Letteratura scientifica selezionata sul tema "Multicast"

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Articoli di riviste sul tema "Multicast"

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Chen, Yue, Hongyong Jia, Kaixiang Huang, Julong Lan e Xincheng Yan. "A Secure Network Coding Based on Broadcast Encryption in SDN". Mathematical Problems in Engineering 2016 (2016): 1–8. http://dx.doi.org/10.1155/2016/7145138.

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By allowing intermediate nodes to encode the received packets before sending them out, network coding improves the capacity and robustness of multicast applications. But it is vulnerable to the pollution attacks. Some signature schemes were proposed to thwart such attacks, but most of them need to be homomorphic that the keys cannot be generated and managed easily. In this paper, we propose a novel fast and secure switch network coding multicast (SSNC) on the software defined networks (SDN). In our scheme, the complicated secure multicast management was separated from the fast data transmission based on the SDN. Multiple multicasts will be aggregated to one multicast group according to the requirements of services and the network status. Then, the controller will route aggregated multicast group with network coding; only the trusted switch will be allowed to join the network coding by using broadcast encryption. The proposed scheme can use the traditional cryptography without homomorphy, which greatly reduces the complexity of the computation and improves the efficiency of transmission.
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Shi, Lianmin, Yihuai Wang, Zhengqing Wen e Tao Peng. "Secure Data Delivery with Linear Network Coding for Multiple Multicasts with Multiple Streams in Internet of Things". Security and Communication Networks 2018 (13 giugno 2018): 1–13. http://dx.doi.org/10.1155/2018/3729046.

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With the rapid developments of Internet of Things (IoT), tremendous number of sensors are deployed in the environment to monitor and collect different types of information. When a group of sensors located with the same location (or area) should deliver their data to a set of users and they have connected with the same network device, e.g., base station or access point, the data delivery between them and their users can be treated as a single source multicast in the core network from the network device connected with them to the network devices connected with their users. Generally, in such a case, multiple multicast sessions exist in the network simultaneously. In this paper, we study two major considerations, i.e., transmission throughput and information security, for multiple multicasts with multiple streams in IoT by using linear network coding (LNC). Specifically, we jointly consider the transmission rate allocation, transmission topology selection, and secure LNC design for multiple multicasts to maximize the total secure weighted throughput (SWT), which is referred to as the secure delivery for multiple multicasts with multiple streams (SMMS) problem. To this end, we firstly consider the SMMS problem in the case that each sensor is connected with a fixed network device. We then study the SMMS problem when the source of each multicast can be selected from a set of nodes. For the first case, we formulate it to be a linear programming (LP), based on which we give the MORT algorithm to optimally solve it. On the other hand, for the second case, we first formulate it to be an integer linear programming (ILP) and then propose an efficient MBLP algorithm based on linear programming relaxation to obtain a suboptimal solution. Finally, we conduct extensive simulations to show the effectiveness and efficiency of the proposed algorithms.
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Yin, Wen Hua, Xiang Yu Bai e Xue Bin Ma. "Multicast Routing Protocols in Delay Tolerant Networks". Applied Mechanics and Materials 614 (settembre 2014): 490–96. http://dx.doi.org/10.4028/www.scientific.net/amm.614.490.

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Delay Tolerant Networks (DTNs) are characterized by intermittent connectivity, frequent partitions and extremely high latency. As a result, multicast routing protocols are difficult to implement in DTNs. Multicast can not only save network bandwidth, but also can reduce communication cost and improve the efficiency of data transfer. In recent years, various multicast routing protocols are proposed for DTNs. In order to provide a comprehensive understanding of these multicast routing protocols designed for DTNs, a survey of the multicast routing protocols was discussed in this paper. We analyzed two types of multicast routing protocols: the knowledge-based multicast routing protocol and the probability-based multicast protocol. We conclude the future research directions by discussing the advantages and disadvantages of various multicast routing protocols for DTNs, and provide some reference value for the further studies of multicast routing protocols of DTNs. Furthermore, in order to resolve the existing problems of DTNs (such as energy optimization); we will propose a social-aware energy constrained multicast routing algorithm in the future.
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Li, Bo, e Jinlin Wang. "An Identifier and Locator Decoupled Multicast Approach (ILDM) Based on ICN". Applied Sciences 11, n. 2 (8 gennaio 2021): 578. http://dx.doi.org/10.3390/app11020578.

