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/*******************************************************************************
*
* Copyright (c) 2025 - 2026.
* Haixing Hu, Qubit Co. Ltd.
*
* All rights reserved.
*
******************************************************************************/
//! # BiConsumer Types
//!
//! Provides bi-consumer interface implementations for operations accepting
//! two input parameters without returning a result.
//!
//! It is similar to the `FnMut(&T, &U)` trait in the standard library.
//!
//! This module provides a unified `BiConsumer` trait and three concrete
//! implementations based on different ownership models:
//!
//! - **`BoxStatefulBiConsumer<T, U>`**: Box-based single ownership for one-time use
//! - **`ArcStatefulBiConsumer<T, U>`**: Arc<Mutex<>>-based thread-safe shared
//! ownership
//! - **`RcStatefulBiConsumer<T, U>`**: Rc<RefCell<>>-based single-threaded shared
//! ownership
//!
//! # Design Philosophy
//!
//! BiConsumer uses `FnMut(&T, &U)` semantics: can modify its own state but
//! does NOT modify input values.
//!
//! Suitable for statistics, accumulation, and event processing scenarios
//! involving two parameters.
//!
//! # Author
//!
//! Haixing Hu
use RefCell;
use Rc;
use Arc;
use Mutex;
use crate;
use crate;
use crate;
// =======================================================================
// 1. BiConsumer Trait - Unified BiConsumer Interface
// =======================================================================
/// BiConsumer trait - Unified bi-consumer interface
///
/// Defines core behavior for all bi-consumer types. Similar to Java's
/// `BiConsumer<T, U>` interface, performs operations accepting two values
/// but returning no result (side effects only).
///
/// It is similar to the `FnMut(&T, &U)` trait in the standard library.
///
/// BiConsumer can modify its own state (e.g., accumulate, count) but
/// should NOT modify the consumed values themselves.
///
/// # Automatic Implementations
///
/// - All closures implementing `FnMut(&T, &U)`
/// - `BoxStatefulBiConsumer<T, U>`, `ArcStatefulBiConsumer<T, U>`, `RcStatefulBiConsumer<T, U>`
///
/// # Features
///
/// - **Unified Interface**: All bi-consumer types share the same `accept`
/// method signature
/// - **Automatic Implementation**: Closures automatically implement this
/// trait with zero overhead
/// - **Type Conversions**: Easy conversion between ownership models
/// - **Generic Programming**: Write functions accepting any bi-consumer
/// type
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, BoxStatefulBiConsumer, ArcStatefulBiConsumer};
/// use std::sync::{Arc, Mutex};
///
/// fn apply_bi_consumer<C: StatefulBiConsumer<i32, i32>>(
/// consumer: &mut C,
/// a: &i32,
/// b: &i32
/// ) {
/// consumer.accept(a, b);
/// }
///
/// // Works with any bi-consumer type
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l = log.clone();
/// let mut box_con = BoxStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.lock().unwrap().push(*x + *y);
/// });
/// apply_bi_consumer(&mut box_con, &5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]);
/// ```
///
/// # Author
///
/// Haixing Hu
// =======================================================================
// 2. BoxStatefulBiConsumer - Single Ownership Implementation
// =======================================================================
/// BoxStatefulBiConsumer struct
///
/// A bi-consumer implementation based on `Box<dyn FnMut(&T, &U)>` for
/// single ownership scenarios. This is the simplest and most efficient
/// bi-consumer type when sharing is not required.
///
/// # Features
///
/// - **Single Ownership**: Not cloneable, ownership moves on use
/// - **Zero Overhead**: No reference counting or locking
/// - **Mutable State**: Can modify captured environment via `FnMut`
/// - **Builder Pattern**: Method chaining consumes `self` naturally
///
/// # Use Cases
///
/// Choose `BoxStatefulBiConsumer` when:
/// - The bi-consumer is used only once or in a linear flow
/// - Building pipelines where ownership naturally flows
/// - No need to share the consumer across contexts
/// - Performance is critical and sharing overhead is unacceptable
///
/// # Performance
///
/// `BoxStatefulBiConsumer` has the best performance among the three bi-consumer
/// types:
/// - No reference counting overhead
/// - No lock acquisition or runtime borrow checking
/// - Direct function call through vtable
/// - Minimal memory footprint (single pointer)
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, BoxStatefulBiConsumer};
/// use std::sync::{Arc, Mutex};
///
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l = log.clone();
/// let mut consumer = BoxStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.lock().unwrap().push(*x + *y);
/// });
/// consumer.accept(&5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]);
/// ```
///
/// # Author
///
/// Haixing Hu
// Use macro to generate Debug and Display implementations
impl_consumer_debug_display!;
// =======================================================================
// 3. RcStatefulBiConsumer - Single-Threaded Shared Ownership Implementation
// =======================================================================
/// RcStatefulBiConsumer struct
///
/// A bi-consumer implementation based on `Rc<RefCell<dyn FnMut(&T, &U)>>`
/// for single-threaded shared ownership scenarios. This consumer provides
/// the benefits of shared ownership without the overhead of thread
/// safety.
