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I guess my brain just threw an out of memory exception and crashed, My problem is I have a class member array of SYSTEMTIME size 3 which is user defined (read from a .lua)

SYSTEMTIME m_MatchTime[3];

Then it's read this way from the file:

m_MatchTime[0].wDayOfWeek = static_cast<WORD>( m_Lua.GetGlobalNumber( "FirstDay" ) );
m_MatchTime[0].wHour = static_cast<WORD>( m_Lua.GetGlobalNumber( "FirstHour" ) );
m_MatchTime[0].wMinute  = static_cast<WORD>( m_Lua.GetGlobalNumber( "FirstMinute" ) );

m_MatchTime[1].wDayOfWeek = static_cast<WORD>( m_Lua.GetGlobalNumber( "SecondDay" ) );
m_MatchTime[1].wHour = static_cast<WORD>( m_Lua.GetGlobalNumber( "SecondHour" ) );
m_MatchTime[1].wMinute  = static_cast<WORD>( m_Lua.GetGlobalNumber( "SecondMinute" ) );

m_MatchTime[2].wDayOfWeek = static_cast<WORD>( m_Lua.GetGlobalNumber( "ThirdDay" ) );
m_MatchTime[2].wHour = static_cast<WORD>( m_Lua.GetGlobalNumber( "ThirdHour" ) );
m_MatchTime[2].wMinute  = static_cast<WORD>( m_Lua.GetGlobalNumber( "ThirdMinute" ) );

now I have a method:

SYSTEMTIME cTime;
GetLocalTime( &cTime );

I must calculate which from the three user defined times is BEFORE and closer to the current time, then calculate the remaining time to it, (please notice that Sunday = 0, Saturday = 6, also note that only wDayOfWeek, wHour and wMinute must be compared to get to the closest )

Edit: Now I'm awarding 500bounty for a solution, please note the example of what I want,

Today: Day 4, Hour 3, Minute 0,
Date: Day 5, Hour 5, Minute 30
The remaining time until date is: 1 days, 2 hour and 30 minutes
.

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2  
Use SystemTimeToFileTime() so you can simply compare numbers. –  Hans Passant Nov 5 '12 at 21:37
    
SystemTimeToFileTime() ignores the wDayOfWeek member, and requires valid additional members (like year, month, day) that are not given according to the example code. –  Chad Nov 5 '12 at 21:42
    
From your edit: "Today: Day 4..., Date: Day 5..." Doesn't it mean that the date is after today by 1 day 2 hours and 30 minutes? –  dasblinkenlight Nov 9 '12 at 17:47
    
Could you please clarify the meaning of "BEFORE and closer"? First, from the accepted answer it appears that you are looking for the current day to be "before" one of the three days, not the other way around. Since you are giving only the week day and no day of the year, anything can be interpreted as two days - one before the current date, and one after it. For example, if today is Friday and the date is on Thursday, I can say that the day denotes the Thursday of the following week. Is this interpretation correct? –  dasblinkenlight Nov 9 '12 at 17:58
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5 Answers

Given the problem domain, it appears that enforcing a strict ordering of times is not necessary (or even desirable), you just want to find which of a set of times is closest to a given sentinel value. This will require linear complexity, but is easy achievable.

I suggest calculating the time difference from a known epoch, in this case, Sunday 00:00:00 in seconds, then comparing the differences of each time from that point to see which are closest.

#include <Windows.h>
#include <algorithm>
#include <iostream>

long seconds_from_sunday_epoch(const SYSTEMTIME& t)
{
   size_t seconds = t.wDayOfWeek * 86400;
   seconds += t.wHour * 3600;
   seconds += t.wMinute * 60;
   return seconds;
}

size_t timediff_2(const SYSTEMTIME& t0, const SYSTEMTIME& t1)
{
   size_t seconds_diff = std::abs(
      seconds_from_sunday_epoch(t0) -
      seconds_from_sunday_epoch(t1));

   return seconds_diff;
}

int main()
{
   SYSTEMTIME m_MatchTime[3];


   // Monday: 00:00
   m_MatchTime[0].wDayOfWeek = 1;
   m_MatchTime[0].wHour = 0;
   m_MatchTime[0].wMinute = 0;

   // Sunday: 01:00
   m_MatchTime[1].wDayOfWeek = 0;
   m_MatchTime[1].wHour = 1;
   m_MatchTime[1].wMinute = 0;

