| ... | @@ -792,28 +792,37 @@ pub fn takeDelimiterInclusive(r: *Reader, delimiter: u8) DelimiterError![]u8 { | ... | @@ -792,28 +792,37 @@ pub fn takeDelimiterInclusive(r: *Reader, delimiter: u8) DelimiterError![]u8 { |
| 792 | /// * `peekDelimiterExclusive` | 792 | /// * `peekDelimiterExclusive` |
| 793 | /// * `takeDelimiterInclusive` | 793 | /// * `takeDelimiterInclusive` |
| 794 | pub fn peekDelimiterInclusive(r: *Reader, delimiter: u8) DelimiterError![]u8 { | 794 | pub fn peekDelimiterInclusive(r: *Reader, delimiter: u8) DelimiterError![]u8 { |
| 795 | const buffer = r.buffer[0..r.end]; | 795 | { |
| 796 | const seek = r.seek; | 796 | const contents = r.buffer[0..r.end]; |
| 797 | if (std.mem.indexOfScalarPos(u8, buffer, seek, delimiter)) |delimiter_index| { | 797 | const seek = r.seek; |
| 798 | @branchHint(.likely); | 798 | if (std.mem.findScalarPos(u8, contents, seek, delimiter)) |end| { |
| 799 | return buffer[seek .. delimiter_index + 1]; | 799 | @branchHint(.likely); |
| | 800 | return contents[seek .. end + 1]; |
| | 801 | } |
| 800 | } | 802 | } |
| 801 | // TODO take a parameter for max search length rather than relying on buffer capacity | 803 | while (true) { |
| 802 | try rebase(r, r.buffer.len); | 804 | const content_len = r.end - r.seek; |
| 803 | while (r.buffer.len - r.end != 0) { | 805 | if (r.buffer.len - content_len == 0) break; |
| 804 | const existing_buffered_len = r.end - r.seek; | 806 | try fillMore(r); |
| 805 | const end_cap = r.buffer[r.end..]; | 807 | const seek = r.seek; |
| 806 | var writer: Writer = .fixed(end_cap); | 808 | const contents = r.buffer[0..r.end]; |
| 807 | const n = r.vtable.stream(r, &writer, .limited(end_cap.len)) catch |err| switch (err) { | 809 | if (std.mem.findScalarPos(u8, contents, seek + content_len, delimiter)) |end| { |
| 808 | error.WriteFailed => unreachable, | 810 | return contents[seek .. end + 1]; |
| 809 | else => |e| return e, | | |
| 810 | }; | | |
| 811 | r.end += n; | | |
| 812 | if (std.mem.indexOfScalarPos(u8, r.buffer[0..r.end], r.seek + existing_buffered_len, delimiter)) |delimiter_index| { | | |
| 813 | return r.buffer[r.seek .. delimiter_index + 1]; | | |
| 814 | } | 811 | } |
| 815 | } | 812 | } |
| 816 | return error.StreamTooLong; | 813 | // It might or might not be end of stream. There is no more buffer space |
| | 814 | // left to disambiguate. If `StreamTooLong` was added to `RebaseError` then |
| | 815 | // this logic could be replaced by removing the exit condition from the |
| | 816 | // above while loop. That error code would represent when `buffer` capacity |
| | 817 | // is too small for an operation, replacing the current use of asserts. |
| | 818 | var failing_writer = Writer.failing; |
| | 819 | while (r.vtable.stream(r, &failing_writer, .limited(1))) |n| { |
| | 820 | assert(n == 0); |
| | 821 | } else |err| switch (err) { |
| | 822 | error.WriteFailed => return error.StreamTooLong, |
| | 823 | error.ReadFailed => |e| return e, |
| | 824 | error.EndOfStream => |e| return e, |
| | 825 | } |
| 817 | } | 826 | } |
| 818 | | 827 | |
| 819 | /// Returns a slice of the next bytes of buffered data from the stream until | 828 | /// Returns a slice of the next bytes of buffered data from the stream until |