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namespace boost { namespace bimap { template< class KeyType > struct vector_of; struct vector_of_relation; } // namespace bimap } // namespace boost
vector_of views are free-order sequences with constant time positional
access and random access iterators. Elements in a vector_of view are by
default sorted according to their order of insertion: this means that new
elements inserted through a different view of the bimap
are appended to the end of the vector_of view; additionally, facilities
are provided for further rearrangement of the elements. The public interface
of vector_of views includes that of list_of views, with differences in
the complexity of the operations, plus extra operations for positional
access (operator[]
and at())
and for capacity handling. Validity of iterators and references to elements
is preserved in all operations, regardless of the capacity status.
As is the case with list_of views, vector_of views have the following limitations with respect to STL sequence containers:
Having these restrictions into account, vector of views are models of Random Access Container and Back Insertion Sequence. Although these views do not model Front Insertion Sequence, because front insertion and deletion take linear time, front operations are nonetheless provided to match the interface of list_of views. We only describe those types and operations that are either not present in the concepts modeled or do not exactly conform to the requirements for these types of containers.
namespace boost { namespace bimap { namespace views { template< -implementation defined parameter list- > class -implementation defined view name- { public: // types typedef -unspecified- value_type; typedef -unspecified- allocator_type; typedef -unspecified- reference; typedef -unspecified- const_reference; typedef -unspecified- iterator; typedef -unspecified- const_iterator; typedef -unspecified- size_type; typedef -unspecified- difference_type; typedef -unspecified- pointer; typedef -unspecified- const_pointer; typedef -unspecified- reverse_iterator; typedef -unspecified- const_reverse_iterator; // construct / copy / destroy this_type & operator=(this_type & x); template <class InputIterator> void assign(InputIterator first, InputIterator last); void assign(size_type n, const value_type & value); allocator_type get_allocator() const; // iterators iterator begin(); const_iterator begin() const; iterator end(); const_iterator end() const; reverse_iterator rbegin(); const_reverse_iterator rbegin() const; reverse_iterator rend(); const_reverse_iterator rend() const; // capacity bool empty() const; size_type size() const; size_type max_size() const; size_type capacity() const; void reserve(size_type m); void resize(size_type n, const value_type & x = value_type()); // access const_reference operator[](size_type n) const; const_reference at(size_type n) const; const_reference front() const; const_reference back() const; // modifiers std::pair<iterator,bool> push_front(const value_type & x); void pop_front(); std::pair<iterator,bool> push_back(const value_type & x); void pop_back(); std::pair<iterator,bool> insert(iterator position, const value_type & x); void insert(iterator position, size_type m, const value_type & x); template<typename InputIterator> void insert(iterator position, InputIterator first, InputIterator last); iterator erase(iterator position); iterator erase(iterator first, iterator last); bool replace(iterator position, const value_type & x); template<typename Modifier> bool modify(iterator position, Modifier mod); void clear(); // list operations void splice(iterator position, this_type & x); void splice(iterator position, this_type & x, iterator i); void splice( iterator position, this_type & x, iterator first, iterator last); void remove(const value_type & value); template<typename Predicate> void remove_if(Predicate pred); void unique(); template <class BinaryPredicate> void unique(BinaryPredicate binary_pred); void merge(this_type & x); template <typename Compare> void merge(this_type & x, Compare comp); void sort(); template <typename Compare> void sort(Compare comp); void reverse(); // rearrange operations void relocate(iterator position, iterator i); void relocate(iterator position, iterator first, iterator last); template<typename InputIterator> void rearrange(InputIterator first); }; // view comparison bool operator==(const this_type & v1, const this_type & v2 ); bool operator< (const this_type & v1, const this_type & v2 ); bool operator!=(const this_type & v1, const this_type & v2 ); bool operator> (const this_type & v1, const this_type & v2 ); bool operator>=(const this_type & v1, const this_type & v2 ); bool operator<=(const this_type & v1, const this_type & v2 ); } // namespace views } // namespace bimap } // namespace boost
In the case of a bimap< vector_of<Left>, ... >
In the set view:
typedef signature-compatible with relation< Left, ... > key_type; typedef signature-compatible with relation< Left, ... > value_type;
In the left map view:
typedef Left key_type; typedef ... data_type; typedef signature-compatible with std::pair< Left, ... > value_type;
In the right map view:
typedef ... key_type; typedef Left data_type; typedef signature-compatible with std::pair< ... , Left > value_type;
Here and in the descriptions of operations of vector_of
views, we adopt the scheme outlined in the complexity
signature section. The complexity signature of vector_of
view is:
c(n) = n * log(n),
i(n) = 1
(amortized constant),
h(n) = 1 (amortized constant),
d(n) = m,
where m is the distance from the deleted element to the end of the
sequence,
r(n) = 1
(constant),
m(n) = 1
(constant).
