Conductor: Distributed Adaptation for Heterogeneous Networks:
Internet heterogeneity is driving a new challenge in application development: adaptive software. Together with the increased Internet capacity and new access technologies, network congestion and the use of older technologies, wireless access, and peer-to-peer networking are increasing the heterogene...
Gespeichert in:
Hauptverfasser: | , , |
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Format: | Elektronisch E-Book |
Sprache: | English |
Veröffentlicht: |
Boston, MA
Springer US
2002
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Schriftenreihe: | The Springer International Series in Engineering and Computer Science
688 |
Schlagworte: | |
Online-Zugang: | FHI01 BTU01 URL des Erstveröffentlichers |
Zusammenfassung: | Internet heterogeneity is driving a new challenge in application development: adaptive software. Together with the increased Internet capacity and new access technologies, network congestion and the use of older technologies, wireless access, and peer-to-peer networking are increasing the heterogeneity of the Internet. Applications should provide gracefully degraded levels of service when network conditions are poor, and enhanced services when network conditions exceed expectations. Existing adaptive technologies, which are primarily end-to-end or proxy-based and often focus on a single deficient link, can perform poorly in heterogeneous networks. Instead, heterogeneous networks frequently require multiple, coordinated, and distributed remedial actions. Conductor: Distributed Adaptation for Heterogeneous Networks describes a new approach to graceful degradation in the face of network heterogeneity - distributed adaptation - in which adaptive code is deployed at multiple points within a network. The feasibility of this approach is demonstrated by conductor, a middleware framework that enables distributed adaptation of connection-oriented, application-level protocols. By adapting protocols, conductor provides application-transparent adaptation, supporting both existing applications and applications designed with adaptation in mind. Conductor: Distributed Adaptation for Heterogeneous Networks introduces new techniques that enable distributed adaptation, making it automatic, reliable, and secure. In particular, we introduce the notion of semantic segmentation, which maintains exactly-once delivery of the semantic elements of a data stream while allowing the stream to be arbitrarily adapted in transit. We also introduce a secure architecture for automatic adaptor selection, protecting user data from unauthorized adaptation. These techniques are described both in the context of conductor and in the broader context of distributed systems. Finally, this book presents empirical evidence from several case studies indicating that distributed adaptation can allow applications to degrade gracefully in heterogeneous networks, providing a higher quality of service to users than other adaptive techniques. Further, experimental results indicate that the proposed techniques can be employed without excessive cost. Thus, distributed adaptation is both practical and beneficial. Conductor: Distributed Adaptation for Heterogeneous Networks is designed to meet the needs of a professional audience composed of researchers and practitioners in industry and graduate-level students in computer science |
Beschreibung: | 1 Online-Ressource (XIX, 232 p) |
ISBN: | 9781461510918 |
DOI: | 10.1007/978-1-4615-1091-8 |
Internformat
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520 | |a Internet heterogeneity is driving a new challenge in application development: adaptive software. Together with the increased Internet capacity and new access technologies, network congestion and the use of older technologies, wireless access, and peer-to-peer networking are increasing the heterogeneity of the Internet. Applications should provide gracefully degraded levels of service when network conditions are poor, and enhanced services when network conditions exceed expectations. Existing adaptive technologies, which are primarily end-to-end or proxy-based and often focus on a single deficient link, can perform poorly in heterogeneous networks. Instead, heterogeneous networks frequently require multiple, coordinated, and distributed remedial actions. | ||
520 | |a Conductor: Distributed Adaptation for Heterogeneous Networks describes a new approach to graceful degradation in the face of network heterogeneity - distributed adaptation - in which adaptive code is deployed at multiple points within a network. The feasibility of this approach is demonstrated by conductor, a middleware framework that enables distributed adaptation of connection-oriented, application-level protocols. By adapting protocols, conductor provides application-transparent adaptation, supporting both existing applications and applications designed with adaptation in mind. Conductor: Distributed Adaptation for Heterogeneous Networks introduces new techniques that enable distributed adaptation, making it automatic, reliable, and secure. In particular, we introduce the notion of semantic segmentation, which maintains exactly-once delivery of the semantic elements of a data stream while allowing the stream to be arbitrarily adapted in transit. | ||
520 | |a We also introduce a secure architecture for automatic adaptor selection, protecting user data from unauthorized adaptation. These techniques are described both in the context of conductor and in the broader context of distributed systems. Finally, this book presents empirical evidence from several case studies indicating that distributed adaptation can allow applications to degrade gracefully in heterogeneous networks, providing a higher quality of service to users than other adaptive techniques. Further, experimental results indicate that the proposed techniques can be employed without excessive cost. Thus, distributed adaptation is both practical and beneficial. Conductor: Distributed Adaptation for Heterogeneous Networks is designed to meet the needs of a professional audience composed of researchers and practitioners in industry and graduate-level students in computer science | ||
