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@ -8,9 +8,8 @@
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// Execute `rustlings hint lifetimes1` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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fn longest(x: &str, y: &str) -> &str {
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fn longest<'a>(x: &'a str, y: &'a str) -> &'a str {
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if x.len() > y.len() {
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x
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} else {
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@ -6,7 +6,6 @@
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// Execute `rustlings hint lifetimes2` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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fn longest<'a>(x: &'a str, y: &'a str) -> &'a str {
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if x.len() > y.len() {
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@ -22,6 +21,6 @@ fn main() {
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{
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let string2 = String::from("xyz");
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result = longest(string1.as_str(), string2.as_str());
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}
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println!("The longest string is '{}'", result);
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}
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}
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@ -5,11 +5,10 @@
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// Execute `rustlings hint lifetimes3` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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struct Book {
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author: &str,
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title: &str,
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struct Book<'a, 'b> {
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author: &'a str,
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title: &'b str,
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}
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fn main() {
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@ -10,12 +10,11 @@
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// Execute `rustlings hint tests1` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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#[cfg(test)]
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mod tests {
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#[test]
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fn you_can_assert() {
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assert!();
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assert!(true);
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}
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}
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@ -6,12 +6,11 @@
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// Execute `rustlings hint tests2` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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#[cfg(test)]
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mod tests {
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#[test]
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fn you_can_assert_eq() {
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assert_eq!();
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assert_eq!(1,1);
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}
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}
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@ -7,8 +7,6 @@
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// Execute `rustlings hint tests3` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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pub fn is_even(num: i32) -> bool {
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num % 2 == 0
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}
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@ -19,11 +17,11 @@ mod tests {
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#[test]
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fn is_true_when_even() {
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assert!();
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assert!(is_even(2));
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}
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#[test]
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fn is_false_when_odd() {
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assert!();
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assert!(!is_even(3));
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}
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}
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@ -5,7 +5,6 @@
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// Execute `rustlings hint tests4` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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struct Rectangle {
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width: i32,
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@ -30,17 +29,19 @@ mod tests {
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fn correct_width_and_height() {
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// This test should check if the rectangle is the size that we pass into its constructor
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let rect = Rectangle::new(10, 20);
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assert_eq!(???, 10); // check width
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assert_eq!(???, 20); // check height
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assert_eq!(rect.width, 10); // check width
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assert_eq!(rect.height, 20); // check height
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}
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#[test]
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#[should_panic]
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fn negative_width() {
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// This test should check if program panics when we try to create rectangle with negative width
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let _rect = Rectangle::new(-10, 10);
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}
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#[test]
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#[should_panic]
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fn negative_height() {
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// This test should check if program panics when we try to create rectangle with negative height
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let _rect = Rectangle::new(10, -10);
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@ -9,18 +9,17 @@
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// Execute `rustlings hint iterators1` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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#[test]
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fn main() {
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let my_fav_fruits = vec!["banana", "custard apple", "avocado", "peach", "raspberry"];
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let mut my_iterable_fav_fruits = ???; // TODO: Step 1
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let mut my_iterable_fav_fruits = my_fav_fruits.iter(); // TODO: Step 1
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assert_eq!(my_iterable_fav_fruits.next(), Some(&"banana"));
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assert_eq!(my_iterable_fav_fruits.next(), ???); // TODO: Step 2
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assert_eq!(my_iterable_fav_fruits.next(), Some(&"custard apple")); // TODO: Step 2
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assert_eq!(my_iterable_fav_fruits.next(), Some(&"avocado"));
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assert_eq!(my_iterable_fav_fruits.next(), ???); // TODO: Step 3
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assert_eq!(my_iterable_fav_fruits.next(), Some(&"peach")); // TODO: Step 3
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assert_eq!(my_iterable_fav_fruits.next(), Some(&"raspberry"));
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assert_eq!(my_iterable_fav_fruits.next(), ???); // TODO: Step 4
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assert_eq!(my_iterable_fav_fruits.next(), None); // TODO: Step 4
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}
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@ -6,7 +6,6 @@
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// Execute `rustlings hint iterators2` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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// Step 1.
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// Complete the `capitalize_first` function.
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@ -15,7 +14,7 @@ pub fn capitalize_first(input: &str) -> String {
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let mut c = input.chars();
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match c.next() {
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None => String::new(),
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Some(first) => ???,
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Some(first) => first.to_uppercase().to_string() + &input[1..],
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}
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}
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@ -24,7 +23,7 @@ pub fn capitalize_first(input: &str) -> String {
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// Return a vector of strings.
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// ["hello", "world"] -> ["Hello", "World"]
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pub fn capitalize_words_vector(words: &[&str]) -> Vec<String> {
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vec![]
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words.iter().map(|x| capitalize_first(x)).collect()
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}
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// Step 3.
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@ -32,7 +31,8 @@ pub fn capitalize_words_vector(words: &[&str]) -> Vec<String> {
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// Return a single string.
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// ["hello", " ", "world"] -> "Hello World"
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pub fn capitalize_words_string(words: &[&str]) -> String {
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String::new()
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let vec = capitalize_words_vector(words);
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vec.concat()
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}
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#[cfg(test)]
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@ -9,7 +9,6 @@
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// Execute `rustlings hint iterators3` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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#[derive(Debug, PartialEq, Eq)]
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pub enum DivisionError {
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@ -26,23 +25,29 @@ pub struct NotDivisibleError {
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// Calculate `a` divided by `b` if `a` is evenly divisible by `b`.
