide the raw genomic data into disjoint partitions, and then normalize the partitioning structure to ensure consistency and maintain utility. The output of our algorithm is a differentially-private suffix tree, a data structure most suitable for efficient search on genomic data. We experiment on real-life genomic data obtained from the Human Genome Privacy Challenge project, and we show that our approach is efficient, scalable, and achieves high utility with respect to genomic sequence matching count queries."--Boise State University ScholarWorks.

Privacy-Enhancing Technologies for Medical and Genomic Data: From Theory to Practice

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Publisher :
ISBN 13 :
Total Pages : 177 pages
Book Rating : 4.:/5 (13 download)

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Book Synopsis Privacy-Enhancing Technologies for Medical and Genomic Data: From Theory to Practice by : Jean Louis Raisaro

Download or read book Privacy-Enhancing Technologies for Medical and Genomic Data: From Theory to Practice written by Jean Louis Raisaro and published by . This book was released on 2018 with total page 177 pages. Available in PDF, EPUB and Kindle. Book excerpt: Mots-clés de l'auteur: genomic privacy ; medical data protection ; genetic testing ; inference attacks ; homomorphic encryption ; property-preserving encryption ; differential privacy ; re-identification ; data sharing ; privacy-enhancing technologies.

Computational Intelligence in Internet of Agricultural Things

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Publisher : Springer Nature
ISBN 13 : 3031674502
Total Pages : 464 pages
Book Rating : 4.0/5 (316 download)

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Book Synopsis Computational Intelligence in Internet of Agricultural Things by : M. G. Sumithra

Download or read book Computational Intelligence in Internet of Agricultural Things written by M. G. Sumithra and published by Springer Nature. This book was released on with total page 464 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Privacy-Preserving Data Mining

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Publisher : Springer Science & Business Media
ISBN 13 : 0387709924
Total Pages : 524 pages
Book Rating : 4.3/5 (877 download)

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Book Synopsis Privacy-Preserving Data Mining by : Charu C. Aggarwal

Download or read book Privacy-Preserving Data Mining written by Charu C. Aggarwal and published by Springer Science & Business Media. This book was released on 2008-06-10 with total page 524 pages. Available in PDF, EPUB and Kindle. Book excerpt: Advances in hardware technology have increased the capability to store and record personal data. This has caused concerns that personal data may be abused. This book proposes a number of techniques to perform the data mining tasks in a privacy-preserving way. This edited volume contains surveys by distinguished researchers in the privacy field. Each survey includes the key research content as well as future research directions of a particular topic in privacy. The book is designed for researchers, professors, and advanced-level students in computer science, but is also suitable for practitioners in industry.

Medical Data Privacy Handbook

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Author :
Publisher : Springer
ISBN 13 : 3319236334
Total Pages : 854 pages
Book Rating : 4.3/5 (192 download)

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Book Synopsis Medical Data Privacy Handbook by : Aris Gkoulalas-Divanis

Download or read book Medical Data Privacy Handbook written by Aris Gkoulalas-Divanis and published by Springer. This book was released on 2015-11-26 with total page 854 pages. Available in PDF, EPUB and Kindle. Book excerpt: This handbook covers Electronic Medical Record (EMR) systems, which enable the storage, management, and sharing of massive amounts of demographic, diagnosis, medication, and genomic information. It presents privacy-preserving methods for medical data, ranging from laboratory test results to doctors’ comments. The reuse of EMR data can greatly benefit medical science and practice, but must be performed in a privacy-preserving way according to data sharing policies and regulations. Written by world-renowned leaders in this field, each chapter offers a survey of a research direction or a solution to problems in established and emerging research areas. The authors explore scenarios and techniques for facilitating the anonymization of different types of medical data, as well as various data mining tasks. Other chapters present methods for emerging data privacy applications and medical text de-identification, including detailed surveys of deployed systems. A part of the book is devoted to legislative and policy issues, reporting on the US and EU privacy legislation and the cost of privacy breaches in the healthcare domain. This reference is intended for professionals, researchers and advanced-level students interested in safeguarding medical data.

Privacy Preserving Framework for Federated Learning in Genomics

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Publisher :
ISBN 13 :
Total Pages : 59 pages
Book Rating : 4.:/5 (126 download)

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Book Synopsis Privacy Preserving Framework for Federated Learning in Genomics by : Yashashree Kokje

Download or read book Privacy Preserving Framework for Federated Learning in Genomics written by Yashashree Kokje and published by . This book was released on 2020 with total page 59 pages. Available in PDF, EPUB and Kindle. Book excerpt: With the advent of machine learning, organizations today collect and process data at an unprecedented scale. This has led to rapid growth in innovation across industries, but also poses numerous challenges around maintaining user privacy. Specifically, in the field of healthcare and genomics where data is highly sensitive. Unlike credit cards or passwords, one’s genomic information cannot be modified at will and has the ability to uniquely identify the individual. The objective of this thesis is to develop an easily configurable framework that would allow organizations to collaborate and advance genomic research without directly sharing user data with each other. This thesis includes the development of a privacy preserving framework for federated learning on genomic datasets that are distributed across organizational silos. PAGe (Privacy Aware Genomics) has been open-sourced and has a low barrier to entry. A packaged runtime environment is available that includes popular bioinformatics tools and machine learning libraries. Experimental setup is controlled through configuration files, allowing users to easily terminate, restart or reproduce results. Finally, there is an in depth evaluation of the framework using Type 2 Diabetes disease risk prediction as a case study with the 1000 genomes dataset as input.

