forked from mirror/vulkan-zig
520 lines
17 KiB
Zig
520 lines
17 KiB
Zig
const std = @import("std");
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const xml = @import("xml.zig");
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const mem = std.mem;
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const Allocator = mem.Allocator;
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const SegmentedList = std.SegmentedList;
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const StringHashMap = std.StringHashMap;
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pub const Registry = struct {
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arena: std.heap.ArenaAllocator,
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enums: StringHashMap(EnumInfo),
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bitmasks: StringHashMap(BitmaskInfo),
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handles: StringHashMap(HandleInfo),
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structs: StringHashMap(StructInfo),
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extensions: SegmentedList(ExtensionInfo, 0),
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fn init(allocator: *Allocator) !*Registry {
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// Use this construction to make sure that the extensions list contains a valid pointer to an allocator
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const registry = blk: {
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var arena = std.heap.ArenaAllocator.init(allocator);
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errdefer arena.deinit();
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const registry = try arena.allocator.create(Registry);
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registry.* = .{
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.arena = arena,
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.enums = StringHashMap(EnumInfo).init(allocator),
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.bitmasks = StringHashMap(BitmaskInfo).init(allocator),
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.handles = StringHashMap(HandleInfo).init(allocator),
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.structs = StringHashMap(StructInfo).init(allocator),
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.extensions = undefined
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};
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break :blk registry;
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};
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registry.extensions = SegmentedList(ExtensionInfo, 0).init(®istry.arena.allocator);
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return registry;
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}
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fn deinit(self: *Registry) void {
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self.enums.deinit();
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self.bitmasks.deinit();
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self.handles.deinit();
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self.structs.deinit();
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// Copy to stack so that the arena doesn't destroy itself
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var arena = self.arena;
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arena.deinit();
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}
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fn dump(self: *Registry) void {
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{
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std.debug.warn("Enums:\n", .{});
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var it = self.enums.iterator();
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while (it.next()) |e| {
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const kind_text = if (e.value.kind == .Bitmask) " (bitmask)" else "";
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std.debug.warn(" {}{}:\n", .{ e.key, kind_text });
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var variant_it = e.value.variants.iterator(0);
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while (variant_it.next()) |variant| {
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std.debug.warn(" {}\n", .{variant.name});
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}
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}
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}
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{
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std.debug.warn("Bitmasks:\n", .{});
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var it = self.bitmasks.iterator();
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while (it.next()) |b| {
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std.debug.warn(" {}", .{b.key});
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switch (b.value) {
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.None => std.debug.warn("\n", .{}),
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.Bits => |bits| std.debug.warn(" [bits: {}]\n", .{bits}),
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.Alias => |alias| std.debug.warn(" [alias of: {}]\n", .{alias}),
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}
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}
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}
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{
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std.debug.warn("Handles:\n", .{});
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var it = self.handles.iterator();
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while (it.next()) |kv| {
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std.debug.warn(" {}", .{kv.key});
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switch (kv.value) {
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.Alias => |alias| std.debug.warn(" (alias of {})\n", .{alias}),
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.NonDispatchable => std.debug.warn(" (non-dispatchable)\n", .{}),
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else => std.debug.warn("\n", .{}),
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}
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}
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}
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{
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std.debug.warn("Structs:\n", .{});
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var it = self.structs.iterator();
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while (it.next()) |kv| {
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std.debug.warn(" {}:\n", .{kv.key});
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var member_it = kv.value.members.iterator(0);
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while (member_it.next()) |member| {
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std.debug.warn(" {} = {}\n", .{member.name, member.type_info});
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}
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}
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}
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{
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std.debug.warn("Extensions:\n", .{});
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var it = self.extensions.iterator(0);
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while (it.next()) |ext| {
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std.debug.warn(" {}: {}, version {}\n", .{ext.number, ext.name, ext.version});
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}
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}
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}
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};
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// Type info of fields, function parameters, and return types.