   // Wednesday: 15:30
   m_MatchTime[2].wDayOfWeek = 3;
   m_MatchTime[2].wHour = 15;
   m_MatchTime[2].wMinute = 30;

   // Sunday 23:00
   SYSTEMTIME cTime;
   cTime.wDayOfWeek = 0;
   cTime.wHour = 23;
   cTime.wMinute = 0;

   std::cout << timediff_2(cTime, m_MatchTime[0]) << "\n";
   std::cout << timediff_2(cTime, m_MatchTime[1]) << "\n";
   std::cout << timediff_2(cTime, m_MatchTime[2]) << "\n";
}
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Excellent point, fixing that (for now) is an exercise for the reader :). The issue is bigger than just Saturday/Sunday, but that presents the biggest difference change. There is also an issue for things like Friday/Monday, Thursday/Sunday, etc. –  Chad Nov 5 '12 at 21:44
    
This "bug" was too glaring not to fix. I've put in the necessary logic table for calculating the weekday difference. I haven't fully vetted it, but I think it's correct. –  Chad Nov 5 '12 at 21:55
    
Neat idea with the matrix. –  andre Nov 5 '12 at 21:59
2  
I believe the whole idea is broken. If you have some dates in the future and others in the past you will get incorrect results: ideone.com/9YTKNA –  Lol4t0 Nov 5 '12 at 22:06
    
Yes it is. Edited. –  Chad Nov 6 '12 at 15:11
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So the problem is that you are sitting on a circle and want to know wether the distance going from d1 to d2 right (remaining in the same week) or left (one value to the next thru sunday) is shorter.

First you should transform the date into a value with the formula minute+hour*60+weekday*60*24. This will give you the minute in the week.

#include <stdlib.h>
int minOfWeek (int d, int h, int m) {
  return d*60*24+h*60+m;
}

next find the min distance:

const int minutesInWeek=60*24*7;
int bestDistance (int minutes1, int minutes2) {
  int d=abs (minutes1-minutes2);
  int dNext=minutesInWeek-d;
  return d<dNext?d:dNext;
}

So calculate from your actual time the minOfWeek, feed it with all of your 3 times in week to the bestDistance and take the smallest number...

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The standard C++ library lets you solve this rather elegantly by moving the "magic" of comparing dates to a functor, and using the std::sort overload that takes a custom comparator.

Here is how you can do it with very few lines of code (link to a quick test on ideone):

class ClosestTo {
    int minute_now;
    int abs_minute(const SYSTEMTIME& t) const {
        return 60 * (24 * t.wDayOfWeek + t.wHour) + t.wMinute;
    }
    int diff_to_now(const SYSTEMTIME& t) const {
        int res = abs_minute(t) - minute_now;
        // Has the date passed this week?
       if (res < 0) {
            // Yes, the date has passed - move to next week:
            res += 7*24*60;
       }
        return res;
    }
public:
    ClosestTo(const SYSTEMTIME& now)
    :   minute_now(abs_minute(now)) {
    }
    // This is the operator the std::sort is going to call to determine ordering
    bool operator() (const SYSTEMTIME& lhs, const SYSTEMTIME& rhs) const {
        // Pick the date implying the shortest difference to minute_now
        return diff_to_now(lhs) < diff_to_now(rhs);
    }
};

That's it, really! With this comparator in hand, you can sort your three dates like this:

ClosestTo cmp(cTime);
sort(m_MatchTime, m_MatchTime+3, cmp);

Now the nearest date is at the index zero:

SYSTEMTIME &nearest = m_MatchTime[0];
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up vote 0 down vote accepted

I have came with an algorithm for the solution, I know its far from the most professional way to do it, but its flawless so far.

int main()
{
SYSTEMTIME m_MatchTime[3];


// Monday: 00:00
m_MatchTime[0].wDayOfWeek = 1;
m_MatchTime[0].wHour = 22;
m_MatchTime[0].wMinute = 4;

// Sunday: 01:00
m_MatchTime[1].wDayOfWeek = 4;
m_MatchTime[1].wHour = 1;
m_MatchTime[1].wMinute = 0;

// Wednesday: 15:30
m_MatchTime[2].wDayOfWeek = 6;
m_MatchTime[2].wHour = 15;
m_MatchTime[2].wMinute = 30;

// Sunday 23:00
SYSTEMTIME cTime;
cTime.wDayOfWeek = 3;
cTime.wHour = 14;
cTime.wMinute = 5;

