5

I am trying to solve the Leet Code challenge 14. Longest Common Prefix:

Write a function to find the longest common prefix string amongst an array of strings.

If there is no common prefix, return an empty string "".

Example 1:

Input: strs = ["flower","flow","flight"]
Output: "fl"

Example 2:

Input: strs = ["dog","racecar","car"]
Output: ""

Explanation: There is no common prefix among the input strings.

Constraints:

  • 1 <= strs.length <= 200
  • 0 <= strs[i].length <= 200
  • strs[i] consists of only lower-case English letters.

My solution:

let strs = ["flower", "flow", "flight"];

var longestCommonPrefix = function (strs) {
  for (let i = 0; i < strs.length; i++) {
    for (let j = 0; j < strs[i].length; j++) {
       // console.log(strs[i+2][j]);
      if (strs[i][j] == strs[i + 1][j] && strs[i + 1][j] ==strs[i + 2][j]) {
        return (strs[i][j]);
        
      } else {
        return "0";
      }
    }
  }
};

console.log(longestCommonPrefix(strs));

Output: f

How can I iterate over every character and check if it is same and then go for next and if it fails then the longest common prefix will be returned?

3
  • 1
    If you don't know what's wrong: your first course of action is to find out what's wrong. You might not be able to figure out how to fix it once you do, but you do need to put in the time and effort to debug your own code: use a small number as input and put some console logs in your loops, or even better, but a debugger statement in and use the browser's debugger to step through your code while watching variables. As you you know what should happen at each iteration, you can pretty quickly spot what's wrong. Also, on a JS note: don't use var x = function... , just declare a function. Aug 8, 2021 at 16:41
  • I have done these things you have mentioned and also got the answer to why I was getting that output. The thing is how can I check for every character and return the longest common prefix? Aug 8, 2021 at 16:55
  • Then you'll want to update your post to explain what you found, where you see it go wrong, and what you already examined to hopefully (but unsuccessfully) fix things. Aug 8, 2021 at 17:25

13 Answers 13

6

As the longest common prefix must occur in every string of the array you can jus iterate over the length and check if all words have the same char at that index until you find a difference

function prefix(words){
  // check border cases size 1 array and empty first word)
  if (!words[0] || words.length ==  1) return words[0] || "";
  let i = 0;
  // while all words have the same character at position i, increment i
  while(words[0][i] && words.every(w => w[i] === words[0][i]))
    i++;
  
  // prefix is the substring from the beginning to the last successfully checked i
  return words[0].substr(0, i);
}

console.log(1, prefix([]));
console.log(2, prefix([""]));
console.log(3, prefix(["abc"]));
console.log(4, prefix(["abcdefgh", "abcde", "abe"]));
console.log(5, prefix(["abc", "abc", "abc"]));
console.log(6, prefix(["abc", "abcde", "xyz"]));

6
  • Thank you so much for your help. Can you please tell me what's the time complexity for this solution? As I have also done the same thing but with O(n2) time complexity. Aug 9, 2021 at 7:32
  • let strs = ["flower", "flow", "floght"]; var longestCommonPrefix = function (strs) { for (let i = 0; i < strs.length; i++) { for (let j = 0; j < strs[i].length; j++) { while(strs[i][j] == strs[i + 1][j] && strs[i][j] == strs[i + 2][j]){ j++; } return String(strs).substr(0,j); } } } console.log(longestCommonPrefix(strs)); Aug 9, 2021 at 7:32
  • The complexity is O(n * m) where n is the number of words in the array, and m is the length of the prefix Aug 9, 2021 at 7:58
  • And, in the first if statement, Is it like Conditional (ternary) operator? If possible can you please explain this or share documentation where I can learn about this? Aug 9, 2021 at 13:21
  • No, that has nothing to do with the ternary operator. In words[0] || "" that's a simple OR || operator. Ie, if the first operand (words[0]) is a truthy it returns the first operand. If it's a falsy it returns the second ... Aug 9, 2021 at 13:57
4

Some of the issues:

  • Your inner loop will encounter a return on its first iteration. This means your loops will never repeat, and the return value will always be one character.

  • It is wrong to address strs[i+1] and strs[i+2] in your loop, as those indexes will go out of bounds (>= strs.length)

Instead of performing character by character comparison, you could use substring (prefix) comparison (in one operation): this may seem a waste, but as such comparison happens "below" JavaScript code, it is very fast (and as string size limit is 200 characters, this is fine).

