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I save a given number spelled out into their respective place values into a string or vector string (two implementations).

The ones in the RHS are saved into the data structures according to the conversion:

thousands place            = "thousands"
hundreds place             = "hundreds"
ones place                 = "ones"
tens ending in -ty place   = "tensWithTy" (ten, twenty, ... ninety)
tens ending in -teen place = "tensWithTeen" (eleven to nineteen)

For example, if the input is "one thousand one hundred eleven" (1,111), the corresponding string or vector string will contain the following respectively:

std::string:              "onesthousandsoneshundredstensWithTy"
std::vector<std::string>: {"ones", "thousands", "ones", "hundreds", "tensWithTy"}

I have the following patterns to check if the input number is correct:

{ones}
{tensWithTy} | {tensWithTeen}
{tensWithTy}{ones}
...
{ones}{thousands}{ones}{hundreds}{tensWithTeen}
{ones}{thousands}{ones}{hundreds}{tensWithTy}{ones}

I would like for someone to help me improve the current system I do which utilizes string positions in the string version of the place values:

std::size_t thousandsPos = placeValueString.find("thousands");
std::size_t hundredsPos = placeValueString.find("hundreds");
std::size_t onesPos = placeValueString.find("ones");
std::size_t tensTyFormPos = placeValueString.find("tensTyForm");
std::size_t tensTeenFormPos = placeValueString.find("tensTeenForm");

bool isStringNumber = false;

if(thousandsPos != std::string::npos)
{
    if(hundredsPos != std::string::npos &&
       hundredsPos > thousandsPos)
    {
        if(tensTyFormPos != std::string::npos &&
            tensTyFormPos > hundredsPos &&
            !tensTeenFormPos)
        {
            isStringNumber = true;
        }
        else
        {
            isStringNumber = false;
        }

        if(tensTeenFormPos != std::string::npos &&
            tensTeenFormPos > hundredsPos &&
            !tensTyFormPos)
        {
            isStringNumber = true;
        }
        else
        {
            isStringNumber = false;
        }
    }
    else
    {

    }
}
else
{

}

I am still not done with the code because I think a much better approach could be done to achieve my goal. Right now I am at a loss as to find a better and more efficient way to solve this.

PS. C++98 and below compatible functions/libraries only.

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Is it tensTyForm ot tensWithTy? –  polkovnikov.ph Jun 7 '14 at 17:27

1 Answer 1

You can use a modification of parsing expression grammars.

#include <iostream>
#include <string>
using namespace std;

struct match {
    string s;
    int curr, len;
    bool result;
    match(string const & s) :
        s(s), curr(0), len(s.size()), 
        result(parse())
    {}
    bool next_is(string const & t) {
        int tsize = t.size();
        bool res = curr + tsize <= len && s.substr(curr, tsize) == t;
        if (res) curr += tsize;
        return res;
    }
    bool ended() {
        return curr == len;
    }
    bool parse() {
        int pos = curr;
        if (!(next_is("ones") && next_is("thousands")))
            curr = pos;
        pos = curr;
        if (!(next_is("ones") && next_is("hundreds")))
            curr = pos;
        pos = curr;
        if (next_is("tensWithTeen")) {
            return ended();
        } else {
            curr = pos;
        }
        next_is("tensWithTy");
        next_is("ones");
        return ended() && curr != 0;
    }
    operator bool() { return result; }
};

int main() {
    cout << match("onesthousandsoneshundredstensWithTy") << endl;
}

Live example.

For a vector<string> version just concatenate those strings.

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