1use std::alloc::{Allocator, Global};
2use std::cmp::Ordering;
3use std::cmp::Ordering::*;
4use std::fmt::Debug;
5use std::marker::PhantomData;
6
7use feanor_serde::newtype_struct::{DeserializeSeedNewtypeStruct, SerializableNewtypeStruct};
8use serde::de::{self, DeserializeSeed};
9use serde::ser::SerializeTuple;
10use serde::{Deserialize, Deserializer, Serialize, Serializer};
11
12use crate::algorithms::bigint_ops::*;
13use crate::divisibility::{DivisibilityRing, Domain};
14use crate::integer::*;
15use crate::ordered::*;
16use crate::pid::*;
17use crate::primitive_int::*;
18use crate::ring::*;
19use crate::serialization::*;
20use crate::specialization::*;
21use crate::{
22 algorithms, impl_eval_poly_locally_for_ZZ, impl_interpolation_base_ring_char_zero, impl_poly_gcd_locally_for_ZZ,
23};
24
25#[derive(Clone, Debug)]
47pub struct RustBigint<A: Allocator = Global>(bool, Vec<u64, A>);
48
49#[derive(Copy, Clone)]
55pub struct RustBigintRingBase<A: Allocator + Clone = Global> {
56 allocator: A,
57}
58
59pub type RustBigintRing<A = Global> = RingValue<RustBigintRingBase<A>>;
61
62impl<A: Allocator + Clone> RustBigintRing<A> {
63 #[stability::unstable(feature = "enable")]
64 pub fn new_with_alloc(allocator: A) -> RustBigintRing<A> { Self::from(RustBigintRingBase { allocator }) }
65}
66
67impl RustBigintRing {
68 pub const RING: RustBigintRing = RingValue::from(RustBigintRingBase { allocator: Global });
70}
71
72impl<A: Allocator + Clone + Default> Default for RustBigintRingBase<A> {
73 fn default() -> Self {
74 RustBigintRingBase {
75 allocator: A::default(),
76 }
77 }
78}
79
80impl<A: Allocator + Clone> RustBigintRingBase<A> {
81 pub fn map_i128(&self, val: &RustBigint<A>) -> Option<i128> {
84 match highest_set_block(&val.1) {
85 None => Some(0),
86 Some(0) if val.0 => Some(-(val.1[0] as i128)),
87 Some(0) if !val.0 => Some(val.1[0] as i128),
88 Some(1) if val.0 => {
89 let value = val.1[0] as u128 + ((val.1[1] as u128) << u64::BITS);
90 if value == 1 << (u128::BITS - 1) {
91 Some(i128::MIN)
92 } else {
93 i128::try_from(value).ok().map(|x| -x)
94 }
95 }
96 Some(1) if !val.0 => i128::try_from(val.1[0] as u128 + ((val.1[1] as u128) << u64::BITS)).ok(),
97 Some(_) => None,
98 }
99 }
100
101 pub fn abs_base_u64_repr<'a>(&self, el: &'a RustBigint) -> impl 'a + Iterator<Item = u64> { el.1.iter().copied() }
104
105 pub fn from_base_u64_repr<I>(&self, data: I) -> RustBigint
108 where
109 I: Iterator<Item = u64>,
110 {
111 RustBigint(false, data.collect())
112 }
113}
114
115impl<A: Allocator + Clone> Debug for RustBigintRingBase<A> {
116 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result { write!(f, "Z") }
117}
118
119impl<A: Allocator + Clone> PartialEq for RustBigintRingBase<A> {
120 fn eq(&self, _other: &Self) -> bool {
121 true
125 }
126}
127
128impl<A: Allocator + Clone> RingBase for RustBigintRingBase<A> {
129 type Element = RustBigint<A>;
130
131 fn clone_el(&self, val: &Self::Element) -> Self::Element {
132 let mut result_data = Vec::with_capacity_in(val.1.len(), self.allocator.clone());
134 result_data.extend(val.1.iter().copied());
135 RustBigint(val.0, result_data)
136 }
137
138 fn add_assign_ref(&self, lhs: &mut Self::Element, rhs: &Self::Element) {
139 match (lhs, rhs) {
140 (RustBigint(false, lhs_val), RustBigint(false, rhs_val))