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const TypeInfo = struct {
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const PointerSize = enum {
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One,
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Many, // The length is either given by some expression
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ZeroTerminated
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};
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const Pointer = struct {
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is_const: bool,
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size: PointerSize
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};
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name: []const u8,
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pointers: []Pointer, // Outer-most pointer is the first element
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array_size: ?[]const u8,
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fn fromXml(allocator: *Allocator, elem: *xml.Element) TypeInfo {
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var type_info = TypeInfo {
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.name = elem.getCharData("type").?,
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.pointers = &[_]Pointer{},
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.array_size = elem.getCharData("enum")
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};
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// Find the element which contains the stars of the pointers
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var stars: ?[]const u8 = null;
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var child_it = elem.children.iterator(0);
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while (child_it.next()) |child| {
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if (child.* == .CharData and mem.indexOf(u8, child.CharData, "*") != null) {
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stars = child.CharData;
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break;
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}
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}
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if (stars) |ptr_text| {
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var npointers: usize = 0;
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for (ptr_text) |c| {
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if (c == '*') npointers += 1;
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}
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type_info.pointers = allocator.alloc(TypeInfo.Pointer, npointers) catch unreachable;
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// Read the sizes of each pointer
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if (elem.getAttribute("len")) |lens| {
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var len_it = std.mem.separate(lens, ",");
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for (type_info.pointers) |*ptr, i| {
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ptr.size = if (len_it.next()) |len| lenToPointerSize(len) else .One;
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ptr.is_const = false;
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}
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} else {
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for (type_info.pointers) |*ptr| {
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ptr.size = .One;
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ptr.is_const = false;
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}
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}
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// Read the constness of each pointer
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// Beware: the const of the inner pointer is given before the type name
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// while the others are in the `ptr_text`.
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// Check the inner-most pointer
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const first_child = elem.children.at(0);
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const first_const = first_child.* == .CharData and mem.indexOf(u8, first_child.CharData, "const") != null;
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type_info.pointers[npointers - 1].is_const = first_const;
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// Check the outer pointers
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var const_it = std.mem.separate(ptr_text, "*");
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_ = const_it.next().?; // Skip the first field
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var i = npointers - 1;
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while (i > 0) {
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i -= 1;
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const is_const = mem.indexOf(u8, const_it.next().?, "const") != null;
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type_info.pointers[npointers - i - 1].is_const = is_const;
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}
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}
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return type_info;
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}
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pub fn format(
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self: TypeInfo,
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comptime fmt: []const u8,
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options: std.fmt.FormatOptions,
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context: var,
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comptime Errors: type,
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output: fn (@TypeOf(context), []const u8) Errors!void
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) Errors!void {
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for (self.pointers) |ptr| {
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switch (ptr.size) {
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.One => try output(context, "*"),
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.Many => try output(context, "[*]"),
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.ZeroTerminated => try output(context, "[*:0]")
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}
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if (ptr.is_const) {
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try output(context, "const ");
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}
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}
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if (self.array_size) |array_size| {
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try std.fmt.format(context, Errors, output, "[{}]", .{array_size});
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}
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try output(context, self.name);
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}
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fn lenToPointerSize(len: []const u8) PointerSize {
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if (mem.eql(u8, len, "null-terminated")) {
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return .ZeroTerminated;
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} else if (mem.eql(u8, len, "1")) {
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return .One;
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} else {
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return .Many;
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}
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}
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};
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const StructInfo = struct {
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const Member = struct {
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name: []const u8,
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type_info: TypeInfo,
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};
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members: std.SegmentedList(Member, 0),
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fn init(allocator: *Allocator) StructInfo {
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return .{
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.members = std.SegmentedList(Member, 0).init(allocator),
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};
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}
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fn addMember(self: *StructInfo, name: []const u8, type_info: TypeInfo) void {
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self.members.push(.{.name = name, .type_info = type_info}) catch unreachable;
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}
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};
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const HandleInfo = union(enum) {
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Dispatchable,