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// Otherwise, return a suitable error.
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pub fn divide(a: i32, b: i32) -> Result<i32, DivisionError> {
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todo!();
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if b == 0 {
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Err(DivisionError::DivideByZero)
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} else if a % b == 0 {
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Ok(a / b)
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} else {
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Err(DivisionError::NotDivisible(NotDivisibleError{dividend:a, divisor:b}))
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}
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}
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// Complete the function and return a value of the correct type so the test
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// passes.
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// Desired output: Ok([1, 11, 1426, 3])
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fn result_with_list() -> () {
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fn result_with_list() -> Result<Vec<i32>, DivisionError> {
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let numbers = vec![27, 297, 38502, 81];
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let division_results = numbers.into_iter().map(|n| divide(n, 27));
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Ok(numbers.into_iter().map(|n| divide(n, 27).unwrap()).collect())
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}
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// Complete the function and return a value of the correct type so the test
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// passes.
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// Desired output: [Ok(1), Ok(11), Ok(1426), Ok(3)]
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fn list_of_results() -> () {
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fn list_of_results() -> Vec<Result<i32, DivisionError>> {
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let numbers = vec![27, 297, 38502, 81];
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let division_results = numbers.into_iter().map(|n| divide(n, 27));
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numbers.into_iter().map(|n| divide(n, 27)).collect()
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}
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#[cfg(test)]
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// Execute `rustlings hint iterators4` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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pub fn factorial(num: u64) -> u64 {
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// Complete this function to return the factorial of num
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// Do not use:
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@ -15,6 +13,7 @@ pub fn factorial(num: u64) -> u64 {
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// For an extra challenge, don't use:
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// - recursion
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// Execute `rustlings hint iterators4` for hints.
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(1..=num).fold(1, |x, y| {x*y})
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}
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#[cfg(test)]
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@ -11,7 +11,6 @@
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// Execute `rustlings hint iterators5` or use the `hint` watch subcommand for a
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// hint.
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// I AM NOT DONE
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use std::collections::HashMap;
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@ -35,7 +34,7 @@ fn count_for(map: &HashMap<String, Progress>, value: Progress) -> usize {
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fn count_iterator(map: &HashMap<String, Progress>, value: Progress) -> usize {
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// map is a hashmap with String keys and Progress values.
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// map = { "variables1": Complete, "from_str": None, ... }
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todo!();
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map.values().filter(|&x| x == &value ).count()
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}
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fn count_collection_for(collection: &[HashMap<String, Progress>], value: Progress) -> usize {
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@ -54,7 +53,7 @@ fn count_collection_iterator(collection: &[HashMap<String, Progress>], value: Pr
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// collection is a slice of hashmaps.
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// collection = [{ "variables1": Complete, "from_str": None, ... },
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// { "variables2": Complete, ... }, ... ]
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todo!();
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collection.iter().map(|x| x.values().filter(|&y| y == &value).count()).sum()
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}
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#[cfg(test)]
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@ -18,11 +18,10 @@
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//
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// Execute `rustlings hint box1` or use the `hint` watch subcommand for a hint.
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// I AM NOT DONE
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#[derive(PartialEq, Debug)]
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pub enum List {
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Cons(i32, List),
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Cons(i32, Box<List>),
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Nil,
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}
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@ -35,11 +34,11 @@ fn main() {
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}
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pub fn create_empty_list() -> List {
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todo!()
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List::Nil
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}
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pub fn create_non_empty_list() -> List {
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todo!()
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List::Cons(1, Box::new(List::Nil))
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}
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#[cfg(test)]
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//
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// Execute `rustlings hint rc1` or use the `hint` watch subcommand for a hint.
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// I AM NOT DONE
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use std::rc::Rc;
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@ -60,18 +59,15 @@ fn main() {
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println!("reference count = {}", Rc::strong_count(&sun)); // 6 references
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jupiter.details();
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// TODO
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let saturn = Planet::Saturn(Rc::new(Sun {}));
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let saturn = Planet::Saturn(Rc::clone(&sun));
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println!("reference count = {}", Rc::strong_count(&sun)); // 7 references
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saturn.details();
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// TODO
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let uranus = Planet::Uranus(Rc::new(Sun {}));
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let uranus = Planet::Uranus(Rc::clone(&sun));
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println!("reference count = {}", Rc::strong_count(&sun)); // 8 references
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uranus.details();
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// TODO
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let neptune = Planet::Neptune(Rc::new(Sun {}));
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let neptune = Planet::Neptune(Rc::clone(&sun));
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println!("reference count = {}", Rc::strong_count(&sun)); // 9 references
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neptune.details();
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@ -92,13 +88,13 @@ fn main() {
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drop(mars);
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println!("reference count = {}", Rc::strong_count(&sun)); // 4 references
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// TODO
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drop(mercury);
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println!("reference count = {}", Rc::strong_count(&sun)); // 3 references
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// TODO
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drop(venus);
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println!("reference count = {}", Rc::strong_count(&sun)); // 2 references
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// TODO
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drop(earth);
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println!("reference count = {}", Rc::strong_count(&sun)); // 1 reference
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assert_eq!(Rc::strong_count(&sun), 1);
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