The following expressions are also used as a convenience for writing down some of the complexity formulas:
shl(a,b) = a+b
if a is nonzero, 0 otherwise.
rel(a,b,c) =
if a<b, c-a,
else a-b,
(shl and rel stand for shift left
and relocate, respectively.)
vector_of views are instantiated
internally to bimap and
specified by means of the set type specifiers and the bimap itself. Instantiations
are dependent on the following types:
Value from vector_of,
Allocator from bimap,
As explained in the views concepts section, views do not have public constructors or destructors. Assignment, on the other hand, is provided.
this_type & operator=(const this_type & x);
Effects:
a=b;
where a and b are thebimapobjects to which*thisandxbelong, respectively.
Returns: *this.
template <class InputIterator> void assign(InputIterator first, InputIterator last);
Requires:
InputIteratoris a model of Input Iterator over elements of typevalue_typeor a type convertible tovalue_type.firstandlastare not iterators into any view of thebimapto which this view belongs.lastis reachable fromfirst.
Effects:
clear();
insert(end(),first,last);
void assign(size_type n, const value_type & value);
Effects:
clear();
for(size_type i = 0; i < n; ++n) push_back(v);
size_type capacity() const;
Returns: The total number of elements
csuch that, whensize() < c, back insertions happen in constant time (the general case as described by i(n) is amortized constant time.)
Note: Validity of iterators and references to elements is preserved in all insertions, regardless of the capacity status.
void reserve(size_type m);
Effects: If the previous value of
capacity()was greater than or equal tom, nothing is done; otherwise, the internal capacity is changed so thatcapacity()>=m.
Complexity: If the capacity is not changed, constant; otherwise O(n).
Exception safety: If the capacity is not changed, nothrow; otherwise, strong.
void resize(size_type n, const value_type & x = value_type());
Effects:
if( n > size() ) insert(end(), n-size(), x);
else if(n<size())erase(begin()+n,end());
Note: If an expansion is requested, the size of the view is not guaranteed to be n after this operation (other views may ban insertions.)
std::pair<iterator,bool> push_front(const value_type & x);
Effects: Inserts x at the beginning of the sequence if no other view of the
bimapbans the insertion.
Returns: The return value is a pairp.p.secondistrueif and only if insertion took place. On successful insertion,p.firstpoints to the element inserted; otherwise,p.firstpoints to an element that caused the insertion to be banned. Note that more than one element can be causing insertion not to be allowed.
Complexity: O(n+I(n)).
Exception safety: Strong.
std::pair<iterator,bool> push_back(const value_type & x);
Effects: Inserts
xat the end of the sequence if no other view of thebimapbans the insertion.
Returns: The return value is a pairp.p.secondistrueif and only if insertion took place. On successful insertion,p.firstpoints to the element inserted; otherwise,p.firstpoints to an element that caused the insertion to be banned. Note that more than one element can be causing insertion not to be allowed.
Complexity: O(I(n)).
Exception safety: Strong.
std::pair<iterator,bool> insert(iterator position, const value_type & x);
Requires:
positionis a valid iterator of the view.
Effects: Insertsxbefore position if insertion is allowed by all other views of thebimap.
Returns: The return value is a pairp.p.secondistrueif and only if insertion took place. On successful insertion,p.firstpoints to the element inserted; otherwise,p.firstpoints to an element that caused the insertion to be banned. Note that more than one element can be causing insertion not to be allowed.
Complexity: O(shl(end()-position,1) + I(n)).
Exception safety: Strong.
void insert(iterator position, size_type m, const value_type & x);
Requires:
positionis a valid iterator of the view.
Effects:for(size_type i = 0; i < m; ++i) insert(position, x);
Complexity: O(shl(end()-position,m) + m*I(n+m)).
template<typename InputIterator> void insert(iterator position, InputIterator first, InputIterator last);
Requires:
positionis a valid iterator of the view.InputIteratoris a model of Input Iterator over elements of typevalue_typeor a type convertible tovalue_type.firstandlastare not iterators into any view of thebimapto which this view belongs.lastis reachable fromfirst.
Effects:while(first!=last)insert(position,*first++);
Complexity: O(shl(end()-position,m) + m*I(n+m)), where m is the number of elements in[first,last).
Exception safety: Basic.
iterator erase(iterator position);
Requires:
positionis a valid dereferenceable iterator of the view.