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Many bandwidth-intensive applications (such as online live, online games, etc.) are more suitable for using multicast to transmit information. Due to the advantages in scalability, Shared Tree (ST) is more suitable for large-scale deployment than Source-Based Tree (SBT). However, in ST-based multicast, all multicast sources need to send multicast data to a center node called a core, which will lead to core overload and traffic concentration. Besides, most existing multicast protocols use the shortest path between the source or the core and each receiver to construct the multicast tree, which will result in traffic overload on some links. In this paper, we propose an Identifier and Locator Decoupled Multicast approach (ILDM) based on Information-Centric Networking (ICN). ILDM uses globally unique names to identify multicast services. For each multicast service, the mapping between the multicast service name and the addresses of multicast tree nodes is stored in the Name Resolution System (NRS). To avoid core overload and traffic aggregation, we presented a dynamic core management and selection mechanism, which can dynamically select a low-load core for each multicast service. Furthermore, we designed a path state-aware multicast tree node selection mechanism to achieve traffic load balancing by using low-load links more effectively. Experimental results showed that our proposed multicast approach outperformed some other multicast methods in terms of core load, number of join requests, link load, traffic concentration, and routing state.
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Li, Bo, e Jinlin Wang. "An Identifier and Locator Decoupled Multicast Approach (ILDM) Based on ICN". Applied Sciences 11, n. 2 (8 gennaio 2021): 578. http://dx.doi.org/10.3390/app11020578.

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Many bandwidth-intensive applications (such as online live, online games, etc.) are more suitable for using multicast to transmit information. Due to the advantages in scalability, Shared Tree (ST) is more suitable for large-scale deployment than Source-Based Tree (SBT). However, in ST-based multicast, all multicast sources need to send multicast data to a center node called a core, which will lead to core overload and traffic concentration. Besides, most existing multicast protocols use the shortest path between the source or the core and each receiver to construct the multicast tree, which will result in traffic overload on some links. In this paper, we propose an Identifier and Locator Decoupled Multicast approach (ILDM) based on Information-Centric Networking (ICN). ILDM uses globally unique names to identify multicast services. For each multicast service, the mapping between the multicast service name and the addresses of multicast tree nodes is stored in the Name Resolution System (NRS). To avoid core overload and traffic aggregation, we presented a dynamic core management and selection mechanism, which can dynamically select a low-load core for each multicast service. Furthermore, we designed a path state-aware multicast tree node selection mechanism to achieve traffic load balancing by using low-load links more effectively. Experimental results showed that our proposed multicast approach outperformed some other multicast methods in terms of core load, number of join requests, link load, traffic concentration, and routing state.
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Wang, Ling Xiu, e Ye Wen Cao. "Ant Colony-Based Load Balancing Algorithm for Multi-Source Multicast Networks". Advanced Materials Research 204-210 (febbraio 2011): 1399–402. http://dx.doi.org/10.4028/www.scientific.net/amr.204-210.1399.

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IP multicast protocols tend to construct a single minimum spanning tree for a multicast source (i.e., group), in which only a few internal nodes supply multicast traffic. In multicast networks especially with multiple multicast sources where bottleneck effects may occur frequently, frequently used multicast service leads to inefficient network utilization problems. This paper presents a new network utilization algorithm for multicasting called load distribution algorithm (LDA). The LDA algorithm uses selecting candidate path based on ant colony algorithm and multicast scheduling to distribute the contention multicast packets onto their corresponding candidate paths. The numerical results show that a multicast protocol with LDA has higher efficiency of resource utilization and meanwhile maintains less end to end delay compared with the original one without LDA.
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Li, Bo, Jinlin Wang, Xiaoyong Zhu, Jiali You e Linlin Hu. "An Adaptive Hierarchical Hybrid Multicast Based on Information-Centric Networking". Electronics 10, n. 23 (2 dicembre 2021): 3002. http://dx.doi.org/10.3390/electronics10233002.