141 | (RustBigint(true, lhs_val), RustBigint(true, rhs_val)) => {
142 bigint_add(lhs_val, rhs_val, 0);
143 }
144 (RustBigint(lhs_sgn, lhs_val), RustBigint(_, rhs_val)) => match bigint_cmp(lhs_val, rhs_val) {
145 Less => {
146 bigint_sub_self(lhs_val, rhs_val);
147 *lhs_sgn = !*lhs_sgn;
148 }
149 Equal => {
150 lhs_val.clear();
151 }
152 Greater => {
153 bigint_sub(lhs_val, rhs_val, 0);
154 }
155 },
156 }
157 }
158
159 fn add_assign(&self, lhs: &mut Self::Element, rhs: Self::Element) { self.add_assign_ref(lhs, &rhs); }
160
161 fn sub_assign_ref(&self, lhs: &mut Self::Element, rhs: &Self::Element) {
162 self.negate_inplace(lhs);
163 self.add_assign_ref(lhs, rhs);
164 self.negate_inplace(lhs);
165 }
166
167 fn negate_inplace(&self, lhs: &mut Self::Element) { lhs.0 = !lhs.0; }
168
169 fn mul_assign(&self, lhs: &mut Self::Element, rhs: Self::Element) { self.mul_assign_ref(lhs, &rhs); }
170
171 fn mul_assign_ref(&self, lhs: &mut Self::Element, rhs: &Self::Element) {
172 let result = bigint_fma(&lhs.1, &rhs.1, Vec::new_in(self.allocator.clone()), &self.allocator);
173 *lhs = RustBigint(lhs.0 ^ rhs.0, result);
174 }
175
176 fn fma(&self, lhs: &Self::Element, rhs: &Self::Element, summand: Self::Element) -> Self::Element {
177 if lhs.0 ^ rhs.0 == summand.0 {
178 let result = bigint_fma(&lhs.1, &rhs.1, summand.1, &self.allocator);
179 RustBigint(summand.0, result)
180 } else {
181 self.add(summand, self.mul_ref(lhs, rhs))
182 }
183 }
184
185 fn mul_int(&self, mut lhs: Self::Element, rhs: i32) -> Self::Element {
186 lhs.0 ^= rhs < 0;
187 let rhs = rhs.unsigned_abs();
188 bigint_mul_small(&mut lhs.1, rhs.into());
189 return lhs;
190 }
191
192 fn zero(&self) -> Self::Element { RustBigint(false, Vec::new_in(self.allocator.clone())) }
193
194 fn from_int(&self, value: i32) -> Self::Element {
195 let mut data = Vec::with_capacity_in(1, self.allocator.clone());
196 data.push(value.unsigned_abs() as u64);
197 RustBigint(value < 0, data)
198 }
199
200 fn eq_el(&self, lhs: &Self::Element, rhs: &Self::Element) -> bool {
201 if lhs.0 == rhs.0 {
202 bigint_cmp(&lhs.1, &rhs.1) == Equal
203 } else {
204 self.is_zero(lhs) && self.is_zero(rhs)
205 }
206 }
207
208 fn is_zero(&self, value: &Self::Element) -> bool { highest_set_block(&value.1).is_none() }
209
210 fn is_one(&self, value: &Self::Element) -> bool {
211 !value.0 && highest_set_block(&value.1) == Some(0) && value.1[0] == 1
212 }
213
214 fn is_neg_one(&self, value: &Self::Element) -> bool {
215 value.0 && highest_set_block(&value.1) == Some(0) && value.1[0] == 1
216 }
217
218 fn is_commutative(&self) -> bool { true }
219 fn is_noetherian(&self) -> bool { true }
220
221 fn dbg_within<'a>(
222 &self,
223 value: &Self::Element,
224 out: &mut std::fmt::Formatter<'a>,
225 _: EnvBindingStrength,
226 ) -> std::fmt::Result {
227 const BIG_POWER_TEN_ZEROS: usize = 19;
229 const BIG_POWER_TEN: u64 = 10u64.pow(BIG_POWER_TEN_ZEROS as u32);
230
231 if value.0 {
232 write!(out, "-")?;
233 }
234 let mut copy = value.clone();
235 let mut remainders: Vec<u64> =
236 Vec::with_capacity((highest_set_block(&value.1).unwrap_or(0) + 1) * u64::BITS as usize / 3);
237 while !self.is_zero(©) {
238 let rem = bigint_div_small(&mut copy.1, BIG_POWER_TEN);
239 remainders.push(rem);
240 }
241 remainders.reverse();
242 let mut it = remainders.into_iter();
243 if let Some(fst) = it.next() {
