pub trait FnTransformerOnceOps<T, R>: FnOnce(T) -> R + Sized {
// Provided methods
fn and_then<S, G>(self, after: G) -> BoxTransformerOnce<T, S>
where Self: 'static,
S: 'static,
G: TransformerOnce<R, S> + 'static,
T: 'static,
R: 'static { ... }
fn when<P>(self, predicate: P) -> BoxConditionalTransformerOnce<T, R>
where Self: 'static,
P: Predicate<T> + 'static,
T: 'static,
R: 'static { ... }
}Expand description
Extension trait for closures implementing FnOnce(T) -> R
Provides composition methods (and_then, compose, when) for one-time
use closures and function pointers without requiring explicit wrapping in
BoxTransformerOnce.
This trait is automatically implemented for all closures and function
pointers that implement FnOnce(T) -> R.
§Design Rationale
While closures automatically implement TransformerOnce<T, R> through
blanket implementation, they don’t have access to instance methods like
and_then, compose, and when. This extension trait provides those
methods, returning BoxTransformerOnce for maximum flexibility.
§Examples
§Chain composition with and_then
use qubit_function::{TransformerOnce, FnTransformerOnceOps};
let parse = |s: String| s.parse::<i32>().unwrap_or(0);
let double = |x: i32| x * 2;
let composed = parse.and_then(double);
assert_eq!(composed.apply("21".to_string()), 42);§Forward composition with and_then
use qubit_function::{TransformerOnce, FnTransformerOnceOps};
let double = |x: i32| x * 2;
let parse = |s: String| s.parse::<i32>().unwrap_or(0);
let composed = parse.and_then(double);
assert_eq!(composed.apply("21".to_string()), 42);§Conditional transformation with when
use qubit_function::{TransformerOnce, FnTransformerOnceOps};
let double = |x: i32| x * 2;
let conditional = double.when(|x: &i32| *x > 0).or_else(|x: i32| -x);
assert_eq!(conditional.apply(5), 10);Provided Methods§
Sourcefn and_then<S, G>(self, after: G) -> BoxTransformerOnce<T, S>where
Self: 'static,
S: 'static,
G: TransformerOnce<R, S> + 'static,
T: 'static,
R: 'static,
fn and_then<S, G>(self, after: G) -> BoxTransformerOnce<T, S>where
Self: 'static,
S: 'static,
G: TransformerOnce<R, S> + 'static,
T: 'static,
R: 'static,
Chain composition - applies self first, then after
Creates a new transformer that applies this transformer first, then
applies the after transformer to the result. Consumes self and returns
a BoxTransformerOnce.
§Type Parameters
S- The output type of the after transformerG- The type of the after transformer (must implement TransformerOnce<R, S>)
§Parameters
after- The transformer to apply after self. Note: This parameter is passed by value and will transfer ownership. Since this is aFnOncetransformer, the parameter will be consumed. Can be:- A closure:
|x: R| -> S - A function pointer:
fn(R) -> S - A
BoxTransformerOnce<R, S> - Any type implementing
TransformerOnce<R, S>
- A closure:
§Returns
A new BoxTransformerOnce<T, S> representing the composition
§Examples
use qubit_function::{TransformerOnce, FnTransformerOnceOps,
BoxTransformerOnce};
let parse = |s: String| s.parse::<i32>().unwrap_or(0);
let double = BoxTransformerOnce::new(|x: i32| x * 2);
// double is moved and consumed
let composed = parse.and_then(double);
assert_eq!(composed.apply("21".to_string()), 42);
// double.apply(5); // Would not compile - movedExamples found in repository?
