63

I have two strings which I'd like to compare: String and String:. Is there a library function that would return true when passed these two strings, but false for say String and OtherString?

To be precise, I want to know whether one string is a prefix of another.

10
  • 2
    what about using good old string.compare()?
    – Alok Save
    Oct 27, 2011 at 9:11
  • you mean comparing first N characters?
    – Donotalo
    Oct 27, 2011 at 9:12
  • @Donotalo That would be ok, would be nice if it did it for me so I didn't need to go through the faff of working out n.
    – fredley
    Oct 27, 2011 at 9:13
  • 1
    Well, strictly speaking one function which satisfies your requirements is the == operator. ;-) Oct 27, 2011 at 9:14
  • 1
    @FrerichRaabe: no, it doesn't, he does not want to check whether they are the same, but rather whether they share a prefix Oct 27, 2011 at 9:37

14 Answers 14

66

Use std::mismatch. Pass in the shorter string as the first iterator range and the longer as the second iterator range. The return is a pair of iterators, the first is the iterator in the first range and the second, in the second rage. If the first is end of the first range, then you know the the short string is the prefix of the longer string e.g.

std::string foo("foo");
std::string foobar("foobar");

auto res = std::mismatch(foo.begin(), foo.end(), foobar.begin());

if (res.first == foo.end())
{
  // foo is a prefix of foobar.
}
7
  • 3
    +1, and this can actually be extended to test share a prefix rather than is a prefix by comparing the result against begin() rather than end (and can get the actual length of the common prefix too, by substracting) Oct 27, 2011 at 9:43
  • 12
    +1, but This is dangerous if the second string is shorter because you would iterate past its end. it is therefore needed to check that foo.size() <= foobar.size().
    – Benoit
    Oct 27, 2011 at 12:53
  • 1
    This is neat, but James Kanze's solution of using std::equal is simpler.
    – Cassie Dee
    Oct 9, 2013 at 15:41
  • 3
    @Benoit Note, I think your concern regarding size has been addressed in C++14. See comments on Return Value for mismatch. Mar 17, 2016 at 18:48
  • 1
    No need for mismatch() on iterators, just use compare(). Nov 3, 2021 at 20:51
28

This is both efficient and convenient:

str.compare(0, pre.size(), pre) == 0

compare is fast because it uses the fast traits::compare method and doesn't have to copy any data.

Here, it will compare std::min(str.size(), pre.size()) characters but if the characters in the two ranges are equal it also checks the length of pre and returns a non-zero value if pre is longer than this.

See the documentation at cplusplus.com.

I've written a test program that uses this code to compare prefixes and strings given on the command line.

7
  • 1
    Why you need a.size() >= b.size()? compare() will handle that as well.
    – ony
    Jan 28, 2015 at 18:35
  • Because a.compare will stop when it reaches the end of a and won't look at the remaining characters of b. b isn't a prefix of a if it contains extra characters at the end. Apr 13, 2019 at 0:10
  • I've changed the variable names to make this easier to understand. Apr 13, 2019 at 0:10
  • 2
    @ony You're right! The size comparison isn't needed. I've just checked the docs at cplusplus.com/reference/string/string/compare, and compare will return 0 only if the two character ranges being compared are the same length. If str is shorter than pre, compare will return a negative value (-1 in my testing). I'll edit my answer, but you should have a share of the credit. However, the best I can do is to vote up your comment. Apr 13, 2019 at 0:26
  • 1
    This is the best answer!
    – jlstr
    Feb 1, 2021 at 19:01
21

If you know which string is shorter, the procedure is simple, just use std::equal with the shorter string first. If you don't, something like the following should work:

bool
unorderIsPrefix( std::string const& lhs, std::string const& rhs )
{
    return std::equal(
        lhs.begin(),
        lhs.begin() + std::min( lhs.size(), rhs.size() ),
        rhs.begin() );
}
1
  • This will not always give you the correct answer. This will return whether either of the strings is a prefix of another one. Jul 12, 2023 at 21:25
18

std::string(X).find(Y) is zero if and only if Y is a prefix of X

4
  • 4
    It's probably not the most efficient. The compiler would need to inline it, or else it must search for Y at non-zero offsets too.
    – MSalters
    Oct 27, 2011 at 9:18
  • 5
    This is concise, but potentially inefficient (imagine if X is very long and Y is not the prefix of X). Oct 27, 2011 at 9:19
  • 1
    @FrerichRaabe: That's why I commented on this myself. A good optimizer will spot the comparison with zero, find that the comparand corresponds to the index variable used in the preceding for loop, and replace the for loop by an if statement.
    – MSalters
    Oct 27, 2011 at 13:16
  • 1
    Message from the future: Use std::string_view :)
    – Rakete1111
    Jun 22, 2019 at 13:26
14

