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172 lines
6.5 KiB
Markdown
172 lines
6.5 KiB
Markdown
# Derivation and Deriving Path
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So far, we have covered "inert" store objects.
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But the point of the Nix store layer is to be a build system.
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Other system (like Git or IPFS) also store and transfer immutable data, but they don't concern themselves with *how* that data was created.
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This is where Nix distinguishes itself.
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*Derivations* represent individual build steps, and *deriving paths* are needed to to the *outputs* of those build steps.
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The two concepts need to be introduced together because, as described below, each depends on the other.
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## Derivation
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What is natural Unix analog for a build step *in action*?
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Answer: a process that will eventually exit, leaving behind some output date.
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What is the natural way to *plan* such a step?
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An `execve` system call.
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A derivation consists of:
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- A (base) name
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- A set of *outputs*, consisting of names and possibly other data
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- A set of *inputs*, a set of deriving paths
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- Everything needed for an `execve` system call:
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1. Path to executable
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2. A list of arguments (except for `argv[0]`, which is taken from the path in the usual way)
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3. A set of environment variables.
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- A two-component "system" name (e.g. `x86_64-linux`) where the executable is to run.
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The path and list/set elements of the other two will presumably consist wholly or partly of store paths.
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But just as we stored the references contained in the file data separately for store objects, so we store the set of inputs separately.
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The last bit of information is to take advantage of the fact that Nix allows *heterogenous* build plans, were not all steps can be run on the same machine or same sort of machine.
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The process's job is to produce the outputs, but have no other important side effects.
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The rules around this will be discussed in following sections.
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### Output name
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Most outputs are named `drv.name + '-' + outputName`.
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However, an output named "out" is just has name `drv.name`.
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This is to allow derivations with a single output to avoid a superfluous `-<outputName>` in their single output's name when no disambiguation is needed.
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### Placeholder
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TODO
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### Referencing
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Derivations are always referred to by the store path of the store object they are encoded to.
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The store path name is the derivation name with `.drv` suffixed at the end.
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The store path digest we will explain in a following section after we go over the different variants of derivations, as the exact algorithm depends on them.
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Suffice to say for now, it is (a form of) content addressing based on the derivation and its inputs.
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## Deriving path
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Deriving references are close to their abstract version, but using `StorePath` as the type of all references, matching the end of the previous subsection.
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In pseudo code:
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```idris
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type OutputName = String
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data DerivingPath
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= ConstantPath { path : StorePath }
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| Output {
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drv : StorePath,
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output : OutputName,
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}
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```
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## Encoding
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### Derivation
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- The name is not encoded, because we can just get it from the store object!
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:::{.note}
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Brief amusing history of PP-ATerm
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:::
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#### `inputSrcs` vs `inputDrvs`
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### Deriving Path
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Constant deriving paths are encoded simply as the underlying store path is.
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Thus, we see that every encoded store path is also a valid encoded (constant) deriving path.
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Output deriving paths are encoded by
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- encoding of a store path referring to a derivation
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- a separator (`^` or `!` depending on context)
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- the name of an output
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An example would be:
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```
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/nix/store/lxrn8v5aamkikg6agxwdqd1jz7746wz4-firefox-98.0.2.drv^out
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```
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This parses like so:
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```
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/nix/store/lxrn8v5aamkikg6agxwdqd1jz7746wz4-firefox-98.0.2.drv^out
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|------------------------------------------------------------| |-|
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store path (usual encoding) output name
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|--|
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note the ".drv"
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```
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## Extending the model to be higher-order
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**Experimental feature**: [`dynamic-derivations`](@docroot@/contributing/experimental-features.md#xp-feature-dynamic-derivations)
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We can apply the same extension discussed for the abstract model to the concrete model.
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Again, only the data type for Deriving Paths needs to be modified.
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Derivations are the same except for using the new extended deriving path data type.
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```idris
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type OutputName = String
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data DerivingPath
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= ConstantPath { storeObj : StorePath }
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| Output {
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drv : DerivingPath, -- changed
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output : OutputName,
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}
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```
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Now, the `drv` field of `BuiltObject` is itself a `DerivingPath` instead of an `StorePath`.
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Under this extended model, `DerivingPath`s are thus inductively built up from an `ConstantPath`, contains in 0 or more outer `Outputs`.
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### Encoding
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The encoding is adjusted in a very simplest way, merely displaying the same
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```
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/nix/store/lxrn8v5aamkikg6agxwdqd1jz7746wz4-firefox-98.0.2.drv^foo.drv^bar.drv^out
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|----------------------------------------------------------------------------| |-|
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inner deriving path (usual encoding) output name
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|--------------------------------------------------------------------| |-----|
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even more inner deriving path (usual encoding) output name
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|------------------------------------------------------------| |-----|
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innermost constant store path (usual encoding) output name
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```
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## Extra extensions
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### `__structuredAttrs`
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Historically speaking, most users of Nix made GNU Bash with a script the command run, regardless of what they were doing.
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Bash variable are automatically created from env vars, but bash also supports array and string-keyed map variables in addition to string variables.
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People also usually create derivations using language which also support these richer data types.
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It was thus desired a way to get this data from the language "planning" the derivation to language to bash, the language evaluated at "run time".
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`__structuredAttrs` does this by smuggling inside the core derivation format a map of named richer data.
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At run time, this becomes two things:
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1. A JSON file containing that map.
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2. A bash script setting those variables.
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The bash command can be passed a script which will "source" that Nix-created bash script, setting those variables with the richer data.
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The outer script can then do whatever it likes with those richer variables as input.
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However, since derivations can already contain arbitary input sources, the vast majority of `__structuredAttrs` can be handled by upper layers.
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We might consider implementing `__structuredAttrs` in higher layers in the future, and simplifying the store layer.
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