|Exam Name||:||Ethernet Routing Switch Implementation and Maintenance|
|Questions and Answers||:||173 Q & A|
|Updated On||:||April 19, 2019|
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3605 exam Dumps Source : Ethernet Routing Switch Implementation and Maintenance
Test Code : 3605
Test Name : Ethernet Routing Switch Implementation and Maintenance
Vendor Name : Avaya
Q&A : 173 Real Questions
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Ethernet 100Base-TX, Ethernet 10Base-T
MAC handle table dimension
network hubs and switches
Max gadgets In A Stack
ARP help, BOOTP aid, MAC tackle filtering, VLAN support, auto-negotiation, circulation manage, trunking
IEEE 802.1D, IEEE 802.1Q, IEEE 802.1ab (LLDP), IEEE 802.1p, IEEE 802.1s, IEEE 802.1w, IEEE 802.1x, IEEE 802.3, IEEE 802.3ad (LACP), IEEE 802.3u, IEEE 802.3x, IEEE 802.3z
far off management Protocol
HTTP, HTTPS, RMON, SNMP 1, SNMP 2, SNMP three, Telnet
April 20, 2012by means of SIP Trunking document Contributing author
Avaya currently unveiled the Avaya Ethernet Routing change (ERS) 3500. The newly launched assortment of compact Ethernet switches completely caters to small and midsize organisations (SME), faraway branches and greater public environments like colleges and hospitals.
Designed to deliver commercial enterprise-class facets and least expensive quickly and Gigabit Ethernet connectivity, the Avaya ERS 3500 is choicest for smaller places. even though it’s pretty petite, the series is big on points, offering true plug and play functionality and faster deployment.
The gadget also presents seamless connectivity with Avaya IP workplace-one basic command, and makes it possible for all IP phones on an Avaya IP office gadget. The Avaya ERS 3500 additionally offers equipment for managing, troubleshooting and operating gadgets-including web-primarily based GUI administration, all-inclusive unified management and configuration tools for colossal department workplace deployments.
"The Avaya ERS 3500 collection is the ideal family unit of switches for small places,” noted Marc Randall, senior vp and popular supervisor, Avaya Networking. “It provides the facets and capabilities that organisations predict at a price suited for the small and midsize market. we've designed the ERS 3500 to work seamlessly with Avaya IP office, simplifying deployment with our flagship collaboration answer for SMEs so that groups will also be greater productive, sooner."
The Avaya ERS 3500 series contains six fast and Gigabit Ethernet switches, attainable in 10 and 24-port configurations. clients can also decide upon models with augmented power over Ethernet (PoE+) for improved functionality and future-proof their networks energy superior IP telephones, wireless entry facets and video surveillance cameras.
Avaya also gives fanless switches for noise sensitive environments, similar to classrooms or motels.
The 24-port fashions of the Avaya ERS 3500 come equipped with Stackable Chassis architecture, which permits consumers to stack up to eight ERS 3500 gadgets for enriched network availability, streamlined administration and as much as 80Gbps of virtual backplane skill.
"Small and midsize organisations are increasingly attracted to know-how that helps external communications and enhances interior collaboration,” mentioned Justin Jaffe, research manager, SMB and residential workplace Markets, IDC. “due to the fact a lot of these establishments lack the IT capabilities, finances and personnel to efficaciously set up and hold superior solutions, ease of use is still paramount. Plug and play options that feature hardware and application expressly designed to work together, like Avaya IP office and the ERS 3500, might be specially fascinating to these customers."
Edited by way of Braden Becker
SANTA CLARA, CA--(Marketwired - Apr 15, 2013) -
Avaya, a global issuer of enterprise communications and collaboration programs and functions, nowadays introduced that institution of the Sciences has adopted a subsequent-technology Avaya network to meet the growing to be needs of four,000 college students, college and directors.
the brand new network solves what had turn into a critical challenge for the Philadelphia-based institution. The information expertise infrastructure serving its campus became ageing at the very time demand become on the upward thrust, creating bottlenecks that impacted performance.
