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ํผํํธํJN0-664์ต์ ์ ๋ฐ์ดํธ์ธ์ฆ์ํ์๋ฃ๋คํ์ต์ ์ํ
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Itexamdump๋ฅผ ์ ํํจ์ผ๋ก ์ฌ๋ฌ๋ถ์ Juniper ์ธ์ฆJN0-664์ํ์ ๋ํ ๋ถ๋ด์ ์ฌ๋ผ์ง ๊ฒ์ ๋๋ค.์ฐ๋ฆฌ Itexamdump๋ ๋์์๋ ์ ๋ฐ์ดํธ๋ก ํญ์ ์ต์ ๋ฒ์ ์ Juniper ์ธ์ฆJN0-664์ํ๋คํ์์ ๋ณด์ฅํด๋๋ฆฝ๋๋ค.๋ง์ฝ ๋คํํ์ง์ ํ์ธํ๊ณ ์ถ๋ค๋ฉดItexamdump ์์ ๋ฌด๋ฃ๋ก ์ ๊ณต๋๋Juniper ์ธ์ฆJN0-664๋คํ์ ์ผ๋ถ๋ถ ๋ฌธ์ ๋ฅผ ์ฒดํํ์๋ฉด ๋ฉ๋๋ค.Itexamdump ๋ 100%์ ๋ณด์ฅ๋๋ฅผ ์๋ํ๋ฉฐJuniper ์ธ์ฆJN0-664์ํ์ ํ๋ฒ์ ํจ์คํ๋๋ก ๋์๋๋ฆฝ๋๋ค.
JN0-664 ์ํ์ MPLS, OSPF, BGP, IS-IS ๋ฐ LDP๋ฅผ ํฌํจํ ๋ค์ํ ์๋น์ค ์ ๊ณต ์ ์ฒด ๋คํธ์ํน ๊ธฐ์ ์์ ํ๋ณด์์ ์ง์๊ณผ ๊ธฐ์ ์ ํ ์คํธํ๋๋ก ์ค๊ณ๋์์ต๋๋ค. ์ํ์๋ ์๋น์ค ์ ๊ณต ์ ์ฒด ๋คํธ์ํฌ์ ํ์์ ์ธ ๋คํธ์ํฌ ๋ณด์, QOS ๋ฐ ๊ฐ์ํ์ ๊ฐ์ ์ฃผ์ ๋ ๋ค๋ฃน๋๋ค.
์คํธ(Juniper) JN0-664 ์ํ์ ํต๊ณผํ๊ธฐ ์ํด์๋, ํ๋ณด์๋ ์คํธ(Juniper) ๋คํธ์ํฌ์ ์๋น์ค ์ ๊ณต์ ๋ผ์ฐํ ๋ฐ ์ค์์นญ ๊ธฐ์ , ์ฃผ๋ก Junos OS, BGP, OSPF, IS-IS, MPLS, Layer 2 VPN, Layer 3 VPN ๋ฐ ๋ฉํฐ์บ์คํธ ๊ตฌ์ฑ ๋ฐ ๋ฌธ์ ํด๊ฒฐ ๋ฅ๋ ฅ์ ์ฆ๋ช ํด์ผ ํฉ๋๋ค. ํ๋ณด์๋ ๋คํธ์ํฌ ํธ๋ํฝ ๋ฐ ์ฑ๋ฅ์ ๋ถ์ํ๊ณ ๋ณด์, QoS ๋ฐ ๋คํธ์ํฌ ์๋น์ค์ ๊ด๋ จ๋ ๋ฌธ์ ๋ฅผ ์๋ณํ๊ณ ํด๊ฒฐํ ์ ์์ด์ผ ํฉ๋๋ค. ์คํธ(Juniper) JN0-664 ์๊ฒฉ์ฆ์ ์ทจ๋ํ๋ฉด IT ์ ๋ฌธ๊ฐ๋ ์๋น์ค ์ ๊ณต์ ๋คํธ์ํน ์ ๋ฌธ์ฑ์ ์ฆ๋ช ํ๊ณ ์ด ๋ถ์ผ์์ ๊ฒฝ๋ ฅ์ ๋ฐ์ ์ํฌ ์ ์์ต๋๋ค.
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JN0-664์ต์ ์ ๋ฐ์ดํธ ์ธ์ฆ์ํ์๋ฃ ์๋ฒฝํ ์ํ๋คํ ๋ฐ๋ชจ๋ฌธ์ ๋ค์ด๋ก๋
Juniper JN0-664 ์ํ์ด ์ด๋ ต๋ค๊ณ ํด๋ Itexamdump์ Juniper JN0-664์ํ์ก์ด ๋คํ๊ฐ ์๋ํ ์๋ฌด๋ฆฌ ์ด๋ ค์ด ์ํ์ด๋ผ๋ ์ฌ์์ง๋๋ค. ์ด๋ ค์ด ์ํ์ด๋ผ ๋ง๋ฌด๊ฐ๋ด๋ก ์ํ์ค๋นํ์ง ๋ง์๊ณ ๋ฌธํญ์๋ ์ ๊ณ ๋ชจ๋ ์ํ๋ฌธ์ ๋ฅผ ์ปค๋ฒํ ์ ์๋Juniper JN0-664์๋ฃ๋ก ๋๋นํ์ธ์. ๊ฐ์ฅ ์ ์ ํฌ์๋ก ๊ฐ์ฅ ํฐ ๋์ ๋ณด์ค์ ์์ต๋๋ค.