20fn main() {
21 println!("=== FnTransformerOnceOps Example ===\n");
22
23 // 1. Basic and_then composition
24 println!("1. Basic and_then composition:");
25 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
26 let double = |x: i32| x * 2;
27 let composed = parse.and_then(double);
28 println!(
29 " parse.and_then(double).apply(\"21\") = {}",
30 composed.apply("21".to_string())
31 );
32 println!();
33
34 // 2. Chained and_then composition
35 println!("2. Chained and_then composition:");
36 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
37 let add_one = |x: i32| x + 1;
38 let double = |x: i32| x * 2;
39 let chained = parse.and_then(add_one).and_then(double);
40 println!(
41 " parse.and_then(add_one).and_then(double).apply(\"5\") = {}",
42 chained.apply("5".to_string())
43 ); // (5 + 1) * 2 = 12
44 println!();
45
46 // 3. More and_then composition
47 println!("3. More and_then composition:");
48 let double = |x: i32| x * 2;
49 let to_string = |x: i32| x.to_string();
50 let composed = double.and_then(to_string);
51 println!(" double.and_then(to_string).apply(21) = {}", composed.apply(21)); // (21 * 2).to_string() = "42"
52 println!();
53
54 // 4. Conditional transformation when
55 println!("4. Conditional transformation when:");
56 let double = |x: i32| x * 2;
57 let conditional = double.when(|x: &i32| *x > 0).or_else(|x: i32| -x);
58 println!(" double.when(x > 0).or_else(negate):");
59 println!(" transform(5) = {}", conditional.apply(5)); // 10
60
61 let double2 = |x: i32| x * 2;
62 let conditional2 = double2.when(|x: &i32| *x > 0).or_else(|x: i32| -x);
63 println!(" transform(-5) = {}", conditional2.apply(-5)); // 5
64 println!();
65
66 // 5. Complex composition
67 println!("5. Complex composition:");
68 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
69 let double = |x: i32| x * 2;
70 let triple = |x: i32| x * 3;
71 let to_string = |x: i32| x.to_string();
72
73 let complex = parse
74 .and_then(double.when(|x: &i32| *x > 5).or_else(triple))
75 .and_then(to_string);
76
77 println!(" parse.and_then(double.when(x > 5).or_else(triple)).and_then(to_string):");
78 println!(" transform(\"3\") = {}", complex.apply("3".to_string())); // 3 <= 5, so 3 * 3 = 9
79
80 let parse2 = |s: String| s.parse::<i32>().unwrap_or(0);
81 let double2 = |x: i32| x * 2;
82 let triple2 = |x: i32| x * 3;
83 let to_string2 = |x: i32| x.to_string();
84 let complex2 = parse2
85 .and_then(double2.when(|x: &i32| *x > 5).or_else(triple2))
86 .and_then(to_string2);
87 println!(" transform(\"10\") = {}", complex2.apply("10".to_string())); // 10 > 5, so 10 * 2 = 20
88 println!();
89
90 // 6. Type conversion
91 println!("6. Type conversion:");
92 let to_string = |x: i32| x.to_string();
93 let get_length = |s: String| s.len();
94 let length_transformer = to_string.and_then(get_length);
95 println!(
96 " to_string.and_then(get_length).apply(12345) = {}",
97 length_transformer.apply(12345)
98 ); // 5
99 println!();
100
101 // 7. Closures that capture environment
102 println!("7. Closures that capture environment:");
103 let multiplier = 3;
104 let multiply = move |x: i32| x * multiplier;
105 let add_ten = |x: i32| x + 10;
106 let with_capture = multiply.and_then(add_ten);
107 println!(" multiply(3).and_then(add_ten).apply(5) = {}", with_capture.apply(5)); // 5 * 3 + 10 = 25
108 println!();
109
110 // 8. Function pointers
111 println!("8. Function pointers:");
112 fn parse_fn(s: String) -> i32 {
113 s.parse().unwrap_or(0)
114 }
115 fn double_fn(x: i32) -> i32 {
116 x * 2
117 }
118 let fn_composed = parse_fn.and_then(double_fn);
119 println!(
120 " parse_fn.and_then(double_fn).apply(\"21\") = {}",
121 fn_composed.apply("21".to_string())
122 ); // 42
123 println!();
124
125 // 9. String operations that consume ownership
126 println!("9. String operations that consume ownership:");
127 let owned = String::from("hello");
128 let append = move |s: String| format!("{} {}", s, owned);
129 let uppercase = |s: String| s.to_uppercase();
130 let composed = append.and_then(uppercase);
131 println!(
132 " append.and_then(uppercase).apply(\"world\") = {}",
133 composed.apply("world".to_string())
134 ); // "WORLD HELLO"
135 println!();
136
137 // 10. Parsing and validation
138 println!("10. Parsing and validation:");
139 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
140 let validate = |x: i32| if x > 0 { x } else { 1 };
141 let composed = parse.and_then(validate);
142 println!(
143 " parse.and_then(validate).apply(\"42\") = {}",
144 composed.apply("42".to_string())
145 ); // 42
146
147 let parse2 = |s: String| s.parse::<i32>().unwrap_or(0);
148 let validate2 = |x: i32| if x > 0 { x } else { 1 };
149 let composed2 = parse2.and_then(validate2);
150 println!(
151 " parse.and_then(validate).apply(\"-5\") = {}",
152 composed2.apply("-5".to_string())
153 ); // 1
154 println!();
155
156 println!("=== Example completed ===");
157}Sourcefn when<P>(self, predicate: P) -> BoxConditionalTransformerOnce<T, R>where
Self: 'static,
P: Predicate<T> + 'static,
T: 'static,
R: 'static,
fn when<P>(self, predicate: P) -> BoxConditionalTransformerOnce<T, R>where
Self: 'static,
P: Predicate<T> + 'static,
T: 'static,
R: 'static,
Creates a conditional transformer
Returns a transformer that only executes when a predicate is satisfied.
