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https://github.com/ghostty-org/ghostty.git
synced 2025-07-14 15:56:13 +03:00
terminal: use highway-based indexOf to support all targets
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@ -1005,10 +1005,12 @@ fn addDeps(
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// C++ files
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step.linkLibCpp();
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step.addIncludePath(.{ .path = "src" });
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step.addIncludePath(.{ .path = "src/simd" });
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step.addCSourceFiles(.{ .files = &.{"src/simd/simdutf_c.cpp"} });
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step.addIncludePath(.{ .path = "src/terminal/simdvt" });
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step.addCSourceFiles(.{ .files = &.{"src/terminal/simdvt/example.cpp"} });
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step.addCSourceFiles(.{ .files = &.{"src/simd/index_of.cpp"} });
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// If we're building a lib we have some different deps
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const lib = step.kind == .lib;
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104
src/simd/index_of.cpp
Normal file
104
src/simd/index_of.cpp
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@ -0,0 +1,104 @@
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// Generates code for every target that this compiler can support.
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#undef HWY_TARGET_INCLUDE
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#define HWY_TARGET_INCLUDE "simd/index_of.cpp" // this file
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#include <hwy/foreach_target.h> // must come before highway.h
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#include <hwy/highway.h>
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HWY_BEFORE_NAMESPACE();
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namespace ghostty {
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namespace HWY_NAMESPACE {
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namespace hn = hwy::HWY_NAMESPACE;
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// Return the index of the first occurrence of `needle` in `input` or
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// `count` if not found.
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template <class D, typename T = hn::TFromD<D>>
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size_t IndexOfImpl(D d, T needle, const T* HWY_RESTRICT input, size_t count) {
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// Note: due to the simplicity of this operation and the general complexity
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// of SIMD, I'm going to overly comment this function to help explain the
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// implementation for future maintainers.
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// The number of lanes in the vector type.
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const size_t N = hn::Lanes(d);
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// Create a vector with all lanes set to `needle` so we can do a lane-wise
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// comparison with the input.
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const hn::Vec<D> needle_vec = Set(d, needle);
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// Compare N elements at a time.
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size_t i = 0;
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for (; i + N <= count; i += N) {
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// Load the N elements from our input into a vector.
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const hn::Vec<D> input_vec = hn::LoadU(d, input + i);
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// Compare the input vector with the needle vector. This produces
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// a vector where each lane is 0xFF if the corresponding lane in
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// `input_vec` is equal to the corresponding lane in `needle_vec`.
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const hn::Mask<D> eq_mask = hn::Eq(needle_vec, input_vec);
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// Find the index within the vector where the first true value is.
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const intptr_t pos = hn::FindFirstTrue(d, eq_mask);
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// If we found a match, return the index into the input.
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if (pos >= 0) return i + static_cast<size_t>(pos);
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}
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// Since we compare N elements at a time, we may have some elements left
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// if count modulo N != 0. We need to scan the remaining elements. To
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// be simple, we search one element at a time.
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if (i != count) {
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// Create a new vector with only one relevant lane.
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const hn::CappedTag<T, 1> d1;
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using D1 = decltype(d1);
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// Get an equally sized needle vector with only one lane.
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const hn::Vec<D1> needle1 = Set(d1, GetLane(needle_vec));
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// Go through the remaining elements and do similar logic to
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// the previous loop to find any matches.
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for (; i < count; ++i) {
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const hn::Vec<D1> input_vec = hn::LoadU(d1, input + i);
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const hn::Mask<D1> eq_mask = hn::Eq(needle1, input_vec);
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if (hn::AllTrue(d1, eq_mask)) return i;
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}
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}
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return count;
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}
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size_t IndexOf(const uint8_t needle,
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const uint8_t* HWY_RESTRICT input,
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size_t count) {
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const hn::ScalableTag<uint8_t> d;
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return IndexOfImpl(d, needle, input, count);
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}
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} // namespace HWY_NAMESPACE
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} // namespace ghostty
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HWY_AFTER_NAMESPACE();
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// HWY_ONCE is true for only one of the target passes
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#if HWY_ONCE
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namespace ghostty {
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// This macro declares a static array used for dynamic dispatch.