The tuition obligatory the ability, speed and continual availability to assist a number of applications crucial to its mission -- from telephony and classroom management application, to online and distance discovering. It also obligatory a way manipulate the bandwidth demands presented by way of a proliferation of tablet PCs, laptops and the different cellular instruments brought to campus by means of students.
a new Avaya infrastructure provides the capacity and respectable operation the tuition wants, with a distributed design that eliminates any single element-of-failure. A pair of Avaya virtual services Platform 9000 sequence Core Switches anchors the network, besides the fact that children they're bodily separated to be sure uninterrupted provider within the event that a hearth or any other calamity impacts a network operations core. Avaya Ethernet Routing Switches 5000 series items on the network area feature particular load-balancing and failover capabilities that increase each capability and availability.
The Avaya answer for institution of the Sciences was designed and sold via CSDNET, an Avaya connect Channel accomplice.
Quote "The individuals who depend on our network suppose it's as a must have as electricity or every other core utility. They readily would not have patience with outages. Avaya's high-availability items give us an 'at all times-on' platform that meets the expectations of our college students, school and administrators. we have peace of intellect that the reliability is there, which frees us to focal point our time and attention on strategic initiatives that aid our school stay competitive."--Mark Nestor, associate Provost and CIO, institution of the Sciences
Tags: Avaya, CSDNet, university of the Sciences, networking, Ethernet Switches, BYOD, collaboration, videoconferencing, distance training, on-line studying
About Avaya Avaya is a global provider of company collaboration and communications options, offering unified communications, contact centers, statistics solutions and linked functions to corporations of all sizes worldwide. For greater counsel please seek advice from www.avaya.com.
certain statements contained during this press free up are ahead-looking statements. These statements may be identified by means of ahead-searching terminology akin to "anticipate," "accept as true with," "continue," "could," "estimate," "are expecting," "intend," "might also," "could," "plan," "skills," "predict," "should still" or "will" or different identical terminology. we have based mostly these ahead-searching statements on our existing expectations, assumptions, estimates and projections. whereas we trust these expectations, assumptions, estimates and projections are budget friendly, such ahead looking statements are only predictions and involve widely used and unknown hazards and uncertainties, a lot of that are past our manage. These and other important components could cause our exact consequences, efficiency or achievements to vary materially from any future results, efficiency or achievements expressed or implied through these ahead-searching statements. For a listing and description of such dangers and uncertainties, please check with Avaya's filings with the SEC that can be found at www.sec.gov/. Avaya disclaims any intention or responsibility to replace or revise any forward-looking statements, even if because of new assistance, future events or in any other case.
observe Avaya on Twitter, fb, YouTube, LinkedIn, Flickr, and the Avaya related weblog.
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By Andrew McCoubreyand David Sheets
ASHBURN, Va. – Network security in embedded computing is getting more scrutiny these days. In a constantly evolving threat environment, where new attacks arrive virtually every day, system architects must design networks to be as secure as possible. That requires a constant review process to enable the necessary adaptation, modification, and updates to keep systems safe.
Network security involves providing protections against all devices that are connected or could have access to the network. In this area, embedded architectures are catching up to enterprise networks. In the enterprise environment, where there has always been the risk of an unauthorized person connecting on a port in an office or conference room, the need to lock down the network is well understood.
In comparison, airborne networks typically have been very controlled, with no network ports exposed. Physical access to ports in the past was easy to control. Today, however, we are seeing embedded networks connecting more devices and making more connection ports available, which makes trusted computingapproaches imperative. Aboard commercial jetliners, for example, Ethernet might be available at every seat, and Wi-Fi might be provided for entertainment.