244 write!(out, "{}", fst)?;
245 for rem in it {
246 write!(out, "{:0>width$}", rem, width = BIG_POWER_TEN_ZEROS)?;
247 }
248 } else {
249 write!(out, "0")?;
250 }
251 return Ok(());
252 }
253
254 fn characteristic<I: IntegerRingStore + Copy>(&self, other_ZZ: I) -> Option<El<I>>
255 where
256 I::Type: IntegerRing,
257 {
258 Some(other_ZZ.zero())
259 }
260
261 fn is_approximate(&self) -> bool { false }
262}
263
264impl<A1: Allocator + Clone, A2: Allocator + Clone> IntCast<RustBigintRingBase<A2>> for RustBigintRingBase<A1> {
265 fn cast(&self, _: &RustBigintRingBase<A2>, value: RustBigint<A2>) -> Self::Element {
266 let mut result_data = Vec::with_capacity_in(value.1.len(), self.allocator.clone());
268 result_data.extend(value.1.iter().copied());
269 RustBigint(value.0, result_data)
270 }
271}
272
273macro_rules! specialize_int_cast {
274 ($($from:ty),*) => {
275 $(
276 impl<A: Allocator + Clone> IntCast<StaticRingBase<$from>> for RustBigintRingBase<A> {
277
278 fn cast(&self, _: &StaticRingBase<$from>, value: $from) -> RustBigint<A> {
279 let negative = value < 0;
280 let value = <_ as Into<i128>>::into(value).checked_abs().map(|x| x as u128).unwrap_or(1 << (u128::BITS - 1));
281 let mut result = Vec::with_capacity_in(2, self.allocator.clone());
282 result.extend([(value & ((1 << u64::BITS) - 1)) as u64, (value >> u64::BITS) as u64].into_iter());
283 RustBigint(negative, result)
284 }
285 }
286
287 impl<A: Allocator + Clone> IntCast<RustBigintRingBase<A>> for StaticRingBase<$from> {
288
289 fn cast(&self, from: &RustBigintRingBase<A>, value: RustBigint<A>) -> $from {
290 <$from>::try_from(from.map_i128(&value).expect(concat!("integer does not fit into a ", stringify!($from)))).ok().expect(concat!("integer does not fit into a ", stringify!($from)))
291 }
292 }
293 )*
294 };
295}
296
297specialize_int_cast! { i8, i16, i32, i64, i128 }
298
299impl<A: Allocator + Clone> Domain for RustBigintRingBase<A> {}
300
301impl<A: Allocator + Clone> OrderedRing for RustBigintRingBase<A> {
302 fn cmp(&self, lhs: &Self::Element, rhs: &Self::Element) -> Ordering {
303 match (lhs.0, rhs.0) {
304 (true, true) => bigint_cmp(&rhs.1, &lhs.1),
305 (false, false) => bigint_cmp(&lhs.1, &rhs.1),
306 (..) if self.is_zero(lhs) && self.is_zero(rhs) => Equal,
307 (true, false) => Less,
308 (false, true) => Greater,
309 }
310 }
311
312 fn abs_cmp(&self, lhs: &Self::Element, rhs: &Self::Element) -> Ordering { bigint_cmp(&lhs.1, &rhs.1) }
313}
314
315impl<A: Allocator + Clone> DivisibilityRing for RustBigintRingBase<A> {
316 fn checked_left_div(&self, lhs: &Self::Element, rhs: &Self::Element) -> Option<Self::Element> {
317 if self.is_zero(rhs) && self.is_zero(lhs) {
318 return Some(self.zero());
319 } else if self.is_zero(rhs) {
320 return None;
321 }
322 let (quo, rem) = self.euclidean_div_rem(lhs.clone(), rhs);
323 if self.is_zero(&rem) { Some(quo) } else { None }
324 }
325
326 fn balance_factor<'a, I>(&self, elements: I) -> Option<Self::Element>
327 where
328 I: Iterator<Item = &'a Self::Element>,
329 Self: 'a,
330 {
331 Some(elements.fold(self.zero(), |a, b| self.ideal_gen(&a, b)))
332 }
333}
334
335impl<A: Allocator + Clone> PrincipalIdealRing for RustBigintRingBase<A> {
336 fn checked_div_min(&self, lhs: &Self::Element, rhs: &Self::Element) -> Option<Self::Element> {
337 if self.is_zero(lhs) && self.is_zero(rhs) {
