Academic literature on the topic 'Protocollo SPI'

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Journal articles on the topic "Protocollo SPI"

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Salcedo, Octavio, Danilo López, and Cesar A. Hernández. "Estudio comparativo de la utilización de ancho de banda con los protocolos SIP e IAX." Revista Tecnura 16, no. 34 (December 4, 2012): 171. http://dx.doi.org/10.14483/udistrital.jour.tecnura.2012.4.a12.

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Dentro de los ambientes de voz sobre IP, existen tres protocolos que resuelven el problema de la señalización de paquetes de voz. A estos protocolos se les conoce con el nombre de “highlight protocols” (protocolos de realce) y son: H323, SIP e IAX. Este artículo se enfoca, particularmente, en una de las diferencias específicas entre SIP e IAX: el uso del ancho de banda, que es un parámetro esencial al momento de diseñar y optimizar una red VoIP para una compañía. Uno de los factores más importantes que se deben considerar al momento de construir redes VoIP es la capacidad de planeación adecuada. Con respecto a la capacidad de planeación, el cálculo del ancho de banda es un factor importante que se debe considerar al momento de diseñar y solucionar problemas en redes de voz empaquetada; de manera tal, que se garantice calidad en la voz. Este artículo brinda explicaciones importantes acerca del uso del ancho de banda sobre las redes VoIP. Se incluyen fundamentos teóricos y cálculos de ancho de banda por flujo para una troncal VoIP, en la cual se habilitan varios codecs de voz (específicamente G.711 y GSM) junto con un protocolo VoIP tal como SIP e IAX.
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Cha, Eun-Chul, and Hyoung-Kee Choi. "Evaluation of Security Protocols for the Session Initiation Protocol." KIPS Transactions:PartC 14C, no. 1 (February 28, 2007): 55–64. http://dx.doi.org/10.3745/kipstc.2007.14-c.1.055.

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Leens, Frederic. "An introduction to I2C and SPI protocols." IEEE Instrumentation & Measurement Magazine 12, no. 1 (February 2009): 8–13. http://dx.doi.org/10.1109/mim.2009.4762946.

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Visconti, P., G. Giannotta, R. Brama, P. Primiceri, A. Malvasi, and A. Centuori. "FEATURES, OPERATION PRINCIPLE AND LIMITS OF SPI AND I2C COMMUNICATION PROTOCOLS FOR SMART OBJECTS: A NOVEL SPI-BASED HYBRID PROTOCOL ESPECIALLY SUITABLE FOR IoT APPLICATIONS." International Journal on Smart Sensing and Intelligent Systems 10, no. 2 (2017): 262–95. http://dx.doi.org/10.21307/ijssis-2017-211.

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Abadi, Martı́n, and Andrew D. Gordon. "A Calculus for Cryptographic Protocols: The Spi Calculus." Information and Computation 148, no. 1 (January 1999): 1–70. http://dx.doi.org/10.1006/inco.1998.2740.

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Kulkarni, Aman, and S. M. Sakthivel. "UVM methodology based functional Verification of SPI Protocol." Journal of Physics: Conference Series 1716 (December 2020): 012035. http://dx.doi.org/10.1088/1742-6596/1716/1/012035.

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Tae, Jang-Won, and Jin-Suk Kwak. "A Study on the VoIP Security Countermeasure of SIP-based." Journal of Korea Navigation Institute 17, no. 4 (August 30, 2013): 421–28. http://dx.doi.org/10.12673/jkoni.2013.17.4.421.

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Deering, S. E. "SIP: Simple Internet Protocol." IEEE Network 7, no. 3 (May 1993): 16–28. http://dx.doi.org/10.1109/65.224022.

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Gurbani, Vijay K., Tsun-Chieh Chiang, and Suresh Kumar. "SIP: A routing protocol." Bell Labs Technical Journal 6, no. 2 (August 14, 2002): 136–52. http://dx.doi.org/10.1002/bltj.10.

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Pironti, Alfredo, and Riccardo Sisto. "Provably correct Java implementations of Spi Calculus security protocols specifications." Computers & Security 29, no. 3 (May 2010): 302–14. http://dx.doi.org/10.1016/j.cose.2009.08.001.

