wedb_standalone 0.1.2

Standalone server foundation: RESP protocol, AOF logic layer, and node service orchestration
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//! BITFIELD 位域操作(对标 libs/server/Resp/Bitmap/BitmapManagerBitfield.cs,
//! C# 为 BitmapManager partial)
//!
//! 算法前提与 C# 一致:位域按 MSB 在前的字节序列存放,`offset` 为域首位的
//! 位偏移,`encoding` 为位宽。C# 以 `stackalloc byte[8]` 草稿 + 裸指针
//! (curr/cend/vend)读写;Rust 侧以游标下标承接,`vend`(位图末端)截断
//! 语义保持不变。

use super::bitmap_manager::{index, try_validate_bitfield_offset};

/// BITFIELD 子命令(C# RespCommand.GET / SET / INCRBY)
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
pub enum BitFieldSecondaryCommand {
  /// 读取
  Get,
  /// 写入并回旧值
  Set,
  /// 自增并回新值
  IncrBy,
}

/// BITFIELD 溢出策略字节值(C# BitFieldOverflow 枚举的 byte 序:
/// WRAP=0 / SAT=1 / FAIL=2,与 SessionParseStateExtensions 解析器对齐)
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
#[repr(u8)]
pub enum BitFieldOverflow {
  /// 回绕
  Wrap = 0,
  /// 饱和
  Sat = 1,
  /// 失败(回吐 nil 且不落盘)
  Fail = 2,
}

/// BITFIELD 符号位(C# BitFieldSign:UNSIGNED = 0x0,SIGNED = 0x80)
pub const BIT_FIELD_SIGN_SIGNED: u8 = 0x80;

/// BITFIELD 命令参数(C# BitFieldCmdArgs;C# 以 FieldOffset 布局打包,
/// Rust 侧平铺字段,逻辑面一致)
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
pub struct BitFieldCmdArgs {
  /// 子命令
  pub secondary_command: BitFieldSecondaryCommand,
  /// 编码信息:低 7 位为位宽,最高位(0x80)为符号
  pub type_info: u8,
  /// 位偏移(`#` 倍乘已归一化)
  pub offset: i64,
  /// SET 的写入值 / INCRBY 的增量
  pub value: i64,
  /// 溢出策略(BitFieldOverflow 的 byte 值)
  pub overflow_type: u8,
}

impl BitFieldCmdArgs {
  /// libs/server/Resp/Bitmap/BitmapCommands.cs:BitFieldCmdArgs..ctor
  pub fn new(
    secondary_command: BitFieldSecondaryCommand,
    type_info: u8,
    offset: i64,
    value: i64,
    overflow_type: u8,
  ) -> Self {
    Self {
      secondary_command,
      type_info,
      offset,
      value,
      overflow_type,
    }
  }
}

/// 检查位图是否足够容纳位域操作
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:IsLargeEnoughForType
#[inline]
pub fn is_large_enough_for_type(args: &BitFieldCmdArgs, vlen: i32) -> bool {
  length_from_type(args) <= vlen
}

/// 位域所需字节数(offset 为原始位偏移)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:LengthFromType
#[inline]
pub fn length_from_type(args: &BitFieldCmdArgs) -> i32 {
  let offset = args.offset;
  let bit_count = args.type_info & 0x7F;
  // 调用方已在解析期经 TryValidateBitfieldOffset 校验(C# DEBUG 断言同口径)
  let end_offset = offset + i64::from(bit_count) - 1;
  super::bitmap_manager::length_in_bytes(end_offset).unwrap_or(0)
}

/// BITFIELD 写路径的分配尺寸
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:NewBlockAllocLengthFromType
#[inline]
pub fn new_block_alloc_length_from_type(args: &BitFieldCmdArgs, value_len: i32) -> i32 {
  let length_in_bytes = length_from_type(args);
  if value_len > length_in_bytes {
    value_len
  } else {
    length_in_bytes
  }
}