///
/// # Features
///
/// - **Shared Ownership**: Cloneable via `Rc`, multiple owners allowed
/// - **Single-Threaded**: Not thread-safe, cannot send across threads
/// - **Interior Mutability**: Uses `RefCell` for runtime borrow checking
/// - **No Lock Overhead**: More efficient than `ArcStatefulBiConsumer` for
/// single-threaded use
/// - **Non-Consuming API**: `and_then` borrows `&self`, original remains
/// usable
///
/// # Use Cases
///
/// Choose `RcStatefulBiConsumer` when:
/// - Need to share bi-consumer within a single thread
/// - Thread safety is not needed
/// - Performance matters (avoiding lock overhead)
/// - Single-threaded UI framework event handling
/// - Building complex single-threaded state machines
///
/// # Performance Considerations
///
/// `RcStatefulBiConsumer` performs better than `ArcStatefulBiConsumer` in single-threaded
/// scenarios:
/// - **Non-Atomic Counting**: clone/drop cheaper than `Arc`
/// - **No Lock Overhead**: `RefCell` uses runtime checking, no locks
/// - **Better Cache Locality**: No atomic operations means better CPU
/// cache behavior
///
/// But still has slight overhead compared to `BoxStatefulBiConsumer`:
/// - **Reference Counting**: Though non-atomic, still exists
/// - **Runtime Borrow Checking**: `RefCell` checks at runtime
///
/// # Safety
///
/// `RcStatefulBiConsumer` is not thread-safe and does not implement `Send` or
/// `Sync`. Attempting to send it to another thread will result in a
/// compile error. For thread-safe sharing, use `ArcStatefulBiConsumer` instead.
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, RcStatefulBiConsumer};
/// use std::rc::Rc;
/// use std::cell::RefCell;
///
/// let log = Rc::new(RefCell::new(Vec::new()));
/// let l = log.clone();
/// let mut consumer = RcStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.borrow_mut().push(*x + *y);
/// });
/// let mut clone = consumer.clone();
///
/// consumer.accept(&5, &3);
/// assert_eq!(*log.borrow(), vec![8]);
/// ```
///
/// # Author
///
/// Haixing Hu
// Use macro to generate Clone implementation
impl_consumer_clone!;
// Use macro to generate Debug and Display implementations
impl_consumer_debug_display!;
// =======================================================================
// 4. ArcStatefulBiConsumer - Thread-Safe Shared Ownership Implementation
// =======================================================================
/// ArcStatefulBiConsumer struct
///
/// A bi-consumer implementation based on
/// `Arc<Mutex<dyn FnMut(&T, &U) + Send>>` for thread-safe shared
/// ownership scenarios. This consumer can be safely cloned and shared
/// across multiple threads.
///
/// # Features
///
/// - **Shared Ownership**: Cloneable via `Arc`, multiple owners allowed
/// - **Thread-Safe**: Implements `Send + Sync`, safe for concurrent use
/// - **Interior Mutability**: Uses `Mutex` for safe mutable access
/// - **Non-Consuming API**: `and_then` borrows `&self`, original remains
/// usable
/// - **Cross-Thread Sharing**: Can be sent to and used by other threads
///
/// # Use Cases
///
/// Choose `ArcStatefulBiConsumer` when:
/// - Need to share bi-consumer across multiple threads
/// - Concurrent task processing (e.g., thread pools)
/// - Using the same consumer in multiple places simultaneously
/// - Thread safety (Send + Sync) is required
///
/// # Performance Considerations
///
/// `ArcStatefulBiConsumer` has some overhead compared to `BoxStatefulBiConsumer`:
/// - **Reference Counting**: Atomic operations on clone/drop
/// - **Mutex Locking**: Each `accept` call requires lock acquisition
/// - **Lock Contention**: High concurrency may cause contention
///
/// These overheads are necessary for safe concurrent access. If thread
/// safety is not needed, consider using `RcStatefulBiConsumer` for lower
/// overhead in single-threaded sharing.