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Dissertations / Theses on the topic "Protocollo SPI"

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Pastore, Cesare. "Progetto software/firmware di un’interfaccia per acquisizione dati da un nodo sensore basato su microcontrollore." Bachelor's thesis, Alma Mater Studiorum - Università di Bologna, 2017. http://amslaurea.unibo.it/12957/.

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L'elaborato descrive le modalità di progettazione e programmazione di un firmware per il microcontrollore PIC16F1823 che implementa lo scambio di dati tra un nodo sensore e un personal computer, tramite i protocolli UART e SPI.
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Costa, Daniel Gouveia. "Uma arquitetura baseada em SCTP e SIP para suporte a aplica??es VoIP m?veis e a especifica??o formal do seu m?dulo de controle." Universidade Federal do Rio Grande do Norte, 2006. http://repositorio.ufrn.br:8080/jspui/handle/123456789/15461.

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Made available in DSpace on 2014-12-17T14:56:09Z (GMT). No. of bitstreams: 1 DanielGC.pdf: 538651 bytes, checksum: 34bfc134a2af9166b846b044a2968b16 (MD5) Previous issue date: 2006-05-25
New versions of SCTP protocol allow the implementation of handover procedures in the transport layer, as well as the supply of a partially reliable communication service. A communication architecture is proposed herein, integrating SCTP with the session initiation protocol, SIP, besides additional protocols. This architecture is intended to handle voice applications over IP networks with mobility requirements. User localization procedures are specified in the application layer as well, using SIP, as an alternative mean to the mechanisms used by traditional protocols, that support mobility in the network layer. The SDL formal specification language is used to specify the operation of a control module, which coordinates the operation of the system component protocols. This formal specification is intended to prevent ambiguities and inconsistencies in the definition of this module, assisting in the correct implementation of the elements of this architecture
Novas vers?es do protocolo SCTP permitem sua utiliza??o para implementa??o de mecanismos de handover em n?vel de transporte, bem como o fornecimento de um servi?o de transmiss?o de dados parcialmente confi?vel. Integrando o SCTP com o protocolo de inicia??o de sess?es, SIP, al?m de utilizar adicionalmente servi?os de outros protocolos auxiliares, uma arquitetura de comunica??o p?de ser proposta, a fim de atender ?s aplica??es de voz sobre IP com requisitos de mobilidade. S?o especificados ainda os procedimentos de localiza??o de usu?rio em n?vel de aplica??o, utilizando o protocolo SIP, como alternativa aos mecanismos empregados por protocolos tradicionais que suportam mobilidade na camada de rede. A linguagem de especifica??o formal SDL ? utilizada para especificar o funcionamento de um M?dulo de Controle, relacionado ? opera??o coordenada dos protocolos que comp?e a arquitetura. Pretende-se assim evitar ambig?idades e inconsist?ncias na defini??o desse m?dulo, o que pode auxiliar em implementa??es corretas de elementos dessa arquitetura
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El, Sawda Samer. "Contribution à l'amélioration de la sécurité pour le protocole SIP (Session Initiation Protocol)." Paris 6, 2011. http://www.theses.fr/2011PA066019.

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SIP est un protocole de signalisation de la couche application pour créer, modifier et terminer des sessions, pour les appels téléphoniques sur Internet et la diffusion et les conférences multimédia. Nous proposons dans cette thèse l’extension « SIP SIGN » permettant de signer quelques champs d’entête pour fournir un service de non-répudiation et une authentification de bout-en-bout tout en utilisant le protocole TLS ou DTLS. Nous proposons aussi «SIP SecLite » comme une solution complète, simple, efficace et rapide pour sécuriser les communications SIP en fournissant les propriétés de sécurité exigées par SIP. Notre solution permet de réaliser la sécurité de bout en bout d’un réseau SIP tout en assurant la confidentialité et l'intégrité des messages SIP, la non-répudiation de la communication, l’anonymat par rapport aux serveurs intermédiaires et la protection d’identité et des données privées des utilisateurs finaux.
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Raappana, M. (Markku). "Multipurpose synthesizable SystemVerilog Spi-Bus protocol verification system." Master's thesis, University of Oulu, 2017. http://urn.fi/URN:NBN:fi:oulu-201702231190.