/// 检查位域操作是否溢出,返回(结果值,是否溢出)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:CheckBitfieldOverflow
///
/// 仅 FAIL 策略的溢出会置位溢出标记(WRAP/SAT 已就地消化,无需回吐 nil)。
pub fn check_bitfield_overflow(
  value: i64,
  incr_by: i64,
  bit_count: u8,
  overflow_type: u8,
  signed: bool,
) -> (i64, bool) {
  let (new_value, overflow) = if signed {
    check_signed_bitfield_overflow(value, incr_by, bit_count, overflow_type)
  } else {
    let (nv, overflow) =
      check_unsigned_bitfield_overflow(value as u64, incr_by, bit_count, overflow_type);
    (nv as i64, overflow)
  };

  // WRAP/SAT 忽略溢出标记(无需回 nil 或跳过写入)
  let overflow = overflow_type == BitFieldOverflow::Fail as u8 && overflow;
  (new_value, overflow)
}

/// 无符号位域溢出检查,返回(回绕/饱和后的结果,是否溢出)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:CheckUnsignedBitfieldOverflow
fn check_unsigned_bitfield_overflow(
  value: u64,
  incr_by: i64,
  bit_count: u8,
  overflow_type: u8,
) -> (u64, bool) {
  let max_val: u64 = if bit_count == 64 {
    u64::MAX
  } else {
    (1u64 << bit_count) - 1
  };
  let max_add = max_val.wrapping_sub(value);

  let neg = incr_by < 0;
  // 增量绝对值
  let abs_incr_by = if incr_by < 0 {
    (!incr_by as u64).wrapping_add(1)
  } else {
    incr_by as u64
  };
  // 绝对增量超过 maxVal 与当前值之差即溢出
  let overflow = abs_incr_by > max_add;
  // 负增量绝对值大于当前值即下溢
  let underflow = abs_incr_by > value && neg;

  let mut result = if neg {
    value.wrapping_sub(abs_incr_by)
  } else {
    value.wrapping_add(abs_incr_by)
  };
  result &= max_val;
  match overflow_type {
    x if x == BitFieldOverflow::Wrap as u8 => {
      if overflow || underflow {
        return (result, true);
      }
      (result, false)
    }
    x if x == BitFieldOverflow::Sat as u8 => {
      if overflow {
        (max_val, true)
      } else if underflow {
        (0, true)
      } else {
        (result, false)
      }
    }
    x if x == BitFieldOverflow::Fail as u8 => {
      if overflow || underflow {
        (0, true)
      } else {
        (result, false)
      }
    }
    _ => {
      // C# 抛 GarnetException("Invalid overflow type");解析器保证不可达
      (0, true)
    }
  }
}

/// 有符号位域溢出检查,返回(回绕/饱和后的结果,是否溢出)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:CheckSignedBitfieldOverflow
fn check_signed_bitfield_overflow(
  value: i64,
  incr_by: i64,
  bit_count: u8,
  overflow_type: u8,
) -> (i64, bool) {
  let signbit: i64 = 1 << (bit_count - 1);
  let mask: i64 = if bit_count == 64 { -1 } else { signbit - 1 };

  let result = value.wrapping_add(incr_by);
  // 双负操作数可能下溢:符号位为 0 即下溢
  let underflow = (result & signbit) == 0 && value < 0 && incr_by < 0;
  // 双正操作数可能上溢:位宽之上高位有 1 即上溢(64 位宽时无多余位,
  // 上溢表现为符号位翻负)
  let overflow = if bit_count == 64 {
    result < 0 && value >= 0 && incr_by > 0
  } else {
    ((result & !mask) as u64) > 0 && value >= 0 && incr_by > 0
  };

