mirror of
https://github.com/NixOS/nixpkgs.git
synced 2024-12-30 17:43:42 +00:00
4f0dadbf38
After final improvements to the official formatter implementation, this commit now performs the first treewide reformat of Nix files using it. This is part of the implementation of RFC 166. Only "inactive" files are reformatted, meaning only files that aren't being touched by any PR with activity in the past 2 months. This is to avoid conflicts for PRs that might soon be merged. Later we can do a full treewide reformat to get the rest, which should not cause as many conflicts. A CI check has already been running for some time to ensure that new and already-formatted files are formatted, so the files being reformatted here should also stay formatted. This commit was automatically created and can be verified using nix-builda08b3a4d19
.tar.gz \ --argstr baseRevb32a094368
result/bin/apply-formatting $NIXPKGS_PATH
593 lines
11 KiB
Nix
593 lines
11 KiB
Nix
/**
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A partial and basic implementation of GVariant formatted strings.
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See [GVariant Format Strings](https://docs.gtk.org/glib/gvariant-format-strings.html) for details.
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:::{.warning}
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This API is not considered fully stable and it might therefore
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change in backwards incompatible ways without prior notice.
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:::
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*/
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# This file is based on https://github.com/nix-community/home-manager
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# Copyright (c) 2017-2022 Home Manager contributors
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{ lib }:
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let
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inherit (lib)
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concatMapStringsSep
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concatStrings
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escape
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head
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replaceStrings
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;
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mkPrimitive = t: v: {
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_type = "gvariant";
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type = t;
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value = v;
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__toString = self: "@${self.type} ${toString self.value}"; # https://docs.gtk.org/glib/gvariant-text.html
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};
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type = {
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arrayOf = t: "a${t}";
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maybeOf = t: "m${t}";
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tupleOf = ts: "(${concatStrings ts})";
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dictionaryEntryOf = nameType: valueType: "{${nameType}${valueType}}";
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string = "s";
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boolean = "b";
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uchar = "y";
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int16 = "n";
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uint16 = "q";
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int32 = "i";
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uint32 = "u";
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int64 = "x";
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uint64 = "t";
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double = "d";
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variant = "v";
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};
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in
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rec {
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inherit type;
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/**
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Check if a value is a GVariant value
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# Inputs
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`v`
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: value to check
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# Type
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```
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isGVariant :: Any -> Bool
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```
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*/
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isGVariant = v: v._type or "" == "gvariant";
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intConstructors = [
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{
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name = "mkInt32";
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type = type.int32;
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min = -2147483648;
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max = 2147483647;
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}
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{
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name = "mkUint32";
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type = type.uint32;
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min = 0;
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max = 4294967295;
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}
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{
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name = "mkInt64";
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type = type.int64;
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# Nix does not support such large numbers.
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min = null;
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max = null;
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}
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{
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name = "mkUint64";
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type = type.uint64;
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min = 0;
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# Nix does not support such large numbers.
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max = null;
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}
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{
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name = "mkInt16";
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type = type.int16;
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min = -32768;
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max = 32767;
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}
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{
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name = "mkUint16";
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type = type.uint16;
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min = 0;
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max = 65535;
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}
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{
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name = "mkUchar";
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type = type.uchar;
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min = 0;
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max = 255;
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}
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];
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/**
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Returns the GVariant value that most closely matches the given Nix value.
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If no GVariant value can be found unambiguously then error is thrown.
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# Inputs
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`v`
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: 1\. Function argument
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# Type
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```
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mkValue :: Any -> gvariant
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```
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*/
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mkValue =
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v:
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if builtins.isBool v then
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mkBoolean v
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else if builtins.isFloat v then
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mkDouble v
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else if builtins.isString v then
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mkString v
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else if builtins.isList v then
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mkArray v
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else if isGVariant v then
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v
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else if builtins.isInt v then
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let
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validConstructors = builtins.filter (
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{ min, max, ... }: (min == null || min <= v) && (max == null || v <= max)
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) intConstructors;
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in
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throw ''
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The GVariant type for number “${builtins.toString v}” is unclear.
