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Pass the HPE Product Certified - AI and Machine Learning [2022] HPE2-N69 Questions and answers with ExamsMirror

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Questions # 1:

You are meeting with a customer, and MUDL engineers express frustration about losing work flue to hardware failures. What should you explain about how HPE Machine Learning Development Environment addresses this pain point?

Options:

A.

The solution automatically mirrors the training process on redundant agents, which take over If an issue occurs.

B.

The solution continuously monitors agent hardware and sends out proactive alerts before failed hardware causes training to tail.

C.

The conductor and each of the agents ate deployed in an active-standby model, which protects in case of hardware issues.

D.

The solution can take periodic checkpoints during the training process and automatically restart failed training from the latest checkpoint.

Questions # 2:

A company has an HPE Machine Learning Development Environment cluster. The ML engineers store training and validation data sets in Google Cloud Storage (GCS). What is an advantage of streaming the data during a trial, as opposed to downloading the data?

Options:

A.

Streaming requires just one bucket, while downloading requires many.

B.

The trial can more quickly start up and begin training the model.

C.

The trial can better separate training and validation data.

D.

Setting up streaming is easier that setting up downloading.

Questions # 3:

You are meeting with a customer how has several DL models deployed. Out wants to expand the projects.

The ML/DL team is growing from 5 members to 7 members. To support the growing team, the customer has assigned 2 dedicated IT start. The customer is trying to put together an on-prem GPU cluster with at least 14 CPUs.

What should you determine about this customer?

Options:

A.

The customer is not ready for an HPE Machine Learning Development solution, but you could recommend open-source Determined Al.

B.

The customer is not ready for an HPE Machine Learning Development solution. Out you could recommend an educational HPE Pointnext ASPS workshop.

C.

The customer is a key target for HPE Machine Learning Development Environment, but not HPE Machine Learning Development System.

D.

The customer is a key target for an HPE Machine Learning Development solution, and you should continue the discussion.

Questions # 4:

Your cluster uses Amazon S3 to store checkpoints. You ran an experiment on an HPE Machine Learning Development Environment cluster, you want to find the location tor the best checkpoint created during the experiment. What can you do?

Options:

A.

In the experiment config that you used, look for the "bucket" field under "hyperparameters." This is the UUID for checkpoints.

B.

Use the "det experiment download -top-n I" command, referencing the experiment ID.

C.

In the Web Ul, go to the Task page and click the checkpoint task that has the experiment ID.

D.

Look for a "determined-checkpoint/" bucket within Amazon S3, referencing your experiment ID.

Questions # 5:

A customer mentions that the ML team wants to avoid overfitting models. What does this mean?

Options:

A.

The team wants to avoid wasting resources on training models with poorly selected hyperparameters.

B.

The team wants to spend less time on creating the code tor models and more time training models.

C.

The team wants to avoid training models to the point where they perform less well on new data.

D.

The team wants to spend less time figuring out which CPUs are available for training models.

Questions # 6:

What is one of the responsibilities of the conductor of an HPE Machine Learning Development Environment cluster?

Options:

A.

it downloads datasets for training.

B.

It uploads model checkpoints.

C.

It validates trained models.

D.

It ensures experiment metadata is stored.

Questions # 7:

A customer is deploying HPE Machine learning Development Environment on on-prem infrastructure. The customer wants to run some experiments on servers with 8 NVIDIA A too GPUs and other experiments on servers with only Z NVIDIA T4 GPUs. What should you recommend?

Options:

A.

Letting the conductor automatically determine which servers to use for each experiment, based on the number of resource slots required

B.

Deploying two HPE Machine Learning Development Environment clusters, one tor each server type

C.

Deploying servers with 8 GPUs as agents and using the conductor to run experiments that require only 2 GPUs

D.

Establishing multiple compute resource pools on the cluster, one tor servers or each type

Questions # 8:

An HPE Machine Learning Development Environment resource pool uses priority scheduling with preemption disabled. Currently Experiment 1 Trial I is using 32 of the pool's 40 total slots; it has priority 42. Users then run two more experiments:

• Experiment 2:1 trial (Trial 2) that needs 24 slots; priority 50

• Experiment 3; l trial (Trial 3) that needs 24 slots; priority I

What happens?

Options:

A.

Trial I is allowed to finish. Then Trial 3 is scheduled.

B.

Trial 2 is scheduled on 8 of the slots. Then, alter Trial 1 has finished, it receives 16 more slots.

C.

Trial 1 is allowed to finish. Then Trial 2 is scheduled.

D.

Trial 3 is scheduled on 8 of the slots. Then, after Trial 1 has finished, it receives 16 more slots.

Questions # 9:

What is a benefit of HPE Machine Learning Development Environment, beyond open source Determined AI?

Options:

A.

Automated user provisioning

B.

Pipeline-based data management

C.

Distributed training

D.

Automated hyperparameter optimization (HPO)

Questions # 10:

An HPE Machine Learning Development Environment cluster has this resource pool:

Name: pool 1

Location: On-prem

Agents: 2

Aux containers per agent: 100

Total slots: 0

Which type of workload can run In pool I?

Options:

A.

Training

B.

GPU Jupyter Notebook

C.

Validation

D.

CPU-only Jupyter Notebook

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