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NonDispatchable,
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Alias: []const u8
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};
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const BitmaskInfo = union(enum) {
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None,
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Bits: []const u8,
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Alias: []const u8
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};
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const ExtensionInfo = struct {
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name: []const u8,
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number: u32,
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version: u32,
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};
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const EnumInfo = struct {
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const Kind = enum {
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Bitmask,
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EnumInfo,
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fn parse(str: []const u8) !Kind {
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if (mem.eql(u8, str, "bitmask")) {
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return .Bitmask;
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} else if (mem.eql(u8, str, "enum")) {
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return .EnumInfo;
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} else {
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return error.InvalidEnumInfoKind;
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}
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}
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};
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const Value = union(enum) {
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Bitpos: u5, //log2(u32.bit_count)
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Value: i32,
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Alias: []const u8,
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};
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const Variant = struct {
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name: []const u8,
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value: Value
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};
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kind: Kind,
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variants: std.SegmentedList(Variant, 0),
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fn init(allocator: *Allocator, kind: Kind) EnumInfo {
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return .{
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.kind = kind,
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.variants = std.SegmentedList(Variant, 0).init(allocator)
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};
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}
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fn fromXml(allocator: *Allocator, enums: *xml.Element) EnumInfo {
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const kind = EnumInfo.Kind.parse(enums.getAttribute("type").?) catch unreachable;
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var e = EnumInfo.init(allocator, kind);
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var it = enums.findChildrenByTag("enum");
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while (it.next()) |variant| {
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e.processVariantFromXml(variant, null);
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}
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return e;
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}
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fn addVariant(self: *EnumInfo, name: []const u8, value: Value) void {
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const ptr = self.variants.push(.{.name = name, .value = value}) catch unreachable;
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}
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fn processVariantFromXml(self: *EnumInfo, variant: *xml.Element, ext_nr: ?u32) void {
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if (EnumInfo.isBackwardsCompatAlias(variant)) return;
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const name = variant.getAttribute("name").?;
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const value = blk: {
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if (variant.getAttribute("value")) |value_str| {
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const value = if (mem.startsWith(u8, value_str, "0x"))
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std.fmt.parseInt(i32, value_str[2..], 16) catch unreachable
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else
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std.fmt.parseInt(i32, value_str, 10) catch unreachable;
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break :blk Value{.Value = value};
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} else if (variant.getAttribute("bitpos")) |bitpos_str| {
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break :blk Value{.Bitpos = std.fmt.parseInt(u5, bitpos_str, 10) catch unreachable};
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} else if (variant.getAttribute("alias")) |alias| {
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break :blk Value{.Alias = alias};
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} else if (variant.getAttribute("offset")) |offset_str| {
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const offset = std.fmt.parseInt(u32, offset_str, 10) catch unreachable;
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const actual_ext_nr = ext_nr orelse blk: {
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const ext_nr_str = variant.getAttribute("extnumber").?;
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break :blk std.fmt.parseInt(u32, ext_nr_str, 10) catch unreachable;
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};
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const abs_value = EnumInfo.extensionEnumInfoValue(actual_ext_nr, offset);
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const value = if (variant.getAttribute("dir")) |_| -@intCast(i32, abs_value) else @intCast(i32, abs_value);
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break :blk Value{.Value = value};
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} else {
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unreachable;
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}
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};
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self.addVariant(name, value);
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}
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fn isBackwardsCompatAlias(variant: *xml.Element) bool {
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if (variant.getAttribute("comment")) |comment| {
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return mem.eql(u8, comment, "Backwards-compatible alias containing a typo") or
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mem.eql(u8, comment, "Deprecated name for backwards compatibility");
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}
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return false;
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}
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fn extensionEnumInfoValue(ext_nr: u32, offset: u32) u32 {
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const extension_value_base = 1000000000;
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const extension_block = 1000;
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return extension_value_base + (ext_nr - 1) * extension_block + offset;
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}
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};
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pub fn generate(backing_allocator: *Allocator, root: *xml.Element) *Registry {
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std.debug.assert(mem.eql(u8, root.tag, "registry"));
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var registry = Registry.init(backing_allocator) catch unreachable;
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processTypes(registry, root);
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processEnumInfos(registry, root);
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processFeatures(registry, root);
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processExtensions(registry, root);
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return registry;
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}
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fn processTypes(registry: *Registry, root: *xml.Element) void {
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var types = root.findChildByTag("types").?;
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var it = types.findChildrenByTag("type");
