简单易用的leetcode开发测试工具(npm)

描述

最近在用es6解leetcode,当问题比较复杂时,有可能修正了新的错误,却影响了前面的流程。要用通用的测试工具,却又有杀鸡用牛刀的感觉,所以就写了个简单易用的leetcode开发测试工具,分享与大家。

工具安装

npm i leetcode_test

使用示例1 (问题010)

codes:


let test = require('leetcode_test').test
/**
* @param {string} s
* @param {string} p
* @return {boolean}
*/
var isMatch = function (s, p) {
if (p.length === 0) {
return s.length === 0
}
firstMath = s.length > 0 &&
(p[0] === s[0] ||
p[0] === '.')
if (p.length >= 2 && p[1] === '*') {
//下面两部分的顺序不能交换
return firstMath && isMatch(s.substring(1), p) || isMatch(s, p.substring(2))
} else {
return firstMath && isMatch(s.substring(1), p.substring(1))
}
};
let cases = [ // [[[],''],], //第一个参数是空数组
[['abbabaaaaaaacaa', 'a*.*b.a.*c*b*a*c*'], true],
[['aaa', 'a*ac'], true], //故意写错答案,展示测试失败输出效果
[['a', '..*'], true],
]
test(isMatch, cases)

测试用例编写说明

leetcode要测试的都是函数,参数个数不定,但返回值是一个。因此,我设计用例的输入形式为一个用例就是一个两个元素的数组,第一个元素是一个数组:对应输入参数;第二个元素是一个值。
上面例子的输入参数是([2, 7, 11, 15], 91),第一个参数是数组,第二个参数是数值;返回值是一个数组([0, 1])。 如果要测试的函数的输入参数就是一个数组,要注意输入形式,比如,求[1,2,3,4]平均值,要这样输入测试用例: [[[1,2,3,4]],2.5]

out:


test [1] success, Input: ('abbabaaaaaaacaa','a*.*b.a.*c*b*a*c*'); Expected: true; Output: true
test [2] fail, Input: ('aaa','a*ac'); Expected: true; Output: false
test [3] success, Input: ('a','..*'); Expected: true; Output: true
Result: test 3 cases, success: 2, fail: 1
running 5 ms

使用示例2 (问题015)

codes:


let test = require('leetcode_test').test
/**
* @param {number[]} nums
* @return {number[][]}
*/
var threeSum = function (nums) {
nums = nums.sort((a,b) => a - b);
const rs = [];
let i = 0;
while (i < nums.length) {
let one = nums[i];
let two = i + 1; //从队列头部开始
let three = nums.length - 1; //从队列尾部开始 while (two < three) {
let sum = one + nums[two] + nums[three];
if (sum === 0) {
rs.push([one,nums[two],nums[three]]);
two++;
three--;
while (two < three && nums[two] === nums[two - 1]) {
two++;
}
while (two < three && nums[three] === nums[three + 1]) {
three--;
}
} else if (sum > 0) three--;
else two++;
}
i++;
while (i < nums.length && nums[i] === nums[i - 1]) i++;
}
return rs;
};
let cases = [ // [[[],''],], //第一个参数是空数组
[[[]],[]],
[[[1,-1,-1,0]],[-1,0,1]],
[[[-1,0,1,0]],[[-1,0,1]]],
[[[0,0,0,0]],[0,0,0]],
[[[-1,2,-1]],[-1,-1,2]],
[[[0,0,0]],[0,0,0]],
[[[-1,0,1,2,-1,-4]],[[-1,-1,2],[-1,0,1]]], //answer's sequence is not important
[[[-1,0,1,2,-1,-4]],[[-1,0,1],[-1,-1,2]]], //answer's sequence is not important
[[[-4,-2,-2,-2,0,1,2,2,2,3,3,4,4,6,6]],[[-4,-2,6],[-4,0,4],[-4,1,3],[-4,2,2],[-2,-2,4],[-2,0,2]]],
[[[-4,-2,1,-5,-4,-4,4,-2,0,4,0,-2,3,1,-5,0]],[[-5,1,4],[-4,0,4],[-4,1,3],[-2,-2,4],[-2,1,1],[0,0,0]]],
]
test(threeSum,cases)

测试用例编写说明

测试用例的7与8,期待结果的数组元素顺序并不影响答案的判定。

out:


test [1] success, Input: ([]); Expected: []; Output: []
test [2] success, Input: ([-1,-1,0,1]); Expected: [-1,0,1]; Output: [[-1,0,1]]
test [3] success, Input: ([-1,0,0,1]); Expected: [[-1,0,1]]; Output: [[-1,0,1]]
test [4] success, Input: ([0,0,0,0]); Expected: [0,0,0]; Output: [[0,0,0]]
test [5] success, Input: ([-1,-1,2]); Expected: [-1,-1,2]; Output: [[-1,-1,2]]
test [6] success, Input: ([0,0,0]); Expected: [0,0,0]; Output: [[0,0,0]]
test [7] success, Input: ([-4,-1,-1,0,1,2]); Expected: [[-1,-1,2],[-1,0,1]]; Output: [[-1,-1,2],[-1,0,1]]
test [8] success, Input: ([-4,-1,-1,0,1,2]); Expected: [[-1,-1,2],[-1,0,1]]; Output: [[-1,-1,2],[-1,0,1]]
test [9] success, Input: ([-4,-2,-2,-2,0,1,2,2,2,3,3,4,4,6,6]); Expected: [[-2,-2,4],[-2,0,2],[-4,-2,6],[-4,0,4],[-4,1,3],[-4,2,2]]; Output: [[-2,-2,4],[-2,0,2],[-4,-2,6],[-4,0,4],[-4,1,3],[-4,2,2]]
test [10] success, Input: ([-5,-5,-4,-4,-4,-2,-2,-2,0,0,0,1,1,3,4,4]); Expected: [[-2,-2,4],[-2,1,1],[-4,0,4],[-4,1,3],[-5,1,4],[0,0,0]]; Output: [[-2,-2,4],[-2,1,1],[-4,0,4],[-4,1,3],[-5,1,4],[0,0,0]]
Result: test 10 cases, success: 10, fail: 0

项目地址

工具地址:https://github.com/zhoutk/lee...
解答地址:https://github.com/zhoutk/lee...

最近一直在用,已经把输出的样子调得还能看过眼了,答案对比算法,也改进了。遇到问题,我会持续改进,大家遇到问题也可提bug给我,我会尽快处理。

来源:https://segmentfault.com/a/1190000017356892

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