Professional-Machine-Learning-Engineer Exam Question 51

You are an ML engineer at a manufacturing company. You need to build a model that identifies defects in products based on images of the product taken at the end of the assembly line. You want your model to preprocess the images with lower computation to quickly extract features of defects in products. Which approach should you use to build the model?
  • Professional-Machine-Learning-Engineer Exam Question 52

    You work for a retail company. You have been asked to develop a model to predict whether a customer will purchase a product on a given day. Your team has processed the company's sales data, and created a table with the following rows:
    * Customer_id
    * Product_id
    * Date
    * Days_since_last_purchase (measured in days)
    * Average_purchase_frequency (measured in 1/days)
    * Purchase (binary class, if customer purchased product on the Date)
    You need to interpret your models results for each individual prediction. What should you do?
  • Professional-Machine-Learning-Engineer Exam Question 53

    You are profiling the performance of your TensorFlow model training time and notice a performance issue caused by inefficiencies in the input data pipeline for a single 5 terabyte CSV file dataset on Cloud Storage. You need to optimize the input pipeline performance. Which action should you try first to increase the efficiency of your pipeline?
  • Professional-Machine-Learning-Engineer Exam Question 54

    You have recently trained a scikit-learn model that you plan to deploy on Vertex Al. This model will support both online and batch prediction. You need to preprocess input data for model inference. You want to package the model for deployment while minimizing additional code What should you do?
  • Professional-Machine-Learning-Engineer Exam Question 55

    You are building a linear model with over 100 input features, all with values between -1 and 1. You suspect that many features are non-informative. You want to remove the non-informative features from your model while keeping the informative ones in their original form. Which technique should you use?
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