此外,這些NewDumps JN0-664考試題庫的部分內容現在是免費的:https://drive.google.com/open?id=1F-7oBXTvi71y8VN-qKMYD5mnwmvC3EOV
JN0-664 認證是互聯網界具有極大聲望的網路技能認證,在全球,通過IBM認證考試的工程師,平均年薪在10萬元以上。通過 HP 認證考試的工程師,平均年薪在30萬元以上。獲得 Juniper 的 JN0-664 認證的工程師,平均年薪也不低於20萬人民幣。據說,這還只是基本工資,不包括獎金,紅利和其他非工資性補貼。難怪美國副總統戈爾曾把 Juniper JN0-664 認證恰當而幽默地稱為“獲得高技術,高薪水的頭等艙船票”。
Juniper JN0-664考試是一項挑戰性和嚴格的認證考試,需要深入了解Juniper Networks服務提供者技術。通過獲得此認證,IT專業人員可以提高職業前景、增加收入潛力並獲得專業領域的專家認可。
JN0-664考試是一個120分鐘的多選題測試,包含65-75個問題。該考試旨在測試考生對服務提供商協議、網絡設計和故障排除技巧的知識。考試涉及MPLS、OSPF、BGP、IS-IS、VPN和服務提供商安全等主題的問題。考試在Pearson VUE考試中心進行,考生必須取得65%或更高的及格分數才能獲取認證。
我們都清楚的知道,IT行業是個新型產業,它是帶動經濟發展的鏈條之一,所以它的地位也是舉足輕重不可忽視的。IT認證又是IT行業裏競爭的手段之一,通過了認證你的各方面將會得到很好的上升,但是想要通過並非易事,所以建議你利用一下培訓工具,如果要選擇通過這項認證的培訓資源,NewDumps Juniper的JN0-664考試培訓資料當仁不讓,它的成功率高達100%,能夠保證你通過考試。
Juniper JN0-664 考試旨在測試與 Juniper Networks 技術合作的服務提供商專業人士的知識和技能。此認證驗證了服務提供商路由和交換技術及其相關平台配置和故障排除技能的理解。
問題 #25
Exhibit
You have MAC addresses moving in your EVPN environment
Referring to the exhibit, which two statements are correct about the sequence number? (Choose two)
答案:A,B
解題說明:
The sequence number is a field in the MAC mobility extended community that is used to resolve conflicting MAC address ownership claims and to help the local PE to identify the latest advertisement. The sequence number is incremented by one for every MAC address mobility event, such as when a host moves from one Ethernet segment to another segment in the EVPN network. The PE device that receives multiple MAC advertisements for the same MAC address chooses the one with the highest sequence number as the most recent and valid advertisement.
問題 #26
Which two statements about IS-IS are correct? (Choose two.)
答案:A,C
解題說明:
LSPs contain information about the state and cost of links in the network, and are flooded periodically throughout the network. PSNPs are used to acknowledge receipt of LSPs and request retransmission of missing or corrupted LSPs. PSNPs contain only descriptions of LSPs, such as their sequence numbers and checksums. CSNPs contain a complete list of all link-state PDUs in the IS-IS database. CSNPs are sent periodically on all links, and the receiving systems use the information in the CSNP to update and synchronize their link-state PDU databases.
問題 #27
Exhibit
R1 and R8 are not receiving each other's routes
Referring to the exhibit, what are three configuration commands that would solve this problem? (Choose three.)
答案:A,C,D
解題說明:
The problem in this scenario is that R1 and R8 are not receiving each other's routes because of private AS numbers in the AS path. Private AS numbers are not globally unique and are not advertised to external BGP peers. To solve this problem, you need to do the following:
Configure loops on routers in AS 65412 and advertise-peer-as on routers in AS 64498. This allows R5 and R6 to advertise their own AS number (65412) instead of their peer's AS number (64498) when sending updates to R7 and R8. This prevents a loop detection issue that would cause R7 and R8 to reject the routes from R5 and R62.
Configure remove-private on advertisements from AS 64497 toward AS 64498 and from AS 64500 toward AS 64499. This removes any private AS numbers from the AS path before sending updates to external BGP peers. This allows R2 and R3 to receive the routes from R1 and R4, respectively3.
問題 #28
Exhibit
Which two statements about the output shown in the exhibit are correct? (Choose two.)