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The complexity of System-on-a-Chip (SoC) is continuing to increase due to the shrinking die size, increase in the number of sub-modules, power efficiency, performance, higher functionality and used protocols. This has an impact on the verification process related to the overall design process. For the verification process, there are commercial products that can be applied in order to verify and test certain Intellectual Properties (IP) but also platforms that lack these tools. This thesis focuses on the issue where a system has to be constructed that helps the verification and testing process of a data bus protocol used by the Device Under Testing (DUT). The study of the Serial Peripheral Interface (SPI) gives the examples of some issues that can be faced during applying this data bus protocol to any given system. Different kinds of testing and verifying methods are addressed in order to show what the tools can be when applying new DUT to a system or examining the data bus protocol it uses. The flow of a design process is studied by showing the iterations of a particular system that was to be created to meet the need that were introduced while examining the issues relating this subject. This flow can be said to start from ground level and end to the final iteration where the system could be created from. The functionality and structure of a Multipurpose Verification System that was created during this thesis are explained. The proofing process of this system is showed by examining the simulation and synthesis reports. The outcomes and future development ideas are discussed as well. This thesis showed that the study in hand has benefits to Nokia as the applying company and the system could be added to the company tool library after modifying it to be used as a stand-alone IP
Järjestelmäpiirien (SOC) kompleksisuus on jatkuvassa kasvussa johtuen johdinpiirien pienenemisestä, alijärjestelmien määrän kasvusta, vaatimuksista tehonkulutuksessa, suorituskyvyn kasvusta, toiminnallisuuden kasvusta ja käytettävistä protokollista. Näillä attribuuteilla on vaikutusta kokonaissuunnitteluprosessin verifiointiprosessiin. Verifiointiprosessiin on tällä hetkellä saatavilla kaupallisia sovelluksia, joita voidaan hyödyntää kolmannen osapuolen suunnitteleman systeemin testaukseen ja verifioitiin. Samalla on myös olemassa testausalustoja, joista nämä sovellukset puuttuvat. Tämä diplomityö keskittyy tilanteeseen, jossa täytyy rakentaa systeemi joka helpottaa testattavassa laitteessa (DUT) käytettävän tietoväyläprotokollan verifiointi- ja testausprosessia. Serial Peripheral Interface (SPI)-väyläprotokollan tutkimus tuo esiin esimerkkejä, joihin voidaan törmätä, kun kyseistä väyläprotokollaa käytetään missä tahansa sitä hyödyntävässä systeemissä. Diplomityössä tutkitaan erilaisia testaus- ja verifiointimetodeja, jotta voidaan osoittaa mitä erilaisia työkaluja voidaan hyödyntää, kun uusi testattava laite lisätään olemassa olevaan systeemiin tai tutkitaan tämän käyttämää väyläprotokollaa. Kokonaissuunnitteluprosessia on tutkittu esittelemällä tietyn järjestelmän iteraatiovaiheita, joka kehitettiin ratkaisemaan aiemmin tarkasteltuja, tähän aiheeseen liittyviä ongelmia. Suunnitteluprosessin voidaan katsoa alkaneen tilanteesta, jossa mitään konkreettista ei ollut vielä valmiina ja päättyvän tilanteeseen jossa järjestelmän viimeinen iteraatio voitiin alkaa konkretisoimaan. Monikäyttöisen syntetisoituvan verifiointijärjestelmän funktionaalisuus ja rakenne esitellään. Tutkimalla simulointi- ja synteesiraportteja näytetään tämän järjestelmän varmennusprosessi. Diplomityön toteutumista ja tulevaisuuden jatkokehitysideoista keskustellaan. Tämä diplomityö osoittaa, että Nokia soveltajayrityksenä pystyy hyödyntämään tämän tutkielman lopputulemia. Lisäksi työn tulokset voidaan lisätä, modifioinnin jälkeen, yrityksen komponenttikirjastoon toimimaan itsenäisenä instanssina
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Lakay, Elthea Trevolee. "SIP-based content development for wireless mobile devices with delay constraints." Thesis, University of the Western Cape, 2006. http://etd.uwc.ac.za/index.php?module=etd&action=viewtitle&id=gen8Srv25Nme4_9048_1182233050.