Effects: Deletes the element pointed to byposition.
Returns: An iterator pointing to the element immediately following the one that was deleted, orend()if no such element exists.
Complexity: O(D(n)).
Exception safety: nothrow.
iterator erase(iterator first, iterator last);
Requires:
[first,last)is a valid range of the view.
Effects: Deletes the elements in[first,last).
Returns: last.
Complexity: O(m*D(n)), where m is the number of elements in[first,last).
Exception safety: nothrow.
bool replace(iterator position, const value_type & x);
Requires:
positionis a valid dereferenceable iterator of the view.
Effects: Assigns the value x to the element pointed to by position into thebimapto which the view belongs if replacing is allowed by all other views of thebimap.
Postconditions: Validity of position is preserved in all cases.
Returns:trueif the replacement took place,falseotherwise.
Complexity: O(R(n)).
Exception safety: Strong. If an exception is thrown by some user-provided operation thebimapto which the view belongs remains in its original state.
template<typename Modifier> bool modify(iterator position,Modifier mod);
Requires:
Modifieris a model of Binary Function accepting arguments of type:
Map View:first_type&andsecond_type&
Set View:left_type&andright_type&
positionis a valid dereferenceable iterator of the view.
Effects:
Map View: Callsmod(e.first,e.second)
Set View: Callsmod(e.left,e.right)
where e is the element pointed to bypositionand rearranges*positioninto all the views of thebimap. Rearrangement onvector_ofviews does not change the position of the element with respect to the view; rearrangement on other views may or might not suceed. If the rearrangement fails, the element is erased.
Postconditions: Validity ofpositionis preserved if the operation succeeds.
Returns:trueif the operation succeeded,falseotherwise.
Complexity: O(M(n)).
Exception safety: Basic. If an exception is thrown by some user-provided operation (except possiblymod), then the element pointed to by position is erased.
vector_of views replicate
the interface of list_of
views, which in turn includes the list operations provided by std::list. The syntax and behavior of these
operations exactly matches those of list_of
views, but the associated complexity bounds differ in general.
void splice(iterator position, this_type & x);
Requires:
positionis a valid iterator of the view.&x!=this.
Effects: Inserts the contents ofxbefore position, in the same order as they were inx. Those elements successfully inserted are erased fromx.
Complexity: O(shl(end()-position,x.size()) + x.size()*I(n+x.size()) + x.size()*D(x.size())).
Exception safety: Basic.
void splice(iterator position, this_type & x,iterator i);
Requires:
positionis a valid iterator of the view.iis a valid dereferenceable iteratorx.
Effects: Inserts the element pointed to byibeforeposition: if insertion is successful, the element is erased fromx. In the special case&x==this, no copy or deletion is performed, and the operation is always successful. Ifposition==i, no operation is performed.
Postconditions: If&x==this, no iterator or reference is invalidated.
Complexity: If&x==this, O(rel(position,i,i+1)); otherwise O(shl(end()-position,1) + I(n) + D(n)).
Exception safety: If&x==this, nothrow; otherwise, strong.
void splice(iterator position, this_type & x, iterator first, iterator last);
Requires:
positionis a valid iterator of the view.firstandlastare valid iterators ofx.lastis reachable fromfirst.positionis not in the range[first,last).
Effects: For each element in the range[first,last), insertion is tried beforeposition; if the operation is successful, the element is erased fromx. In the special case&x==this, no copy or deletion is performed, and insertions are always successful.
Postconditions: If&x==this, no iterator or reference is invalidated.
Complexity: If&x==this, O(rel(position,first,last)); otherwise O(shl(end()-position,m) + m*I(n+m) + m*D(x.size())) where m is the number of elements in[first,last).
Exception safety: If&x==this, nothrow; otherwise, basic.
void remove(const value_type & value);
Effects: Erases all elements of the view which compare equal to
value.
Complexity: O(n + m*D(n)), where m is the number of elements erased.
Exception safety: Basic.
template<typename Predicate> void remove_if(Predicate pred);
Effects: Erases all elements
xof the view for whichpred(x)holds.
Complexity: O(n + m*D(n)), where m is the number of elements erased.
Exception safety: Basic.
void unique();
Effects: Eliminates all but the first element from every consecutive group of equal elements referred to by the iterator
iin the range[first+1,last)for which*i==*(i-1).
Complexity: O(n + m*D(n)), where m is the number of elements erased.
Exception safety: Basic.
template <class BinaryPredicate> void unique(BinaryPredicate binary_pred);
Effects: Eliminates all but the first element from every consecutive group of elements referred to by the iterator i in the range
[first+1,last)for whichbinary_pred(*i, *(i-1))holds.