338 return Some(self.one());
339 }
340 self.checked_left_div(lhs, rhs)
341 }
342
343 fn extended_ideal_gen(
344 &self,
345 lhs: &Self::Element,
346 rhs: &Self::Element,
347 ) -> (Self::Element, Self::Element, Self::Element) {
348 algorithms::eea::eea(self.clone_el(lhs), self.clone_el(rhs), RingRef::new(self))
349 }
350}
351
352impl<A: Allocator + Clone> EuclideanRing for RustBigintRingBase<A> {
353 fn euclidean_div_rem(&self, mut lhs: Self::Element, rhs: &Self::Element) -> (Self::Element, Self::Element) {
354 assert!(!self.is_zero(rhs));
355 let mut quo = RustBigint(false, bigint_div(&mut lhs.1, &rhs.1, self.zero().1, &self.allocator));
356 if rhs.0 ^ lhs.0 {
357 self.negate_inplace(&mut quo);
359 }
360 return (quo, lhs);
361 }
362
363 fn euclidean_deg(&self, val: &Self::Element) -> Option<usize> {
364 self.map_i128(val)
365 .and_then(|x| x.checked_abs())
366 .and_then(|x| usize::try_from(x).ok())
367 }
368}
369
370impl<A: Allocator + Clone> HashableElRing for RustBigintRingBase<A> {
371 fn hash<H: std::hash::Hasher>(&self, el: &Self::Element, h: &mut H) {
372 let block = highest_set_block(&el.1);
373 if let Some(b) = block {
374 for i in 0..=b {
375 h.write_u64(el.1[i])
376 }
377 }
378 }
379}
380
381impl Serialize for RustBigintRingBase<Global> {
382 fn serialize<S>(&self, serializer: S) -> Result<S::Ok, S::Error>
383 where
384 S: Serializer,
385 {
386 SerializableNewtypeStruct::new("IntegerRing(RustBigInt)", ()).serialize(serializer)
387 }
388}
389
390impl<'de> Deserialize<'de> for RustBigintRingBase<Global> {
391 fn deserialize<D>(deserializer: D) -> Result<Self, D::Error>
392 where
393 D: Deserializer<'de>,
394 {
395 DeserializeSeedNewtypeStruct::new("IntegerRing(RustBigInt)", PhantomData::<()>)
396 .deserialize(deserializer)
397 .map(|_| RustBigintRing::RING.into())
398 }
399}
400
401impl<A: Allocator + Clone> SerializableElementRing for RustBigintRingBase<A> {
402 fn deserialize<'de, D>(&self, deserializer: D) -> Result<Self::Element, D::Error>
403 where
404 D: Deserializer<'de>,
405 {
406 if deserializer.is_human_readable() {
407 let string =
410 DeserializeSeedNewtypeStruct::new("BigInt", PhantomData::<String>).deserialize(deserializer)?;
411 return self
412 .parse(string.as_str(), 10)
413 .map_err(|()| de::Error::custom(format!("cannot parse \"{}\" as number", string)));
414 } else {
415 let (negative, data) = deserialize_bigint_from_bytes(deserializer, |data| {
416 if data.len() == 0 {
417 Vec::new_in(self.allocator.clone())
418 } else {
419 let mut result_data =
420 Vec::with_capacity_in((data.len() - 1) / size_of::<u64>() + 1, self.allocator.clone());
421 let (chunks, last) = data.as_chunks();
422 for digit in chunks {
423 result_data.push(u64::from_le_bytes(*digit));
424 }
425 result_data.push(u64::from_le_bytes(std::array::from_fn(|i| {
426 if i >= last.len() { 0 } else { last[i] }
427 })));
428 return result_data;
429 }
430 })?;
431 return Ok(RustBigint(negative, data));
432 }
433 }
434
435 fn serialize<S>(&self, el: &Self::Element, serializer: S) -> Result<S::Ok, S::Error>
436 where
437 S: Serializer,
438 {
439 if serializer.is_human_readable() {
440 SerializableNewtypeStruct::new("BigInt", format!("{}", RingRef::new(self).format(el)).as_str())
441 .serialize(serializer)
442 } else {
443 let len = highest_set_block(&el.1).map(|n| n + 1).unwrap_or(0);
