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| Content Provider | ACM Digital Library |
|---|---|
| Author | Nanevski, Aleksandar Morrisett, Greg Shinnar, Avraham Birkedal, Lars Govereau, Paul |
| Abstract | We describe an axiomatic extension to the Coq proof assistant, that supports writing, reasoning about, and extracting higher-order, dependently-typed programs with side-effects. Coq already includes a powerful functional language that supports dependent types, but that language is limited to pure, total functions. The key contribution of our extension, which we call Ynot, is the added support for computations that may have effects such as non-termination, accessing a mutable store, and throwing/catching exceptions. The axioms of Ynot form a small trusted computing base which has been formally justified in our previous work on Hoare Type Theory (HTT). We show how these axioms can be combined with the powerful type and abstraction mechanisms of Coq to build higher-level reasoning mechanisms which in turn can be used to build realistic, verified software components. To substantiate this claim, we describe here a representative series of modules that implement imperative finite maps, including support for a higher-order (effectful) iterator. The implementations range from simple (e.g., association lists) to complex (e.g., hash tables) but share a common interface which abstracts the implementation details and ensures that the modules properly implement the finite map abstraction. |
| Ending Page | 240 |
| Page Count | 12 |
| Starting Page | 229 |
| File Format | PDF MP4 MP2 / MPA / MP3 |
| ISBN | 9781595939197 |
| DOI | 10.1145/1411204.1411237 |
| Language | English |
| Publisher | Association for Computing Machinery (ACM) |
| Publisher Date | 2008-09-20 |
| Publisher Place | New York |
| Access Restriction | Subscribed |
| Subject Keyword | Monads Type theory Separation logic Hoare logic |
| Content Type | Audio Text |
| Resource Type | Article |
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