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Many information-centric services have emerged, such as IPTV and video conferencing. These services put a lot of demands on scalable multicast communication. However, traditional IP multicast has low adoption because of its poor scalability. Therefore, some stateless multicast methods were proposed, which encapsulate the destination’s information into the packet header without requiring routers to maintain the multicast forwarding state. However, stateless multicast also faces some problems, such as ingress router overload, high forwarding overhead, packet redundancy, etc. In addition, most multicast methods cannot optimize the multicast tree because the multicast flow is simply forwarded along the shortest path tree from the source to receivers. This paper proposes an Adaptive Hierarchical Hybrid Multicast (AHHM) based on Information-Centric Networking. To balance the forwarding states and forwarding overhead, AHHM is designed as a two-layer structure, in which the upper layer establishes a stateful main tree and the lower layer establishes several stateless sub trees. The router on the main tree is defined as the multicast join node (MJN), and AHHM uses the Name Resolution System to maintain the mapping between each multicast group name and corresponding MJNs. To optimize the multicast transmission path, we designed the minimum cost selection strategy for users to select the appropriate MJN to join. Simulation results show that compared with Source-Specific Multicast (SSM) and Bit Index Explicit Replication (BIER), AHHM can not only reduce the multicast forwarding states but also reduce the control overhead and link load.
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Jiao, Yang. "Research of Tree-based Multicast Routing Protocols for Ad Hoc Networks". MATEC Web of Conferences 232 (2018): 01038. http://dx.doi.org/10.1051/matecconf/201823201038.

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Multicast is an important function of Ad Hoc network. It is a point to multipoint or multipoint to multipoint packet transmitting mode. Group management and maintenance, multicast packet routing are two factors of multicast protocol. This paper analyzes the classification of multicast protocols and focuses on tree based multicast protocols, compares several protocols and analyzes the advantages and disadvantages of tree based multicast protocols.
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Tian, Zhenyu, Jiali You e Linlin Hu. "A Reverse Shortest Path Tree-Based Multicast Joining Node Selection Method". Future Internet 15, n. 5 (23 aprile 2023): 156. http://dx.doi.org/10.3390/fi15050156.

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Network layer multicast is a powerful method for transmitting data from sources to multiple group members. When joining a multicast group, a group member first sends a request to a designated router (DR). Then, the DR selects a node in the existing multicast tree (known as a multicast joining node, or MJN) to establish a multicast distribution path from the MJN to itself. The MJN selection method runs on the DR and has a significant impact on the distribution of the multicast tree, that directly affects the load distribution in the network. However, the current MJN selection method cannot effectively detect the load status of the downlink multicast path in the case of asymmetric routing, leading to network congestion and limiting the number of multicast groups that the network can accommodate (multicast capacity). To solve this problem, we propose an MJN selection method based on the reverse shortest path tree (RSPT). RSPT can effectively detect the load status of downlink multicast paths in case of routing asymmetry. Based on the detection results of RSPT, DR can select the MJN with the lowest path load to join the multicast tree. Our experimental results indicate that compared to existing multicast methods, our method has a lower cost and delay, and can effectively balance the network load in the case of asymmetric routing, increasing multicast capacity by more than two times.
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Jin, Xing, Kan-Leung Cheng e S. H. Gary Chan. "Scalable Island Multicast for Peer-to-Peer Streaming". Advances in Multimedia 2007 (2007): 1–9. http://dx.doi.org/10.1155/2007/78913.

