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NEW QUESTION: 1
Your network consists of one Active Directory domain.
All domain controllers run Windows Server 2008 R2 and are configured as global catalog servers. The relevant portion of the network is configured as shown in the exhibit. (Click the Exhibit button.)

The Bridge all site links option is enabled.
You are designing a failover strategy for domain controller availability.
You need to ensure that client computers in SiteH only authenticate to DC1 or DC2 if DC8 fails.
What should you do?
A. Prevent DC3, DC4, DC5, DC6, DC7, and DC8 from registering generic (non-sitespecific) domain controller locator DNS records.
B. Change the B-H site link cost to 50.
C. Remove the global catalog server attribute from DC3, DC4, DC5, DC6, DC7, and DC8.
D. Disable the Bridge all site links option. In SiteB, install a new writable domain controller that runs Windows Server 2008 R2.
Answer: A
Explanation:
Explanation/Reference: To design a failover strategy to ensure the high availability of domain controllers and to ensure SiteH only authenticate to DC1 or DC2 if DC8 fails, you need to prevent the domain controllers of all the spoke sites from registering generic (non-site-specific) domain controller locator DNS records.
Usually it is preferable that if all domain controllers/global catalogs in a satellite site become unavailable, a client that is searching for a domain controller/global catalog in that site will fail over to a domain controller/global catalog in a central hub and not in another satellite site.
To achieve this behavior, the domain controllers/global catalogs in the satellite offices should not register generic (non-site-specific) domain controller locator DNS records. These records are registered only by the domain controllers/global catalogs in the central hub. When clients cannot locate the domain controllers/global catalogs serving their site, they attempt to locate any domain controllers/global catalogs using these generic (non-sitespecific) domain controller locator DNS records.
Reference: Section I: Hub-and-Spoke Topology
http://support.microsoft.com/kb/306602

NEW QUESTION: 2
An SE is working to size a prospects environment that includes production Oracle databases.
Which Oracle output should the SE request from the prospect to collect accurate sizing information?
A. STATSPACK
B. Active Session History Report
C. Automatic Workload Repository Report
D. Oracle Export Schema
Answer: C

NEW QUESTION: 3
You create a binary classification model by using Azure Machine Learning Studio.
You must tune hyperparameters by performing a parameter sweep of the model. The parameter sweep must meet the following requirements:
* iterate all possible combinations of hyperparameters
* minimize computing resources required to perform the sweep
* You need to perform a parameter sweep of the model.
Which parameter sweep mode should you use?
A. Entire grid
B. Sweep clustering
C. Random sweep
D. Random grid
E. Random seed
Answer: D
Explanation:
Explanation
Maximum number of runs on random grid: This option also controls the number of iterations over a random sampling of parameter values, but the values are not generated randomly from the specified range; instead, a matrix is created of all possible combinations of parameter values and a random sampling is taken over the matrix. This method is more efficient and less prone to regional oversampling or undersampling.
If you are training a model that supports an integrated parameter sweep, you can also set a range of seed values to use and iterate over the random seeds as well. This is optional, but can be useful for avoiding bias introduced by seed selection.
Topic 2, Case Study 1
Overview
You are a data scientist in a company that provides data science for professional sporting events. Models will be global and local market data to meet the following business goals:
*Understand sentiment of mobile device users at sporting events based on audio from crowd reactions.
*Access a user's tendency to respond to an advertisement.
*Customize styles of ads served on mobile devices.
*Use video to detect penalty events.
Current environment
Requirements
* Media used for penalty event detection will be provided by consumer devices. Media may include images and videos captured during the sporting event and snared using social media. The images and videos will have varying sizes and formats.
* The data available for model building comprises of seven years of sporting event media. The sporting event media includes: recorded videos, transcripts of radio commentary, and logs from related social media feeds feeds captured during the sporting events.
*Crowd sentiment will include audio recordings submitted by event attendees in both mono and stereo Formats.
Advertisements
* Ad response models must be trained at the beginning of each event and applied during the sporting event.
* Market segmentation nxxlels must optimize for similar ad resporr.r history.
* Sampling must guarantee mutual and collective exclusivity local and global segmentation models that share the same features.
* Local market segmentation models will be applied before determining a user's propensity to respond to an advertisement.
* Data scientists must be able to detect model degradation and decay.
* Ad response models must support non linear boundaries features.
* The ad propensity model uses a cut threshold is 0.45 and retrains occur if weighted Kappa deviates from 0.1+/-5%.
* The ad propensity model uses cost factors shown in the following diagram:

The ad propensity model uses proposed cost factors shown in the following diagram:

Performance curves of current and proposed cost factor scenarios are shown in the following diagram:

Penalty detection and sentiment
Findings
*Data scientists must build an intelligent solution by using multiple machine learning models for penalty event detection.
*Data scientists must build notebooks in a local environment using automatic feature engineering and model building in machine learning pipelines.
*Notebooks must be deployed to retrain by using Spark instances with dynamic worker allocation
*Notebooks must execute with the same code on new Spark instances to recode only the source of the data.
*Global penalty detection models must be trained by using dynamic runtime graph computation during training.
*Local penalty detection models must be written by using BrainScript.
* Experiments for local crowd sentiment models must combine local penalty detection data.
* Crowd sentiment models must identify known sounds such as cheers and known catch phrases. Individual crowd sentiment models will detect similar sounds.
* All shared features for local models are continuous variables.
* Shared features must use double precision. Subsequent layers must have aggregate running mean and standard deviation metrics Available.
segments
During the initial weeks in production, the following was observed:
*Ad response rates declined.
*Drops were not consistent across ad styles.
*The distribution of features across training and production data are not consistent.
Analysis shows that of the 100 numeric features on user location and behavior, the 47 features that come from location sources are being used as raw features. A suggested experiment to remedy the bias and variance issue is to engineer 10 linearly uncorrected features.
Penalty detection and sentiment
*Initial data discovery shows a wide range of densities of target states in training data used for crowd sentiment models.
*All penalty detection models show inference phases using a Stochastic Gradient Descent (SGD) are running too stow.
*Audio samples show that the length of a catch phrase varies between 25%-47%, depending on region.
*The performance of the global penalty detection models show lower variance but higher bias when comparing training and validation sets. Before implementing any feature changes, you must confirm the bias and variance using all training and validation cases.