  match overflow_type {
    x if x == BitFieldOverflow::Wrap as u8 => {
      if underflow || overflow {
        let mut res = result as u64;
        if bit_count < 64 {
          let msb = signbit as u64;
          let smask = mask as u64;
          res = if (res & msb) > 0 {
            res | !smask
          } else {
            res & smask
          };
        }
        return (res as i64, true);
      }
      (result, false)
    }
    x if x == BitFieldOverflow::Sat as u8 => {
      let max_val: i64 = if bit_count == 64 {
        i64::MAX
      } else {
        signbit - 1
      };
      if overflow {
        (max_val, true)
      } else if underflow {
        // 下溢饱和到有符号最小值
        (max_val.wrapping_neg().wrapping_sub(1), true)
      } else {
        (result, false)
      }
    }
    x if x == BitFieldOverflow::Fail as u8 => {
      if underflow || overflow {
        (0, true)
      } else {
        (result, false)
      }
    }
    _ => {
      // C# 抛 GarnetException("Invalid overflow type");解析器保证不可达
      (0, true)
    }
  }
}

/// 从位图读取位域值
///
/// `curr` 为读取起始字节下标,读完推进到下一未读字节;`cend` 为域内字节
/// 界(min(域末端,位图末端)),`vend` 为位图末端。
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:GetValue
#[allow(clippy::too_many_arguments)]
fn get_value(
  buf: &mut [u8; 8],
  value: &[u8],
  curr: &mut usize,
  cend: usize,
  vend: usize,
  offset: i64,
  encoding: u8,
  signed: bool,
) -> i64 {
  // 8 字节草稿自高向低填充域内字节
  for slot in (0..8).rev() {
    if *curr < cend {
      buf[slot] = value[*curr];
      *curr += 1;
    }
  }
  let mut return_value = i64::from_le_bytes(*buf);

  // 裁掉域前导位
  let left = (offset - ((offset >> 3) << 3)) as u32;
  return_value <<= left;

  // 64 位草稿不够容纳域时再补一个字节(拼到低位)
  if (64 - left) < u32::from(encoding) {
    let lsb = if *curr < vend {
      value[*curr] >> (8 - left)
    } else {
      0
    };
    return_value |= i64::from(lsb);
  }

  // 移位到域位宽
  let right = 64 - u32::from(encoding);
  if signed {
    return_value >> right
  } else {
    ((return_value as u64) >> right) as i64
  }
}

/// 把位域值写回位图
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:SetValue
#[allow(clippy::too_many_arguments)]
fn set_value(
  buf: &[u8; 8],
  value: &mut [u8],
  curr: usize,
  cend: usize,
  bitmap_start: usize,
  offset: i64,
  encoding: i32,
  unaligned_bits: i32,
  new_value: i64,
) {
  let byte_index_start = (offset >> 3) as usize;
  let encoding = encoding as u32;
  let mut tmp = new_value as u64
    & if encoding == 64 {
      u64::MAX
    } else {
      (1u64 << encoding) - 1
    };
  // 假设域整体落在 offset 起的 64 位内
  let mut pbits = encoding; // 前缀位
  let mut sbits: u32 = 0; // 后缀位(第 9 字节)

  if encoding > unaligned_bits as u32 {
    sbits = encoding - unaligned_bits as u32; // 需写入第 9 字节的位数
    let smask = (1u64 << sbits) - 1; // 提取第 9 字节位的掩码
    let keep = 8 - sbits; // 第 9 字节保留低位数
    let msb = ((tmp & smask) << keep) as u8; // 后缀位左对齐到第 9 字节
    let b9 = value[curr] & ((1u16 << keep) - 1) as u8; // 保留第 9 字节原低位
    value[curr] = msb | b9;

    pbits = encoding - sbits; // 剩余写入 byteIndexStart..byteIndexEnd 的位数
    tmp &= !smask; // 清掉已存入第 9 字节的位
  }