Future Internet Technologies and Trends

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Publisher : Springer
ISBN 13 : 3319737120
Total Pages : 285 pages
Book Rating : 4.3/5 (197 download)

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Book Synopsis Future Internet Technologies and Trends by : Zuber Patel

Download or read book Future Internet Technologies and Trends written by Zuber Patel and published by Springer. This book was released on 2018-01-19 with total page 285 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book constitutes the refereed proceedings of the First International Conference on Future Internet Technologies and Trends, ICFITT 2017, held in Surat, India, August 31 – September 2, 2017. The 28 full papers were selected from 66 submissions and present next generation requirements for extremely high speed data communications, IoT, security, broadband technology, cognitive radio, vehicular technology, gigabit wireless networks, data management and big data

Privacy, Confidentiality and Discrimination in Genetics

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Publisher :
ISBN 13 :
Total Pages : 116 pages
Book Rating : 4.F/5 ( download)

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Book Synopsis Privacy, Confidentiality and Discrimination in Genetics by : United States. Congress. House. Committee on Commerce. Task Force on Health Records and Genetic Privacy

Download or read book Privacy, Confidentiality and Discrimination in Genetics written by United States. Congress. House. Committee on Commerce. Task Force on Health Records and Genetic Privacy and published by . This book was released on 1998 with total page 116 pages. Available in PDF, EPUB and Kindle. Book excerpt:

How (not) to Protect Genomic Data Privacy in a Distributed Network

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Publisher :
ISBN 13 :
Total Pages : 34 pages
Book Rating : 4.:/5 (319 download)

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Book Synopsis How (not) to Protect Genomic Data Privacy in a Distributed Network by : Bradley Malin

Download or read book How (not) to Protect Genomic Data Privacy in a Distributed Network written by Bradley Malin and published by . This book was released on 2004 with total page 34 pages. Available in PDF, EPUB and Kindle. Book excerpt: Abstract: "The increasing integration of patient-specific genomic data into clinical practice and research raises serious privacy concerns. Various systems have been proposed that protect privacy by removing or encrypting explicitly identifying information, such as name or social security number, into pseudonyms. Though these systems claim to protect identity from being disclosed, they lack formal proofs. In this paper, we study the erosion of privacy when genomic data, either pseudonymous or data believed to be anonymous, is released into a distributed healthcare environment. Several algorithms are introduced, collectively called RE-Identification of Data In Trails (REIDIT), which link genomic data to named individuals in publicly available records by leveraging unique features in patient-location visit patterns. Algorithmic proofs of re-identification are developed and we demonstrate, with experiments on real-world data, that susceptibility to re-identification is neither trivial nor the result of bizarre isolated occurrences. We propose that such techniques can be applied as system tests of privacy protection capabilities."

Privacy-preserving Techniques on Genomic Data

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Publisher :
ISBN 13 :
Total Pages : 0 pages
Book Rating : 4.:/5 (135 download)

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Book Synopsis Privacy-preserving Techniques on Genomic Data by : Md Momin Al Aziz

Download or read book Privacy-preserving Techniques on Genomic Data written by Md Momin Al Aziz and published by . This book was released on 2022 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: Genomic data hold salient information about the characteristics of a living organism. Throughout the last decade, pinnacle developments have given us more accurate and inexpensive methods to retrieve our genome sequences. However, with the advancement of genomic research, there are growing security and privacy concerns regarding collecting, storing, and analyzing such sensitive data. Recent results show that given some background information, it is possible for an adversary to re-identify an individual from a specific genomic dataset. This can reveal the current association or future susceptibility of some diseases for that individual (and sometimes the kinship between individuals), resulting in a privacy violation. This thesis has two parts and proposes several techniques to mitigate the privacy issues relating to genomic data. In our first part, we target the data privacy issues while using any external computational environment. We propose privacy-preserving frameworks to store genomic data in an untrusted computational environment (\textit{i.e.}, cloud). In particular, we employ prefix and suffix tree structures to represent genomic data while keeping them under encryption throughout its computational life-cycle. Therefore, the underlying methods perform different string search queries and arbitrary computations under encryption without requiring access to the raw sensitive data. We also propose a GPU-parallel Fully Homomorphic Encryption framework that optimizes existing algorithms and can perform string distance metrics such as Hamming, Edit distance and Set Maximal Matching. The GPU-parallel framework is 14.4 and 46.81 times faster for standard and matrix multiplications, respectively compared to the existing techniques. The second part of the thesis targets another privacy setting where the outputs from different genomic data analyses are deemed sensitive. Here, we propose several differentially private mechanisms to share partial genome datasets and intermediate statistics providing a strict privacy guarantee. Experimental results demonstrate that the proposed methods are effective for protecting data privacy while computing and analysis of genomic data. Overall, the proposed techniques in this thesis are not specialized for genomic data but can be generalized to protect other types of sensitive data.