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, ArcStatefulBiConsumer};
/// use std::sync::{Arc, Mutex};
///
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l = log.clone();
/// let mut consumer = ArcStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.lock().unwrap().push(*x + *y);
/// });
/// let mut clone = consumer.clone();
///
/// consumer.accept(&5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]);
/// ```
///
/// # Author
///
/// Haixing Hu
// Use macro to generate Clone implementation
impl_consumer_clone!;
// Use macro to generate Debug and Display implementations
impl_consumer_debug_display!;
// =======================================================================
// 5. Implement BiConsumer trait for closures
// =======================================================================
// Implements BiConsumer for all FnMut(&T, &U)
impl_closure_trait!;
// =======================================================================
// 6. Provide extension methods for closures
// =======================================================================
/// Extension trait providing bi-consumer composition methods for closures
///
/// Provides `and_then` and other composition methods for all closures
/// implementing `FnMut(&T, &U)`, enabling direct method chaining on
/// closures without explicit wrapper types.
///
/// # Design Rationale
///
/// This trait allows closures to be composed naturally using method
/// syntax, similar to iterator combinators. Composition methods consume
/// the closure and return `BoxStatefulBiConsumer<T, U>`, which can be further
/// chained.
///
/// # Features
///
/// - **Natural Syntax**: Chain operations directly on closures
/// - **Returns BoxStatefulBiConsumer**: Composition results are
/// `BoxStatefulBiConsumer<T, U>` for continued chaining
/// - **Zero Cost**: No overhead when composing closures
/// - **Automatic Implementation**: All `FnMut(&T, &U)` closures get
/// these methods automatically
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, FnStatefulBiConsumerOps};
/// use std::sync::{Arc, Mutex};
///
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l1 = log.clone();
/// let l2 = log.clone();
/// let mut chained = (move |x: &i32, y: &i32| {
/// l1.lock().unwrap().push(*x + *y);
/// }).and_then(move |x: &i32, y: &i32| {
/// l2.lock().unwrap().push(*x * *y);
/// });
/// chained.accept(&5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8, 15]);
/// ```
///
/// # Author
///
/// Haixing Hu
/// Implements FnStatefulBiConsumerOps for all closure types
// =======================================================================
// 7. BoxConditionalBiConsumer - Box-based Conditional BiConsumer
// =======================================================================
/// BoxConditionalBiConsumer struct
///
/// A conditional bi-consumer that only executes when a predicate is satisfied.
/// Uses `BoxStatefulBiConsumer` and `BoxBiPredicate` for single ownership semantics.
///
/// This type is typically created by calling `BoxStatefulBiConsumer::when()` and is
/// designed to work with the `or_else()` method to create if-then-else logic.
///
/// # Features
///
/// - **Single Ownership**: Not cloneable, consumes `self` on use
/// - **Conditional Execution**: Only consumes when predicate returns `true`
/// - **Chainable**: Can add `or_else` branch to create if-then-else logic
/// - **Implements BiConsumer**: Can be used anywhere a `BiConsumer` is expected
///
/// # Examples
///
/// ## Basic Conditional Execution
///
/// ```rust
/// use qubit_function::{BiConsumer, BoxStatefulBiConsumer};
/// use std::sync::{Arc, Mutex};
///
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l = log.clone();
/// let consumer = BoxStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.lock().unwrap().push(*x + *y);
/// });
/// let mut conditional = consumer.when(|x: &i32, y: &i32| *x > 0 && *y > 0);
///
/// conditional.accept(&5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]); // Executed
///
/// conditional.accept(&-5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]); // Not executed
/// ```
///
/// ## With or_else Branch
///
/// ```rust
/// use qubit_function::{BiConsumer, BoxStatefulBiConsumer};
/// use std::sync::{Arc, Mutex};
///
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l1 = log.clone();
/// let l2 = log.clone();
/// let mut consumer = BoxStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l1.lock().unwrap().push(*x + *y);
/// }).when(|x: &i32, y: &i32| *x > 0 && *y > 0)
/// .or_else(move |x: &i32, y: &i32| {
/// l2.lock().unwrap().push(*x * *y);
/// });
///
/// consumer.accept(&5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]); // when branch executed
///
/// consumer.accept(&-5, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8, -15]); // or_else branch executed
/// ```
///
/// # Author
///
/// Haixing Hu
// Use macro to generate conditional bi-consumer implementations
impl_box_conditional_consumer!;
// Use macro to generate Debug and Display implementations
impl_conditional_consumer_debug_display!;
// =======================================================================
// 8. ArcConditionalStatefulBiConsumer - Arc-based Conditional BiConsumer
// =======================================================================
/// ArcConditionalStatefulBiConsumer struct
///
/// A thread-safe conditional bi-consumer that only executes when a predicate is
/// satisfied. Uses `ArcStatefulBiConsumer` and `ArcBiPredicate` for shared ownership across
/// threads.