  let shf = unaligned_bits - encoding as i32; // 剩余值最低位位置
  let mut mask: u64 = if encoding == 64 {
    u64::MAX
  } else {
    (1u64 << pbits) - 1
  };
  if shf < 0 {
    // 剩余位偏左:值右移;掩码按第 9 字节位数左移后再右移定位
    tmp >>= -shf;
    mask = !((mask << sbits) >> -shf);
  } else {
    tmp <<= shf;
    mask = !(mask << shf);
  }

  let old_v = u64::from_le_bytes(*buf);
  let tmp = (old_v & mask) | tmp;
  let mut curr = bitmap_start + byte_index_start;
  for shift in [56u32, 48, 40, 32, 24, 16, 8, 0] {
    if curr < cend {
      value[curr] = ((tmp >> shift) & 0xFF) as u8;
      curr += 1;
    }
  }
}

/// BITFIELD GET 子操作
///
/// 偏移校验失败时 C# 抛 GarnetException,此处以 None 表达(解析期已校验)。
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:GetBitfield
pub fn get_bitfield(
  bitmap: &[u8],
  bitmap_length: i64,
  offset: i64,
  encoding: u8,
  signed: bool,
) -> Option<i64> {
  let (offset, end_offset) = try_validate_bitfield_offset(offset, encoding, false)?;

  let byte_index_start = index(offset)?;
  let byte_index_end = index(end_offset)? + 1;
  let mut buf = [0u8; 8];

  // 域整体落在当前值之外恒 0
  if byte_index_start as i64 >= bitmap_length {
    return Some(0);
  }

  let vend = bitmap_length as usize;
  let mut curr = byte_index_start;
  let cend = (byte_index_end).min(vend);
  Some(get_value(
    &mut buf, bitmap, &mut curr, cend, vend, offset, encoding, signed,
  ))
}

/// BITFIELD SET 子操作,返回(旧值,是否溢出放弃)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:SetBitfield
#[allow(clippy::too_many_arguments)]
pub fn set_bitfield(
  bitmap: &mut [u8],
  bitmap_length: i64,
  offset: i64,
  encoding: u8,
  signed: bool,
  new_value: i64,
  overflow_type: u8,
) -> Option<(i64, bool)> {
  let (offset, end_offset) = try_validate_bitfield_offset(offset, encoding, false)?;

  let byte_index_start = index(offset)?;
  let byte_index_end = index(end_offset)? + 1;
  let mut buf = [0u8; 8];

  // 域起点落在当前值之外(C# 抛 GarnetException:会话层须先增长值)
  if byte_index_start as i64 >= bitmap_length {
    return None;
  }

  // 读旧值
  let vend = bitmap_length as usize;
  let mut curr = byte_index_start;
  let cend = byte_index_end.min(vend);
  let old_value = get_value(
    &mut buf, bitmap, &mut curr, cend, vend, offset, encoding, signed,
  );

  // FAIL 策略下旧值已越界即放弃
  if overflow_type == BitFieldOverflow::Fail as u8 {
    let (_, overflow) = check_bitfield_overflow(old_value, 0, encoding, overflow_type, signed);
    if overflow {
      return Some((0, true));
    }
  }

  // 写入新值
  let left = (offset - ((offset >> 3) << 3)) as i32;
  let unaligned_bits = 64 - left;
  set_value(
    &buf,
    bitmap,
    curr,
    cend,
    0,
    offset,
    i32::from(encoding),
    unaligned_bits,
    new_value,
  );

  Some((old_value, false))
}

/// BITFIELD INCRBY 子操作,返回(新值,是否溢出放弃)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:IncrementBitfield
#[allow(clippy::too_many_arguments)]
pub fn increment_bitfield(
  value: &mut [u8],
  val_len: i64,
  offset: i64,
  encoding: u8,
  signed: bool,
  increment_by_value: i64,
  overflow_type: u8,
) -> Option<(i64, bool)> {
  let (offset, end_offset) = try_validate_bitfield_offset(offset, encoding, false)?;

  let byte_index_start = index(offset)?;
  let byte_index_end = index(end_offset)? + 1;
  let mut buf = [0u8; 8];

