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NEW QUESTION # 129
You are developing a churn prediction model and want to track its performance across different model versions using the Snowflake Model Registry. After registering a new model version, you need to log evaluation metrics (e.g., AUC, F 1-score) and custom tags associated with the training run. Assuming you have a registered model named 'churn_model' with version 'v2', which of the following code snippets demonstrates the correct way to log these metrics and tags using the Snowflake Python Connector and the 'ModelRegistry' API?





Answer: B
Explanation:
Option A is correct. It first retrieves the specific model version using , and then calls and 'set_tag' on the returned 'version' object. The other options either attempt to call these methods directly on the "ModelRegistry' object (incorrect as these are version-specific operations) or use incorrect syntax for accessing versions.
NEW QUESTION # 130
You are tasked with predicting sales (SALES AMOUNT') for a retail company using linear regression in Snowflake. The dataset includes features like 'ADVERTISING SPEND', 'PROMOTIONS', 'SEASONALITY INDEX', and 'COMPETITOR PRICE'. After training a linear regression model named 'sales model', you observe that the model performs poorly on new data, indicating potential issues with multicollinearity or overfitting. Which of the following strategies, applied directly within Snowflake, would be MOST effective in addressing these issues and improving the model's generalization performance? Choose ALL that apply.
Answer: A,B,E
Explanation:
Options A, B, and D are the most effective strategies for addressing multicollinearity and overfitting in this scenario. Ridge Regression (A) adds an L2 regularization term, which penalizes large coefficients and reduces overfitting. Manually removing highly correlated features (B) addresses multicollinearity directly. Performing feature scaling (D) ensures that features with different scales do not disproportionately influence the model. Increasing training data (C) is generally helpful, but doesn't directly solve multicollinearity. Decreasing MAX ITERATIONS (E) might prevent the model from fully converging, but is a less targeted approach than regularization or feature selection.
NEW QUESTION # 131
You have trained a classification model in Snowflake using Snowpark ML to predict customer churn. After deploying the model, you observe that the model performs well on the training data but poorly on new, unseen data'. You suspect overfitting. Which of the following strategies can be applied within Snowflake to detect and mitigate overfitting during model validation , considering the model is already deployed and receiving inference requests through a Snowflake UDF?
Answer: B,C
Explanation:
Options A and C are correct because they describe strategies for detecting and mitigating overfitting during the model validation process using Snowflake's capabilities. AUPRC is a good performance metric to compare the training vs validation set results to catch overfitting, and regularization can be used to avoid overfitting. Option C directly incorporates cross-validation into the model training workflow within Snowflake, allowing for early detection and mitigation of overfitting through hyperparameter tuning and model selection. Option B is incorrect because it focuses on performance optimization, not overfitting. Option D describes an AIB testing or champion-challenger setup which could be a strategy to use to detect data drift over time, but not overfitting. E is only partially correct as it describes one way to detect data drift, but not overfitting.
NEW QUESTION # 132
You are tasked with identifying fraudulent transactions from unstructured log data stored in Snowflake. The logs contain various fields, including timestamps, user IDs, and transaction details embedded within free-text descriptions. You plan to use a supervised learning approach, having labeled a subset of transactions as 'fraudulent' or 'not fraudulent.' Which of the following methods best describes the extraction and processing of this data for training a machine learning model within Snowflake?
Answer: B
Explanation:
Option C provides the most comprehensive and effective approach. It combines the strengths of both regular expressions (for structured data extraction) and NLP techniques (for understanding the semantic content of the log descriptions). Using Snowflake UDFs keeps the data processing within Snowflake, minimizing data movement. Combining extracted features with other structured data enhances the model's performance.
NEW QUESTION # 133
You are exploring a large dataset of website user behavior in Snowflake to identify patterns and potential features for a machine learning model predicting user engagement. You want to create a visualization showing the distribution of 'session_duration' for different 'user_segments'. The 'user_segmentS column contains categorical values like 'New', 'Returning', and 'Power User'. Which Snowflake SQL query and subsequent data visualization technique would be most effective for this task?
Answer: D
Explanation:
Using the Median (option B) provides a better central tendency measure than the average (option A) when the data may have outliers. The box plot effectively visualizes the distribution, including quartiles and outliers. Option C involves generating separate queries and histograms, which is less efficient. Calculating quantiles using 'APPROX_PERCENTILE' (Option D) is good for large datasets, but the resulting scatter plot isn't the best way to show distribution. Pie chart does not show distrubution but proportions.
NEW QUESTION # 134
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