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Despite the fact that global multicast is still not possible in today's Internet, many local networks are already multicast-capable (the so-called multicast “islands”). However, most application-layer multicast (ALM) protocols for streaming have not taken advantage of the underlying IP multicast capability. As IP multicast is more efficient, it would be beneficial if ALM can take advantage of such capability in building overlay trees. In this paper, we propose a fully distributed protocol called scalable island multicast (SIM), which effectively integrates IP multicast and ALM. Hosts in SIM first form an overlay tree using a scalable protocol. They then detect IP multicast islands and employ IP multicast whenever possible. We study the key issues in the design, including overlay tree construction, island management, and system resilience. Through simulations on Internet-like topologies, we show that SIM achieves lower end-to-end delay, lower link stress, and lower resource usage than traditional ALM protocols.
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Tesi sul tema "Multicast"

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Cheuk, Kin-Wai. "Island multicast : the combination of IP-multicast with application-level multicast /". View abstract or full-text, 2004. http://library.ust.hk/cgi/db/thesis.pl?COMP%202004%20CHEUK.

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Thesis (M. Phil.)--Hong Kong University of Science and Technology, 2004.
Includes bibliographical references (leaves 34-37). Also available in electronic version. Access restricted to campus users.
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Boissière, Guillaume 1974. "Personalized multicast". Thesis, Massachusetts Institute of Technology, 1998. http://hdl.handle.net/1721.1/61100.

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Persson, Erold. "Multicast Time Distribution". Thesis, Linköping University, Department of Electrical Engineering, 2004. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-2274.

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The Swedish National Testing and Research Institute is maintaining the Swedish realization of the world time scale UTC, called UTC(SP). One area of research and development for The Swedish National Laboratory of Time and Frequency is time synchronization and how UTC(SP) can be distributed in Sweden. Dissemination of time information by SP is in Sweden mainly performed via Internet using the Network Time Protocol (NTP) as well as via a modem dial up service and a speaking clock (Fröken Ur). In addition to these services, time information from the Global Positioning System (GPS) and from the long-wave transmitter DCF77 in Germany, is also available in Sweden.

This master’s thesis considers how different available commercial communication systems could be used for multicast time distribution. DECT, Bluetooth, Mobile Telecommunication and Radio Broadcasting are different techniques that are investigated. One application of Radio Broadcasting, DARC, was found to be interesting for a more detailed study. A theoretical description of how DARC could be used for national time distribution is accomplished and a practical implementation of a test system is developed to evaluate the possibilities to use DARC for multicast time distribution.

The tests of DARC and the radio broadcast system showed that these could be interesting techniques to distribute time with an accuracy of a couple of milliseconds. This quality level is not obtained today but would be possible with some alterations of the system.

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Cai, Qingbo. "Layered Multicast Scheduling". Case Western Reserve University School of Graduate Studies / OhioLINK, 2008. http://rave.ohiolink.edu/etdc/view?acc_num=case1205436479.

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Yiu, Wai-Pun. "Secure overlay multicast /". View abstract or full-text, 2004. http://library.ust.hk/cgi/db/thesis.pl?COMP%202004%20YIU.

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Abstract (sommario):
Thesis (M. Phil.)--Hong Kong University of Science and Technology, 2004.
Includes bibliographical references (leaves 71-77). Also available in electronic version. Access restricted to campus users.
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Procházka, Tomáš. "Modelování protokolu PIM-SM v prostředí OMNeT++". Master's thesis, Vysoké učení technické v Brně. Fakulta informačních technologií, 2013. http://www.nusl.cz/ntk/nusl-236166.

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In this master's thesis I deal with modelling and simulating of multicast routing protocol PIM Sparse Mode in OMNeT++. I also describe basic information about multicast, protocol PIM-SM, its configuration and multicast data streams visualization in computer networks. The thesis is especially focused on design and implementation of PIM-SM in OMNeT++ and extension of ANSAINET library.
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Schier, Thomas. "IP-Multicast im Campusnetz". Universitätsbibliothek Chemnitz, 2000. http://nbn-resolving.de/urn:nbn:de:bsz:ch1-200000359.

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Gemeinsamer Workshop von Universitaetsrechenzentrum und Professur Rechnernetze und verteilte Systeme (Fakultaet fuer Informatik) der TU Chemnitz. Workshop-Thema: Infrastruktur der ¨Digitalen Universitaet¨ Der Vortrag gibt einen Überblick über den aktuellen Stand (April 2000) von IP-Multicast im Campusnetz und die MBONE-Anbindung der TU Chemnitz.
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Onal, Kerem. "Internet Multicast Congestion Control". Master's thesis, METU, 2004. http://etd.lib.metu.edu.tr/upload/12604726/index.pdf.