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SIP is receiving much attention these days and it seems to be the most promising candidate as a signaling protocol for the current and future IP telephony services. Realizing this, there is the obvious need to provide a certain level of quality comparable to the traditional telephone service signalling system. Thus, we identified the major costs of SIP, which were found to be delay and security. This thesis discusses the costs of SIP, the solutions for the major costs, and the development of a low cost SIP application. The literature review of the components used to develop such a service is discussed, the networks in which the SIP is used are outlined, and some SIP applications and services previously designed are discussed. A simulation environment is then designed and implemented for the instant messaging service for wireless devices. This environment simulates the average delay in LAN and WLAN in different scenarios, to analyze in which scenario the system has the lowest costs and delay constraints.

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Sharma, Neena. "SERIAL PROTOCOL BRIDGE." University of Cincinnati / OhioLINK, 2012. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1352403332.

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Camilletti, Luca. "Comunicazione sicura mediante il protocollo SIP; uno studio di fattibilità." Bachelor's thesis, Alma Mater Studiorum - Università di Bologna, 2012. http://amslaurea.unibo.it/3141/.

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Mosavat, Vahid. "SIP Extensions for the eXtensible Service Protocol." Thesis, KTH, Mikroelektronik och Informationsteknik, IMIT, 2003. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-93107.

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The switched telephony network was designed for voice calls. Expansion of datacommunication has lead to a wide range of experimentation to create new services. Theses services take place outside the network. When adding new services we currently encounter problems due to limitations of the simple devices at end points. Theo Kanter has proposed a new model to remove these limitations; this model is called “Adaptive Personal Mobile Communication”. The model consists of several components in the application layer of ISO standard. This model is based on peer to peer connections and the purpose of this model is to move services from within the networks to end point devices and avoid using central servers within the network. The Session Initiation Protocol (SIP) for establishing multimedia sessions allows us to move the point of integration for multimedia service integration out to the end-points. This project concerns the implementing of a prototype of this model as an SIP extension along with it evaluation. SIP offer addressing, naming, and localization of resources in this project. This report presents different design alternatives for XSP as an SIP extension, and the chosen model presents as a result of comparing of these design alternatives.
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Evloguieva, Evelina. "Light-weight SIP protocol for internet telephony services." Thesis, McGill University, 1999. http://digitool.Library.McGill.CA:80/R/?func=dbin-jump-full&object_id=30117.

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The technology that governs the Telecommunications today is based on the Intelligent Networks (IN). But we can see that the Internet Telephony is emerging rapidly and that it has good chances to become the basis for the next generation telecommunication networks. There are two major competing standards for Internet Telephony - H.323 protocol stack and SIP. This thesis focuses on SIP and the Value Added Services in the SIP based Internet Telephony. It describes and analyzes two existing SIP based approaches to the VAS implementation and presents new hybrid SIP-IN approach based on the concept of reusing the existing IN nodes. The major part of the study is devoted to the design of a lightweight protocol, built as SIP extension, providing for VAS in the hybrid SIP-IN environment. To illustrate the hybrid SIP-IN approach to VAS implementation and the SIPext protocol operation the execution of the Freephone and the Call Distribution services is described. Finally the functional modules supporting the SIPext communication in a hybrid SIP-IN architecture are outlined.
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Evloguieva, Evelina. "Light-weight SIP protocol for Internet telephony services." Thesis, National Library of Canada = Bibliothèque nationale du Canada, 2000. http://www.collectionscanada.ca/obj/s4/f2/dsk1/tape3/PQDD_0020/MQ55052.pdf.

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Books on the topic "Protocollo SPI"

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SIP demystified. New York: McGraw-Hill, 2002.

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1968-, Sladden Darryl, and Zakaria Swapan, A. T. M., 1970-, eds. SIP trunking. Indianapolis, Ind: Cisco Press, 2010.

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Boulton, Chris. Understanding SIP servlets 1.1. Boston: Artech House, 2009.

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Perea, Rogelio Martínez. Internet multimedia communications using SIP: A modern approach including Java practice. Amsterdam: Elsevier/Morgan Kaufmann, 2008.

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Session Initiation Protocol (SIP). New York: McGraw-Hill, 2008.

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Johnston, Alan B. SIP: Understanding the Session Initiation Protocol. 2nd ed. Boston, MA: Artech House, 2003.

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SIP: Understanding the Session Initiation Protocol. 2nd ed. Boston: Artech House, 2004.