  // 域起点落在当前值之外(C# 抛 GarnetException:会话层须先增长值)
  if byte_index_start as i64 >= val_len {
    return None;
  }

  // 读旧值
  let vend = val_len as usize;
  let mut curr = byte_index_start;
  let cend = byte_index_end.min(vend);
  let old_value = get_value(
    &mut buf, value, &mut curr, cend, vend, offset, encoding, signed,
  );

  // 增量 + 溢出检查
  let (new_value, overflow) = check_bitfield_overflow(
    old_value,
    increment_by_value,
    encoding,
    overflow_type,
    signed,
  );

  // 写入(溢出放弃时 C# 同样写入 newValue,仅由上层以 nil 替代应答)
  let left = (offset - ((offset >> 3) << 3)) as i32;
  let unaligned_bits = 64 - left;
  set_value(
    &buf,
    value,
    curr,
    cend,
    0,
    offset,
    i32::from(encoding),
    unaligned_bits,
    new_value,
  );

  Some((new_value, overflow))
}

/// 执行 BITFIELD 子操作(GET/SET/INCRBY)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:BitFieldExecute
pub fn bit_field_execute(args: &BitFieldCmdArgs, value: &mut [u8]) -> Option<(i64, bool)> {
  let bit_count = args.type_info & 0x7F;
  let signed = (args.type_info & BIT_FIELD_SIGN_SIGNED) > 0;
  let val_len = value.len() as i64;

  match args.secondary_command {
    BitFieldSecondaryCommand::Set => set_bitfield(
      value,
      val_len,
      args.offset,
      bit_count,
      signed,
      args.value,
      args.overflow_type,
    ),
    BitFieldSecondaryCommand::IncrBy => increment_bitfield(
      value,
      val_len,
      args.offset,
      bit_count,
      signed,
      args.value,
      args.overflow_type,
    ),
    BitFieldSecondaryCommand::Get => Some((
      get_bitfield(value, val_len, args.offset, bit_count, signed)?,
      false,
    )),
  }
}

/// 执行只读 BITFIELD_RO 子操作(仅 GET)
///
/// libs/server/Resp/Bitmap/BitmapManagerBitfield.cs:BitFieldExecute_RO
pub fn bit_field_execute_ro(args: &BitFieldCmdArgs, value: &[u8]) -> Option<i64> {
  let bit_count = args.type_info & 0x7F;
  let signed = (args.type_info & BIT_FIELD_SIGN_SIGNED) > 0;

  match args.secondary_command {
    BitFieldSecondaryCommand::Get => {
      get_bitfield(value, value.len() as i64, args.offset, bit_count, signed)
    }
    _ => None,
  }
}

#[cfg(test)]
mod tests {
  use super::{
    BitFieldCmdArgs, BitFieldOverflow, BitFieldSecondaryCommand, bit_field_execute,
    bit_field_execute_ro, check_bitfield_overflow, check_signed_bitfield_overflow,
    check_unsigned_bitfield_overflow, get_bitfield,
  };

  /// u/i 位宽矩阵的读写回环
  #[test]
  fn get_set_roundtrip_matrix() {
    for (signed, bits) in [
      (false, 1u8),
      (true, 1),
      (false, 7),
      (true, 8),
      (false, 8),
      (true, 16),
      (false, 63),
      (true, 64),
    ] {
      let type_info = if signed { 0x80 | bits } else { bits };
      let args = BitFieldCmdArgs::new(BitFieldSecondaryCommand::Set, type_info, 3, 0, 0);
      let mut buf = vec![0u8; 16];
      // 写最大值
      let max: i64 = if signed {
        if bits == 64 {
          i64::MAX
        } else {
          (1i64 << (bits - 1)) - 1
        }
      } else {
        ((1u64 << bits) - 1) as i64
      };
      let (old, ovf) = bit_field_execute(&args, &mut buf).unwrap();
      assert_eq!((old, ovf), (0, false));
      let _ = bit_field_execute(
        &BitFieldCmdArgs::new(BitFieldSecondaryCommand::Set, type_info, 3, max, 0),
        &mut buf,
      )
      .unwrap();
      // 回读
      let v = bit_field_execute_ro(
        &BitFieldCmdArgs::new(BitFieldSecondaryCommand::Get, type_info, 3, 0, 0),
        &buf,
      )
      .unwrap();
      assert_eq!(v, max, "signed={signed} bits={bits}");
    }
  }