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Congestion control is among the fundamental problems of Internet multicast. It is an active research area with many challenges. In this study, an introduction to Internet congestion control and a brief literature survey of current multicast congestion control protocols is presented. Then two recently proposed &ldquo
single-rate, end-to-end, rate based&rdquo
class of protocols, namely LESBCC and TFMCC are evaluated with respect to their intersession fairness (TCP-friendliness), smoothness and responsiveness criteria. Throughout the experiments, which are conducted using a widely accepted network simulation tool &lsquo
ns&rsquo
, different topologies have been employed.
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Roumani, Ali Mohamad. "QoS-based multicast routing". Thesis, National Library of Canada = Bibliothèque nationale du Canada, 2000. http://www.collectionscanada.ca/obj/s4/f2/dsk1/tape3/PQDD_0034/MQ52943.pdf.

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Kullberg, Elis, e Hannes Junnila. "IPv6 multicast home proxy". Thesis, KTH, Kommunikationssystem, CoS, 2010. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-91104.

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The Internet is becoming increasingly fragmented, leading to a more heterogeneous end-user experience depending on the user's network location (i.e., point of attachment to the network). This is a consequence of several ongoing changes of the Internet. Different regions of the world are in different phases of their rollout of IPv6, making intercommunication increasingly challenging. Copyright legislation has caught up with ICT technology, but differences in licensing agreements may very from nation to nation which often hinders content being accessed beyond borders. Finally, several high-profile government attempts have been made to enforce stringent censorship of data. Therefore, we believe that a demand exists for simple consumer-oriented technologies for proxying and tunneling data between separate regions of the Internet. Furthermore, we believe that this demand will increase dramatically during the coming years. A key success factor for this next generation of proxies will be the ability to handle multicast IPv6 packets, as these packets represent the most probable distribution method for IPTV in the future. This thesis examines the challenges presented by IPv6 multicast-routing in the context of constructing a proxy. It also presents a best-practice solution to the problem of designing, implementing, and utilizing such a proxy. The thesis also contains a review of current IPv6 multicast routing technology. Several implementations are benchmarked against each other, with the goal of building a prototype for a consumer-oriented IPv6 multicast proxy. The prototype is presented and was tested. These tests demonstrate the functionality of the prototype proxy and reveal areas where the prototype could be improved. Finally a possible capitalization strategy is suggested.
Internet utvecklas mot att bli mer fragmenterat. Detta leder till en heterogen användarupplevelse beroende på uppkopplingspunkt. Utvecklingen är en konsekvens av flera pågående trender. Världens olika regioner ligger i ofas i utbyggnaden av IPv6 vilket medför nya tekniska utmaningar. Samtidigt har upphovsrättslagstiftningen hunnit ikapp teknikutvecklingen, så att länder med olika licensieringsmodeller inte kan dela innehåll. Slutligen försöker flera länder aktivt censurera datatrafik. Som konsekvens av detta ökar behovet för enkla konsumentorienterade metoder för att knyta ihop olika delar av Internet, så att åtkomst till data garanteras oavsett uppkopplingspunkt. Därmed förutspår vi att efterfrågan på produkter baserade på sofistikerad tunnelteknik kommer öka under de kommande åren. Denna rapport undersöker de utmaningar IPv6 multicast routing medför i samband med byggandet av en IPv6 multicast proxy. Rapporten presenterar en grundlig teoretisk genomgång av tekniken bakom IPv6 multicast routing. Vidare föreslås ett optimalt tillvägagångssätt för att designa, bygga och använda en sådan proxy. Flera existerande tekniker för multicast forwarding utvärderas och jämförs. Utifrån utvärderingen byggdes tre implementeringar av en IPv6 multicast proxy. Därefter analyseras dessa, tillsammans med förslag för fortsatta studier. Slutligen presenteras en möjlig kapitaliseringsstrategi för tekniken.
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Libri sul tema "Multicast"

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Andre, Schiper, Stephenson Pat e United States. National Aeronautics and Space Administration., a cura di. Fast causal multicast. [Washington, D.C: National Aeronautics and Space Administration, 1990.