You must call or_else() to provide an alternative transformer for when
the condition is not satisfied.
§Parameters
predicate- The condition to check. Note: This parameter is passed by value and will transfer ownership. If you need to preserve the original predicate, clone it first (if it implementsClone). Can be:- A closure:
|x: &T| -> bool - A function pointer:
fn(&T) -> bool - A
BoxPredicate<T> - An
RcPredicate<T> - An
ArcPredicate<T> - Any type implementing
Predicate<T>
- A closure:
§Returns
Returns BoxConditionalTransformerOnce<T, R>
§Examples
§Basic usage with or_else
use qubit_function::{TransformerOnce, FnTransformerOnceOps};
let double = |x: i32| x * 2;
let conditional = double.when(|x: &i32| *x > 0).or_else(|x: i32| -x);
assert_eq!(conditional.apply(5), 10);§Preserving predicate with a second closure
use qubit_function::{Predicate, TransformerOnce, FnTransformerOnceOps};
let double = |x: i32| x * 2;
let is_positive = |x: &i32| *x > 0;
let is_positive_for_validation = |x: &i32| *x > 0;
let conditional = double.when(is_positive)
.or_else(|x: i32| -x);
assert_eq!(conditional.apply(5), 10);
// Original predicate still usable
assert!(is_positive_for_validation(&3));Examples found in repository?
20fn main() {
21 println!("=== FnTransformerOnceOps Example ===\n");
22
23 // 1. Basic and_then composition
24 println!("1. Basic and_then composition:");
25 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
26 let double = |x: i32| x * 2;
27 let composed = parse.and_then(double);
28 println!(
29 " parse.and_then(double).apply(\"21\") = {}",
30 composed.apply("21".to_string())
31 );
32 println!();
33
34 // 2. Chained and_then composition
35 println!("2. Chained and_then composition:");
36 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
37 let add_one = |x: i32| x + 1;
38 let double = |x: i32| x * 2;
39 let chained = parse.and_then(add_one).and_then(double);
40 println!(
41 " parse.and_then(add_one).and_then(double).apply(\"5\") = {}",
42 chained.apply("5".to_string())
43 ); // (5 + 1) * 2 = 12
44 println!();
45
46 // 3. More and_then composition
47 println!("3. More and_then composition:");
48 let double = |x: i32| x * 2;
49 let to_string = |x: i32| x.to_string();
50 let composed = double.and_then(to_string);
51 println!(" double.and_then(to_string).apply(21) = {}", composed.apply(21)); // (21 * 2).to_string() = "42"
52 println!();
53
54 // 4. Conditional transformation when
55 println!("4. Conditional transformation when:");
56 let double = |x: i32| x * 2;
57 let conditional = double.when(|x: &i32| *x > 0).or_else(|x: i32| -x);
58 println!(" double.when(x > 0).or_else(negate):");
59 println!(" transform(5) = {}", conditional.apply(5)); // 10
60
61 let double2 = |x: i32| x * 2;
62 let conditional2 = double2.when(|x: &i32| *x > 0).or_else(|x: i32| -x);
63 println!(" transform(-5) = {}", conditional2.apply(-5)); // 5
64 println!();
65
66 // 5. Complex composition
67 println!("5. Complex composition:");
68 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
69 let double = |x: i32| x * 2;
70 let triple = |x: i32| x * 3;
71 let to_string = |x: i32| x.to_string();
72
73 let complex = parse
74 .and_then(double.when(|x: &i32| *x > 5).or_else(triple))
75 .and_then(to_string);
76
