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Juniper JN0-481 Exam Syllabus Topics:

TopicDetails
Topic 1
  • Intent-Based Analytics: Covers Apstra's analytics tools including Graph Explorer, graph queries, and intent-based analytics probes for network monitoring, validation, and troubleshooting.
Topic 2
  • Apstra Build and Deploy Phases: Covers fabric deployment tasks including agent installation, cable mapping, device states, deploy modes, and Blueprint UI usage, along with related monitoring and troubleshooting.
Topic 3
  • Juniper Apstra Architecture: Introduces core Apstra components including the server, device agents, and UI, along with administrative features such as RBAC, event logging, and syslog.
Topic 4
  • Data Center Architectures (IP Fabrics, EVPN-VXLAN): Covers spine-leaf topology design, ECMP load balancing, and underlay
  • overlay routing, along with EVPN and VXLAN concepts including route types, bridge domains, VNI-to-VLAN mapping, and VTEP functions.
Topic 5
  • Apstra Design Phase: Covers pre-deployment planning elements such as reference designs, logical devices, device profiles, rack types, interface maps, and templates, including their configuration and troubleshooting.
Topic 6
  • Data Center Multitenancy: Covers multi-tenant network management through routing zones, VRFs, virtual networks, connectivity templates, security policies, VMware integration, and Data Center Interconnect.

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Juniper Data Center, Specialist (JNCIS-DC) Sample Questions (Q55-Q60):

NEW QUESTION # 55
In Juniper Apstra, what is the primary purpose of a Property Set?

Answer: A

Explanation:
A Property Set in Juniper Apstra defines a collection of reusable key-value pairs that can be referenced within Configlets or other parts of the design. This enables dynamic, parameterized configuration generation, allowing the same Configlet template to render differently based on the property values assigned to different blueprints or devices.


NEW QUESTION # 56
You have a configuration deviation in the Juniper Apstra dashboard.
What does this anomaly indicate in this scenario?

Answer: B

Explanation:
A configuration deviation anomaly in the Juniper Apstra dashboard indicates that the running configuration on a device does not match the intended configuration (golden config) maintained by Apstra. This typically occurs when someone makes changes directly on the device using CLI or another management tool, bypassing Apstra's intent-based control.


NEW QUESTION # 57
In the case of IP Clos data center five-stage fabric design, what are two rotes of the super spines? (Choose two.)

Answer: A,B

Explanation:
In the case of IP Clos data center five-stage fabric design, the super spines are the devices that provide the highest level of aggregation in the network. They have two main roles:
Super spines are used to interconnect two different data center pods. A pod is a cluster of leaf and spine devices that form a 3-stage Clos topology. A 5-stage Clos topology consists of multiple pods that are connected by the super spines. This allows for scaling the network to support more devices and bandwidth.
Super spines connect to all spine devices within the five-stage architecture. The spine devices are the devices that provide the second level of aggregation in the network. They connect to the leaf devices, which are the devices that provide access to the end hosts. The super spines connect to all the spine devices in the network, regardless of which pod they belong to. This provides any-to-any connectivity between the pods and enables optimal routing and load balancing.


NEW QUESTION # 58
You are creating a new template that will connect two rack based templates together. Which rack type should be used to accomplish this rask?

Answer: B


NEW QUESTION # 59
Which element of an intent-based analytics (IBA) probe is used to specify the database objects to which the probe will apply?

Answer: A

Explanation:
In Apstra 5.1, Intent-Based Analytics (IBA) is built on Apstra's graph-based source of truth, where devices, interfaces, links, routing constructs, and services are represented as nodes with relationships. An IBA probe is effectively a processing pipeline (a directed acyclic graph of stages and processors) that ingests telemetry and then performs calculations, aggregations, and anomaly detection. To make any of that work, the probe must first determine which specific objects in the graph-for example, which leaf switches, which uplinks, which BGP sessions, or which interface counters-should be included in the analysis.
The probe element that selects those objects is the graph query. A graph query is evaluated against Apstra's graph database to return a set of matching nodes/relationships; those query results then become the scope for ingestion and subsequent processing. In other words, the graph query defines "apply this probe to these devices/interfaces/sessions," and it also provides the context used to bind telemetry identities (key-value pairs describing the metric source) to the correct logical objects in the blueprint. This is why Apstra documentation describes early probe processors producing outputs whose cardinality aligns with the number of results returned by the specified graph query(s). Without a graph query, the probe would not have a deterministic, intent-aligned target set for analytics, and the same probe definition could not be reliably reused across fabrics or blueprints.


NEW QUESTION # 60
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