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Please wrap the value with one of the following, depending on the value type in GSettings schema:
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${lib.concatMapStringsSep "\n" (
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{ name, type, ... }: "- `lib.gvariant.${name}` for `${type}`"
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) validConstructors}
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''
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else if builtins.isAttrs v then
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throw "Cannot construct GVariant value from an attribute set. If you want to construct a dictionary, you will need to create an array containing items constructed with `lib.gvariant.mkDictionaryEntry`."
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else
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throw "The GVariant type of “${builtins.typeOf v}” can't be inferred.";
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/**
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Returns the GVariant array from the given type of the elements and a Nix list.
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# Inputs
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`elems`
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: 1\. Function argument
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# Type
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```
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mkArray :: [Any] -> gvariant
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```
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# Examples
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:::{.example}
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## `lib.gvariant.mkArray` usage example
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```nix
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# Creating a string array
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lib.gvariant.mkArray [ "a" "b" "c" ]
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```
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:::
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*/
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mkArray =
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elems:
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let
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vs = map mkValue (lib.throwIf (elems == [ ]) "Please create empty array with mkEmptyArray." elems);
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elemType = lib.throwIfNot (lib.all (t: (head vs).type == t) (
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map (v: v.type) vs
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)) "Elements in a list should have same type." (head vs).type;
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in
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mkPrimitive (type.arrayOf elemType) vs
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// {
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__toString = self: "@${self.type} [${concatMapStringsSep "," toString self.value}]";
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};
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/**
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Returns the GVariant array from the given empty Nix list.
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# Inputs
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`elemType`
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: 1\. Function argument
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# Type
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```
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mkEmptyArray :: gvariant.type -> gvariant
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```
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# Examples
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:::{.example}
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## `lib.gvariant.mkEmptyArray` usage example
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```nix
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# Creating an empty string array
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lib.gvariant.mkEmptyArray (lib.gvariant.type.string)
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```
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:::
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*/
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mkEmptyArray =
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elemType:
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mkPrimitive (type.arrayOf elemType) [ ]
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// {
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__toString = self: "@${self.type} []";
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};
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/**
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Returns the GVariant variant from the given Nix value. Variants are containers
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of different GVariant type.
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# Inputs
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`elem`
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: 1\. Function argument
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# Type
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```
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mkVariant :: Any -> gvariant
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```
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# Examples
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:::{.example}
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## `lib.gvariant.mkVariant` usage example
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```nix
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lib.gvariant.mkArray [
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(lib.gvariant.mkVariant "a string")
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(lib.gvariant.mkVariant (lib.gvariant.mkInt32 1))
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]
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```
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:::
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*/
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mkVariant =
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elem:
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let
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gvarElem = mkValue elem;
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in
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mkPrimitive type.variant gvarElem
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// {
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__toString = self: "<${toString self.value}>";
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};
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/**
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Returns the GVariant dictionary entry from the given key and value.
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# Inputs
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`name`
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: The key of the entry
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`value`
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: The value of the entry
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# Type
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```
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mkDictionaryEntry :: String -> Any -> gvariant
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```
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# Examples
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:::{.example}
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## `lib.gvariant.mkDictionaryEntry` usage example
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```nix
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# A dictionary describing an Epiphany’s search provider
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[
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(lib.gvariant.mkDictionaryEntry "url" (lib.gvariant.mkVariant "https://duckduckgo.com/?q=%s&t=epiphany"))
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(lib.gvariant.mkDictionaryEntry "bang" (lib.gvariant.mkVariant "!d"))
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(lib.gvariant.mkDictionaryEntry "name" (lib.gvariant.mkVariant "DuckDuckGo"))
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]
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```
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:::
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*/
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mkDictionaryEntry =
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name: value:
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let
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name' = mkValue name;
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value' = mkValue value;
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dictionaryType = type.dictionaryEntryOf name'.type value'.type;
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in
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mkPrimitive dictionaryType { inherit name value; }
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// {
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__toString = self: "@${self.type} {${name'},${value'}}";
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};
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/**
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Returns the GVariant maybe from the given element type.
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# Inputs
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`elemType`
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: 1\. Function argument
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`elem`
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: 2\. Function argument
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# Type
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```
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mkMaybe :: gvariant.type -> Any -> gvariant
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```
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*/
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mkMaybe =
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elemType: elem:
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mkPrimitive (type.maybeOf elemType) elem
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// {
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__toString =
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self: if self.value == null then "@${self.type} nothing" else "just ${toString self.value}";
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};
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/**
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Returns the GVariant nothing from the given element type.