Complexity: O(n + m*D(n)), where m is the number of elements erased.
Exception safety: Basic.
void merge(this_type & x);
Requires:
std::less<value_type>is a Strict Weak Ordering overvalue_type. Both the view andxare sorted according tostd::less<value_type>.
Effects: Attempts to insert every element of x into the corresponding position of the view (according to the order). Elements successfully inserted are erased fromx. The resulting sequence is stable, i.e. equivalent elements of either container preserve their relative position. In the special case&x==this, no operation is performed.
Postconditions: Elements in the view and remaining elements inxare sorted. Validity of iterators to the view and of non-erased elements ofxreferences is preserved.
Complexity: If&x==this, constant; otherwise O(n + x.size()*I(n+x.size()) + x.size()*D(x.size())).
Exception safety: If&x==this, nothrow; otherwise, basic.
template <typename Compare> void merge(this_type & x, Compare comp);
Requires:
Compareis a Strict Weak Ordering overvalue_type. Both the view andxare sorted according to comp.
Effects: Attempts to insert every element ofxinto the corresponding position of the view (according tocomp). Elements successfully inserted are erased fromx. The resulting sequence is stable, i.e. equivalent elements of either container preserve their relative position. In the special case&x==this, no operation is performed.
Postconditions: Elements in the view and remaining elements inxare sorted according tocomp. Validity of iterators to the view and of non-erased elements ofxreferences is preserved.
Complexity: If&x==this, constant; otherwise O(n + x.size()*I(n+x.size()) + x.size()*D(x.size())).
Exception safety: If&x==this, nothrow; otherwise, basic.
void sort();
Requires:
std::less<value_type>is a Strict Weak Ordering overvalue_type.
Effects: Sorts the view according tostd::less<value_type>. The sorting is stable, i.e. equivalent elements preserve their relative position.
Postconditions: Validity of iterators and references is preserved.
Complexity: O(n*log(n)).
Exception safety: Basic.
template <typename Compare> void sort(Compare comp);
Requires: Compare is a Strict Weak Ordering over
value_type.
Effects: Sorts the view according tocomp. The sorting is stable, i.e. equivalent elements preserve their relative position.
Postconditions: Validity of iterators and references is preserved.
Complexity: O(n*log(n)).
Exception safety: Basic.
void reverse();
Effects: Reverses the order of the elements in the view.
Postconditions: Validity of iterators and references is preserved.
Complexity: O(n).
Exception safety: nothrow.
These operations, without counterpart in std::list
(although splice provides partially overlapping functionality), perform
individual and global repositioning of elements inside the index.
void relocate(iterator position, iterator i);
Requires:
positionis a valid iterator of the view.iis a valid dereferenceable iterator of the view.
Effects: Inserts the element pointed to byibeforeposition. Ifposition==i, no operation is performed.
Postconditions: No iterator or reference is invalidated.
Complexity: Constant.
Exception safety: nothrow.
void relocate(iterator position, iterator first, iterator last);
Requires:
positionis a valid iterator of the view.firstandlastare valid iterators of the view.lastis reachable fromfirst.positionis not in the range[first,last).
Effects: The range of elements[first,last)is repositioned just beforeposition.
Postconditions: No iterator or reference is invalidated.
Complexity: Constant.
Exception safety: nothrow.
Views cannot be serialized on their own, but only as part of the bimap into which they are embedded.
In describing the additional preconditions and guarantees associated
to vector_of views with
respect to serialization of their embedding containers, we use the concepts
defined in the bimap
serialization section.
Operation: saving of a bimap b to an output archive (XML archive)
ar.
Requires: No additional requirements to those imposed by the container.
Operation: loading of a bimap b' from an input archive (XML
archive) ar.
Requires: No additional requirements to those imposed by the container.
Postconditions: On successful loading, each of the elements of[begin(), end())is a restored copy of the corresponding element in[m.get<i>().begin(), m.get<i>().end()), whereiis the position of thevector_ofview in the container.
Operation: saving of an iterator or const_iterator it to an output archive (XML archive)
ar.
Requires: it is a valid iterator of the view. The associated
bimaphas been previously saved.
Operation: loading of an iterator or const_iterator it' from an input archive (XML archive)
ar.
Postconditions: On successful loading, if it was dereferenceable then
*it' is the restored copy of*it, otherwiseit'==end().
Note: It is allowed that it be aconst_iteratorand the restoredit' aniterator, or viceversa.
| Copyright © 2006 Matias Capeletto |