  /// 无符号溢出矩阵:WRAP / SAT / FAIL × 正负增量
  #[test]
  fn unsigned_overflow_matrix() {
    let fail = BitFieldOverflow::Fail as u8;
    let wrap = BitFieldOverflow::Wrap as u8;
    let sat = BitFieldOverflow::Sat as u8;

    // u8 域:value=250,incr=10
    assert_eq!(
      check_unsigned_bitfield_overflow(250, 10, 8, wrap),
      (4, true)
    );
    assert_eq!(
      check_unsigned_bitfield_overflow(250, 10, 8, sat),
      (255, true)
    );
    assert_eq!(
      check_unsigned_bitfield_overflow(250, 10, 8, fail),
      (0, true)
    );
    // 下溢:value=5,incr=-10
    assert_eq!(
      check_unsigned_bitfield_overflow(5, -10, 8, wrap),
      (251, true)
    );
    assert_eq!(check_unsigned_bitfield_overflow(5, -10, 8, sat), (0, true));
    assert_eq!(check_unsigned_bitfield_overflow(5, -10, 8, fail), (0, true));
    // 无溢出
    assert_eq!(
      check_unsigned_bitfield_overflow(5, 10, 8, fail),
      (15, false)
    );
    assert_eq!(
      check_unsigned_bitfield_overflow(0, 255, 8, sat),
      (255, false)
    );

    // u64 域边界
    assert_eq!(
      check_unsigned_bitfield_overflow(u64::MAX - 1, 10, 64, sat),
      (u64::MAX, true)
    );
    assert_eq!(check_unsigned_bitfield_overflow(0, -1, 64, sat), (0, true));
    // 通过 CheckBitfieldOverflow 的 FAIL 透传
    assert_eq!(check_bitfield_overflow(250, 10, 8, fail, false), (0, true));
    // WRAP/SAT 不透出溢出标记
    assert_eq!(check_bitfield_overflow(250, 10, 8, wrap, false), (4, false));
    assert_eq!(
      check_bitfield_overflow(250, 10, 8, sat, false),
      (255, false)
    );
  }

  /// 有符号溢出矩阵:WRAP / SAT / FAIL × 正负增量 × i8/i64
  #[test]
  fn signed_overflow_matrix() {
    let fail = BitFieldOverflow::Fail as u8;
    let wrap = BitFieldOverflow::Wrap as u8;
    let sat = BitFieldOverflow::Sat as u8;

    // i8 域:value=120,incr=10 → 上溢
    assert_eq!(
      check_signed_bitfield_overflow(120, 10, 8, wrap),
      (-126, true)
    );
    assert_eq!(check_signed_bitfield_overflow(120, 10, 8, sat), (127, true));
    assert_eq!(check_signed_bitfield_overflow(120, 10, 8, fail), (0, true));
    // 下溢:value=-120,incr=-10
    assert_eq!(
      check_signed_bitfield_overflow(-120, -10, 8, wrap),
      (126, true)
    );
    assert_eq!(
      check_signed_bitfield_overflow(-120, -10, 8, sat),
      (-128, true)
    );
    assert_eq!(
      check_signed_bitfield_overflow(-120, -10, 8, fail),
      (0, true)
    );
    // 域内
    assert_eq!(
      check_signed_bitfield_overflow(-120, 10, 8, fail),
      (-110, false)
    );
    // i64 域边界
    assert_eq!(
      check_signed_bitfield_overflow(i64::MAX - 5, 10, 64, sat),
      (i64::MAX, true)
    );
    assert_eq!(
      check_signed_bitfield_overflow(i64::MIN + 5, -10, 64, sat),
      (i64::MIN, true)
    );
    assert_eq!(
      check_signed_bitfield_overflow(i64::MAX, 1, 64, wrap),
      (i64::MIN, true)
    );
    // FAIL 透传(check_bitfield_overflow 入口)
    assert_eq!(check_bitfield_overflow(120, 10, 8, fail, true), (0, true));
    assert_eq!(
      check_bitfield_overflow(-120, -10, 8, sat, true),
      (-128, false)
    );
  }

