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My map is defined as such: map<string, LocationStruct> myLocations; where the key is a time string

I am only keeping 40 items in this map, and would like to drop off the last item in the map when i reach 40 items. I know that i can't do myLocations.erase(myLocations.end()), so how do i go about this?

I do intend for the last item in the map to be the oldest, and therefore FIFO. The data will be coming in rather quick (about 20Hz), so i'm hoping that the map can keep up with it. I do need to look up the data based on time, so i really do need it to be the key, but i am open to alternate methods of accomplishing this.

The format of the string is a very verbose "Thursday June 21 18:44:21:281", though i can pare that down to be the seconds since epoch for simplicity. It was my first go at it, and didn't think too much about the format yet.

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Would myLocations.erase(myLocations.rbegin()) not do the job? –  Rook Jun 21 '12 at 17:12
It sounds like, instead of a (sorted) map, you'd like some sort of fixed-length queue / priority-queue. –  kennytm Jun 21 '12 at 17:13
@Rook map<>::erase takes an iterator, and not a reverse_iterator, as its position argument. –  James Kanze Jun 21 '12 at 17:26
You should strive to treat date/times as a number in your program's logic, and only use text format for input/output purposes. –  Emile Cormier Jun 21 '12 at 18:49
Your date format is quite inconvenient. A time_t type seconds format would be significantly easier to work with. If you must use a string format for whatever reason, use a (relatively) sane and standardised system like ISO 8601, in which temporal and lexicographical sort orders would be the same. –  Rook Jun 24 '12 at 9:34

5 Answers 5

up vote 5 down vote accepted

I assume when you say "erase last element", you mean "erase oldest element".

I wouldn't use a string for times, use a date/time type instead (like unix timestamp). Then they'll be sorted by time, instead of lexicographically, and you can myLocations.erase(myLocations.begin()), since the oldest would always be at the beginning.

Even better, use a boost::circular_buffer<std::pair<timetype, LocationStruct>>, and use std::lower_bound to find elements by time. This will automatically remove the oldest for you, and has the same logorithmic complexity on finding an element by time. It's also faster when adding data. It's pretty much win all around for your situation. If you really want to avoid boost, then a std::deque fits your needs best, and gives great performance, but if you already have a working map, then staying with a std::map is probably best.

Here's how to do the find in a deque:

typedef ???? timetype;
typedef std::pair<Timetype, LocationStruct> TimeLocPair
typedef std::deque<TimeLocPair> LocationContainer;
typedef LocationContainer::const_iterator LocationIterator;

bool compareTimeLocPair(const TimeLocPair& lhs, const TimeLocPair& rhs)
{return lhs.first < rhs.first;}

LocationIterator find(const LocationContainer& cont, timetype time) {
    TimeLocPair finder(time, LocationStruct());
    LocationIterator it = std::lower_bound(cont.begin(), cont.end(), finder, compareTimeLocPair);
    if (it == cont.end() || it->first != time)
        return cont.end();
    return it;
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It depends on how the string is being stored for date It had to take care of date if say the time doesnot belong to same day , Which i have mentioned in my answer –  Invictus Jun 21 '12 at 17:17
@Ritesh: That is what I intended, but as per your confusion, I have clarified the words and provided a sample type. –  Mooing Duck Jun 21 '12 at 17:21
@Jason, if you can't or don't want to use Boost, a std::deque will work as a substitute for boost::circular_buffer. Just delete elements at the end when the FIFO reaches the maximum size. Also, be aware that boost::circular_buffer is a header-only library and I doubt it will increase the size of your executable that much. Instantiating a boost::circular_buffer template will probably add as much bloat as instantiating a std::deque. –  Emile Cormier Jun 21 '12 at 18:15
To help you decide, here is the Rationale section of circular_buffer's documentation:… –  Emile Cormier Jun 21 '12 at 18:21
@MooingDuck: I suppose switching to a deque could be considered premature optimization if he already has it almost working with map. But deep inside, it bothers me that a map is used to implement a FIFO data structure instead of a deque. :-) –  Emile Cormier Jun 21 '12 at 18:33

The most idiomatic way would be:

myLocations.erase( std::prev( myLocations.end() ) );

If you don't ha ve C++11, use the corresponding function from your toolbox.

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That assumes the strings are sorted chonologically rather than lexicographically –  Mooing Duck Jun 21 '12 at 18:02
@MooingDuck That's what he asked for: how to remove the last element. –  James Kanze Jun 22 '12 at 7:55
The question has been updated to clarify: "I do intend for the last item in the map to be the oldest, and therefore FIFO." "The format of the string is a very verbose 'Thursday June 21 18:44:21:281'... ", given that information, this answer is wrong. –  Mooing Duck Jun 22 '12 at 15:44
@MooingDuck You seem to be contradicting yourself. If the last item in the map is the oldest, then the above is correct. The format of the string is really irrelevant; it's up to the comparison function of the map to handle it correctly (although since he's worrying about speed, I'd index using a time stamp of some kind, rather than a string). –  James Kanze Jun 22 '12 at 17:34
You seem to be suggesting he use a different container type then. If so, that should be in the answer, not the comments. map<string, LocationStruct, comparitor>, with a description of how to write the comparitor. –  Mooing Duck Jun 22 '12 at 17:42

Try this, it works:

map<string, LocationStruct>::iterator it = myLocations.end();
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Well, a quick check on g++ 4.4 suggests that this works just fine:


though I must confess I don't know why it doesn't like accepting only the iterator itself.

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That passes the key of the last element, and a key is a valid thing to pass to erase. This is slow though, compared to simply passing an iterator to the last element. –  Mooing Duck Jun 21 '12 at 17:18
Because rbegin returns a reverse iterator –  K-ballo Jun 21 '12 at 17:19
Yes, I am aware of that. Hence why I actually said "I don't know why it doesn't like accepting only the iterator itself". –  Rook Jun 21 '12 at 17:20
Also, curious to know why a valid and syntactically correct answer warrants a downvote. The performance overhead of deferencing the iterator is not vast, after all. –  Rook Jun 21 '12 at 17:22
"far slower" what nonsense. –  Rook Jun 22 '12 at 10:38

Since you are Storing the time as key String . The last element (earliest by time in a day considering time from 00:00 to 24:00) will be a lower bound element and hence You can fetch the iterator like this

     `map<string, LocationStruct>::iterator it;`
      it=myLocations.lower_bound ('00:00');
      myLocations.erase ( it, it+1);

But if it belongs to different dates then you need to even consider the day and manupilate your code accordingly . As you mentioned data is coming quick enough you dont need to take the date into consideration . But The safe way here would be take the entire date in terms of second and remove the lowest one as mentioned above . That would take care even if frequency of new data arriving is pretty slow.

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He clarified the string syntax, answer needs an update. –  Mooing Duck Jun 21 '12 at 18:02
@MooingDuck Done –  Invictus Jun 22 '12 at 20:58
still doesnt handle 23:59 followed by 00:01 –  Mooing Duck Jun 23 '12 at 5:43
@MooingDuck That is Why i mentioned The safe way here would be take the entire date in terms of second and remove the lowest one as mentioned above –  Invictus Jun 23 '12 at 6:54
rereading your answer, you are correct, but the sentance before seems to contradict that advice. If you could clarify your wording (and comment so I notice), I'll remove the downvote. –  Mooing Duck Jun 23 '12 at 17:00

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