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Home › Reti di Calcolatori 2 › Capitolo IV - Asynchronous transfer mode

IP over ATM

Roberto Bifulco — Wed, 10/22/2008 - 19:23

Data la difficoltà di interfacciamento con le LAN, si è pensato di mettere direttamente IP su ATM. La tecnica proposta è quella di mettere IP sopra ATM in una singola sottorete logica IP (LIS).

Una LIS è un gruppo di host IP che condividono stesso numero di rete e subnet mask e che comunicano fra loro direttamente tramite connessioni ATM.

Chiaramente è lecito aspettarsi un certo rallentamento prodotto dall'alta componente software ed anche un aumento di inefficienza causato dall'aggiunta di strati protocollari rispetto alle tradizionali LAN composte dal singolo livello data link.

Ogni membro della LIS ha sia un indirizzo ATM che uno IP. Gli indirizzi IP sono convertiti in indirizzi ATM tramite il protocollo ATMARP internamente alla LIS (protocollo basato su ARP). Il protocollo InATMARP compie invece la conversione duale.

Un ATMARP server mantiene una tabella o una cache di mappaggio fra indirizzi IP ed ATM. Tali indirizzi sono appresi attraverso lo scambio di messaggi fra ATMARP e gli host della LIS. Tipicamente questo server è contenuto direttamente negli switch ATM.

 

‹ ATM in LAN up Capitolo V - Multi Protocol Label Switching ›
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Reti di Calcolatori 2

  • Introduzione
  • Capitolo I - Networks Evolution
    • Communication models
      • Circuit switching
      • Packet Switching
      • Flow Switching
    • A rapidly changing scenario
    • Data and media taxonomy
  • Capitolo II - Techniques and architectures for QoS
    • II.1QoS problems
    • II.2Service Specification
    • II.3Traffic and Service Characterization
      • II.3.1Token Bucket
      • II.3.2Leaky Bucket
      • II.3.3Queue management
      • II.3.4Scheduling
        • II.3.4.1Scheduling policies
        • II.3.4.1.1GPS
    • II.4Parekh-Gallager Theorem
    • II.5QoS Architectures
      • II.5.1Integrated Services (IntServ)
        • II.5.1.1RSVP
        • II.5.1.2IntServ today
      • II.5.2Differentiated Services (DiffServ)
        • II.5.2.1PHB: Expedited Forwarding
        • II.5.2.2PHB: Assured Forwarding
    • II.6QoS in Fast Interconnect
      • II.6.1Flow Control
        • II.6.1.1Flow Control in IBA
        • II.6.1.2Flow Control in ASI
        • II.6.1.3Flow Control in Ethernet
      • II.6.2Congestion control
        • II.6.2.1Congestion Control in IBA
        • II.6.2.2Congestion Control in ASI
  • Capitolo III - Inter-domain routing with BGP
    • III.1Intra-Domain Routing
      • III.1.1Distance Vector
      • III.1.2Link State
    • III.2Inter-domain routing
      • III.2.1Border Gateway Protocol (BGP)
        • III.2.1.1BGP Messages
        • III.2.1.2BGP Example 1
        • III.2.1.3Route preference
        • III.2.1.4The internet organization
        • III.2.1.5BGP in large networks
        • III.2.1.6Confederations
        • III.2.1.7Route Reflectors
        • III.2.1.8The dynamics of BGP
        • III.2.1.9BGP routing tables
        • III.2.1.10The route selection process
  • Capitolo IV - Asynchronous transfer mode
    • ATM architecture
    • ATM Protocol Stack
    • ATM Addressing
    • ATM Quality of Service
    • ATM Adaptation Layer
    • Call and Connection Control
    • ATM in LAN
    • IP over ATM
  • Capitolo V - Multi Protocol Label Switching
    • MPLS
  • Capitolo VI - Traffic Engineering
    • IP-based Traffic Engineering
    • MPLS-based traffic engineering
  • Capitolo VII - SDH/SONET
  • Capitolo VIII - IP su reti ottiche
    • DWDM
    • Generalized Framing Procedure (GFP)
    • Gigabit Ethernet (GbE)
    • IP-centric control of optical networks
  • Capitolo IX - Network Management
    • Simple Network Management Protocol (SNMP)
    • Network management applications
    • Professional and Business Challanges
    • Service life-cycle
    • Provisioning level Agreement
  • Capitolo X - Network Resiliency
    • Network recovery
    • Recovery Mechanisms Control
  • Capitolo XI - Network security
    • Types of Attack
    • Firewall
    • NAT
    • Intrusion Prevention Systems
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