安全で信頼できるウェブサイトとして、あなたの個人情報の隠しとお支払いの安全性を保障していますから、弊社のAmazonのMLS-C01トレーリング学習試験ソフトを安心にお買いください。弊社のRoyalholidayclubbedは最大なるIT試験のための資料庫ですので、ほかの試験に興味があるなら、Royalholidayclubbedで探したり、弊社の係員に問い合わせたりすることができます。心よりご成功を祈ります。 それに、Royalholidayclubbedの教材を購入すれば、Royalholidayclubbedは一年間の無料アップデート・サービスを提供してあげます。問題が更新される限り、Royalholidayclubbedは直ちに最新版のMLS-C01トレーリング学習資料を送ってあげます。 豊富な資料、便利なページ構成と購入した一年間の無料更新はあなたにAmazonのMLS-C01トレーリング学習試験に合格させる最高の支持です。
AWS Certified Specialty MLS-C01 それで、不必要な損失を避けできます。AmazonのMLS-C01 - AWS Certified Machine Learning - Specialtyトレーリング学習認定試験に合格することはきっと君の職業生涯の輝い将来に大変役に立ちます。 あなたは弊社RoyalholidayclubbedのAmazon MLS-C01 復習対策書試験問題集を利用し、試験に一回合格しました。Amazon MLS-C01 復習対策書試験認証証明書を持つ皆様は面接のとき、他の面接人員よりもっと多くのチャンスがあります。
購入した前の無料の試み、購入するときのお支払いへの保障、購入した一年間の無料更新AmazonのMLS-C01トレーリング学習試験に失敗した全額での返金…これらは我々のお客様への承諾です。常々、時間とお金ばかり効果がないです。正しい方法は大切です。
Amazon MLS-C01トレーリング学習 - 自分の幸せは自分で作るものだと思われます。あなたはMLS-C01トレーリング学習試験に不安を持っていますか?MLS-C01トレーリング学習参考資料をご覧下さい。私たちのMLS-C01トレーリング学習参考資料は十年以上にわたり、専門家が何度も練習して、作られました。あなたに高品質で、全面的なMLS-C01トレーリング学習参考資料を提供することは私たちの責任です。私たちより、MLS-C01トレーリング学習試験を知る人はいません。
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MLS-C01 PDF DEMO:QUESTION NO: 1 A Machine Learning Specialist receives customer data for an online shopping website. The data includes demographics, past visits, and locality information. The Specialist must develop a machine learning approach to identify the customer shopping patterns, preferences and trends to enhance the website for better service and smart recommendations. Which solution should the Specialist recommend? A. A neural network with a minimum of three layers and random initial weights to identify patterns in the customer database B. Random Cut Forest (RCF) over random subsamples to identify patterns in the customer database C. Latent Dirichlet Allocation (LDA) for the given collection of discrete data to identify patterns in the customer database. D. Collaborative filtering based on user interactions and correlations to identify patterns in the customer database Answer: D
QUESTION NO: 2 A Machine Learning Specialist kicks off a hyperparameter tuning job for a tree-based ensemble model using Amazon SageMaker with Area Under the ROC Curve (AUC) as the objective metric This workflow will eventually be deployed in a pipeline that retrains and tunes hyperparameters each night to model click-through on data that goes stale every 24 hours With the goal of decreasing the amount of time it takes to train these models, and ultimately to decrease costs, the Specialist wants to reconfigure the input hyperparameter range(s) Which visualization will accomplish this? A. A scatter plot with points colored by target variable that uses (-Distributed Stochastic Neighbor Embedding (I-SNE) to visualize the large number of input variables in an easier-to-read dimension. B. A scatter plot showing (he performance of the objective metric over each training iteration C. A histogram showing whether the most important input feature is Gaussian. D. A scatter plot showing the correlation between maximum tree depth and the objective metric. Answer: A
QUESTION NO: 3 A Machine Learning Specialist has created a deep learning neural network model that performs well on the training data but performs poorly on the test data. Which of the following methods should the Specialist consider using to correct this? (Select THREE.) A. Decrease dropout. B. Increase regularization. C. Increase feature combinations. D. Decrease feature combinations. E. Decrease regularization. F. Increase dropout. Answer: A,B,C
QUESTION NO: 4 A Machine Learning Specialist is using Amazon SageMaker to host a model for a highly available customer-facing application . The Specialist has trained a new version of the model, validated it with historical data, and now wants to deploy it to production To limit any risk of a negative customer experience, the Specialist wants to be able to monitor the model and roll it back, if needed What is the SIMPLEST approach with the LEAST risk to deploy the model and roll it back, if needed? A. Create a SageMaker endpoint and configuration for the new model version. Redirect production traffic to the new endpoint by using a load balancer Revert traffic to the last version if the model does not perform as expected. B. Update the existing SageMaker endpoint to use a new configuration that is weighted to send 5% of the traffic to the new variant. Revert traffic to the last version by resetting the weights if the model does not perform as expected. C. Update the existing SageMaker endpoint to use a new configuration that is weighted to send 100% of the traffic to the new variant Revert traffic to the last version by resetting the weights if the model does not perform as expected. D. Create a SageMaker endpoint and configuration for the new model version. Redirect production traffic to the new endpoint by updating the client configuration. Revert traffic to the last version if the model does not perform as expected. Answer: D
QUESTION NO: 5 A Machine Learning Specialist working for an online fashion company wants to build a data ingestion solution for the company's Amazon S3-based data lake. The Specialist wants to create a set of ingestion mechanisms that will enable future capabilities comprised of: * Real-time analytics * Interactive analytics of historical data * Clickstream analytics * Product recommendations Which services should the Specialist use? A. Amazon Athena as the data catalog; Amazon Kinesis Data Streams and Amazon Kinesis Data Analytics for historical data insights; Amazon DynamoDB streams for clickstream analytics; AWS Glue to generate personalized product recommendations B. AWS Glue as the data catalog; Amazon Kinesis Data Streams and Amazon Kinesis Data Analytics for historical data insights; Amazon Kinesis Data Firehose for delivery to Amazon ES for clickstream analytics; Amazon EMR to generate personalized product recommendations C. AWS Glue as the data dialog; Amazon Kinesis Data Streams and Amazon Kinesis Data Analytics for real-time data insights; Amazon Kinesis Data Firehose for delivery to Amazon ES for clickstream analytics; Amazon EMR to generate personalized product recommendations D. Amazon Athena as the data catalog; Amazon Kinesis Data Streams and Amazon Kinesis Data Analytics for near-realtime data insights; Amazon Kinesis Data Firehose for clickstream analytics; AWS Glue to generate personalized product recommendations Answer: C
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Updated: May 28, 2022
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