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Miller, C. Kenneth. Multicast networking and applications. Reading, Mass: Addison-Wesley, 1999.

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Developing IP multicast networks. Indianapolis, IN: Cisco Press, 1999.

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Wybranietz, Dieter. Multicast-Kommunikation in verteilten Systemen. Berlin: Springer, 1990.

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Wybranietz, Dieter. Multicast-Kommunikation in verteilten Systemen. Berlin, Heidelberg: Springer Berlin Heidelberg, 1990. http://dx.doi.org/10.1007/978-3-642-75689-4.

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Benslimane, Abderrahim, a cura di. Multimedia Multicast on the Internet. London, UK: ISTE, 2007. http://dx.doi.org/10.1002/9780470612040.

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Rosenberg, Eric. A Primer of Multicast Routing. Boston, MA: Springer US, 2012. http://dx.doi.org/10.1007/978-1-4614-1873-3.

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Wittmann, Ralph. Multicast communication: Protocols and applications. San Francisco, CA: Morgan Kaufmann, 2001.

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service), SpringerLink (Online, a cura di. A Primer of Multicast Routing. Boston, MA: Springer US, 2012.

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Ahamad, Mustaque. Multicast communication in distributed systems. Los Alamitos, Calif: IEEE Computer Society Press, 1990.

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Capitoli di libri sul tema "Multicast"

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Weik, Martin H. "multicast". In Computer Science and Communications Dictionary, 1050. Boston, MA: Springer US, 2000. http://dx.doi.org/10.1007/1-4020-0613-6_11858.

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Schwenk, Jörg. "Multicast-Netzwerke". In Sicherheit und Kryptographie im Internet, 145–61. Wiesbaden: Vieweg+Teubner Verlag, 2002. http://dx.doi.org/10.1007/978-3-322-93903-6_6.

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Paul, Sanjoy. "Multicast Applications". In Multicasting on the Internet and its Applications, 369–83. Boston, MA: Springer US, 1998. http://dx.doi.org/10.1007/978-1-4615-5713-5_34.

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Paul, Sanjoy. "IP Multicast". In Multicasting on the Internet and its Applications, 29–38. Boston, MA: Springer US, 1998. http://dx.doi.org/10.1007/978-1-4615-5713-5_4.

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Wang, Weizhao, Xiang-Yang Li e Yu Wang. "Truthful Multicast". In Encyclopedia of Algorithms, 2271–74. New York, NY: Springer New York, 2016. http://dx.doi.org/10.1007/978-1-4939-2864-4_437.

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Schwenk, Jörg. "Multicast-Netzwerke". In Sicherheit und Kryptographie im Internet, 158–75. Wiesbaden: Vieweg+Teubner, 2010. http://dx.doi.org/10.1007/978-3-8348-9665-0_6.

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Schwenk, Jörg. "Multicast-Netzwerke". In Sicherheit und Kryptographie im Internet, 152–69. Wiesbaden: Vieweg+Teubner Verlag, 2005. http://dx.doi.org/10.1007/978-3-322-95321-6_6.

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Efstathiou, Elias C., e George C. Polyzos. "Mobile Multicast". In Mobile and Wireless Internet, 217–43. Boston, MA: Springer US, 2003. http://dx.doi.org/10.1007/978-1-4615-0225-8_9.

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Kao, Ming-Yang. "Atomic Multicast". In Encyclopedia of Algorithms, 76. Boston, MA: Springer US, 2008. http://dx.doi.org/10.1007/978-0-387-30162-4_39.

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Wang, Weizhao, Xiang-Yang Li e Yu Wang. "Truthful Multicast". In Encyclopedia of Algorithms, 973–75. Boston, MA: Springer US, 2008. http://dx.doi.org/10.1007/978-0-387-30162-4_437.

