use vstd::prelude::*; fn main() {} verus!{ fn f1_square_nums(nums: &Vec) -> (squared: Vec) requires forall|k: int| 0 <= k < nums.len() ==> (0 <= #[trigger] nums[k] * #[trigger] nums[k] < i32::MAX), { let mut result: Vec = Vec::new(); let mut index = 0; while index < nums.len() { result.push(nums[index] * nums[index]); index += 1 } result } proof fn f2_lemma_vec_push(vec: Seq, i: T, l: usize) requires l == vec.len(), ensures forall|k: int| 0 <= k < vec.len() ==> #[trigger] vec[k] == vec.push(i)[k], vec.push(i).index(l as int) == i, { } fn f2_contains(arr: &Vec, key: i32) -> (result: bool) { let mut index = 0; while index < arr.len() { if (arr[index] == key) { return true; } index += 1; } false } fn f2_find_dissimilar(arr1: &Vec, arr2: &Vec) -> (result: Vec) { let mut result = Vec::new(); let mut index = 0; while index < arr1.len() { if (!f2_contains(arr2, arr1[index]) && !f2_contains(&result, arr1[index])) { result.push(arr1[index]); } index += 1; } let mut index = 0; while index < arr2.len() { if (!f2_contains(arr1, arr2[index]) && !f2_contains(&result, arr2[index])) { result.push(arr2[index]); } index += 1; } result } spec fn step1(__hp0: Seq, outp: Seq) -> bool { (__hp0.len() == outp.len()) && (forall|k: int| 0 <= k < __hp0.len() ==> (#[trigger] outp[k] == __hp0[k] * __hp0[k])) } spec fn step2(inp: Seq, p2_key: i32, outp: bool) -> bool { (outp == (exists|i: int| 0 <= i < inp.len() && (inp[i] == p2_key))) } fn chain_driver(nums: &Vec, p2_key: i32) -> (r_final: bool) requires forall|k: int| 0 <= k < nums.len() ==> (0 <= #[trigger] nums[k] * #[trigger] nums[k] < i32::MAX), ensures exists|v1: Seq| #[trigger] step1(nums@, v1) && step2(v1, p2_key, r_final), { let x1 = f1_square_nums(nums); let x2 = f2_contains(&x1, p2_key); proof { assert(step1(nums@, x1@)); assert(step2(x1@, p2_key, x2)); } x2 } } // verus!