///
/// This type is typically created by calling `ArcStatefulBiConsumer::when()` and is
/// designed to work with the `or_else()` method to create if-then-else logic.
///
/// # Features
///
/// - **Shared Ownership**: Cloneable via `Arc`, multiple owners allowed
/// - **Thread-Safe**: Implements `Send + Sync`, safe for concurrent use
/// - **Conditional Execution**: Only consumes when predicate returns `true`
/// - **Chainable**: Can add `or_else` branch to create if-then-else logic
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, ArcStatefulBiConsumer};
/// use std::sync::{Arc, Mutex};
///
/// let log = Arc::new(Mutex::new(Vec::new()));
/// let l = log.clone();
/// let conditional = ArcStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.lock().unwrap().push(*x + *y);
/// }).when(|x: &i32, y: &i32| *x > 0 && *y > 0);
///
/// let conditional_clone = conditional.clone();
///
/// let mut value = 5;
/// let mut m = conditional;
/// m.accept(&value, &3);
/// assert_eq!(*log.lock().unwrap(), vec![8]);
/// ```
///
/// # Author
///
/// Haixing Hu
// Use macro to generate and_then and or_else methods
impl_shared_conditional_consumer!;
// Use macro to generate Clone implementation
impl_conditional_consumer_clone!;
// Use macro to generate Debug and Display implementations
impl_conditional_consumer_debug_display!;
// =======================================================================
// 9. RcConditionalStatefulBiConsumer - Rc-based Conditional BiConsumer
// =======================================================================
/// RcConditionalStatefulBiConsumer struct
///
/// A single-threaded conditional bi-consumer that only executes when a predicate is
/// satisfied. Uses `RcStatefulBiConsumer` and `RcBiPredicate` for shared ownership within a
/// single thread.
///
/// This type is typically created by calling `RcStatefulBiConsumer::when()` and is
/// designed to work with the `or_else()` method to create if-then-else logic.
///
/// # Features
///
/// - **Shared Ownership**: Cloneable via `Rc`, multiple owners allowed
/// - **Single-Threaded**: Not thread-safe, cannot be sent across threads
/// - **Conditional Execution**: Only consumes when predicate returns `true`
/// - **No Lock Overhead**: More efficient than `ArcConditionalStatefulBiConsumer`
///
/// # Examples
///
/// ```rust
/// use qubit_function::{BiConsumer, RcStatefulBiConsumer};
/// use std::rc::Rc;
/// use std::cell::RefCell;
///
/// let log = Rc::new(RefCell::new(Vec::new()));
/// let l = log.clone();
/// let conditional = RcStatefulBiConsumer::new(move |x: &i32, y: &i32| {
/// l.borrow_mut().push(*x + *y);
/// }).when(|x: &i32, y: &i32| *x > 0 && *y > 0);
///
/// let conditional_clone = conditional.clone();
///
/// let mut value = 5;
/// let mut m = conditional;
/// m.accept(&value, &3);
/// assert_eq!(*log.borrow(), vec![8]);
/// ```
///
/// # Author
///
/// Haixing Hu
// Use macro to generate and_then and or_else methods
impl_shared_conditional_consumer!;
// Use macro to generate Clone implementation
impl_conditional_consumer_clone!;
// Use macro to generate Debug and Display implementations
impl_conditional_consumer_debug_display!;