444 let mut data = Vec::with_capacity_in(len * size_of::<u64>(), &self.allocator);
445 for digit in &el.1 {
446 data.extend(digit.to_le_bytes());
447 }
448 let mut seq = serializer.serialize_tuple(2)?;
449 seq.serialize_element(&self.is_neg(el))?;
450 seq.serialize_element(serde_bytes::Bytes::new(&data[..]))?;
451 return seq.end();
452 }
453 }
454}
455
456impl_interpolation_base_ring_char_zero! { <{A}> InterpolationBaseRing for RustBigintRingBase<A> where A: Allocator + Clone }
457
458impl_poly_gcd_locally_for_ZZ! { <{A}> IntegerPolyGCDRing for RustBigintRingBase<A> where A: Allocator + Clone }
459
460impl_eval_poly_locally_for_ZZ! { <{A}> EvalPolyLocallyRing for RustBigintRingBase<A> where A: Allocator + Clone }
461
462impl<A> FiniteRingSpecializable for RustBigintRingBase<A>
463where
464 A: Allocator + Clone,
465{
466 fn specialize<O: FiniteRingOperation<Self>>(op: O) -> O::Output { op.fallback() }
467}
468
469impl<A: Allocator + Clone> IntegerRing for RustBigintRingBase<A> {
470 fn to_float_approx(&self, value: &Self::Element) -> f64 {
471 let sign = if value.0 { -1.0 } else { 1.0 };
472 match highest_set_block(&value.1) {
473 None => 0.0,
474 Some(0) => value.1[0] as f64 * sign,
475 Some(d) => {
476 (value.1[d] as f64 * 2.0f64.powi((d * u64::BITS as usize).try_into().unwrap())
477 + value.1[d - 1] as f64 * 2.0f64.powi(((d - 1) * u64::BITS as usize).try_into().unwrap()))
478 * sign
479 }
480 }
481 }
482
483 fn from_float_approx(&self, mut value: f64) -> Option<Self::Element> {
484 if value.round() == 0.0 {
485 return Some(self.zero());
486 }
487 let sign = value < 0.0;
488 value = value.abs();
489 let scale: i32 = (value.log2().ceil() as i64).try_into().unwrap();
490 let significant_digits = std::cmp::min(scale, u64::BITS.try_into().unwrap());
491 let most_significant_bits = (value / 2.0f64.powi(scale - significant_digits)) as u64;
492 let mut result = self.one();
493 result.1[0] = most_significant_bits;
494 result.0 = sign;
495 self.mul_pow_2(&mut result, (scale - significant_digits) as usize);
496 return Some(result);
497 }
498
499 fn abs_lowest_set_bit(&self, value: &Self::Element) -> Option<usize> {
500 if self.is_zero(value) {
501 return None;
502 }
503 for i in 0..value.1.len() {
504 if value.1[i] != 0 {
505 return Some(i * u64::BITS as usize + value.1[i].trailing_zeros() as usize);
506 }
507 }
508 unreachable!()
509 }
510
511 fn abs_is_bit_set(&self, value: &Self::Element, i: usize) -> bool {
512 if i / u64::BITS as usize >= value.1.len() {
513 false
514 } else {
515 (value.1[i / u64::BITS as usize] >> (i % u64::BITS as usize)) & 1 == 1
516 }
517 }
518
519 fn abs_highest_set_bit(&self, value: &Self::Element) -> Option<usize> {
520 let block = highest_set_block(&value.1)?;
521 Some(block * u64::BITS as usize + u64::BITS as usize - value.1[block].leading_zeros() as usize - 1)
522 }
523
524 fn euclidean_div_pow_2(&self, value: &mut Self::Element, power: usize) { bigint_rshift(&mut value.1, power); }
525
526 fn mul_pow_2(&self, value: &mut Self::Element, power: usize) { bigint_lshift(&mut value.1, power) }
527
528 fn get_uniformly_random_bits<G: FnMut() -> u64>(&self, log2_bound_exclusive: usize, mut rng: G) -> Self::Element {
529 let blocks = log2_bound_exclusive / u64::BITS as usize;
530 let in_block = log2_bound_exclusive % u64::BITS as usize;
