Question 368 of 988
Implement computer vision solutionshardMultiple ChoiceObjective-mapped

Quick Answer

The correct step is to detect and remove barcodes from the image before OCR processing. Barcodes contain dense, repetitive patterns that Azure AI Vision’s pre-built OCR engine can misinterpret as text characters, leading to extraction errors or application crashes. This interference occurs because the OCR model is not designed to distinguish between structured barcode data and natural text, so preprocessing must strip these artifacts to ensure clean input. On the AI-102 exam, this scenario tests your understanding of image preprocessing pipelines for Azure Cognitive Services, often appearing as a distractor where candidates mistakenly choose contrast adjustment or compression. A common trap is assuming OCR can handle all visual elements, but barcodes are a known failure point. Memory tip: think “Barcode Blocker” — if you see lines and spaces that aren’t letters, remove them before the OCR engine sees them.

AI-102 Implement computer vision solutions Practice Question

This AI-102 practice question tests your understanding of implement computer vision solutions. The scenario asks you to isolate a root cause — eliminate options that address a different problem before choosing. After answering, compare your reasoning against the explanation and wrong-answer breakdown below. Once you have made your selection, read the full explanation to reinforce the concept and understand why each distractor is designed to mislead on exam day.

An application uses Azure AI Vision to analyze images and extract text. The application crashes when processing images with embedded barcodes. You suspect the issue is related to the image pre-processing. Which step should you add to the pipeline to resolve the issue?

Question 1hardmultiple choice
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Answer choices

Why each option matters

Answer the question above first, then reveal the full breakdown to understand why each option is right or wrong.

Correct answer & explanation

Detect and remove barcodes from the image before OCR

The correct answer is to add a barcode detection and removal step before OCR. Barcodes can confuse OCR services because they contain patterns that may be interpreted as text, causing errors. Option A is wrong because adjusting contrast does not address barcode interference. Option B is wrong because adding more training data is for custom models, not pre-built OCR. Option D is wrong because compressing the image may reduce quality and exacerbate the issue.

Key principle: NAT direction and interface roles matter as much as the IP address mapping. Inside/outside designation controls which traffic is translated.

Answer analysis

Option-by-option breakdown

For each option: why learners choose it and why it is or isn't the right answer here.

  • Increase the image contrast before sending to the OCR engine

    Why it's wrong here

    Increasing contrast may make barcodes more prominent, potentially worsening the problem.

  • Add more training data with barcodes to the OCR model

    Why it's wrong here

    Azure AI Vision OCR is a pre-built service and cannot be retrained.

  • Detect and remove barcodes from the image before OCR

    Why this is correct

    Removing barcodes eliminates patterns that cause OCR errors, improving accuracy.

    Related concept

    Static NAT maps one inside address to one outside address.

  • Resize the image to a smaller resolution to reduce barcode impact

    Why it's wrong here

    Resizing may reduce image quality and does not specifically address barcode interference.

Common exam traps

Common exam trap: NAT rules depend on direction and matching traffic

NAT is not only about the public address. The inside/outside interface roles and the ACL or rule that matches traffic are just as important.

Detailed technical explanation

How to think about this question

NAT questions usually test address translation, overload/PAT behaviour, static mappings and whether the right traffic is being translated. Read the interface direction and address terms carefully.

KKey Concepts to Remember

  • Static NAT maps one inside address to one outside address.
  • PAT allows many inside hosts to share one public address using ports.
  • Inside local and inside global describe the private and translated addresses.
  • NAT ACLs identify traffic for translation, not always security filtering.

TExam Day Tips

  • Identify inside and outside interfaces first.
  • Check whether the scenario needs static NAT, dynamic NAT or PAT.
  • Do not confuse NAT matching ACLs with normal packet-filtering intent.

Key takeaway

NAT direction and interface roles matter as much as the IP address mapping. Inside/outside designation controls which traffic is translated.

Real-world example

How this comes up in practice

A cloud solutions architect for a retail company is evaluating services for a new workload. The correct answer here reflects best practice for the specific scenario described — not a general cloud recommendation. NAT direction and interface roles matter as much as the IP address mapping. Inside/outside designation controls which traffic is translated. Cloud exam questions reward reading the constraint carefully: the same technology can be right or wrong depending on the use case.

What to study next

Got this wrong? Here's your next step.

Review the four NAT address types (inside local, inside global, outside local, outside global), PAT port overload, and static vs dynamic NAT use cases. Then practise related AI-102 NAT questions on configuration and troubleshooting.

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FAQ

Questions learners often ask

What does this AI-102 question test?

Implement computer vision solutions — This question tests Implement computer vision solutions — Static NAT maps one inside address to one outside address..

What is the correct answer to this question?

The correct answer is: Detect and remove barcodes from the image before OCR — The correct answer is to add a barcode detection and removal step before OCR. Barcodes can confuse OCR services because they contain patterns that may be interpreted as text, causing errors. Option A is wrong because adjusting contrast does not address barcode interference. Option B is wrong because adding more training data is for custom models, not pre-built OCR. Option D is wrong because compressing the image may reduce quality and exacerbate the issue.

What should I do if I get this AI-102 question wrong?

Review the four NAT address types (inside local, inside global, outside local, outside global), PAT port overload, and static vs dynamic NAT use cases. Then practise related AI-102 NAT questions on configuration and troubleshooting.

What is the key concept behind this question?

Static NAT maps one inside address to one outside address.

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Last reviewed: Jun 20, 2026

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