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CVP Exam Questions And Answers 100% Pass

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CVP Exam Questions And Answers 100% Pass What is Machine Vision? - ANS It is the automatic acquisition and analysis of images to obtain desired data for controlling or evaluating a specific part or activity Definition of Machine Vision - ANS - Automated AND Non‐Contact - Acquisition AND Analysis - Data/information delivery - Technologies AND methods - An engineering discipline Benefits of Using Machine Vision - ANS - Help eliminate dedicated mechanical solutions - Provide flexibility in automated processes - Help to improve quality, enable related technologies, and reduce costs MV (as a set of methods) - What is Image Acquisition? - ANS A critical part of machine vision that is required in order to achieve an image that can provide the information needed in the application. What is Image Analysis? (Machine Vision - as a set of methods) - ANS The overall process of extracting information from the image. ©EVERLY 2025 ALL RIGHTS RESERVED Includes tasks like pre‐processing, feature extraction, object segmentation, identification, measurement and more. What is Data/Results Integration? (Information gained from the image....) - ANS Making real‐ world decisions about the information gained from the image. The link to the automation process "Machine Vision" or "Computer Vision" (definition, differences) - ANS Computer vision most commonly refers to the use of AI techniques for classification of objects (e.g. neural networks and deep learning) to make computers "see" in a perceptive way that mimics humans; streaming video and continuous process Machine vision most commonly refers to the use of discrete feature extraction and rule‐based comparisons to make decisions directly on image data, 1‐1 relationship part to process "Machine Vision" vs "Computer Vision" (definition continued) - ANS Machine vision uses a wide variety of tools including those that are most often considered exclusive to "computer vision" (deep learning for example) along with rule‐based or discrete feature extraction and analysis Machine vision is not necessarily a subset of computer vision and computer vision is not necessarily a subset of machine vision In some cases, the capability of the tools described as rule‐based/discrete (machine vision) and learning‐based (computer vision) overlap and either might work well for a target application MV Definition - "Inspect" - ANS Check presence/absence, detect defects, verify assembly, differentiate colors, count objects MV Definition - "Locate/Guide" - ANS Find randomly oriented features or object is 2D and 3D space, perhaps provide real-world coordinates for robotic or motion guidance MV Definition - "Meas

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©EVERLY 2025 ALL RIGHTS RESERVED




CVP Exam Questions And Answers 100%
Pass




What is Machine Vision? - ANS It is the automatic acquisition and analysis of images to
obtain desired data for controlling or evaluating a specific part or activity



Definition of Machine Vision - ANS - Automated AND Non‐Contact
- Acquisition AND Analysis
- Data/information delivery
- Technologies AND methods
- An engineering discipline



Benefits of Using Machine Vision - ANS - Help eliminate dedicated mechanical solutions
- Provide flexibility in automated processes
- Help to improve quality, enable related technologies, and reduce costs



MV (as a set of methods) - What is Image Acquisition? - ANS A critical part of machine vision
that is required in order to achieve an image that can provide the information needed in the
application.



What is Image Analysis? (Machine Vision - as a set of methods) - ANS The overall process of
extracting information from the image.

, ©EVERLY 2025 ALL RIGHTS RESERVED


Includes tasks like pre‐processing, feature extraction, object segmentation, identification,
measurement and more.



What is Data/Results Integration? (Information gained from the image....) - ANS Making real‐
world decisions about the information gained from the image. The link to the automation
process



"Machine Vision" or "Computer Vision" (definition, differences) - ANS Computer vision most
commonly refers to the use of AI techniques for classification of objects (e.g. neural networks
and deep learning) to make computers "see" in a perceptive way that mimics humans;
streaming video and continuous process


Machine vision most commonly refers to the use of discrete feature extraction and rule‐based
comparisons to make decisions directly on image data, 1‐1 relationship part to process



"Machine Vision" vs "Computer Vision" (definition continued) - ANS Machine vision uses a
wide variety of tools including those that are most often considered exclusive to "computer
vision" (deep learning for example) along with rule‐based or discrete feature extraction and
analysis
Machine vision is not necessarily a subset of computer vision and computer vision is not
necessarily a subset of machine vision
In some cases, the capability of the tools described as rule‐based/discrete (machine vision) and
learning‐based (computer vision) overlap and either might work well for a target application



MV Definition - "Inspect" - ANS Check presence/absence, detect defects, verify assembly,
differentiate colors, count objects



MV Definition - "Locate/Guide" - ANS Find randomly oriented features or object is 2D and 3D
space, perhaps provide real-world coordinates for robotic or motion guidance



MV Definition - "Measure" - ANS Precisely measure objects or features in both 2D and 3D
space.
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