Anonymization of Electronic Medical Records to Support Clinical Analysis

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Publisher : Springer Science & Business Media
ISBN 13 : 1461456681
Total Pages : 87 pages
Book Rating : 4.4/5 (614 download)

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Book Synopsis Anonymization of Electronic Medical Records to Support Clinical Analysis by : Aris Gkoulalas-Divanis

Download or read book Anonymization of Electronic Medical Records to Support Clinical Analysis written by Aris Gkoulalas-Divanis and published by Springer Science & Business Media. This book was released on 2012-10-13 with total page 87 pages. Available in PDF, EPUB and Kindle. Book excerpt: Anonymization of Electronic Medical Records to Support Clinical Analysis closely examines the privacy threats that may arise from medical data sharing, and surveys the state-of-the-art methods developed to safeguard data against these threats. To motivate the need for computational methods, the book first explores the main challenges facing the privacy-protection of medical data using the existing policies, practices and regulations. Then, it takes an in-depth look at the popular computational privacy-preserving methods that have been developed for demographic, clinical and genomic data sharing, and closely analyzes the privacy principles behind these methods, as well as the optimization and algorithmic strategies that they employ. Finally, through a series of in-depth case studies that highlight data from the US Census as well as the Vanderbilt University Medical Center, the book outlines a new, innovative class of privacy-preserving methods designed to ensure the integrity of transferred medical data for subsequent analysis, such as discovering or validating associations between clinical and genomic information. Anonymization of Electronic Medical Records to Support Clinical Analysis is intended for professionals as a reference guide for safeguarding the privacy and data integrity of sensitive medical records. Academics and other research scientists will also find the book invaluable.

Machine Learning and Cryptographic Solutions for Data Protection and Network Security

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Author :
Publisher : IGI Global
ISBN 13 :
Total Pages : 557 pages
Book Rating : 4.3/5 (693 download)

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Book Synopsis Machine Learning and Cryptographic Solutions for Data Protection and Network Security by : Ruth, J. Anitha

Download or read book Machine Learning and Cryptographic Solutions for Data Protection and Network Security written by Ruth, J. Anitha and published by IGI Global. This book was released on 2024-05-31 with total page 557 pages. Available in PDF, EPUB and Kindle. Book excerpt: In the relentless battle against escalating cyber threats, data security faces a critical challenge – the need for innovative solutions to fortify encryption and decryption processes. The increasing frequency and complexity of cyber-attacks demand a dynamic approach, and this is where the intersection of cryptography and machine learning emerges as a powerful ally. As hackers become more adept at exploiting vulnerabilities, the book stands as a beacon of insight, addressing the urgent need to leverage machine learning techniques in cryptography. Machine Learning and Cryptographic Solutions for Data Protection and Network Security unveil the intricate relationship between data security and machine learning and provide a roadmap for implementing these cutting-edge techniques in the field. The book equips specialists, academics, and students in cryptography, machine learning, and network security with the tools to enhance encryption and decryption procedures by offering theoretical frameworks and the latest empirical research findings. Its pages unfold a narrative of collaboration and cross-pollination of ideas, showcasing how machine learning can be harnessed to sift through vast datasets, identify network weak points, and predict future cyber threats.

Observaciones de las islas islas Orcadas 1904

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Publisher :
ISBN 13 :
Total Pages : pages
Book Rating : 4.:/5 (461 download)

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Book Synopsis Observaciones de las islas islas Orcadas 1904 by :

Download or read book Observaciones de las islas islas Orcadas 1904 written by and published by . This book was released on 1905 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Privacy-preserving Biomedical Data Sharing and Computation

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Publisher :
ISBN 13 :
Total Pages : 0 pages
Book Rating : 4.:/5 (135 download)

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Book Synopsis Privacy-preserving Biomedical Data Sharing and Computation by : Md Safiur Rahman Mahdi

Download or read book Privacy-preserving Biomedical Data Sharing and Computation written by Md Safiur Rahman Mahdi and published by . This book was released on 2020 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: Genomic data is being produced rapidly by both individuals and enterprises and needs to be outsourced from local machines to a cloud for better flexibility. Outsourcing also eliminates the local storage management problem for data owners. However, sensitive data must be encrypted by data owners before outsourcing in the cloud to protect data privacy and security. Since genomic data is huge in volume, it is challenging to execute researchers' queries securely and efficiently. In this thesis, I have developed various models for secure sharing and computation on genomic data in a third party cloud server. The security of the shared data is guaranteed through encryption while making the overall computation fast and scalable enough for real-life biomedical applications. In particular, I propose different methods for secure sharing and computation on genomic data such as secure count query, secure similar patients query, secure substring, and set-maximal search.