-4

Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation.

This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes.

E.g, "localization" will be spelled as "l10n", and "internationalization» will be spelled as "i18n.
Input:
localization
internationalization
Output:
l10n
i18n

2
  • Downvoters explain please? Commented Dec 9, 2017 at 9:26
  • Your question is off-topic because "questions asking for homework help must include a summary of the work you've done so far to solve the problem, and a description of the difficulty you are having solving it."
    – xskxzr
    Commented Dec 11, 2017 at 15:21

2 Answers 2

1
std::string s;
while (std::cin >> s)
    std::cout << s.at(0) << s.length() - 2 << s.at(s.length() - 1) << "\n";
7
  • string::front and string::back showed up in C++11. s[0], there isn't much you can do to simplify that, but s[s.length() - 1] collapses nicely into s.back(). Commented Dec 9, 2017 at 8:50
  • @user4581301 Thanks for your review(new skills get: )
    – Chen Li
    Commented Dec 9, 2017 at 8:57
  • I am of the opinion that Sam's edit is worse. Braces were removed, making it easier to inject errors and at is only useful here in the event of an empty string, impossible with >> Commented Dec 9, 2017 at 9:02
  • Because there is no risk of out of range so at is redundant?
    – Chen Li
    Commented Dec 9, 2017 at 9:04
  • My main beef is with the removal of the braces. Commented Dec 9, 2017 at 9:05
0

You can test this code:

#include <iostream>

using namespace std;

int main() {
    string str;
    while(getline(cin, str)) {
        if(str.length() == 0)
            break;
        if(str.length() >= 10)
            cout << str[0] << str.length() - 2 << str[str.length() - 1] << endl;
        else
            cout << str << endl;
    }
    return 0;
}

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