forked from mirror/vulkan-zig
329 lines
12 KiB
Zig
329 lines
12 KiB
Zig
const std = @import("std");
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const registry = @import("registry-new.zig");
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const xml = @import("xml.zig");
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const xmlc = @import("spec-c-parse.zig");
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const mem = std.mem;
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const Allocator = mem.Allocator;
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const ArenaAllocator = std.heap.ArenaAllocator;
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const api_constants_name = "API Constants";
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pub const ParseResult = struct {
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arena: ArenaAllocator,
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registry: registry.Registry,
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pub fn deinit(self: ParseResult) void {
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self.arena.deinit();
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}
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};
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pub fn parseXml(backing_allocator: *Allocator, root: *xml.Element) !ParseResult {
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var arena = ArenaAllocator.init(backing_allocator);
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errdefer arena.deinit();
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const allocator = &arena.allocator;
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var reg = registry.Registry{
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.decls = try parseDeclarations(allocator, root),
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.api_constants = try parseApiConstants(allocator, root),
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.tags = try parseTags(allocator, root),
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};
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return ParseResult{
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.arena = arena,
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.registry = reg,
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};
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}
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fn parseDeclarations(allocator: *Allocator, root: *xml.Element) ![]registry.Declaration {
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var types_elem = root.findChildByTag("types") orelse return error.InvalidRegistry;
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var commands_elem = root.findChildByTag("commands") orelse return error.InvalidRegistry;
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const decl_upper_bound = types_elem.children.count() + commands_elem.children.count();
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const decls = try allocator.alloc(registry.Declaration, decl_upper_bound);
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errdefer allocator.free(decls);
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var count: usize = 0;
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count += try parseTypes(allocator, decls, types_elem);
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count += try parseEnums(allocator, decls[count..], root);
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count += try parseCommands(allocator, decls[count..], commands_elem);
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return allocator.shrink(decls, count);
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}
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fn parseTypes(allocator: *Allocator, out: []registry.Declaration, types_elem: *xml.Element) !usize {
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var i: usize = 0;
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var it = types_elem.findChildrenByTag("type");
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while (it.next()) |ty| {
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out[i] = blk: {
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const category = ty.getAttribute("category") orelse {
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break :blk try parseForeigntype(ty);
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};
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// Enums are handled later, in parseEnums. This also has the effect of filtering
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// out any enums which have no elements, and should be unused by other parts of the API.
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if (mem.eql(u8, category, "bitmask")) {
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break :blk try parseBitmaskType(ty);
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} else if (mem.eql(u8, category, "handle")) {
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break :blk try parseHandleType(ty);
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} else if (mem.eql(u8, category, "basetype")) {
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break :blk try parseBaseType(allocator, ty);
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} else if (mem.eql(u8, category, "struct")) {
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break :blk try parseContainer(allocator, ty, false);
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} else if (mem.eql(u8, category, "union")) {
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break :blk try parseContainer(allocator, ty, true);
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}
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continue;
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};
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i += 1;
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}
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return i;
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}
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fn parseForeigntype(ty: *xml.Element) !registry.Declaration {
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const name = ty.getAttribute("name") orelse return error.InvalidRegistry;
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const dependency = ty.getAttribute("requires") orelse if (mem.eql(u8, name, "int"))
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"vk_platform" // for some reason, int doesn't depend on vk_platform (but the other c types do)
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else
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return error.InvalidRegistry;
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return registry.Declaration{
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.name = name,
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.decl_type = .{.foreign = .{.dependency = dependency}},
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};
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}
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fn parseBitmaskType(ty: *xml.Element) !registry.Declaration {
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if (ty.getAttribute("name")) |name| {
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const alias = ty.getAttribute("alias") orelse return error.InvalidRegistry;
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return registry.Declaration{
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.name = name,
