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Juniper JN0-481 Exam Syllabus Topics:
Topic
Details
Topic 1
- 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 2
- 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 3
- 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.
Juniper Data Center, Specialist (JNCIS-DC) Sample Questions (Q41-Q46):
NEW QUESTION # 41
You are considering the bridged overlay EVPN-VXLAN architecture.
In this scenario, how many VLANs would be enabled in the VLAN-based service type at the MAC-VRF EVPN instance level?
- A. one VLAN
- B. 4000 VLANs
- C. four VLANs
- D. two VLANs
Answer: A
Explanation:
In a bridged overlay EVPN-VXLAN architecture using the VLAN-based service type, one VLAN is mapped to a single MAC-VRF EVPN instance. Each VLAN requires its own EVPN instance, ensuring isolation at the MAC-VRF level.
NEW QUESTION # 42
What does VXLAN use to uniquely label and identify broadcast domains?
- A. Virtual Network Identifier (VNI)
- B. VLAN ID
- C. End System Identifier (ESI)
- D. Agent Circuit Identifier (ACI)
Answer: A
Explanation:
In a VXLAN overlay, each Layer 2 broadcast domain (the logical equivalent of a VLAN/bridge domain) is identified by a 24-bit VXLAN Network Identifier (VNI) carried in the VXLAN header. This VNI is what allows the overlay to scale far beyond traditional VLAN space (12-bit VLAN IDs), enabling up to ~16 million distinct segments. In an EVPN-VXLAN data center fabric, Junos v24.4 leaf switches operate as VTEPs and map local bridge domains (often associated with VLANs on server-facing ports) to a VNI. When traffic is sent across the routed underlay, the leaf encapsulates Ethernet frames into VXLAN packets and inserts the VNI so the receiving VTEP can place the frame into the correct broadcast domain on decapsulation.
Apstra 5.1 abstracts this mapping through virtual networks and resource allocation: when you define a VXLAN-based virtual network, Apstra allocates a VNI from the appropriate pool and consistently programs the necessary constructs on all participating leaves. The key point is that VNI is the unique identifier in the VXLAN data plane used to label the broadcast domain across the IP fabric; VLAN IDs may exist locally at the edge for tagging, but the globally significant overlay identifier is the VNI.
Verified Juniper sources (URLs):
https://www.juniper.net/documentation/us/en/software/junos/evpn/topics/topic-map/sdn-vxlan.html
NEW QUESTION # 43
The analytics probe shown in the exhibit is enabled.
The ge-0/0/5 interface on the my-esl-001-leaf1 node receives an average of greater than 1 Mbps of traffic. Which two statements are correct in this scenario? (Choose two.)
- A. A probe anomaly will be raised.
- B. The indicator for the Analytics tab in the blueprint will turn red.
- C. The indicator for the Active tab in the blueprint will turn red.
- D. A service anomaly will be raised.
Answer: A,B
Explanation:
In Apstra 5.1, an IBA probe is a defined analytics pipeline that applies to a scoped set of graph objects (here, interfaces) and evaluates telemetry against logic defined in its processors. The exhibit shows a probe that consumes Interface Counters Average and then applies a Range processor. In the processor configuration, the Anomalous Range is set to "greater than 1,000,000" (bytes per second-equivalent for ~1 Mbps depending on the probe's metric definition), and Raise Anomaly is set to True. Therefore, when ge-0/0/5 receives an average traffic level above the configured threshold, the probe's condition evaluates as anomalous and Apstra raises a probe anomaly for that interface. That makes statement A correct.
When probe anomalies are raised, Apstra surfaces them in the blueprint's Analytics area because they are analytics-derived findings (as opposed to configuration drift or deployment workflow issues). As a result, the blueprint's Analytics tab indicator changes state (commonly to red with a badge count) to signal active analytics anomalies requiring attention. That makes statement B correct.
This event is not classified as a service anomaly (which is associated with higher-level service intent/assurance objects) unless separately mapped by policy/logic, and it does not primarily drive the Active tab indicator, which is focused on operational state views rather than being the primary alert surface for IBA probe anomalies.
NEW QUESTION # 44
When viewing the devices in the Managed Devices table, you see that some devices are listed in the OOS-READY state.
What does this state mean for the device?
- A. The device is ready to have its NOS upgraded.
- B. The device has been taken out of service for maintenance.
- C. The device has an agent installed and is ready to be assigned into a blueprint.
- D. The device is awaiting the installation of a license.
Answer: C
Explanation:
In Juniper Apstra, a device in the OOS-READY (Out-Of-Service READY) state indicates that the Apstra agent has been installed and the device is prepared to be assigned into a blueprint, but it has not yet been brought into active service within the fabric.
NEW QUESTION # 45
You are using Juniper Apstra to create your DC fabric. The fabric requires the use of configlets and requires a property set, which you call "test." While creating the property set, you encounter an error message.
Referring to the exhibit, how would you correct the error?
- A. Remove the trailing blank lines.
- B. Change to JSON and click Create.
- C. Use the Builder option for input type of YAML.
- D. Use valid YAML syntax of key: value.
Answer: D
Explanation:
In Apstra 5.1, a property set is a structured data object used to parameterize configlets (config templates). The key point is that Apstra expects the property set "values" to be a dictionary/map so that the configlet can reference variables by name (for example, {{ NTP_SRV1 }} or nested keys). The exhibit shows a server-side validation error indicating that values_yaml "should be dict," which occurs when the YAML content is entered as a single scalar string (such as try_ksh) instead of a key-value mapping.
To correct this, rewrite the YAML using valid key: value syntax so the top-level structure is a dictionary. For example, a minimal valid property set would look like role: try_ksh (or any meaningful key name aligned to the variables your configlet expects). If multiple variables are needed, add additional keys, and if your configlet uses nested objects, represent them as nested YAML dictionaries. This correction aligns the property set with Apstra's intent-based model: values are stored as named properties and then rendered deterministically into device configuration. This is independent of Junos v24.4 specifics; Junos becomes relevant when the rendered configlet content is applied to devices, but the property set itself must first validate as a dictionary for Apstra to render the template correctly.
Verified Juniper sources (URLs):
https://www.juniper.net/documentation/us/en/software/apstra5.1/apstra-user-guide/topics/task/property-set-datacenter-design-create.html
https://www.juniper.net/documentation/us/en/software/apstra5.1/apstra-user-guide/topics/concept/property-set-datacenter-design.html
https://www.juniper.net/documentation/us/en/software/apstra5.1/apstra-user-guide/topics/ref/property-sets-api.html
NEW QUESTION # 46
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