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Atti di convegni sul tema "Multicast"

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Dias, Lucas, Tiago Antônio Rizzetti e Jean Garcia. "Uma arquitetura para prover autenticidade em comunicações Multicast". In XVII Escola Regional de Redes de Computadores. Sociedade Brasileira de Computação - SBC, 2019. http://dx.doi.org/10.5753/errc.2019.9225.

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De maneira geral, em comunicações multicast basta saber qual o endereço multicast e realizar requisições para se juntar a mesma, entretanto, dessa forma é possível que qualquer agente malicioso posso enviar mensagens que não tenham interesse para a mesma. Para isso, o trabalho traz uma arquitetura ponto-a-ponto com autenticação das entidades para distribuição de chaves envolvidas nas comunicações multicast.
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2

Diemer, Maglan Cristiano, e Marinho Pilla Barcellos. "Preenchendo o Vazio entre Comunicação em Grupo e Multicast Escalável". In Workshop de Testes e Tolerância a Falhas. Sociedade Brasileira de Computação - SBC, 2002. http://dx.doi.org/10.5753/wtf.2002.23402.

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Certos sistemas de comunicação em grupo necessitam de um protocolo de transporte multicast subjacente para operarem de forma eficiente sobre a Internet. Por outro lado, protocolos multicast não oferecem a confiabilidade e as garantias desejadas para aplicações distribuídas. Em geral, os sistemas de comunicação em grupo oferecem confiabilidade mas não são escaláveis. Este trabalho tem o objetivo de aproximar os protocolos multicast escaláveis dos sistemas de comunicação em grupo propondo uma arquitetura para trabalharem juntos. Será utilizado o sistema de comunicação em grupo NewTOP [11] e o protocolo multicast PRMP [4].
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Lee, Shinhyoung, Seehwan Yoo, Sangsun Byun e Chuck Yoo. "BO-Multicast: Boolean Operation Multicast". In 2006 Asia-Pacific Conference on Communications. IEEE, 2006. http://dx.doi.org/10.1109/apcc.2006.255950.

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4

Horita, Ricardo Yoshio, Luiz E. C. Bergamo e Luis Carlos Trevelin. "Avaliação de Desempenho de Serviço Multicast em Redes IP sobre ATM". In Workshop em Sistemas Computacionais de Alto Desempenho. Sociedade Brasileira de Computação, 2001. http://dx.doi.org/10.5753/wscad.2001.19121.

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ATM (Asynchronous Transfer Mode) é uma tecnologia que permite a transferência de dados multimidia em uma única conexão física, com elevadas taxas de transmissão (acima das tecnologias de redes existentes), possibilitando, ainda, reservar Qualidade de Serviço necessária para a transmissão de áudio e vídeo. O modelo IP Clássico sobre ATM busca adaptar o protocolo IP utilizado nas redes atuais à tecnologia ATM. A transmissão IP multicast sobre ATM permite otimizar a comunicação de grupos de usuários utilizando redes IP sobre ATM. A transmissão de dados IP multicast sobre ATM utilizando UNI 3.0/3.1 pode ser feita através de dois sistemas: VC Meshes ou com servidor multicast. Este trabalho tem por objetivo modelar e avaliar o desempenho das redes IP multicast sobre ATM utilizando UNI 3.0/3.1, buscando fazer uma análise comparativa entre a utilização de VC Meshes e com Servidor Multicast (MCS).
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5

"Multicast". In Proceedings. 2006 31st IEEE Conference on Local Computer Networks. IEEE, 2006. http://dx.doi.org/10.1109/lcn.2006.322140.

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6

Cheuk, K. W. R., S. H. G. Chan e J. Y. B. Lee. "Island multicast: the combination of IP multicast with application-level multicast". In 2004 IEEE International Conference on Communications (IEEE Cat. No.04CH37577). IEEE, 2004. http://dx.doi.org/10.1109/icc.2004.1312750.

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7

Li, Binqi, Yuan Zhu, Ke Lu, Xu Zhong e Zhipeng Sun. "Multicast Transmission in DDS Based on the Client-Server Discovery Model". In WCX SAE World Congress Experience. 400 Commonwealth Drive, Warrendale, PA, United States: SAE International, 2024. http://dx.doi.org/10.4271/2024-01-2392.