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HWY_EXPORT(IndexOf);
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size_t IndexOf(const uint8_t needle,
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const uint8_t* HWY_RESTRICT input,
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size_t count) {
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return HWY_DYNAMIC_DISPATCH(IndexOf)(needle, input, count);
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}
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} // namespace ghostty
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extern "C" {
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size_t ghostty_simd_index_of(const uint8_t needle, const uint8_t* HWY_RESTRICT input, size_t count) {
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return ghostty::IndexOf(needle, input, count);
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}
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}
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#endif // HWY_ONCE
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@ -99,8 +99,22 @@ fn testIndexOf(func: *const IndexOf) !void {
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, ' ').?);
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}
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pub const Hwy = struct {
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extern "c" fn ghostty_simd_index_of(
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needle: u8,
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input: [*]const u8,
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count: usize,
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) usize;
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pub fn indexOf(input: []const u8, needle: u8) ?usize {
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const result = ghostty_simd_index_of(needle, input.ptr, input.len);
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return if (result == input.len) null else result;
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}
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};
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test "indexOf" {
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const v = isa.detect();
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var it = v.iterator();
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while (it.next()) |isa_v| try testIndexOf(indexOfFunc(isa_v));
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try testIndexOf(&Hwy.indexOf);
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}
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@ -4,7 +4,8 @@
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#include <hwy/foreach_target.h> // must come before highway.h
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#include <hwy/highway.h>
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namespace project {
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HWY_BEFORE_NAMESPACE();
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namespace ghostty {
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namespace HWY_NAMESPACE { // required: unique per target
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// Can skip hn:: prefixes if already inside hwy::HWY_NAMESPACE.
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@ -13,7 +14,7 @@ namespace hn = hwy::HWY_NAMESPACE;
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using T = float;
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// Alternative to per-function HWY_ATTR: see HWY_BEFORE_NAMESPACE
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HWY_ATTR void MulAddLoop(const T* HWY_RESTRICT mul_array,
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void MulAddLoop(const T* HWY_RESTRICT mul_array,
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const T* HWY_RESTRICT add_array,
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const size_t size, T* HWY_RESTRICT x_array) {
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const hn::ScalableTag<T> d;
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@ -27,14 +28,15 @@ HWY_ATTR void MulAddLoop(const T* HWY_RESTRICT mul_array,
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}
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} // namespace HWY_NAMESPACE
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} // namespace project
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} // namespace ghostty
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HWY_AFTER_NAMESPACE();
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// The table of pointers to the various implementations in HWY_NAMESPACE must
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// be compiled only once (foreach_target #includes this file multiple times).
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// HWY_ONCE is true for only one of these 'compilation passes'.
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#if HWY_ONCE
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namespace project {
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namespace ghostty {
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// This macro declares a static array used for dynamic dispatch.
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HWY_EXPORT(MulAddLoop);
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@ -48,13 +50,13 @@ void CallMulAddLoop(const float* HWY_RESTRICT mul_array,
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return HWY_DYNAMIC_DISPATCH(MulAddLoop)(mul_array, add_array, size, x_array);
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}
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} // namespace project
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} // namespace ghostty
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extern "C" float example() {
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float mul_array[] {1, 2, 3, 4, 5};
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float add_array[] {2, 3, 4, 5, 6};
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float x_array[] {0, 0, 0, 0, 0};
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project::CallMulAddLoop(mul_array, add_array, 5, x_array);
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ghostty::CallMulAddLoop(mul_array, add_array, 5, x_array);
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return x_array[0];
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}
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@ -53,13 +53,6 @@ pub fn Stream(comptime Handler: type) type {
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/// Process a string of characters.
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pub fn nextSlice(self: *Self, c: []const u8) !void {
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// TODO: we only have a direct Neon implementation of the fast
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// path right now, just for testing.
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if (comptime !simd.isa.possible(.neon)) {
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for (c) |single| try self.next(single);
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return;
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}
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// If we're not in the ground state then we process until we are.
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var offset: usize = 0;
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if (self.parser.state != .ground) {
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@ -76,7 +69,7 @@ pub fn Stream(comptime Handler: type) type {
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while (self.parser.state == .ground and offset < c.len) {
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// Find the next ESC character to trigger a control sequence.
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//const idx = std.mem.indexOfScalar(u8, c[offset..], 0x1B) orelse {
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const idx = simd.index_of.Neon.indexOf(c[offset..], 0x1B) orelse {
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const idx = simd.index_of.Hwy.indexOf(c[offset..], 0x1B) orelse {
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// No ESC character, remainder is all UTF-8.
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try self.nextAssumeUtf8(c[offset..]);
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return;
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