As more devices connect to the embedded network, the more of the network needs protecting. Adding to the security challenge is the growing use of converged networks. Instead of one purpose network, today's fast links can transport data from disparate systems over the same network. More systems sharing the network increases not only the potential for contention, but also the security challenge; more end points means more potential threats. We are seeing increased use of converged networking in military embedded systems.
Related: Optimizing cyber security and trusted computing on today’s connected military and commercial aircraft
The good news is there’s growing awareness of what’s necessary for effective network security; many of the important tools are familiar and readily available. One tool for securing the network is white-listing, or limiting access to trusted devices. This could be as simple as enabling each port only to allow traffic from a known MAC address. While simple to implement, MAC addresses can be changed and spoofed. Trusting a device just because it has the right address turns out not to be a very robust security solution.[Native Advertisement]
A more advanced technique to keep out unknown users involves IEEE 802.1x for port-based network access control (PNAC). 802.1x enables the network to authenticate a network endpoint using a cryptographic exchange. Instead of trusting a MAC address, trust is based on a certificate or other credentials. It implements port security via a feature on the network switch. 802.1x is a hybrid feature that needs support on the switch; that’s what controls turning the ports on and off). Still, it also requires clients, called “supplicants,” on the end points. That means that implementing a protection like 802.1x requires a whole system solution in which both the switches and the connected computers provide support.
Another challenge for providing network security on embedded systems involves upgrade cycles. Adding a security layer on which only one device is secured can introduce a weak link -- unless all other devices on the network also have that layer of security.
While hard-coding and 802.1x enable control over what devices can access the network, MACsec and IPsec tools use encryption to protect data on the move and prevent someone from snooping into that data. IPsec is an end-to-end protocol used originally for VPNs that connect from one office to another office over an untrusted network. In comparison, MACsec secures only a point-to-point connection.
Related: Lowering the costs of encrypted data storage in trusted computing
IPsec and MACsec help encrypt network data, and validate keys when establishing connections, but differ in how much data they encrypt. IPsec, for example, supports tunneling and transport modes that offer tradeoffs between overhead and the amount of encrypted data.
Apart from IPsec and MACsec, there are encryption standards like transport layer security that work at the application level. These require less support from the network infrastructure, but consume more processor overhead and encrypt even less, because they exist at the highest layers of the network stack.
Today, we typically see IPsec in local networks like airborne networks that are contained entirely within an aircraft. This protects against data being intercepted by other devices on the network. It also provides protection if the network switches are compromised.
It’s important to select network equipment and end points that provide good performance because they encrypt network traffic at high rates. MACsec encryption is typical for hardware, and is built into the PHY devices that provide the link-layer connections. IPsec encryption typically happens in software, but can require hardware acceleration to keep up with the network.
Related: A guide to international authorities for global trusted computing standards certification
Standards also can change over time, so it is important to stick with the latest versions. Early implementations of MACsec supported only AES 128 bit encryption keys, while AES 256 bit encryption was added later.
A major challenge can be finding people with the necessary expertise. Most are familiar with enterprise IT, yet those who know rugged embedded systems may not be up to date on the latest networking technologies. The intersection of people who understand both networking and embedded systems is small, but growing. What’s helping that intersection grow is the Internet of Things (IoT) phenomenon, which is taking all manner of embedded devices that were traditionally stand-alone appliances, and connecting them to networks.
As systems designers ask for network security solutions, their specific requirements still can be vague. Security, as yet, isn’t something you can just buy from a vendor. Instead, systems designers need to implement security across all products in the system, and either perform the architecture work themselves, or hire experts to do it for them. To design-in effective network security, it’s wise first to reach out to vendor network security experts at the very beginning of the project.
Keep in mind, too, that network security doesn’t end with the architecture or initial implementation; it needs to be revisited on a regular basis. Patches likely will be necessary to address vulnerabilities at each iteration, at every software upgrade, and every time a new device gets added.
Related: Introduction to certification authorities for trusted computing in military and avionics products
Even some fundamental tools to secure networks may need to change. Most underlying network security today is based on public key cryptography. Future generations of quantum computers likely will require a reexamination of some cryptographic primitives on which network security designers depend.