/*  std::cout << timediff_2(cTime, m_MatchTime[0]) << "\n";
std::cout << timediff_2(cTime, m_MatchTime[1]) << "\n";
std::cout << timediff_2(cTime, m_MatchTime[2]) << "\n";*/

vector<size_t>m_Time;
if( cTime.wDayOfWeek == 0 )
{
    for( int i =0; i<3; i++ )
    {
        if( cTime.wDayOfWeek >= m_MatchTime[i].wDayOfWeek )
            m_Time.push_back( timediff_2(cTime, m_MatchTime[i]) );
    }

    if( m_Time.size() == 0 ) //trim right
    {
        for( int i =0; i<3; i++ )
        {
            if( cTime.wDayOfWeek <= m_MatchTime[i].wDayOfWeek )
                m_Time.push_back( timediff_2(cTime, m_MatchTime[i]) );
        }
    }
}
else
{
    for( int i =0; i<3; i++ )
    {
        if( cTime.wDayOfWeek <= m_MatchTime[i].wDayOfWeek )
            m_Time.push_back( timediff_2(cTime, m_MatchTime[i]) );
    }

    if( m_Time.size() == 0 ) //trim right
    {
        for( int i =0; i<3; i++ )
        {
            if( cTime.wDayOfWeek >= m_MatchTime[i].wDayOfWeek )
                m_Time.push_back( timediff_2(cTime, m_MatchTime[i]) );
        }
    }
}


std::sort( m_Time.begin(), m_Time.end() );

SYSTEMTIME nearest;
if( m_Time.size() > 0 )
{
    for( int l=0; l<3; l++ )
    {
        if( timediff_2( cTime, m_MatchTime[l] ) == m_Time.at(0) )
        {
            nearest = m_MatchTime[l];
            break;
        }
    }
}

unsigned int manydaysleft = howmanydaysuntil(  nearest.wDayOfWeek , cTime.wDayOfWeek );
unsigned int manyhoursleft = howmanyhoursuntil(  nearest.wHour, cTime.wHour );
if( nearest.wHour < cTime.wHour ) //manydaysleft will always be > 0
    manydaysleft--;
unsigned int manyminutesleft = howmanyminutesuntil( nearest.wMinute, cTime.wMinute );
if( nearest.wMinute < cTime.wMinute )
    manyhoursleft--;



/*cout 
    << manydaysleft << endl
    << manyhoursleft << endl
    << manyminutesleft << endl;*/

cout << "CurrentTime\n"  
    << "Day:" << cTime.wDayOfWeek
    << "Hour:" << cTime.wHour
    << "Min:" << cTime.wMinute 

    << "\nDay:" << nearest.wDayOfWeek
    << "Hour:" << nearest.wHour
    << "Min:" << nearest.wMinute

    << "\nDay:" << manydaysleft
    << "Hour:" << manyhoursleft
    << "Min:" << manyminutesleft;

    return 0;
}
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const unsigned n=3; //replace with actual array size

auto packtime = [](const SYSTEMTIME& t)->unsigned
{
    return t.wDayOfWeek*24*60 + t.wHour*60 + t.wMinute;
};
auto unpacktime = [](unsigned total)->SYSTEMTIME
{
    SYSTEMTIME ret;

    ret.wDayOfWeek = total/(60*24);
    total %= (60*24);
    ret.wHour = total/60;
    ret.wMinute = total%60;

    return ret;
};

unsigned const wraptime = 7*24*60;
unsigned targettime = packtime(cTime);

unsigned mintimedif = wraptime + 1;
unsigned mindifidx;
unsigned timedif;

for(unsigned i=0; i<n; ++i)
{
    timedif = packtime(m_MatchTime[i]);

    if(timedif < targettime)
        timedif = targettime - timedif;
    else
        timedif = wraptime - timedif + targettime;

    if(timedif < mintimedif)
    {
        mintimedif = timedif;
        mindifidx = i;
    }
}

SYSTEMTIME dif = unpacktime(mintimedif);

std::cout<<"Today: Day "<<cTime.wDayOfWeek<<" Hour "<<cTime.wHour<<" Minute "<<cTime.wMinute<<std::endl;
std::cout<<"Nearest day: Day "<<m_MatchTime[mindifidx].wDayOfWeek<<" Hour "<<m_MatchTime[mindifidx].wHour<<" Minute "<<m_MatchTime[mindifidx].wMinute<<std::endl;
std::cout<<"Difference: "<<dif.wDayOfWeek<<" days "<<dif.wHour<<" hours "<<dif.wMinute<<" minutes"<<std::endl;</code>
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