531 let mut result = Vec::with_capacity_in(blocks + if in_block > 0 { 1 } else { 0 }, self.allocator.clone());
532 if in_block == 0 {
533 result.extend((0..blocks).map(|_| rng()));
534 } else {
535 let last = rng() & 1u64.overflowing_shl(in_block as u32).0.overflowing_sub(1).0;
536 result.extend((0..blocks).map(|_| rng()).chain(std::iter::once(last)));
537 }
538 return RustBigint(false, result);
539 }
540
541 fn representable_bits(&self) -> Option<usize> { None }
542}
543
544#[cfg(test)]
545use crate::homomorphism::*;
546
547#[cfg(test)]
548const ZZ: RustBigintRing = RustBigintRing::RING;
549
550#[test]
551fn test_print_power_2() {
552 let x = RustBigint(false, vec![0, 0, 1]);
553 assert_eq!(
554 "340282366920938463463374607431768211456",
555 format!("{}", RustBigintRing::RING.format(&x))
556 );
557}
558
559#[test]
560fn test_from() {
561 assert!(ZZ.eq_el(&RustBigint(false, vec![]), &ZZ.int_hom().map(0)));
562 assert!(ZZ.eq_el(&RustBigint(false, vec![2138479]), &ZZ.int_hom().map(2138479)));
563 assert!(ZZ.eq_el(&RustBigint(true, vec![2138479]), &ZZ.int_hom().map(-2138479)));
564 }
567
568#[test]
569fn test_to_i128() {
570 let iso = ZZ.can_iso(&StaticRing::<i128>::RING).unwrap();
571 assert_eq!(0, iso.map(RustBigint(false, vec![])));
572 assert_eq!(2138479, iso.map(RustBigint(false, vec![2138479])));
573 assert_eq!(-2138479, iso.map(RustBigint(true, vec![2138479])));
574 assert_eq!(
575 0x138691A350BF12FCA,
576 iso.map(RustBigint(false, vec![0x38691A350BF12FCA, 0x1]))
577 );
578 assert_eq!(
579 i128::MAX,
580 iso.map(RustBigint(
581 false,
582 vec![(i128::MAX & ((1 << 64) - 1)) as u64, (i128::MAX >> 64) as u64]
583 ))
584 );
585 assert_eq!(
586 i128::MIN + 1,
587 iso.map(RustBigint(
588 true,
589 vec![(i128::MAX & ((1 << 64) - 1)) as u64, (i128::MAX >> 64) as u64]
590 ))
591 );
592 assert_eq!(
593 i64::MAX as i128 + 1,
594 iso.map(RustBigint(false, vec![i64::MAX as u64 + 1]))
595 );
596 assert_eq!(u64::MAX as i128, iso.map(RustBigint(false, vec![u64::MAX])));
597}
598
599#[test]
600fn test_sub_assign() {
601 let mut x = RustBigintRing::RING.get_ring().parse("4294836225", 10).unwrap();
602 let y = RustBigintRing::RING.get_ring().parse("4294967297", 10).unwrap();
603 let z = RustBigintRing::RING.get_ring().parse("-131072", 10).unwrap();
604 x = ZZ.sub_ref_fst(&x, y);
605 assert!(ZZ.eq_el(&z, &x));
606}
607
608#[test]
609fn test_assumptions_integer_division() {
610 assert_eq!(-1, -3 / 2);
611 assert_eq!(-1, 3 / -2);
612 assert_eq!(1, -3 / -2);
613 assert_eq!(1, 3 / 2);
614
615 assert_eq!(-1, -3 % 2);
616 assert_eq!(1, 3 % -2);
617 assert_eq!(-1, -3 % -2);
618 assert_eq!(1, 3 % 2);
619}
620
621#[cfg(test)]
622fn edge_case_elements() -> impl Iterator<Item = RustBigint> {
623 const NUMBERS: [&'static str; 10] = [
624 "5444517870735015415413993718908291383295", "5444517870735015415413993718908291383296", "-5444517870735015415413993718908291383295",
627 "-5444517870735015415413993718908291383296",
628 "3489", "891023591340178345678931246518793456983745682137459364598623489512389745698237456890239238476873429872346579",
630 "172365798123602365091834765607185713205612370956192783561461248973265193754762751378496572896497125361819754136",
631 "0",
632 "-231780567812394562346324763251741827457123654871236548715623487612384752328164",