Network security is a complex and evolving challenge, and solutions are being developed continually to address emerging threats. Leveraging the latest commercial technology is key to ensuring that connected embedded systems are secure, today and in the future.
Andrew McCoubrey is the senior product manager for switching and routing products in the C4 solutions group of the Curtiss-Wright Corp Defense Solutions division in Ashburn, Va. David Sheets is senior principal security architect at Curtiss-Wright Defense Solutions in Ashburn, Va.
Ready to make a purchase? Search the Military & Aerospace Electronics Buyer's Guide for companies, new products, press releases, and videos
The $100 million price differential between the Alcatel-Lucent and Cisco proposals to refresh California State University's 23-campus network that we wrote about earlier this week was based on an identical number of switches and routers in various configurations.
It really was apples-to-apples.
The $100 million price differential between the Alcatel-Lucent and Cisco proposals to refresh California State University's 23-campus network that we wrote about earlier this week was based on an identical number of switches and routers in various configurations.
CSU allowed Network World to review spreadsheets calculating the eight-year total cost of ownership of each of the five bidders for the project.
The price discrepancy between Cisco and Alcatel-Lucent sparked a flurry of skepticism in comments on the Network World site that the bids did not represent a fair, apples-to-apples comparison. When asked if the number of network elements Cisco proposed drastically outnumbered those of the other bidders, Michel Davidoff, director of cyberinfrastructure at CSU, replied "Absolutely not."
"Everybody had to comply with this spreadsheet," he said. "Every campus had two border routers, two cores, and two server farm switches. All the vendors had to propose exactly the same solution" based on the average number of servers deployed at each CSU campus. "All of this is based on exactly the same data to all of the vendors. It's exactly the same formula for all of the vendors."
ENGARDE! Alcatel-Lucent takes up data center arms against Cisco, others
Alcatel-Lucent won the project with a bid of $22 million. Cisco was the high bidder with a cost just under $123 million. Not only was Cisco's bid more than five-and-a-half times that of Alcatel-Lucent's, it was three times that of the next highest bidder: HP, at $41 million.
Juniper came in at $31.6 million, and Brocade offered $24 million. All of the prices included discounts offered to CSU, and the price delta between Cisco and the other bidders actually widened after the discounts were applied, Davidoff said.
The costs were broken down into switches and routers for access, server farm, core and border routing requirements. They included port densities from 8 to 480 ports of Gigabit Ethernet and 10G Ethernet, with copper and fiber connectors, Layer 2 and 3 feature sets, PoE and non-PoE, etc.
Cisco pitched the Catalyst 3750-X for access, Nexus 7000 for server farms, Catalyst 6509 for the core and the ASR 1006 for border routing. Alcatel-Lucent proposed the OmniSwitch 6850 for access, and 9700 for server farms, core and border routing. Post-RFP, however, CSU decided to deploy the OmniSwitch 6450 and 6850 for access, 6850 and OmniSwitch 6900 for server farms, and 6900 for core and border routing -- all of which lowered the cost of the project.
Total bid costs were the sum of Layer 2 hardware (and software), Layer 3 hardware (and software), Layer 2 maintenance, Layer 3 maintenance, training, and taxes and shipping. Cisco's cost in each respective category was $51 million; $18.7 million; $34.3 million; $10.6 million; $1 million; and $7 million.
Alcatel-Lucent's was $14.5 million; $2.5 million; $1.8 million; $798,000; $777,000; and $1.7 million.
Alcatel-Lucent will be deployed at 22 of the 23 CSU campuses; San Jose State University is going its own route with a broader Cisco implementation costing $28 million over five years.
SJSU is replacing three legacy phone systems with a Cisco VoIP implementation supporting integrated voice/data and video. The university is also implementing WebEx conferencing in each classroom, Wi-Fi access across the campus, high-definition TelePresence conferencing in 51 "learning spaces," and a new switch and router infrastructure to support it all.
