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Tests are the most common, obvious, and wide reaching of all crosscutting concerns in a verification environment.
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In understanding a verification environment's architecture or operation, it becomes difficult to analyze which aspect a particular functionality belongs to or what file in the aspect contains the code.
Advice and introductions in Aspect-Oriented Programming (AOP) make it impossible to understand the operation of a verification environment.
We also show that the verification aids can be efficiently used to determine the completeness of the set of assertions in a simulation-based verification environment.
Debugging a complex verification environment that's stimulating a complex design is difficult.
The biggest advantage faced by AOP in verification environment design is the ability to help verification engineers solve complex problems by patch coding.
In a structured or transaction-based verification environment, randomization can occur within each individual transaction, as well as among transactions.
Pluggable code is a self-connecting or self-integrating code that allows the code author to add a new feature to verification environment by including it in the manifest file or remove a feature by excluding the file.
This chapter discusses the importance of structure and re-use in functional verification environments.
Creating pluggable code requires a simple three-step process: encapsulating the code as an aspect, writing a code that connects the pluggable code to the verification environment, encapsulating it in the appropriate aspects, and writing a manifest file just for a feature.
Structure in verification environments is critical to dealing efficiently with complex projects.
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