  /// GET/SET/INCRBY 组合(含跨字节与 vend 截断)
  #[test]
  fn subcommand_combinations() {
    // SET u16 @4 = 0xABCD 后 GET 回读
    let mut buf = vec![0u8; 4];
    let (old, ovf) = bit_field_execute(
      &BitFieldCmdArgs::new(BitFieldSecondaryCommand::Set, 16, 4, 0xABCD, 0),
      &mut buf,
    )
    .unwrap();
    assert_eq!((old, ovf), (0, false));
    assert_eq!(
      bit_field_execute_ro(
        &BitFieldCmdArgs::new(BitFieldSecondaryCommand::Get, 16, 4, 0, 0),
        &buf
      ),
      Some(0xABCD)
    );

    // INCRBY u8 @0:0+100 → 100;100+100 → 200
    let mut buf = vec![0u8; 2];
    let (v, ovf) = bit_field_execute(
      &BitFieldCmdArgs::new(BitFieldSecondaryCommand::IncrBy, 8, 0, 100, 0),
      &mut buf,
    )
    .unwrap();
    assert_eq!((v, ovf), (100, false));
    let (v, ovf) = bit_field_execute(
      &BitFieldCmdArgs::new(BitFieldSecondaryCommand::IncrBy, 8, 0, 100, 0),
      &mut buf,
    )
    .unwrap();
    assert_eq!((v, ovf), (200, false));

    // INCRBY u8 FAIL 溢出:C# IncrementBitfield 溢出时仍落盘 newValue=0,
    // 仅应答层以 nil 替代(与 Redis 不落盘相异,保持 C# 行为)
    let mut buf = vec![250u8, 0];
    let (v, ovf) = bit_field_execute(
      &BitFieldCmdArgs::new(
        BitFieldSecondaryCommand::IncrBy,
        8,
        0,
        10,
        BitFieldOverflow::Fail as u8,
      ),
      &mut buf,
    )
    .unwrap();
    assert!(ovf);
    assert_eq!(v, 0);
    assert_eq!(buf[0], 0, "C# FAIL 溢出仍写入 newValue");

    // SET 对缓冲不足(C# 抛 GarnetException 场景)→ None
    let mut short = vec![0u8; 1];
    assert_eq!(
      bit_field_execute(
        &BitFieldCmdArgs::new(BitFieldSecondaryCommand::Set, 16, 8, 1, 0),
        &mut short,
      ),
      None
    );

    // GET 起点越值界恒 0
    assert_eq!(get_bitfield(&[0u8; 2], 2, 100, 8, false), Some(0));

    // 邻位不受扰动:u8 @4 写 0xAB
    let mut buf = vec![0x00u8, 0xFF];
    let _ = bit_field_execute(
      &BitFieldCmdArgs::new(BitFieldSecondaryCommand::Set, 8, 4, 0xAB, 0),
      &mut buf,
    )
    .unwrap();
    // 低半字节保留 0x0,位 4..12 = 0xAB,位 12..16 保留 0xF
    assert_eq!(buf, vec![0x0A, 0xBF]);
  }
}