clean up 32
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+42
-29
@@ -5,70 +5,83 @@ type Int = u32;
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const UPPER_BOUND: Int = 3_333; // because result must be a 4-digit number
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fn main() {
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// prevent reallocation of these sets on every call in `are_pandigital`
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let mut buffer1 = HashSet::new();
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let mut buffer2 = HashSet::new();
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let f = (1..UPPER_BOUND)
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.filter(|n| {
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let s = n.to_string();
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let hs = s.chars().collect::<HashSet<_>>();
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hs.len() == s.len() && !hs.contains(&'0')
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})
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.collect::<Vec<_>>()
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.leak();
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let factors = get_suitable_factors(UPPER_BOUND);
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let mut result = HashSet::new();
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for f1 in f.iter() {
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let mut products_of_pandigital_triples = HashSet::new();
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for f1 in factors.iter() {
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let lower_bound = UPPER_BOUND / f1;
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'inner: for f2 in f.iter().skip_while(|i| **i < lower_bound) {
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let p = f1 * f2;
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if f1.len() + f2.len() + p.len() > 9 {
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'inner: for f2 in factors.iter().skip_while(|i| **i < lower_bound) {
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let product = f1 * f2;
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if f1.oom() + f2.oom() + product.oom() > 9 {
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break 'inner;
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}
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if are_pandigital([f1, f2, &p], &mut buffer1, &mut buffer2) {
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println!("{f1} {f2} {p}");
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result.insert(p);
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if are_pandigital([f1, f2, &product], &mut buffer1, &mut buffer2) {
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println!("{f1} {f2} {product}");
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products_of_pandigital_triples.insert(product);
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}
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}
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}
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println!("{}", result.iter().sum::<Int>());
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println!("{}", products_of_pandigital_triples.iter().sum::<Int>());
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}
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fn are_pandigital(input: [∬ 3], accum: &mut HashSet<char>, hs: &mut HashSet<char>) -> bool {
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accum.clear();
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fn get_suitable_factors(upper_bound: Int) -> &'static [Int] {
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(1..upper_bound)
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.filter(|number| {
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let str = number.to_string();
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let set = str.chars().collect::<HashSet<_>>();
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// a suitable number must not contain `0`, and must have an unique digit at every
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// position
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set.len() == str.len() && !set.contains(&'0')
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})
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.collect::<Vec<_>>()
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// leaking the vec is slightly faster than handling the vec
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.leak()
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}
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let mut length = 0;
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fn are_pandigital(
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input: [∬ 3],
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digits_in_numbers: &mut HashSet<char>,
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set_of_char_buffer: &mut HashSet<char>,
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) -> bool {
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digits_in_numbers.clear();
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let mut length_of_all_numbers = 0;
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for n in input {
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hs.clear();
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set_of_char_buffer.clear();
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let s = n.to_string();
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length += s.len();
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length_of_all_numbers += s.len();
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s.chars().for_each(|c| {
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hs.insert(c);
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set_of_char_buffer.insert(c);
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});
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if s.len() != hs.len() {
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if s.len() != set_of_char_buffer.len() {
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return false;
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}
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for item in hs.iter() {
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accum.insert(*item);
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for item in set_of_char_buffer.iter() {
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digits_in_numbers.insert(*item);
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}
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}
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accum.len() == 9 && length == 9 && !accum.contains(&'0')
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digits_in_numbers.len() == 9 && length_of_all_numbers == 9 && !digits_in_numbers.contains(&'0')
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}
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trait Length {
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fn len(&self) -> usize;
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fn oom(&self) -> usize;
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}
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impl Length for Int {
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fn len(&self) -> usize {
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// order of magnitude
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fn oom(&self) -> usize {
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let mut tmp = 1;
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let mut oom = 1;
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while tmp - 1 < *self {
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