"We're using technology to provide a better learning environment," says SJSU President Mohammad Qayoumi. "We want to make sure students will be successful. Our view was not what hardware or software we were looking at; our view was a comprehensive solution with a strong emphasis on learning and the delivery of learning content and the students' success."
Cisco is SJSU's incumbent vendor, just as it is with the entire CSU system. Asked if SJSU put the project out for bid, Qayoumi said the university "looked at the industry at what was available.
"No other vendor could meet the needs," he said. "They may have better cost or performance but the more important element in a university is how all of these technologies connect together and work as an integrated solution."
SJSU worked with Cisco over a six- to nine-month period designing a system, Qayoumi said. He said he didn't know if SJSU took part in the RFP evaluation that culminated in Alcatel-Lucent winning the $22 million systemwide contract.
"I don't know, but I don't believe we participated in the CSU systemwide evaluation," he said. "I don't know what kind of committee system the chancellor's office had set up for evaluating Alcatel.
"If you look at the overall solution ... you might make savings in one particular aspect, whether it's hardware, software or servers," he said. "But our view was, how does it really meet the needs of all of our students and the needs of our faculty and staff. That was the most critical element for us."
Davidoff declined to comment on SJSU's decision to go in another direction for its network infrastructure. The first year of the SJSU project will be funded by the sale of SJSU's Educational Broadband Service spectrum, and additional funds will come from the university's IT services office budget, a new student fee, and monies from the continuing education program.
Cisco declined to comment for this story.
Jim Duffy has been covering technology for over 25 years, 21 at Network World. He also writes The Cisco Connection blog and can be reached on Twitter @Jim_Duffy.Join the Network World communities on Facebook and LinkedIn to comment on topics that are top of mind.
Dublin, March 26, 2019 (GLOBE NEWSWIRE) -- The "Optical Networking and Communication Market (2014-2024)" report has been added to ResearchAndMarkets.com's offering.
This study predicts that the optical networking and communication market will grow with a CAGR of 7.6% during the forecast period. It is also being expected that by 2024, the market will generate a revenue of $40.3 billion. The growing demand for networks with high bandwidth and the arrival of machine-to-machine (M2M) and internet of things (IoT) technologies are the major growth-driving factors.
When segmented by component, the domain can be categorized into services, software, and hardware. Among these, the hardware category is witnessing the highest demand, as advanced hardware is capable of transmitting data at high speeds, which is needed to sustain 5G and the increasing data traffic. Other factors driving the hardware category of the optical networking and communication market are regular maintenance and updates in the field. Technologically advanced hardware fulfils all the demands of enhanced networking infrastructure, including high data transfer rate, but low power consumption, latency, and cost.
Further, optical transceivers, optical fibers, optical amplifiers, optical splitters, optical circulators, optical switches, and others are the various subdivisions within the hardware category. Among these, optical fibers are estimted to generate the highest revenue in 2018 and also grow the fastest in the future. The increasing use of optical fibers in machine testing, medicine, research, communication, computer networking, and other sectors is expected to fuel its progress in the optical networking and communication market during the forecast period.
However, a key trend across the globe is the implementation of optical networks bereft of optical fibers! Making use of the open-air optical technology, such networks carry out what is known as wireless optical transmission. In this, the data and voice, in the form of optical signals, are converted from and to wireless radio frequency signals by multiple hubs. This technology helps transmit data at high speeds without costing too much and also makes the addition of new subscribers possible via multiplexing. Presently, wireless optical transmission is mostly used by large, established firms, but in the future, it is expected to be adopted by smaller companies as well.
Presently, the competition in the optical networking and communication market is quite intense. Key players, such as Infinera Corporation, Fujitsu Limited, ZTE Corporation, Corning Incorporated, Ciena Corporation, and ADVA Optical Networking SE, are leaving no stone unturned in coming up with innovative products. For example, the primary focus of ZTE Corporation is strengthening its market position by investing heavily in network virtualization and 5G products. Similarly, Corning Incorporated has its optical communications segment as its main focus area.
