use lean_string::{LeanStr, LeanString, ToLeanStr, ToLeanString};
use proptest::{prelude::*, property_test};
#[property_test]
#[cfg_attr(miri, ignore)]
fn create_from_str(input: String) {
let input = input.as_str();
let s1 = LeanString::from(input);
prop_assert_eq!(&s1, input);
prop_assert_eq!(s1.len(), input.len());
let s2 = LeanStr::from(input);
prop_assert_eq!(&s2, input);
prop_assert_eq!(s2.len(), input.len());
if input.len() <= 2 * size_of::<usize>() {
prop_assert!(!s1.is_heap_allocated());
prop_assert!(!s2.is_heap_allocated());
} else {
prop_assert!(s1.is_heap_allocated());
prop_assert!(s2.is_heap_allocated());
}
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn create_from_u8_bytes(input: Vec<u8>) {
let input = input.as_slice();
let s1 = LeanString::from_utf8(input);
let s2 = LeanStr::from_utf8(input);
let string = String::from_utf8(input.to_vec());
prop_assert_eq!(s1.is_err(), string.is_err());
prop_assert_eq!(s2.is_err(), string.is_err());
if let (Ok(s1), Ok(string)) = (s1, &string) {
prop_assert_eq!(&s1, string);
}
if let (Ok(s2), Ok(string)) = (s2, &string) {
prop_assert_eq!(&s2, string);
}
let s1 = LeanString::from_utf8_lossy(input);
let s2 = LeanStr::from_utf8_lossy(input);
let string = String::from_utf8_lossy(input);
prop_assert_eq!(&s1, &string);
prop_assert_eq!(&s2, &string);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn create_from_u16_bytes(input: Vec<u16>) {
let input = input.as_slice();
let s1 = LeanString::from_utf16(input);
let s2 = LeanStr::from_utf16(input);
let string = String::from_utf16(input);
prop_assert_eq!(s1.is_err(), string.is_err());
prop_assert_eq!(s2.is_err(), string.is_err());
if let (Ok(lean), Ok(string)) = (s1, &string) {
prop_assert_eq!(&lean, string);
}
if let (Ok(lean), Ok(string)) = (s2, &string) {
prop_assert_eq!(&lean, string);
}
let s1 = LeanString::from_utf16_lossy(input);
let s2 = LeanStr::from_utf16_lossy(input);
let string = String::from_utf16_lossy(input);
prop_assert_eq!(&s1, &string);
prop_assert_eq!(&s2, &string);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn collect_from_chars(input: String) {
let lean = input.chars().collect::<LeanString>();
prop_assert_eq!(&lean, &input);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn collect_from_strings(input: Vec<String>) {
let lean = input.clone().into_iter().collect::<LeanString>();
let string = input.into_iter().collect::<String>();
prop_assert_eq!(&lean, &string);
}
macro_rules! test_integer_to_lean_s {
($($ty:ty),* $(,)?) => {$(
paste::paste! {
#[test]
fn [<$ty _to_lean_string>]() {
for num in <$ty>::MIN..=<$ty>::MAX {
let lean = num.to_lean_string();
let string = num.to_string();
assert_eq!(lean, string);
}
}
#[test]
fn [<$ty _to_lean_str>]() {
for num in <$ty>::MIN..=<$ty>::MAX {
let lean = num.to_lean_str();
let string = num.to_string();
assert_eq!(lean, string);
}
}
#[test]
fn [<nonzero_ $ty _to_lean_string>]() {
for num in <$ty>::MIN..=<$ty>::MAX {
if num == 0 { continue };
let num = core::num::NonZero::<$ty>::new(num).unwrap();
let lean = num.to_lean_string();
let string = num.to_string();
assert_eq!(lean, string);
}
}
#[test]
fn [<nonzero_ $ty _to_lean_str>]() {
for num in <$ty>::MIN..=<$ty>::MAX {
if num == 0 { continue };
let num = core::num::NonZero::<$ty>::new(num).unwrap();
let lean = num.to_lean_str();
let string = num.to_string();
assert_eq!(lean, string);
}
}
}
)*};
}
test_integer_to_lean_s!(u8, i8);
macro_rules! prop_test_integer_to_lean_s {
($($ty:ty),* $(,)?) => {$(
paste::paste! {
#[property_test]
#[cfg_attr(miri, ignore)]
fn [<$ty _to_lean_string>](i: $ty) {
prop_assert_eq!(i.to_lean_string(), i.to_string());
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn [<$ty _to_lean_str>](i: $ty) {
prop_assert_eq!(i.to_lean_str(), i.to_string());
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn [<nonzero_ $ty _to_lean_string>](i: core::num::NonZero<$ty>) {
prop_assert_eq!(i.to_lean_string(), i.to_string());
prop_assert_eq!(i.to_lean_str(), i.to_string());
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn [<nonzero_ $ty _to_lean_str>](i: core::num::NonZero<$ty>) {
prop_assert_eq!(i.to_lean_str(), i.to_string());
}
}
)*};
}
prop_test_integer_to_lean_s!(u16, i16, u32, i32, u64, i64, u128, i128, usize, isize);
#[property_test]
#[cfg_attr(miri, ignore)]
fn f32_to_lean_string(f: f32) {
let lean = f.to_lean_string();
let float = lean.parse::<f32>().unwrap();
prop_assert_eq!(f, float);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn f32_to_lean_str(f: f32) {
let lean = f.to_lean_str();
let float = lean.parse::<f32>().unwrap();
prop_assert_eq!(f, float);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn f64_to_lean_string(f: f64) {
let lean = f.to_lean_string();
let float = lean.parse::<f64>().unwrap();
prop_assert_eq!(f, float);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn f64_to_lean_str(f: f64) {
let lean = f.to_lean_str();
let float = lean.parse::<f64>().unwrap();
prop_assert_eq!(f, float);
}
#[test]
fn bool_to_lean_string() {
let t = true;
let f = false;
assert_eq!(t.to_lean_string(), t.to_string());
assert_eq!(f.to_lean_string(), f.to_string());
}
#[test]
fn bool_to_lean_str() {
let t = true;
let f = false;
assert_eq!(t.to_lean_str(), t.to_string());
assert_eq!(f.to_lean_str(), f.to_string());
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn char_to_lean_string(c: char) {
prop_assert_eq!(c.to_lean_string(), c.to_string());
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn char_to_lean_str(c: char) {
prop_assert_eq!(c.to_lean_str(), c.to_string());
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn string_to_lean_string(s: String) {
prop_assert_eq!(s.to_lean_string(), s);
}
#[property_test]
#[cfg_attr(miri, ignore)]
fn string_to_lean_str(s: String) {
prop_assert_eq!(s.to_lean_str(), s);
}