633 "+1278367182354612381234568509783420989356938472561078564732895634928563482349872698723465",
634 ];
635
636 NUMBERS
637 .iter()
638 .cloned()
639 .map(|s| RustBigintRing::RING.get_ring().parse(s, 10))
640 .map(Result::unwrap)
641 .chain([RustBigint(false, vec![])])
642}
643
644#[test]
645fn test_bigint_ring_axioms() { crate::ring::generic_tests::test_ring_axioms(ZZ, edge_case_elements()) }
646
647#[test]
648fn test_hash_axioms() { crate::ring::generic_tests::test_hash_axioms(ZZ, edge_case_elements()); }
649
650#[test]
651fn test_bigint_divisibility_ring_axioms() {
652 crate::divisibility::generic_tests::test_divisibility_axioms(ZZ, edge_case_elements())
653}
654
655#[test]
656fn test_bigint_euclidean_ring_axioms() {
657 crate::pid::generic_tests::test_euclidean_ring_axioms(ZZ, edge_case_elements());
658}
659
660#[test]
661fn test_bigint_principal_ideal_ring_axioms() {
662 crate::pid::generic_tests::test_principal_ideal_ring_axioms(ZZ, edge_case_elements());
663}
664
665#[test]
666fn test_bigint_integer_ring_axioms() { crate::integer::generic_tests::test_integer_axioms(ZZ, edge_case_elements()) }
667
668#[test]
669fn from_to_float_approx() {
670 let x: f64 = 83465209236517892563478156042389675783219532497861237985328563.0;
671 let y = ZZ.to_float_approx(&ZZ.from_float_approx(x).unwrap());
672 assert!(x * 0.99999 < y);
673 assert!(y < x * 1.00001);
674
675 let x = RustBigintRing::RING.get_ring().parse("238238568756187236598172345698172345698713465983465981349196413289715928374691873256349862875423823856875618723659817234569817234569871346598346598134919641328971592837469187325634986287542382385687561872365981723456981723456987134659834659813491964132897159283746918732563498628754", 10).unwrap();
676 let x_f64 = RustBigintRing::RING.to_float_approx(&x);
677 assert!(x_f64 > 2.38e281);
678 assert!(x_f64 < 2.39e281);
679
680 let x = RustBigintRing::RING.get_ring().parse("17612270634266603266562983043609488425884596885216274157019263443846280837737053004240660825056953589054705681188523315954751538958870401258595088307206392227789986855433848759623746265294744028223494023320398812305222823465701205669244602427862540158018457529069827142861864092328740970800137803882190383463", 10).unwrap();
681 let x_f64 = RustBigintRing::RING.to_float_approx(&x);
682 assert!(x_f64 > 1.76e307);
683 assert!(x_f64 < 1.77e307);
684}
685
686#[bench]
687fn bench_div_300_bits(bencher: &mut test::Bencher) {
688 let x = RustBigintRing::RING
689 .get_ring()
690 .parse(
691 "2382385687561872365981723456981723456987134659834659813491964132897159283746918732563498628754",
692 10,
693 )
694 .unwrap();
695 let y = RustBigintRing::RING
696 .get_ring()
697 .parse("48937502893645789234569182735646324895723409587234", 10)
698 .unwrap();
699 let z = RustBigintRing::RING
700 .get_ring()
701 .parse("48682207850683149082203680872586784064678018", 10)
702 .unwrap();
703 bencher.iter(|| {
704 let q = ZZ.euclidean_div(x.clone(), &y);
705 assert!(ZZ.eq_el(&z, &q));
706 })
707}
708
709#[bench]
710fn bench_mul_300_bits(bencher: &mut test::Bencher) {
711 let x = RustBigintRing::RING
712 .get_ring()
713 .parse(
714 "2382385687561872365981723456981723456987134659834659813491964132897159283746918732563498628754",
715 10,
716 )
717 .unwrap();
718 let y = RustBigintRing::RING
719 .get_ring()
720 .parse("48937502893645789234569182735646324895723409587234", 10)