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Johnston, Alan B. SIP: Understanding the Session Initiation Protocol. 3rd ed. Boston: Artech House, 2009.

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Session Initiation Protocol (SIP): Controlling convergent networks. New York: McGraw-Hill, 2008.

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Andy, McDermott, ed. The shadow protocol. New York: Dell, 2014.

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Book chapters on the topic "Protocollo SPI"

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Subero, Armstrong. "USART, SPI, and I2C: Serial Communication Protocols." In Programming PIC Microcontrollers with XC8, 209–76. Berkeley, CA: Apress, 2017. http://dx.doi.org/10.1007/978-1-4842-3273-6_9.

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Perez, André. "SIP and SDP Protocols." In Voice Over LTE, 103–36. Hoboken, NJ USA: John Wiley & Sons, Inc., 2013. http://dx.doi.org/10.1002/9781118648827.ch4.

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Abadi, Martín, and Andrew D. Gordon. "Reasoning about cryptographic protocols in the spi calculus." In CONCUR '97: Concurrency Theory, 59–73. Berlin, Heidelberg: Springer Berlin Heidelberg, 1997. http://dx.doi.org/10.1007/3-540-63141-0_5.

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Gjessing, Stein, David B. Gustavson, James R. Goodman, David V. James, and Ernst H. Kristiansen. "The SCI Cache Coherence Protocol." In Scalable Shared Memory Multiprocessors, 219–37. Boston, MA: Springer US, 1992. http://dx.doi.org/10.1007/978-1-4615-3604-8_12.

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Coogan, Kevin. "Plots and Protocols." In The Spy Who Would Be Tsar, 269–80. London: Routledge, 2021. http://dx.doi.org/10.4324/9781003051114-13.

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Najm, Elie, and Frank Olsen. "Protocol verification with reactive PROMELA/RSPIN." In The SPIN Verification System, 111–31. Providence, Rhode Island: American Mathematical Society, 1997. http://dx.doi.org/10.1090/dimacs/032/09.

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Jehmlich, Nico, and Martin von Bergen. "Protocol for Performing Protein Stable Isotope Probing (Protein-SIP) Experiments." In Springer Protocols Handbooks, 199–214. Berlin, Heidelberg: Springer Berlin Heidelberg, 2016. http://dx.doi.org/10.1007/8623_2016_209.

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Azrour, Mourade, Yousef Farhaoui, and Azidine Guezzaz. "Experimental Validation of New SIP Authentication Protocol." In Big Data and Networks Technologies, 1–11. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-23672-4_1.

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Shukla, Sandeep, Daniel Rosenkrantz, and S. Ravi. "A simulation and validation tool for self-stabilizing protocols." In The SPIN Verification System, 153–64. Providence, Rhode Island: American Mathematical Society, 1997. http://dx.doi.org/10.1090/dimacs/032/11.

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Döring, Andreas C., Wolfgang Obelöer, Gunther Lustig, and Erik Maehle. "Low-Level SCI Protocols and Their Application to Flexible Switches." In SCI: Scalable Coherent Interface, 105–23. Berlin, Heidelberg: Springer Berlin Heidelberg, 1999. http://dx.doi.org/10.1007/10704208_8.

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Conference papers on the topic "Protocollo SPI"

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Jia, Chao, and Shiqin Cao. "EFT research of SPI-DeviceNet protocol converter." In 2016 IEEE International Conference on Mechatronics and Automation. IEEE, 2016. http://dx.doi.org/10.1109/icma.2016.7558672.

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Trivedi, Dvijen, Aniruddha Khade, Kashish Jain, and Ruchira Jadhav. "SPI to I2C Protocol Conversion Using Verilog." In 2018 Fourth International Conference on Computing Communication Control and Automation (ICCUBEA). IEEE, 2018. http://dx.doi.org/10.1109/iccubea.2018.8697415.

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Bremler-Barr, Anat, Ronit Halachmi-Bekel, and Jussi Kangasharju. "Unregister Attacks in SIP." In 2006 2nd IEEE Workshop on Secure Network Protocols. IEEE, 2006. http://dx.doi.org/10.1109/npsec.2006.320344.

