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Add CodeWalk verus-proof-completion benchmark
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use vstd::prelude::*;
fn main() {}
verus!{
fn f1_element_wise_division(arr1: &Vec<u32>, arr2: &Vec<u32>) -> (result: Vec<u32>)
requires
arr1.len() == arr2.len(),
forall|i: int| 0 <= i < arr2.len() ==> arr2[i] != 0,
forall|m: int|
0 <= m < arr1.len() ==> (u32::MIN <= #[trigger] arr1[m] / #[trigger] arr2[m]
<= u32::MAX),
{
let mut output_arr = Vec::with_capacity(arr1.len());
let mut index = 0;
while index < arr1.len()
{
output_arr.push((arr1[index] / arr2[index]));
index += 1;
}
output_arr
}
fn f2_find_even_numbers(arr: &Vec<u32>) -> (even_numbers: Vec<u32>)
{
let mut even_numbers: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 == 0) {
even_numbers.push(arr[index]);
}
index += 1;
}
even_numbers
}
fn f3_find_odd_numbers(arr: &Vec<u32>) -> (odd_numbers: Vec<u32>)
{
let mut odd_numbers: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 != 0) {
odd_numbers.push(arr[index]);
}
index += 1;
}
odd_numbers
}
fn f4_remove_odds(arr: &Vec<u32>) -> (even_list: Vec<u32>)
{
let mut even_list: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 == 0) {
even_list.push(arr[index]);
}
index += 1;
}
even_list
}
fn f5_filter_odd_numbers(arr: &Vec<u32>) -> (odd_list: Vec<u32>)
{
let mut odd_list: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 != 0) {
odd_list.push(arr[index]);
}
index += 1;
}
odd_list
}
fn f6_find_odd_numbers(arr: &Vec<u32>) -> (odd_numbers: Vec<u32>)
{
let mut odd_numbers: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 != 0) {
odd_numbers.push(arr[index]);
}
index += 1;
}
odd_numbers
}
fn f7_remove_odds(arr: &Vec<u32>) -> (even_list: Vec<u32>)
{
let mut even_list: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 == 0) {
even_list.push(arr[index]);
}
index += 1;
}
even_list
}
fn f8_find_even_numbers(arr: &Vec<u32>) -> (even_numbers: Vec<u32>)
{
let mut even_numbers: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 == 0) {
even_numbers.push(arr[index]);
}
index += 1;
}
even_numbers
}
fn f9_filter_odd_numbers(arr: &Vec<u32>) -> (odd_list: Vec<u32>)
{
let mut odd_list: Vec<u32> = Vec::new();
let input_len = arr.len();
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 != 0) {
odd_list.push(arr[index]);
}
index += 1;
}
odd_list
}
spec fn f10_is_even(n: u32) -> bool {
(n % 2) == 0
}
fn f10_is_product_even(arr: &Vec<u32>) -> (result: bool)
{
let mut index = 0;
while index < arr.len()
{
if (arr[index] % 2 == 0) {
return true;
}
index += 1;
}
false
}
spec fn step1(__hp0: Seq<u32>, __hp1: Seq<u32>, outp: Seq<u32>) -> bool {
(outp.len() == __hp0.len())
&& (forall|i: int|
0 <= i < outp.len() ==> #[trigger] outp[i] == #[trigger] (__hp0[i] / __hp1[i]))
}
spec fn step2(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 == 0))
}
spec fn step3(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 != 0))
}
spec fn step4(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 == 0))
}
spec fn step5(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 != 0))
}
spec fn step6(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 != 0))
}
spec fn step7(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 == 0))
}
spec fn step8(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 == 0))
}
spec fn step9(inp: Seq<u32>, outp: Seq<u32>) -> bool {
(outp == inp.filter(|x: u32| x % 2 != 0))
}
spec fn step10(inp: Seq<u32>, outp: bool) -> bool {
(outp <==> (exists|k: int| 0 <= k < inp.len() && f10_is_even(#[trigger] inp[k])))
}
fn chain_driver(arr1: &Vec<u32>, arr2: &Vec<u32>) -> (r_final: bool)
requires
arr1.len() == arr2.len(),
forall|i: int| 0 <= i < arr2.len() ==> arr2[i] != 0,
forall|m: int|
0 <= m < arr1.len() ==> (u32::MIN <= #[trigger] arr1[m] / #[trigger] arr2[m]
<= u32::MAX),
ensures
exists|v1: Seq<u32>, v2: Seq<u32>, v3: Seq<u32>, v4: Seq<u32>, v5: Seq<u32>, v6: Seq<u32>, v7: Seq<u32>, v8: Seq<u32>, v9: Seq<u32>| #[trigger] step1(arr1@, arr2@, v1) && #[trigger] step2(v1, v2) && #[trigger] step3(v2, v3) && #[trigger] step4(v3, v4) && #[trigger] step5(v4, v5) && #[trigger] step6(v5, v6) && #[trigger] step7(v6, v7) && #[trigger] step8(v7, v8) && #[trigger] step9(v8, v9) && step10(v9, r_final),
{
let x1 = f1_element_wise_division(arr1, arr2);
let x2 = f2_find_even_numbers(&x1);
let x3 = f3_find_odd_numbers(&x2);
let x4 = f4_remove_odds(&x3);
let x5 = f5_filter_odd_numbers(&x4);
let x6 = f6_find_odd_numbers(&x5);
let x7 = f7_remove_odds(&x6);
let x8 = f8_find_even_numbers(&x7);
let x9 = f9_filter_odd_numbers(&x8);
let x10 = f10_is_product_even(&x9);
proof {
assert(step1(arr1@, arr2@, x1@));
assert(step2(x1@, x2@));
assert(step3(x2@, x3@));
assert(step4(x3@, x4@));
assert(step5(x4@, x5@));
assert(step6(x5@, x6@));
assert(step7(x6@, x7@));
assert(step8(x7@, x8@));
assert(step9(x8@, x9@));
assert(step10(x9@, x10));
}
x10
}
} // verus!