721 .unwrap();
722 let z = RustBigintRing::RING.get_ring().parse("116588006478839442056346504147013274749794691549803163727888681858469844569693215953808606899770104590589390919543097259495176008551856143726436", 10).unwrap();
723 bencher.iter(|| {
724 let p = ZZ.mul_ref(&x, &y);
725 assert!(ZZ.eq_el(&z, &p));
726 })
727}
728
729#[test]
730fn test_is_zero() {
731 let zero = ZZ.zero();
732 let mut nonzero = ZZ.one();
733 ZZ.mul_pow_2(&mut nonzero, 83124);
734 assert!(ZZ.is_zero(&zero));
735 assert!(ZZ.is_zero(&ZZ.negate(zero)));
736 assert!(!ZZ.is_zero(&nonzero));
737 assert!(!ZZ.is_zero(&ZZ.negate(nonzero)));
738}
739
740#[test]
741fn test_cmp() {
742 assert_eq!(true, ZZ.is_lt(&ZZ.int_hom().map(-1), &ZZ.int_hom().map(2)));
743 assert_eq!(true, ZZ.is_lt(&ZZ.int_hom().map(1), &ZZ.int_hom().map(2)));
744 assert_eq!(false, ZZ.is_lt(&ZZ.int_hom().map(2), &ZZ.int_hom().map(2)));
745 assert_eq!(false, ZZ.is_lt(&ZZ.int_hom().map(3), &ZZ.int_hom().map(2)));
746 assert_eq!(true, ZZ.is_gt(&ZZ.int_hom().map(-1), &ZZ.int_hom().map(-2)));
747
748 assert_eq!(Ordering::Less, ZZ.abs_cmp(&ZZ.int_hom().map(-1), &ZZ.int_hom().map(2)));
749 assert_eq!(Ordering::Less, ZZ.abs_cmp(&ZZ.int_hom().map(1), &ZZ.int_hom().map(2)));
750 assert_eq!(Ordering::Equal, ZZ.abs_cmp(&ZZ.int_hom().map(2), &ZZ.int_hom().map(2)));
751 assert_eq!(
752 Ordering::Greater,
753 ZZ.abs_cmp(&ZZ.int_hom().map(-3), &ZZ.int_hom().map(2))
754 );
755 assert_eq!(
756 Ordering::Greater,
757 ZZ.abs_cmp(&ZZ.int_hom().map(3), &ZZ.int_hom().map(2))
758 );
759 assert_eq!(Ordering::Less, ZZ.abs_cmp(&ZZ.int_hom().map(-1), &ZZ.int_hom().map(-2)));
760}
761
762#[test]
763fn test_get_uniformly_random() {
764 crate::integer::generic_tests::test_integer_get_uniformly_random(ZZ);
765
766 let ring = ZZ;
767 let bound = RustBigintRing::RING.get_ring().parse("11000000000000000", 16).unwrap();
768 let block_bound = RustBigintRing::RING.get_ring().parse("10000000000000000", 16).unwrap();
769 let mut rng = oorandom::Rand64::new(1);
770 let elements: Vec<_> = (0..1000)
771 .map(|_| ring.get_uniformly_random(&bound, || rng.rand_u64()))
772 .collect();
773 assert!(elements.iter().any(|x| ring.is_lt(x, &block_bound)));
774 assert!(elements.iter().any(|x| ring.is_gt(x, &block_bound)));
775 assert!(elements.iter().all(|x| ring.is_lt(x, &bound)));
776}
777
778#[test]
779fn test_canonical_iso_static_int() {
780 crate::ring::generic_tests::test_hom_axioms(
783 StaticRing::<i128>::RING,
784 ZZ,
785 [0, 1, -1, -100, 100, i64::MAX as i128, i64::MIN as i128]
786 .iter()
787 .copied(),
788 );
789 crate::ring::generic_tests::test_iso_axioms(
790 StaticRing::<i128>::RING,
791 ZZ,
792 [
793 0,
794 1,
795 -1,
796 -100,
797 100,
798 i64::MAX as i128,
799 i64::MIN as i128,
800 i128::MAX,
801 i128::MIN,
802 ]
803 .iter()
804 .copied(),
805 );
806}
807
808#[test]
809fn test_serialize() { crate::serialization::generic_tests::test_serialization(ZZ, edge_case_elements()) }
810
811#[test]
812fn test_serialize_postcard() {
813 let serialized = postcard::to_allocvec(&SerializeWithRing::new(&ZZ.power_of_two(10000), ZZ)).unwrap();
814 let result = DeserializeWithRing::new(ZZ)
815 .deserialize(&mut postcard::Deserializer::from_flavor(
816 postcard::de_flavors::Slice::new(&serialized),
817 ))
818 .unwrap();
819
820 assert_el_eq!(ZZ, ZZ.power_of_two(10000), result);
821}