The algorithm could start by selecting an existing string as prefix and then shorten it every time there is a string in the input that doesn't have it as prefix. At the end you will be left with the common prefix.

It is good to start with the shortest string as the initial prefix candidate, as the common prefix can certainly not be longer than that.

var longestCommonPrefix = function(strs) {
    let prefix = strs.reduce((acc, str) => str.length < acc.length ? str : acc);
    
    for (let str of strs) {
        while (str.slice(0, prefix.length) != prefix) {
            prefix = prefix.slice(0, -1);
        }
    }
    return prefix;
};

let res = longestCommonPrefix(["flower","flow","flight"]);

console.log(res);

4
  • You are taking the first two strings from the array I guess. Then what if the third-string length is less than the other two? And, if possible can you please explain what this line means for(let str of strs)? Aug 8, 2021 at 18:01
  • The first line iterates the whole array (using reduce) to find the shortest string. See for...of in mdn documentation. It is just a loop over all the values in the array, without having to maintain an index variable.
    – trincot
    Aug 8, 2021 at 18:05
  • best solution posted so far, good job! PS this code crash with an empty array, but if that's correct behavior or not may be up for debate ;)
    – hanshenrik
    Aug 8, 2021 at 20:13
  • It is in the conditions that the array will have at least a size of 1, so I didn't bother dealing with an empty array.
    – trincot
    Aug 8, 2021 at 20:16
2

An approach based on sorting by word length, and for the shortest word, for exiting early, an entirely Array.every-based prefix-validation and -aggregation ...

function longestCommonPrefix(arr) {
  const charList = [];

  const [shortestWord, ...wordList] =
    // sort shallow copy by item `length` first.
    [...arr].sort((a, b) => a.length - b.length);

  shortestWord
    .split('')
    .every((char, idx) => {
      const isValidChar = wordList.every(word =>
        word.charAt(idx) === char
      );
      if (isValidChar) {
        charList.push(char);
      }
      return isValidChar;
    });

  return charList.join('');
}

console.log(
  longestCommonPrefix(["flower","flow","flight"])
);
.as-console-wrapper { min-height: 100%!important; top: 0; }

1
  • Excellent solution sir, had the same idea and your example helped me fix my bug(lack of shallow copy). Jul 11 at 3:20
1

not the best solution but this should work

function longestPrefix(strs){
    if(strs.length <1){
        return "";
    }
    const sharedPrefix=function(str1,str2){
        let i=0;
        for(;i<Math.min(str1.length,str2.length) /*todo optimize*/;++i){
            if(str1[i] !== str2[i]){
                break;
            }
        }
        return str1.substr(0,i);
    };
    let curr = strs[0];
    for(let i=1;i<strs.length;++i){
        curr=sharedPrefix(curr,strs[i]);
        if(curr.length < 1){
            // no shared prefix
            return "";
        }
    }
    return curr;
}
1

this:

strs[i][j] == strs[i + 1][j] ==strs[i + 2][j]

makes no sense in JS... or at least, makes no sense in what you are doing... to do this you should use a && operator, like this:

strs[i][j] == strs[i + 1][j] && strs[i + 1][j] ==strs[i + 2][j]

Otherwise JS will evaluate the first condition, and then will evaluate the result of that operation (either true or false) with the third value

In addition to this, consider that you are looping with i over the array, and so i will also be str.length - 1 but in the condition you are referencing strs[i + 2][j] that will be in that case strs[str.length + 1][j] that in your case, makes no sense.

About the solution:
You should consider that the prefix is common to all the values in the array, so you can take in consideration one value, and just check if all the other are equals... the most obvious is the first one, and you will end up with something like this:

let strs = ["flower", "flow", "flight", "dix"];

function longestCommonPrefix (strs) {
  // loop over the characters of the first element
  for (let j = 0; j < strs[0].length; j++) {
    // ignore the first elements since is obvious that is equal to itself
    for (let i = 1; i < strs.length; i++) {
       /* in case you have like 
        [
          'banana',
          'bana'
        ]
        the longest prefix is the second element
       */
       if(j >= strs[i].length){
         return strs[i]
       }
       // different i-th element
       if(strs[0][j] != strs[i][j]){
         return strs[0].substr(0, j)
       }
       
    }
  }
  // all good, then the first element is common to all the other elements
  return strs[0]
};

console.log(longestCommonPrefix(strs));