After C++20, we can use starts_with to check if a string begins with given prefix.

str.starts_with(prefix)

Also, there is ends_with to check suffix

10

With string::compare, you should be able to write something like:

bool match = (0==s1.compare(0, min(s1.length(), s2.length()), s2,0,min(s1.length(),s2.length())));

Alternatively, in case we don't want to use the length() member function:

bool isPrefix(string const& s1, string const&s2)
{
    const char*p = s1.c_str();
    const char*q = s2.c_str();
    while (*p&&*q)
        if (*p++!=*q++)
            return false;
    return true;
}
9
  • This is potentially inefficient if string1 is very long - calling length() is O(n) and there's no need to know the exact length of the string. You only care if it's long enough or not. Oct 27, 2011 at 9:21
  • 4
    .length() is O(n) ? Are you by any chance looking at the character_traits table?
    – MSalters
    Oct 27, 2011 at 9:27
  • 1
    @Frerich: I admit, I didn't know that. But then again, it's probably O(1) on most current compilers. Alternatively, you could just start at the beginning, and compare chars until one of them is \0.
    – Vlad
    Oct 27, 2011 at 9:40
  • 4
    In C++11, length() must take constant time; in C++03, it "should". Oct 27, 2011 at 9:52
  • 3
    @FrerichRaabe: Rationale 1) string needs to know begin() and end() in constant time, the iterators are random, so they can be substracted in constant time, and the difference is the size of the string, to it must be known in constant time. Rationale 2) unless the string is implemented with ropes (forbidden in C++11, not implemented in any known current standard library implementation), the memory is contiguous, and that means that knowing begin() and end() and knowing size() is equivalent, you need to store two of the three and the other can be calculated in constant time. Oct 27, 2011 at 10:56
6

If you can reasonably ignore any multi-byte encodings (say, UTF-8) then you can use strncmp for this:

// Yields true if the string 's' starts with the string 't'.
bool startsWith( const std::string &s, const std::string &t )
{
    return strncmp( s.c_str(), t.c_str(), t.size() ) == 0;
}

If you insist on using a fancy C++ version, you can use the std::equal algorithm (with the added benefit that your function also works for other collections, not just strings):

// Yields true if the string 's' starts with the string 't'.
template <class T>
bool startsWith( const T &s, const T &t )
{
    return s.size() >= t.size() &&
           std::equal( t.begin(), t.end(), s.begin() );
}
2
  • With your std::equal solution, what happens when s is shorter than t? It appears that it could read past the end of s.
    – teambob
    Oct 18, 2012 at 0:40
  • @teambob: You're right; I augmented the answer to check the sizes of the two strings. Oct 18, 2012 at 7:37
5

How about simply:

bool prefix(const std::string& a, const std::string& b) {
  if (a.size() > b.size()) {
    return a.substr(0,b.size()) == b;
  }
  else {
    return b.substr(0,a.size()) == a;
  }
}

C++ not C, safe, simple, efficient.

Tested with:

#include <string>
#include <iostream>

bool prefix(const std::string& a, const std::string& b);

int main() {
  const std::string t1 = "test";
  const std::string t2 = "testing";
  const std::string t3 = "hello";
  const std::string t4 = "hello world";
  std::cout << prefix(t1,t2) << "," << prefix(t2,t1) << std::endl;
  std::cout << prefix(t3,t4) << "," << prefix(t4,t3) << std::endl;
  std::cout << prefix(t1,t4) << "," << prefix(t4,t1) << std::endl;
  std::cout << prefix(t1,t3) << "," << prefix(t3,t1) << std::endl;

}

If you have C++17 you can write a better version of this, using std::string_view instead:

#include <string>
#include <string_view>

bool prefix(const std::string& a, const std::string& b) {
  if (a.size() > b.size()) {
    return std::string_view(a.c_str(),b.size()) == b;
  }
  else {
    return std::string_view(b.c_str(),a.size()) == a;
  }
}

With g++ 7 at -O3 this collapses to a single memcmp call, which is a fairly substantial improvement over the older version.