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<div class="section abstract"><div class="htmlview paragraph">The functions of modern intelligent connected vehicles are becoming increasingly complex and diverse, and software plays an important role in these advanced features. In order to decouple the software and the hardware and improve the portability and reusability of code, Service-Oriented Architecture (SOA) has been introduced into the automotive industry. Data Distribution Service (DDS) is a widely used communication middleware which provides APIs for service-oriented Remote Procedure Call (RPC) and Service-Oriented Communications (SOC). By using DDS, application developers can flexibly define the data format according to their needs and transfer them more conveniently by publishing and subscribing to the corresponding topic. However, current open source DDS protocols all use unicast communication during the transmission of user data. When there are multiple data readers subscribing to the same topic, the data writer needs to send a unicast message to each data reader individually. Obviously, this unicast transmission method not only brings queuing delay to the later readers, but also reduces the transmission efficiency of DDS. This paper proposes a multicast transmission method based on the client-server discovery mechanism, where the discovery server allocates a multicast address and a listening port to a specific topic. In this way, the data writer only needs to send one multicast message and then all data readers will receive this data message. To compare the performance of the unicast and the multicast transmission mechanisms, we designed multicast working conditions to test their performance in terms of latency and sending efficiency. Experimental results show that the multicast transmission method can eliminate the extra delay generated by the original unicast method, and can significantly improve the transmission efficiency of DDS.</div></div>
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8

Tze-Ping Low, Y. W. Peter Hong e C. C. Jay Kuo. "Opportunistic Multicast Scheduling with Multiple Multicast Groups". In 2011 IEEE Global Communications Conference (GLOBECOM 2011). IEEE, 2011. http://dx.doi.org/10.1109/glocom.2011.6134016.

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Kasera, Sneha K., Jim Kurose e Don Towsley. "Scalable reliable multicast using multiple multicast groups". In the 1997 ACM SIGMETRICS international conference. New York, New York, USA: ACM Press, 1997. http://dx.doi.org/10.1145/258612.258676.

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Tolkas, Michail, Michail Bletsas e Pantelis Angelidis. "Handling Multicast Video over Non Multicast Networks". In 2011 15th Panhellenic Conference on Informatics (PCI). IEEE, 2011. http://dx.doi.org/10.1109/pci.2011.14.

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Rapporti di organizzazioni sul tema "Multicast"

1

Cheshire, S., e M. Krochmal. Multicast DNS. RFC Editor, febbraio 2013. http://dx.doi.org/10.17487/rfc6762.

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Abrahamsson, M., T. Chown, L. Giuliano e T. Eckert. Deprecating Any-Source Multicast (ASM) for Interdomain Multicast. RFC Editor, agosto 2020. http://dx.doi.org/10.17487/rfc8815.

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3

Armstrong, S., A. Freier e K. Marzullo. Multicast Transport Protocol. RFC Editor, febbraio 1992. http://dx.doi.org/10.17487/rfc1301.

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4

Emberson, A. TFTP Multicast Option. RFC Editor, febbraio 1997. http://dx.doi.org/10.17487/rfc2090.

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Haberman, B., e J. Martin. Multicast Router Discovery. RFC Editor, dicembre 2005. http://dx.doi.org/10.17487/rfc4286.

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McWalter, D., D. Thaler e A. Kessler. IP Multicast MIB. RFC Editor, dicembre 2007. http://dx.doi.org/10.17487/rfc5132.

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Eckert, T., R. Aggarwal e Y. Rekhter. MPLS Multicast Encapsulations. A cura di E. Rosen. RFC Editor, agosto 2008. http://dx.doi.org/10.17487/rfc5332.

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Venaas, S. Multicast Ping Protocol. RFC Editor, dicembre 2011. http://dx.doi.org/10.17487/rfc6450.

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Macker, J., a cura di. Simplified Multicast Forwarding. RFC Editor, maggio 2012. http://dx.doi.org/10.17487/rfc6621.

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Bumgardner, G. Automatic Multicast Tunneling. RFC Editor, febbraio 2015. http://dx.doi.org/10.17487/rfc7450.

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