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author | Yarvis, Mark D. Reiher, Peter Popek, Gerald J. |
author_facet | Yarvis, Mark D. Reiher, Peter Popek, Gerald J. |
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discipline | Informatik |
doi_str_mv | 10.1007/978-1-4615-1091-8 |
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illustrated | Not Illustrated |
indexdate | 2024-07-10T08:10:02Z |
institution | BVB |
isbn | 9781461510918 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-030538590 |
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physical | 1 Online-Ressource (XIX, 232 p) |
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publisher | Springer US |
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spelling | Yarvis, Mark D. Verfasser aut Conductor: Distributed Adaptation for Heterogeneous Networks by Mark D. Yarvis, Peter Reiher, Gerald J. Popek Boston, MA Springer US 2002 1 Online-Ressource (XIX, 232 p) txt rdacontent c rdamedia cr rdacarrier The Springer International Series in Engineering and Computer Science 688 Internet heterogeneity is driving a new challenge in application development: adaptive software. Together with the increased Internet capacity and new access technologies, network congestion and the use of older technologies, wireless access, and peer-to-peer networking are increasing the heterogeneity of the Internet. Applications should provide gracefully degraded levels of service when network conditions are poor, and enhanced services when network conditions exceed expectations. Existing adaptive technologies, which are primarily end-to-end or proxy-based and often focus on a single deficient link, can perform poorly in heterogeneous networks. Instead, heterogeneous networks frequently require multiple, coordinated, and distributed remedial actions. Conductor: Distributed Adaptation for Heterogeneous Networks describes a new approach to graceful degradation in the face of network heterogeneity - distributed adaptation - in which adaptive code is deployed at multiple points within a network. The feasibility of this approach is demonstrated by conductor, a middleware framework that enables distributed adaptation of connection-oriented, application-level protocols. By adapting protocols, conductor provides application-transparent adaptation, supporting both existing applications and applications designed with adaptation in mind. Conductor: Distributed Adaptation for Heterogeneous Networks introduces new techniques that enable distributed adaptation, making it automatic, reliable, and secure. In particular, we introduce the notion of semantic segmentation, which maintains exactly-once delivery of the semantic elements of a data stream while allowing the stream to be arbitrarily adapted in transit. We also introduce a secure architecture for automatic adaptor selection, protecting user data from unauthorized adaptation. These techniques are described both in the context of conductor and in the broader context of distributed systems. Finally, this book presents empirical evidence from several case studies indicating that distributed adaptation can allow applications to degrade gracefully in heterogeneous networks, providing a higher quality of service to users than other adaptive techniques. Further, experimental results indicate that the proposed techniques can be employed without excessive cost. Thus, distributed adaptation is both practical and beneficial. Conductor: Distributed Adaptation for Heterogeneous Networks is designed to meet the needs of a professional audience composed of researchers and practitioners in industry and graduate-level students in computer science Computer Science Processor Architectures The Computing Profession Theory of Computation Computer Communication Networks Computer science Microprocessors Computer communication systems Computers Reiher, Peter aut Popek, Gerald J. aut Erscheint auch als Druck-Ausgabe 9781461353904 https://doi.org/10.1007/978-1-4615-1091-8 Verlag URL des Erstveröffentlichers Volltext |
spellingShingle | Yarvis, Mark D. Reiher, Peter Popek, Gerald J. Conductor: Distributed Adaptation for Heterogeneous Networks Computer Science Processor Architectures The Computing Profession Theory of Computation Computer Communication Networks Computer science Microprocessors Computer communication systems Computers |
title | Conductor: Distributed Adaptation for Heterogeneous Networks |
title_auth | Conductor: Distributed Adaptation for Heterogeneous Networks |
title_exact_search | Conductor: Distributed Adaptation for Heterogeneous Networks |
title_full | Conductor: Distributed Adaptation for Heterogeneous Networks by Mark D. Yarvis, Peter Reiher, Gerald J. Popek |
title_fullStr | Conductor: Distributed Adaptation for Heterogeneous Networks by Mark D. Yarvis, Peter Reiher, Gerald J. Popek |
title_full_unstemmed | Conductor: Distributed Adaptation for Heterogeneous Networks by Mark D. Yarvis, Peter Reiher, Gerald J. Popek |
title_short | Conductor: Distributed Adaptation for Heterogeneous Networks |
title_sort | conductor distributed adaptation for heterogeneous networks |
topic | Computer Science Processor Architectures The Computing Profession Theory of Computation Computer Communication Networks Computer science Microprocessors Computer communication systems Computers |
topic_facet | Computer Science Processor Architectures The Computing Profession Theory of Computation Computer Communication Networks Computer science Microprocessors Computer communication systems Computers |
url | https://doi.org/10.1007/978-1-4615-1091-8 |
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