์ฃผ๋ํผ JN0-664 ์ธ์ฆ์ ๋ฌ์ฑํ๋ ค๋ฉด ์์์๋ ์ด๋ฌํ ์ฃผ์ ์ ๋ํ ์ฒ ์ ํ ์ดํด๋ฅผ ๋ณด์ฌ์ฃผ๊ณ ๊ทธ๋ค์ ์ง์์ ์ค์ ์๋๋ฆฌ์ค์ ์ ์ฉ ํ ์ ์์ด์ผํฉ๋๋ค. ์ด ์ธ์ฆ์ ์๋น์ค ์ ๊ณต ์ ์ฒด ๋คํธ์ํน ๊ฒฝ๋ ฅ์ ๋ฐ์ ์ํค๊ณ Juniper Networks Technologies์ ์๋ จ๋๋ฅผ ๋ณด์ฌ ์ฃผ๋ ค๋ ๋คํธ์ํฌ ์์ง๋์ด์๊ฒ ์ด์์ ์ ๋๋ค. ์ธ์ฆ์ Juniper Networks Technologies๋ฅผ ์ฌ์ฉํ๊ณ ๋คํธ์ํฌ ์์ง๋์ด๊ฐ ๋คํธ์ํฌ๋ฅผ ํจ๊ณผ์ ์ผ๋ก ๊ด๋ฆฌํ๊ณ ์ด์ํ๋ ๋ฐ ํ์ํ ๊ธฐ์ ๊ณผ ์ง์์ ๊ฐ๋๋กํ๋ ค๋ ์กฐ์ง์๋ ๊ฐ์น๊ฐ ์์ต๋๋ค.
์ต์ JNCIP-SP JN0-664 ๋ฌด๋ฃ์ํ๋ฌธ์ (Q37-Q42):
์ง๋ฌธ # 37
Your organization manages a Layer 3 VPN for multiple customers To support advanced route than one BGP community on advertised VPN routes to remote PE routers.
Which routing-instance configuration parameter would support this requirement?
- A. vrf-target import
- B. vrf-export
- C. vrf-target export
- D. vrf-import
์ ๋ต๏ผB
์ค๋ช
๏ผ
The vrf-target statement is used in routing-instances to define route-target communities for VPN route import and export policies.
* vrf-target export # Controls which route targets (RTs) are added to advertised routes (used when sending routes to remote PEs).
* vrf-target import # Controls which VPN routes are accepted into the VRF (used when receiving routes from remote PEs).
ย
์ง๋ฌธ # 38
Which two statements about IS-IS are correct? (Choose two.)
- A. PSNPs are flooded periodically.
- B. CSNPs are flooded periodically.
- C. PSNPs contain only descriptions of LSPs.
- D. CSNPs contain only descriptions of LSPs.
์ ๋ต๏ผB,C
์ค๋ช
๏ผ
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.
ย
์ง๋ฌธ # 39
Exhibit
Referring to the exhibit, you must provide Internet access for VPN-A using CE-1 as the hub CE.
Which two statements are correct in this situation? (Choose two.)
- A. Internet traffic from Site 2 takes the path of PE-2 -> PE-1 -> CE-1 -> PE-1 -> GW-1.
- B. You must use RIB groups to leak routes between the inet. o and vpn-a. inet. o tables.
- C. RIB groups are not needed to leak routes between the inet. 0 and VPN-A. inet. 0 tables,
- D. Internet traffic from Site 2 takes the path of PE-2 -> PE-1 -> GW-1.
์ ๋ต๏ผA,C
ย
์ง๋ฌธ # 40
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.)
- A. The drop probability jumps immediately from 20% to 60% when the queue level reaches 75% full.
- B. To use this drop profile, you reference it in a scheduler.
- C. To use this drop profile, you apply it directly to an interface.
- D. The drop probability gradually increases from 20% to 60% as the queue level increases from 50% full to
75% full
์ ๋ต๏ผB,D
์ค๋ช
๏ผ
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; } }
ย
์ง๋ฌธ # 41
Exhibit
Referring to the exhibit, which two statements are correct about the dual route reflectors within a cluster?
(Choose two.)
- A. RR1 advertises routes from the client to RR2. using itself as the next hop.
- B. RR1 and RR2 advertise routes learned from the clients to EBGP peers, using itself as the next hop.
- C. RR1 and RR2 append the duster ID when advertising routes from dient to dient.
- D. RR1 and RR2 must have the same duster ID to exchange routes learned from the client.
์ ๋ต๏ผB,C
ย
์ง๋ฌธ # 42
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