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Avalle, Matteo, Alfredo Pironti, Riccardo Sisto, and Davide Pozza. "The Java SPI Framework for Security Protocol Implementation." In 2011 Sixth International Conference on Availability, Reliability and Security (ARES). IEEE, 2011. http://dx.doi.org/10.1109/ares.2011.117.

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Berger, Andreas, and Mohamed Hefeeda. "Exploiting SIP for botnet communication." In 2009 5th IEEE Workshop on Secure Network Protocols (NPSec). IEEE, 2009. http://dx.doi.org/10.1109/npsec.2009.5342244.

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Seleznev, Sergey, and Alexander Mikhaylov. "The Security Protocols Analyzer Using Extensions of SPi-Calculus." In Spring/Summer Young Researchers' Colloquium on Software Engineering. Institute for System Programming of the Russian Academy of Sciences, 2008. http://dx.doi.org/10.15514/syrcose-2008-2-7.

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Hilt, Volker, and Indra Widjaja. "Controlling overload in networks of SIP servers." In 2008 IEEE International Conference on Network Protocols (ICNP). IEEE, 2008. http://dx.doi.org/10.1109/icnp.2008.4697027.

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Briceno-Muro, S. G., R. Chaparro-Sanchez, and J. A. Romero-Gonzalez. "Digital Analog Conversion with SPI Protocol for Gas Sensors." In 2018 7th International Conference On Software Process Improvement (CIMPS). IEEE, 2018. http://dx.doi.org/10.1109/cimps.2018.8625626.

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Pahlevi, Rizka Reza, Aji Gautama Putrada S., and Maman Abdurohman. "Fast UART and SPI Protocol for Scalable IoT Platform." In 2018 6th International Conference on Information and Communication Technology (ICoICT). IEEE, 2018. http://dx.doi.org/10.1109/icoict.2018.8528745.

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El Sawda, Samer, Rami El Sawda, Pascal Urien, and Ibrahim Hajjeh. "Non Repudiation for SIP Protocol; SIP Sign." In Communication Technologies: from Theory to Applications (ICTTA). IEEE, 2008. http://dx.doi.org/10.1109/ictta.2008.4530177.

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Reports on the topic "Protocollo SPI"

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Rosenberg, J., and H. Schulzrinne. Session Initiation Protocol (SIP): Locating SIP Servers. RFC Editor, June 2002. http://dx.doi.org/10.17487/rfc3263.

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Rosenberg, J., H. Schulzrinne, G. Camarillo, A. Johnston, J. Peterson, R. Sparks, M. Handley, and E. Schooler. SIP: Session Initiation Protocol. RFC Editor, June 2002. http://dx.doi.org/10.17487/rfc3261.

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Handley, M., H. Schulzrinne, E. Schooler, and J. Rosenberg. SIP: Session Initiation Protocol. RFC Editor, March 1999. http://dx.doi.org/10.17487/rfc2543.

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Deering, S. Simple Internet Protocol (SIP) Specification. Edited by R. Hinden. RFC Editor, December 2018. http://dx.doi.org/10.17487/rfc8507.

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Shacham, R., H. Schulzrinne, S. Thakolsri, and W. Kellerer. Session Initiation Protocol (SIP) Session Mobility. RFC Editor, October 2009. http://dx.doi.org/10.17487/rfc5631.

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6

Belinchon, M., M. Pallares-Lopez, C. Canales-Valenzuela, and K. Tammi. Diameter Session Initiation Protocol (SIP) Application. Edited by M. Garcia-Martin. RFC Editor, November 2006. http://dx.doi.org/10.17487/rfc4740.

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7

Ravindranath, R., P. Ravindran, and P. Kyzivat. Session Initiation Protocol (SIP) Recording Metadata. RFC Editor, May 2016. http://dx.doi.org/10.17487/rfc7865.

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8

Hilt, V., and H. Schulzrinne. Session Initiation Protocol (SIP) Overload Control. Edited by V. Gurbani. RFC Editor, September 2014. http://dx.doi.org/10.17487/rfc7339.

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9

Noel, E., and P. Williams. Session Initiation Protocol (SIP) Rate Control. RFC Editor, February 2015. http://dx.doi.org/10.17487/rfc7415.

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10

Camarillo, G. Compressing the Session Initiation Protocol (SIP). RFC Editor, February 2003. http://dx.doi.org/10.17487/rfc3486.

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