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.decl_type = .{.alias = alias},
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};
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} else {
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return registry.Declaration{
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.name = ty.getCharData("name") orelse return error.InvalidRegistry,
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.decl_type = .{.bitmask = .{.bits_enum = ty.getAttribute("requires")}},
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};
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}
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}
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fn parseHandleType(ty: *xml.Element) !registry.Declaration {
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// Parent is not handled in case of an alias
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if (ty.getAttribute("name")) |name| {
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const alias = ty.getAttribute("alias") orelse return error.InvalidRegistry;
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return registry.Declaration{
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.name = name,
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.decl_type = .{.alias = alias},
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};
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} else {
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const name = ty.getCharData("name") orelse return error.InvalidRegistry;
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const handle_type = ty.getCharData("type") orelse return error.InvalidRegistry;
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const dispatchable = mem.eql(u8, handle_type, "VK_DEFINE_HANDLE");
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if (!dispatchable and !mem.eql(u8, handle_type, "VK_DEFINE_NON_DISPATCHABLE_HANDLE")) {
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return error.InvalidRegistry;
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}
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return registry.Declaration{
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.name = name,
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.decl_type = .{
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.handle = .{
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.parent = ty.getAttribute("parent"),
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.is_dispatchable = dispatchable,
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}
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},
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};
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}
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}
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fn parseBaseType(allocator: *Allocator, ty: *xml.Element) !registry.Declaration {
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const name = ty.getCharData("name") orelse return error.InvalidRegistry;
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if (ty.getCharData("type")) |_| { // TODO: Parse as full type?
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var tok = xmlc.XmlCTokenizer.init(ty);
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return try xmlc.parseTypedef(allocator, &tok);
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} else {
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// Either ANativeWindow, AHardwareBuffer or CAMetalLayer. The latter has a lot of
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// macros, which is why this part is not built into the xml/c parser.
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return registry.Declaration{
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.name = name,
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.decl_type = .{.opaque = {}},
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};
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}
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}
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fn parseContainer(allocator: *Allocator, ty: *xml.Element, is_union: bool) !registry.Declaration {
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const name = ty.getAttribute("name") orelse return error.InvalidRegistry;
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if (ty.getAttribute("alias")) |alias| {
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return registry.Declaration{
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.name = name,
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.decl_type = .{.alias = alias},
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};
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}
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var members = try allocator.alloc(registry.Container.Field, ty.children.count());
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errdefer allocator.free(members);
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var i: usize = 0;
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var it = ty.findChildrenByTag("member");
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while (it.next()) |member| {
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var xctok = xmlc.XmlCTokenizer.init(member);
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members[i] = try xmlc.parseMember(allocator, &xctok);
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i += 1;
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}
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return registry.Declaration{
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.name = name,
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.decl_type = .{
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.container = .{
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.fields = allocator.shrink(members, i),
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.is_union = is_union,
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}
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},
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};
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}
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fn parseEnums(allocator: *Allocator, out: []registry.Declaration, root: *xml.Element) !usize {
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var i: usize = 0;
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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") orelse return error.InvalidRegistry;
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if (mem.eql(u8, name, api_constants_name)) {
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continue;
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}
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out[i] = .{
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.name = name,
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.decl_type = .{.enumeration = try parseEnumFields(allocator, enums)},
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};
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i += 1;
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}
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return i;
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}
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fn parseEnumFields(allocator: *Allocator, elem: *xml.Element) !registry.Enum {
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// TODO: `type` was added recently, fall back to checking endswith FlagBits for older versions?