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while (it.next()) |ty| {
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const category = ty.getAttribute("category") orelse continue;
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if (mem.eql(u8, category, "bitmask")) {
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processBitmaskInfoType(registry, ty);
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} else if (mem.eql(u8, category, "handle")) {
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processHandleType(registry, ty);
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} else if (mem.eql(u8, category, "struct")) {
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processStructType(registry, ty);
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}
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}
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}
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fn processBitmaskInfoType(registry: *Registry, ty: *xml.Element) void {
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if (ty.getAttribute("name")) |name| {
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const alias = ty.getAttribute("alias").?;
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if (registry.bitmasks.put(name, .{.Alias = alias}) catch unreachable) |_| unreachable;
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} else {
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const name = ty.getCharData("name").?;
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const bits: BitmaskInfo = if (ty.getAttribute("requires")) |bits_name| .{.Bits = bits_name} else .None;
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if (registry.bitmasks.put(name, bits) catch unreachable) |_| unreachable;
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}
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}
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fn processHandleType(registry: *Registry, ty: *xml.Element) void {
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if (ty.getAttribute("alias")) |alias| {
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const name = ty.getAttribute("name").?;
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if (registry.handles.put(name, .{.Alias = alias}) catch unreachable) |_| unreachable;
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} else {
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const define_type_str = ty.getCharData("type").?;
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const name = ty.getCharData("name").?;
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const handle: HandleInfo = if (std.mem.eql(u8, define_type_str, "VK_DEFINE_HANDLE")) .Dispatchable else .NonDispatchable;
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if (registry.handles.put(name, handle) catch unreachable) |_| unreachable;
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}
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}
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fn processStructType(registry: *Registry, ty: *xml.Element) void {
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const name = ty.getAttribute("name").?;
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if (ty.getAttribute("alias")) |alias| {
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// TODO
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return;
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}
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var s = StructInfo.init(®istry.arena.allocator);
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var members = ty.findChildrenByTag("member");
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while (members.next()) |member| {
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const member_name = member.getCharData("name").?;
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const type_info = TypeInfo.fromXml(®istry.arena.allocator, member);
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s.addMember(member_name, type_info);
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}
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if (registry.structs.put(name, s) catch unreachable) |_| unreachable;
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}
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fn processEnumInfos(registry: *Registry, root: *xml.Element) void {
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var it = root.findChildrenByTag("enums");
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while (it.next()) |enums| {
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const name = enums.getAttribute("name").?;
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if (!mem.eql(u8, name, "API Constants")) {
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const e = EnumInfo.fromXml(®istry.arena.allocator, enums);
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if (registry.enums.put(name, e) catch unreachable) |_| unreachable;
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}
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}
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}
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fn processExtensions(registry: *Registry, root: *xml.Element) void {
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var extensions = root.findChildByTag("extensions").?;
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var ext_it = extensions.findChildrenByTag("extension");
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while (ext_it.next()) |ext| {
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if (ext.getAttribute("supported")) |support| {
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if (mem.eql(u8, support, "disabled")) continue;
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}
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processExtension(registry, ext);
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}
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}
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fn processExtension(registry: *Registry, ext: *xml.Element) void {
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const ext_nr_str = ext.getAttribute("number").?;
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const ext_nr = std.fmt.parseInt(u32, ext_nr_str, 10) catch unreachable;
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var version: ?u32 = null;
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var req_it = ext.findChildrenByTag("require");
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while (req_it.next()) |req| {
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var it = req.findChildrenByTag("enum");
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while (it.next()) |variant| {
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if (variant.getAttribute("extends")) |enum_name| {
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// Some extensions define variants for other extensions,
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// these are also defined in those extensions, so just skip them
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if (variant.getAttribute("extnumber")) |_| continue;
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const kv = registry.enums.get(enum_name).?;
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kv.value.processVariantFromXml(variant, ext_nr);
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} else if (variant.getAttribute("name")) |name| {
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if (mem.endsWith(u8, name, "_SPEC_VERSION")) {
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const version_str = variant.getAttribute("value").?;
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version = std.fmt.parseInt(u32, version_str, 10) catch unreachable;
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}
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}
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}
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}
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var ext_info = ExtensionInfo{
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.name = ext.getAttribute("name").?,
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.number = ext_nr,
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.version = version.?
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};
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registry.extensions.push(ext_info) catch unreachable;
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}
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fn processFeatures(registry: *Registry, root: *xml.Element) void {
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|
var feature_it = root.findChildrenByTag("feature");
|
|
while (feature_it.next()) |feature| {
|
|
var req_it = feature.findChildrenByTag("require");
|
|
while (req_it.next()) |req| {
|
|
var enum_it = req.findChildrenByTag("enum");
|
|
while (enum_it.next()) |variant| {
|
|
const enum_name = variant.getAttribute("extends") orelse continue;
|
|
const kv = registry.enums.get(enum_name).?;
|
|
kv.value.processVariantFromXml(variant, null);
|
|
}
|
|
}
|
|
}
|
|
}
|