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# Inputs
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`elemType`
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: 1\. Function argument
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# Type
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```
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mkNothing :: gvariant.type -> gvariant
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```
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*/
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mkNothing = elemType: mkMaybe elemType null;
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/**
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Returns the GVariant just from the given Nix value.
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# Inputs
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`elem`
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: 1\. Function argument
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# Type
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```
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mkJust :: Any -> gvariant
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```
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*/
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mkJust =
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elem:
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let
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gvarElem = mkValue elem;
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in
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mkMaybe gvarElem.type gvarElem;
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/**
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Returns the GVariant tuple from the given Nix list.
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# Inputs
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`elems`
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: 1\. Function argument
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# Type
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```
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mkTuple :: [Any] -> gvariant
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```
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*/
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mkTuple =
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elems:
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let
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gvarElems = map mkValue elems;
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tupleType = type.tupleOf (map (e: e.type) gvarElems);
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in
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mkPrimitive tupleType gvarElems
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// {
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__toString = self: "@${self.type} (${concatMapStringsSep "," toString self.value})";
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};
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/**
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Returns the GVariant boolean from the given Nix bool value.
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# Inputs
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`v`
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: 1\. Function argument
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# Type
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```
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mkBoolean :: Bool -> gvariant
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```
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*/
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mkBoolean =
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v:
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mkPrimitive type.boolean v
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// {
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__toString = self: if self.value then "true" else "false";
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};
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/**
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Returns the GVariant string from the given Nix string value.
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# Inputs
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`v`
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: 1\. Function argument
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# Type
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```
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mkString :: String -> gvariant
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```
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*/
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mkString =
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v:
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let
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sanitize = s: replaceStrings [ "\n" ] [ "\\n" ] (escape [ "'" "\\" ] s);
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in
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mkPrimitive type.string v
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// {
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__toString = self: "'${sanitize self.value}'";
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};
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/**
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Returns the GVariant object path from the given Nix string value.
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# Inputs
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`v`
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: 1\. Function argument
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# Type
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```
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mkObjectpath :: String -> gvariant
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```
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*/
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mkObjectpath =
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v:
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mkPrimitive type.string v
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// {
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__toString = self: "objectpath '${escape [ "'" ] self.value}'";
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};
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/**
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Returns the GVariant uchar from the given Nix int value.
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# Type
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```
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mkUchar :: Int -> gvariant
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```
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*/
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mkUchar = mkPrimitive type.uchar;
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/**
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Returns the GVariant int16 from the given Nix int value.
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# Type
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```
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mkInt16 :: Int -> gvariant
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```
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*/
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mkInt16 = mkPrimitive type.int16;
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/**
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Returns the GVariant uint16 from the given Nix int value.
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# Type
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```
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mkUint16 :: Int -> gvariant
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```
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*/
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mkUint16 = mkPrimitive type.uint16;
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/**
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Returns the GVariant int32 from the given Nix int value.
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# Inputs
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`v`
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: 1\. Function argument
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# Type
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```
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mkInt32 :: Int -> gvariant
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```
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*/
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mkInt32 =
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v:
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mkPrimitive type.int32 v
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// {
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__toString = self: toString self.value;
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};
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/**
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Returns the GVariant uint32 from the given Nix int value.
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# Type
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```
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mkUint32 :: Int -> gvariant
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```
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*/
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mkUint32 = mkPrimitive type.uint32;
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/**
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Returns the GVariant int64 from the given Nix int value.
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# Type
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```
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mkInt64 :: Int -> gvariant
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```
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*/
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mkInt64 = mkPrimitive type.int64;
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/**
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Returns the GVariant uint64 from the given Nix int value.
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# Type
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```
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mkUint64 :: Int -> gvariant
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```
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*/
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mkUint64 = mkPrimitive type.uint64;
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/**
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Returns the GVariant double from the given Nix float value.
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# Inputs
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||
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`v`
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: 1\. Function argument
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# Type
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||
```
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mkDouble :: Float -> gvariant
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||
```
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*/
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mkDouble =
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v:
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||
mkPrimitive type.double v
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||
// {
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__toString = self: toString self.value;
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};
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}
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