答案:B,C
解題說明:
Explanation
According to 1 and 2, BGP Layer 2 VPNs use BGP to distribute endpoint provisioning information and set up pseudowires between PE devices. BGP uses the Layer 2 VPN (L2VPN) Routing Information Base (RIB) to store endpoint provisioning information, which is updated each time any Layer 2 virtual forwarding instance (VFI) is configured. The prefix and path information is stored in the L2VPN database, which allows BGP to make decisions about the best path.
In the output shown in the exhibit, we can see some information about the L2VPN RIB and the pseudowire state. Based on this information, we can infer the following statements:
* The PE is attached to a single local site. This is correct because the output shows only one local site ID (1) under the L2VPN RIB section. A local site ID is a unique identifier for a site within a VPLS domain.
If there were multiple local sites attached to the PE, we would see multiple local site IDs with different prefixes.
* The connection has not flapped since it was initiated. This is correct because the output shows that the uptime of the pseudowire is equal to its total uptime (1w6d). This means that the pseudowire has been up for one week and six days without any interruption or flap.
* There has been a VLAN ID mismatch. This is not correct because the output shows that the remote and local VLAN IDs are both 0 under the pseudowire state section. A VLAN ID mismatch occurs when the remote and local VLAN IDs are different, which can cause traffic loss or misdelivery. If there was a VLAN ID mismatch, we would see different values for the remote and local VLAN IDs.
* The PE router has the capability to pop flow labels. This is correct because the output shows that the flow label pop bit is set under the pseudowire state section. The flow label pop bit indicates that the PE router can pop (remove) the MPLS flow label from the packet before forwarding it to the CE device.
The flow label is an optional MPLS label that can be used for load balancing or traffic engineering purposes.
問題 #29
Exhibit
user@Rl show configuration interpolated-profile { interpolate {
fill-level [ 50 75 drop-probability [ > }
class-of-service drop-profiles
];
20 60 ];
Which two statements are correct about the class-of-service configuration shown in the exhibit? (Choose two.)
答案:B,D
解題說明:
class-of-service (CoS) is a feature that allows you to prioritize and manage network traffic based on various criteria, such as application type, user group, or packet loss priority. CoS uses different components to classify, mark, queue, schedule, shape, and drop traffic according to the configured policies.
One of the components of CoS is drop profiles, which define how packets are dropped when a queue is congested. Drop profiles use random early detection (RED) algorithm to drop packets randomly before the queue is full, which helps to avoid global synchronization and improve network performance. Drop profiles can be discrete or interpolated. A discrete drop profile maps a specific fill level of a queue to a specific drop probability. An interpolated drop profile maps a range of fill levels of a queue to a range of drop probabilities and interpolates the values in between.
In the exhibit, we can see that the class-of-service configuration shows an interpolated drop profile with two fill levels (50 and 75) and two drop probabilities (20 and 60). Based on this configuration, we can infer the following statements:
The drop probability jumps immediately from 20% to 60% when the queue level reaches 75% full. This is not correct because the drop profile is interpolated, not discrete. This means that the drop probability gradually increases from 20% to 60% as the queue level increases from 50% full to 75% full. The drop probability for any fill level between 50% and 75% can be calculated by using linear interpolation formula.
The drop probability gradually increases from 20% to 60% as the queue level increases from 50% full to 75% full. This is correct because the drop profile is interpolated and uses linear interpolation formula to calculate the drop probability for any fill level between 50% and 75%. For example, if the fill level is 60%, the drop probability is 28%, which is calculated by using the formula: (60 - 50) / (75 - 50) * (60 - 20) + 20 = 28.
To use this drop profile, you reference it in a scheduler. This is correct because a scheduler is a component of CoS that determines how packets are dequeued from different queues and transmitted on an interface. A scheduler can reference a drop profile by using the random-detect statement under the [edit class-of-service schedulers] hierarchy level. For example: scheduler test { transmit-rate percent 10; buffer-size percent 10; random-detect test-profile; } To use this drop profile, you apply it directly to an interface. This is not correct because a drop profile cannot be applied directly to an interface. A drop profile can only be referenced by a scheduler, which can be applied to an interface by using the scheduler-map statement under the [edit class-of-service interfaces] hierarchy level. For example: interfaces ge-0/0/0 { unit 0 { scheduler-map test-map; } }
問題 #30
......
JN0-664信息資訊: https://www.newdumpspdf.com/JN0-664-exam-new-dumps.html
順便提一下,可以從雲存儲中下載NewDumps JN0-664考試題庫的完整版:https://drive.google.com/open?id=1F-7oBXTvi71y8VN-qKMYD5mnwmvC3EOV