77 println!(" parse.and_then(double.when(x > 5).or_else(triple)).and_then(to_string):");
78 println!(" transform(\"3\") = {}", complex.apply("3".to_string())); // 3 <= 5, so 3 * 3 = 9
79
80 let parse2 = |s: String| s.parse::<i32>().unwrap_or(0);
81 let double2 = |x: i32| x * 2;
82 let triple2 = |x: i32| x * 3;
83 let to_string2 = |x: i32| x.to_string();
84 let complex2 = parse2
85 .and_then(double2.when(|x: &i32| *x > 5).or_else(triple2))
86 .and_then(to_string2);
87 println!(" transform(\"10\") = {}", complex2.apply("10".to_string())); // 10 > 5, so 10 * 2 = 20
88 println!();
89
90 // 6. Type conversion
91 println!("6. Type conversion:");
92 let to_string = |x: i32| x.to_string();
93 let get_length = |s: String| s.len();
94 let length_transformer = to_string.and_then(get_length);
95 println!(
96 " to_string.and_then(get_length).apply(12345) = {}",
97 length_transformer.apply(12345)
98 ); // 5
99 println!();
100
101 // 7. Closures that capture environment
102 println!("7. Closures that capture environment:");
103 let multiplier = 3;
104 let multiply = move |x: i32| x * multiplier;
105 let add_ten = |x: i32| x + 10;
106 let with_capture = multiply.and_then(add_ten);
107 println!(" multiply(3).and_then(add_ten).apply(5) = {}", with_capture.apply(5)); // 5 * 3 + 10 = 25
108 println!();
109
110 // 8. Function pointers
111 println!("8. Function pointers:");
112 fn parse_fn(s: String) -> i32 {
113 s.parse().unwrap_or(0)
114 }
115 fn double_fn(x: i32) -> i32 {
116 x * 2
117 }
118 let fn_composed = parse_fn.and_then(double_fn);
119 println!(
120 " parse_fn.and_then(double_fn).apply(\"21\") = {}",
121 fn_composed.apply("21".to_string())
122 ); // 42
123 println!();
124
125 // 9. String operations that consume ownership
126 println!("9. String operations that consume ownership:");
127 let owned = String::from("hello");
128 let append = move |s: String| format!("{} {}", s, owned);
129 let uppercase = |s: String| s.to_uppercase();
130 let composed = append.and_then(uppercase);
131 println!(
132 " append.and_then(uppercase).apply(\"world\") = {}",
133 composed.apply("world".to_string())
134 ); // "WORLD HELLO"
135 println!();
136
137 // 10. Parsing and validation
138 println!("10. Parsing and validation:");
139 let parse = |s: String| s.parse::<i32>().unwrap_or(0);
140 let validate = |x: i32| if x > 0 { x } else { 1 };
141 let composed = parse.and_then(validate);
142 println!(
143 " parse.and_then(validate).apply(\"42\") = {}",
144 composed.apply("42".to_string())
145 ); // 42
146
147 let parse2 = |s: String| s.parse::<i32>().unwrap_or(0);
148 let validate2 = |x: i32| if x > 0 { x } else { 1 };
149 let composed2 = parse2.and_then(validate2);
150 println!(
151 " parse.and_then(validate).apply(\"-5\") = {}",
152 composed2.apply("-5".to_string())
153 ); // 1
154 println!();
155
156 println!("=== Example completed ===");
157}Dyn Compatibility§
This trait is not dyn compatible.
In older versions of Rust, dyn compatibility was called "object safety".
Implementors§
impl<T, R, F> FnTransformerOnceOps<T, R> for Fwhere
F: FnOnce(T) -> R,
Blanket implementation of FnTransformerOnceOps for all FnOnce closures
Automatically implements FnTransformerOnceOps<T, R> for any type that
implements FnOnce(T) -> R.