6
  • Why std::for_each + lambda, instead of the much less noisy ranged for loop? Oct 27, 2011 at 12:49
  • @R.MartinhoFernandes - removed. I only added that bit to show calling it with a bigger list.
    – Flexo
    Oct 27, 2011 at 12:54
  • This function would report that an empty string contains every other string as its prefix. For a prefix function, it does not make sense to make it symmetric.
    – Tali
    Nov 2, 2017 at 10:41
  • 1
    This method is complex and inefficient. It always creates temporary string objects potentially involving heap memory allocation and may throw. Apr 11, 2021 at 19:09
  • 1
    I'd definitely use string_view if I wrote this answer again now.
    – Flexo
    Apr 13, 2021 at 19:41
3

Easiest way is to use substr() and compare() member functions:

string str = "Foobar";
string prefix = "Foo";

if(str.substr(0, prefix.size()).compare(prefix) == 0) cout<<"Found!";
2
  • 1
    The substr operation typically makes a copy of the data, so this isn't as efficient as it could be. Feb 26, 2014 at 21:34
  • 2
    if you are going to use substr() you can simply write str.substr(0, prefix.size()) == prefix
    – ony
    Jan 28, 2015 at 18:36
1

str1.find(str2) returns 0 if entire str2 is found at the index 0 of str1:

#include <string>
#include <iostream>

// does str1 have str2 as prefix?
bool StartsWith(const std::string& str1, const std::string& str2)
{   
    return (str1.find(str2)) ? false : true;
}

// is one of the strings prefix of the another?
bool IsOnePrefixOfAnother(const std::string& str1, const std::string& str2)
{   
    return (str1.find(str2) && str2.find(str1)) ? false : true;
}

int main()
{
    std::string str1("String");
    std::string str2("String:");
    std::string str3("OtherString");

    if(StartsWith(str2, str1))
    {
        std::cout << "str2 starts with str1" << std::endl;      
    }
    else
    {
        std::cout << "str2 does not start with str1" << std::endl;
    }

    if(StartsWith(str3, str1))
    {
        std::cout << "str3 starts with str1" << std::endl;      
    }
    else
    {
        std::cout << "str3 does not start with str1" << std::endl;
    }

        if(IsOnePrefixOfAnother(str2, str1))
        {
            std::cout << "one is prefix of another" << std::endl;      
        }
        else
        {
            std::cout << "one is not prefix of another" << std::endl;
        }

        if(IsOnePrefixOfAnother(str3, str1))
        {
            std::cout << "one is prefix of another" << std::endl;      
        }
        else
        {
            std::cout << "one is not prefix of another" << std::endl;
        }

    return 0;
}

Output:

  str2 starts with str1
  str3 does not start with str1
  one is prefix of another
  one is not prefix of another
1

What's wrong with the "find" and checking the result for position 0 ?

string a = "String";
string b = "String:";

if(b.find(a) == 0)
{
// Prefix

}
else
{
// No Prefix
}
1
  • 1
    find searches through the entire string and compare does it better.
    – ProgramCpp
    Sep 8, 2015 at 11:37
1

I think strncmp is the closest to what you're looking for.

Though, if reworded, you may be looking for strstr(s2,s1)==s2, which is not necessarily the most performant way to do that. But you do not want to work out n ;-)

Okay, okay, the c++ version would be !s1.find(s2).

Okay, you can make it even more c++, something like this: std::mismatch(s1.begin(),s1.end(),s2.begin()).first==s1.end().

2
  • 3
    The question is tagged as C++, not C.
    – Paul R
    Oct 27, 2011 at 9:20
  • .c_str() is not that hard to call :) Oct 27, 2011 at 9:21
1

You can use this:

for c++14 or less

bool has_prefix
    (const std::string& str, const std::string& prefix)  {
    return str.find(prefix, 0) == 0;
}

for c++17

//it's a little faster
auto has_prefix
    (const std::string& str, const std::string_view& prefix) -> decltype(str.find(prefix) == 0) {
    return str.find(prefix, 0) == 0;
}
2
  • 2
    Wouldn't this be considerably slower than some other methods if the string is not prefixed and str is longer than prefix? Since the find() method will search for any instance of prefix in str, even if it is not the at offset 0. E.g., checking "bbbbbbba" for prefix "a" would need to search the entire string, find the final "a", then return false because it is not at offset zero, rather than return false after comparing only the first character.
    – TrentP
    May 15, 2019 at 19:46
  • @TrentP yes. Using rfind() instead would fix this, as suggested in the accepted answer to the question of which this is a dup: stackoverflow.com/questions/1878001/…
    – Don Hatch
    Nov 22, 2020 at 18:28
1
bool IsPrefix(const std::string& prefix, const std::string& whole)
{
  return whole.size() >= prefix.size() && whole.compare(0, prefix.size(), prefix) == 0;
}
2
  • 1
    This is a duplicate of a previously-submitted answer and uses a length comparison that was determined to be unnecessary by the comments on that answer. Sep 24, 2019 at 15:41
  • 1
    I downvoted in agreement with @NeilMayhew, but on further reflection, I disagree with this downvote (which is now unfortunately locked in). If I'm not mistaken, the initial test is necessary (for performance), and the comments in that answer saying otherwise are wrong. See my reply on that thread.
    – Don Hatch
    Nov 22, 2020 at 16:40

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