Chapter 1. Research Background1.1 Research Objectives1.2 Market Definition1.3 Research Scope1.3.1 Market Segmentation by Component1.3.2 Market Segmentation by Network Connectivity1.3.3 Market Segmentation by End-User1.3.4 Market Segmentation by Geography1.3.5 Analysis Period1.3.6 Market Data Reporting Unit1.4 Key Stakeholders
Chapter 2. Research Methodology2.1 Secondary Research2.2 Primary Research2.2.1 Breakdown of Primary Research Respondents22.214.171.124 By region126.96.36.199 By industry participant188.8.131.52 By company type2.3 Market Size Estimation2.4 Data Triangulation2.5 Assumptions for the Study
Chapter 3. Executive Summary
Chapter 4. Introduction4.1 Definition of Market Segments4.1.1 By Component184.108.40.206 Hardware220.127.116.11.1 Optical Fibers18.104.22.168.1.1 Single-Mode Fiber22.214.171.124.1.2 Multimode Fiber126.96.36.199.2 Optical Transceivers188.8.131.52.3 Optical Amplifiers184.108.40.206.4 Optical Switches220.127.116.11.5 Optical Splitters18.104.22.168.6 Optical Circulators22.214.171.124.7 Others126.96.36.199 Software188.8.131.52 Services4.1.2 By Network Connectivity184.108.40.206 Access220.127.116.11 Metro18.104.22.168 Long-haul4.1.3 By End-User22.214.171.124 Telecommunication126.96.36.199 Government188.8.131.52 Commercial184.108.40.206 Industrial220.127.116.11 Broadcasting18.104.22.168 Data Centers4.2 Value Chain Analysis4.3 Market Dynamics4.3.1 Trends22.214.171.124 Increasing inclination toward wireless optical networks4.3.2 Drivers126.96.36.199 Growing demand for high bandwidth188.8.131.52 Emergence of IoT and M2M4.3.3 Restraints184.108.40.206 Lack of skilled professionals4.3.4 Opportunities220.127.116.11 Leveraging 5G networks to enhance networking18.104.22.168 Growing mobile data traffic4.4 Porter's Five Forces Analysis
Chapter 5. Global Market Size and Forecast5.1 By Component5.1.1 By Hardware Type22.214.171.124 By Optical Fiber Type5.2 By Network Connectivity5.3 By End-User5.4 By Region
Chapter 6. North America Market Size and Forecast
Chapter 7. Europe Market Size and Forecast
Chapter 8. APAC Market Size and Forecast
Chapter 9. LATAM Market Size and Forecast
Chapter 10. MEA Market Size and Forecast
Chapter 11. Competitive Landscape11.1 Market Share Analysis of Key Players11.2 List of Key Players11.3 Competitive Benchmarking of Key Players11.4 Recent Activities of Major Players11.5 Global Strategic Developments of Key Players11.5.1 Mergers and Acquisitions11.5.2 Partnerships11.5.3 Product Launches11.5.4 Facility Expansions11.5.5 Client Wins11.5.6 Other Developments
Chapter 12. Company Profiles12.1 ADVA Optical Networking SE12.1.1 Business Overview12.1.2 Product and Service Offerings12.1.3 Key Financial Summary12.2 Ciena Corporation12.3 Cisco Systems Inc.12.4 Corning Incorporated12.5 FiberHome Telecommunication Technologies Co. Ltd.12.6 Fujitsu Limited12.7 Huawei Technology Co. Ltd.12.8 Infinera Corporation12.9 Viavi Solutions Inc.12.10 Nokia Corporation12.11 ZTE Corporation
For more information about this report visit https://www.researchandmarkets.com/research/jkh3x8/40b_world?w=12
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