10
  • 1
    Explaining why it doesn't make sense (since the first == will yield a boolean, so the second == will always be false) would be a good edit. Aug 8, 2021 at 16:43
  • @Alberto Sinigaglia Thank you so much for your help and what should I change in my code so I can iterate for the next character check? Please have a look at the question also. Aug 8, 2021 at 16:46
  • @Mike'Pomax'Kamermans Otherwise JS will evaluate the first condition, and then will evaluate the result of that operation (either true or false) with the third value isn't enough? Aug 8, 2021 at 16:49
  • 1
    This is not a correct solution. For one, it may return before having looked at all strings... For example, ["aaa", "aaaaaa", "what"] should result in an empty string, but this code returns "aa".
    – trincot
    Aug 8, 2021 at 17:09
  • 1
    @HarshMishra be aware that there was a typo... btw I would suggest you to check derpirscher answer that is pretty neat Aug 9, 2021 at 0:45
0
let strs = ["flower", "flow", "flight"];

var longestCommonPrefix = function (strs) {
  for (let i = 0; i < strs.length; i++) {
    for (let j = 0; j < strs[i].length; j++) {
        console.log(strs[i+2][j]);
      if (strs[i][j] == strs[i + 1][j] && strs[i][j]  ==strs[i + 2][j]) {
        return (strs[i][j]);
        


      } else {
        return "0";
      }
    }
  }
};

console.log(longestCommonPrefix(strs));

This **return ** f

0
0

Increase the index while the letter is the same at that index for all words in the list. Then slice on it.

function prefix(words) {
  if (words.length === 0) { return '' }
  let index = 0;
  while (allSameAtIndex(words, index)) {
    index++;
  }
  return words[0].slice(0, index);
}

function allSameAtIndex(words, index) {
  let last;
  for (const word of words) {
    if (last !== undefined && word[index] !== last[index]) {
      return false;
    }
    last = word;
  }
  return true;
}
0

I assume you are here for Leetcode problem solution.

var longestCommonPrefix = function(strs) {
let arr = strs.concat().sort();
const a1 = arr[0];
const a2 = arr[arr.length -1];
const length = a1.length;
let i=0;

while(i<length && a1.charAt(i) == a2.charAt(i)) i++;
return a1.substring(0,i);

};
0

function prefixLen(s1, s2) {
    let i = 0;
    while (i <= s1.length && s1[i] === s2[i]) i++;
    return i;
}

function commonPrefix(arr) {
    let k = prefixLen(arr[0], arr[1]);
    for (let i = 2; i < arr.length; i++) {
        k = Math.min(k, prefixLen(arr[0], arr[i]));
    }
    return arr[0].slice(0, k);
}

console.log(commonPrefix(['pirate', 'pizza', 'pilates']))  // -> "pi"

0
var longestCommonPrefix = function(strs) {
    let prefix = "";
    for(let i = 0; i < strs[0].length; i++) {
        for(let j = 1; j < strs.length; j++) {
            if(strs[j][i] !== strs[0][i]) return prefix;
        }
        prefix = prefix + strs[0][i];
    }
    return prefix;
};
console.log(longestCommonPrefix);
1
  • 1
    Can you just explain what did you change and why your answer will fix the issue ?
    – Elikill58
    Dec 4, 2021 at 10:27
0

It is as simple as one loop and compare each element of the strings

const longestPrefix = (strs) => {
[word1, word2, word3] = strs;
let prefix = [];
if(strs === null || strs.length <= 2 || strs.length > 3) return 'please 
insert 3 elements'

for (let i=0; i < word1.length; i++){ 
        if(word1[i] ===  word2[i] && word1[i] === word3[i]){
            prefix.push(word1[i])
        }
}
return prefix.join('')
}
0

I read in another answer: 'Increase the index while the letter is the same at that index for all words in the list. Then slice on it.'

that's how I came up with this:

const findPrefix = (strs) => {
    let i = 0;
    while (strs.every((item) => strs[0][i] === item[i])) {
        i++;
    }
    return strs[0].slice(0, i);
};

console.log(findPrefix(["flo", "flow", "flomingo"]));

0
const findPrefix = (strs) => {
    let broke = false;
    return strs[0].split("").reduce(
        (acc, curr, index) =>
            broke || !strs.every((word) => word[index] === curr)
                ? (broke = true && acc)
                : (acc += curr),

        ""
    );
};

console.log(findPrefix(["flower", "flow", "flamingo"]));

2
  • I used a boolean as an escape case to avoid false positives. I'm interested in learning what can be considered wrong with this code since I have very little experience writing algorithms Jun 7 at 1:39
  • Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Ethan
    Jun 7 at 20:34

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