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const enum_type = elem.getAttribute("type") orelse return error.InvalidRegistry;
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const is_bitmask = mem.eql(u8, enum_type, "bitmask");
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if (!is_bitmask and !mem.eql(u8, enum_type, "enum")) {
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return error.InvalidRegistry;
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}
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const fields = try allocator.alloc(registry.Enum.Field, elem.children.count());
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errdefer allocator.free(fields);
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var i: usize = 0;
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var it = elem.findChildrenByTag("enum");
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while (it.next()) |field| {
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fields[i] = try parseEnumField(field);
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i += 1;
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}
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return registry.Enum{
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.fields = allocator.shrink(fields, i),
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.is_bitmask = is_bitmask,
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};
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}
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fn parseEnumField(field: *xml.Element) !registry.Enum.Field {
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const is_compat_alias = if (field.getAttribute("comment")) |comment|
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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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else
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false;
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const name = field.getAttribute("name") orelse return error.InvalidRegistry;
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const value: registry.Enum.Value = blk: {
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// An enum variant's value could be defined by any of the following attributes:
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// - value: Straight up value of the enum variant, in either base 10 or 16 (prefixed with 0x).
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// - bitpos: Used for bitmasks, and can also be set in extensions.
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// - alias: The field is an alias of another variant within the same enum.
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// - offset: Used with features and extensions, where a non-bitpos value is added to an enum.
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// The value is given by `1e9 + (extr_nr - 1) * 1e3 + offset`, where `ext_nr` is either
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// given by the `extnumber` field (in the case of a feature), or given in the parent <extension>
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// tag. In the latter case its passed via the `ext_nr` parameter.
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// TODO: Handle `offset` elsewhere
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if (field.getAttribute("value")) |value| {
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if (mem.startsWith(u8, value, "0x")) {
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break :blk .{.bit_vector = try std.fmt.parseInt(i32, value[2..], 16)};
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} else {
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break :blk .{.int = try std.fmt.parseInt(i32, value, 10)};
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}
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} else if (field.getAttribute("bitpos")) |bitpos| {
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break :blk .{.bitpos = try std.fmt.parseInt(u5, bitpos, 10)};
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} else if (field.getAttribute("alias")) |alias| {
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break :blk .{.alias = .{.alias_name = alias, .is_compat_alias = is_compat_alias}};
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} else {
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return error.InvalidRegistry;
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}
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};
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return registry.Enum.Field{
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.name = name,
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.value = value,
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};
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}
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fn parseCommands(allocator: *Allocator, out: []registry.Declaration, commmands_elem: *xml.Element) !usize {
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return 0;
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}
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fn parseApiConstants(allocator: *Allocator, root: *xml.Element) ![]registry.ApiConstant {
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var enums = blk: {
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var it = root.findChildrenByTag("enums");
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while (it.next()) |child| {
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const name = child.getAttribute("name") orelse continue;
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if (mem.eql(u8, name, api_constants_name)) {
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break :blk child;
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}
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}
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return error.InvalidRegistry;
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};
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const constants = try allocator.alloc(registry.ApiConstant, enums.children.count());
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errdefer allocator.free(constants);
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var i: usize = 0;
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var it = enums.findChildrenByTag("enum");
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while (it.next()) |constant| {
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const value = if (constant.getAttribute("value")) |expr|
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registry.ApiConstant.Value{.expr = expr}
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else if (constant.getAttribute("alias")) |alias|
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registry.ApiConstant.Value{.alias = alias}
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else
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return error.InvalidRegistry;
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constants[i] = .{
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.name = constant.getAttribute("name") orelse return error.InvalidRegistry,
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.value = value,
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};
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i += 1;
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}
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return allocator.shrink(constants, i);
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}
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fn parseTags(allocator: *Allocator, root: *xml.Element) ![]registry.Tag {
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var tags_elem = root.findChildByTag("tags") orelse return error.InvalidRegistry;
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const tags = try allocator.alloc(registry.Tag, tags_elem.children.count());
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errdefer allocator.free(tags);
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var i: usize = 0;
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var it = tags_elem.findChildrenByTag("tag");
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while (it.next()) |tag| {
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tags[i] = .{
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.name = tag.getAttribute("name") orelse return error.InvalidRegistry,
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.author = tag.getAttribute("author") orelse return error.InvalidRegistry,
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};
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i += 1;
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}
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return allocator.shrink(tags, i);
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}
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