mirror of
https://github.com/FirebirdSQL/firebird.git
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273 lines
7.4 KiB
C++
273 lines
7.4 KiB
C++
/*
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* PROGRAM: Client/Server Common Code
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* MODULE: array.h
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* DESCRIPTION: dynamic array of simple elements
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*
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* The contents of this file are subject to the Interbase Public
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* License Version 1.0 (the "License"); you may not use this file
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* except in compliance with the License. You may obtain a copy
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* of the License at http://www.Inprise.com/IPL.html
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*
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* Software distributed under the License is distributed on an
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* "AS IS" basis, WITHOUT WARRANTY OF ANY KIND, either express
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* or implied. See the License for the specific language governing
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* rights and limitations under the License.
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*
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* The Original Code was created by Inprise Corporation
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* and its predecessors. Portions created by Inprise Corporation are
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* Copyright (C) Inprise Corporation.
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*
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* Created by: Alex Peshkov <peshkoff@mail.ru>
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*
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* All Rights Reserved.
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* Contributor(s): ______________________________________.
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*/
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#ifndef CLASSES_ARRAY_H
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#define CLASSES_ARRAY_H
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#include "../jrd/gdsassert.h"
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#include <string.h>
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#include "../common/classes/alloc.h"
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namespace Firebird {
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// Static part of the array
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template <typename T, int Capacity>
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class InlineStorage : public AutoStorage {
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public:
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explicit InlineStorage(MemoryPool& p) : AutoStorage(p) { }
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InlineStorage() : AutoStorage() { }
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protected:
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T* getStorage() {
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return buffer;
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}
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int getStorageSize() const {
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return Capacity;
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}
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private:
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T buffer[Capacity];
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};
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// Used when array doesn't have static part
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template <typename T>
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class EmptyStorage : public AutoStorage {
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public:
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explicit EmptyStorage(MemoryPool& p) : AutoStorage(p) { }
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EmptyStorage() : AutoStorage() { }
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protected:
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T* getStorage() { return NULL; }
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int getStorageSize() const { return 0; }
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};
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// Dynamic array of simple types
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template <typename T, typename Storage = EmptyStorage<T> >
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class Array : protected Storage {
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public:
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explicit Array(MemoryPool& p) :
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Storage(p), count(0), capacity(this->getStorageSize()), data(this->getStorage()) { }
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Array(MemoryPool& p, int InitialCapacity) :
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Storage(p), count(0), capacity(this->getStorageSize()), data(this->getStorage())
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{
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ensureCapacity(InitialCapacity);
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}
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Array() : count(0),
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capacity(this->getStorageSize()), data(this->getStorage()) { }
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explicit Array(int InitialCapacity) : count(0),
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capacity(this->getStorageSize()), data(this->getStorage())
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{
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ensureCapacity(InitialCapacity);
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}
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~Array()
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{
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freeData();
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}
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void clear() { count = 0; };
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protected:
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const T& getElement(int index) const {
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fb_assert(index >= 0 && index < count);
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return data[index];
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}
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T& getElement(int index) {
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fb_assert(index >= 0 && index < count);
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return data[index];
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}
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void freeData()
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{
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if (data != this->getStorage())
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this->getPool().deallocate(data);
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}
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public:
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Array<T, Storage>& operator =(const Array<T, Storage>& L)
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{
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ensureCapacity(L.count);
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memcpy(data, L.data, sizeof(T) * L.count);
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count = L.count;
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return *this;
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}
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const T& operator[](int index) const {
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return getElement(index);
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}
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T& operator[](int index) {
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return getElement(index);
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}
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const T& front() const {
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fb_assert(count > 0);
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return *data;
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}
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const T& back() const {
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fb_assert(count > 0);
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return *(data + count - 1);
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}
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const T* begin() const { return data; }
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const T* end() const { return data + count; }
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T& front() {
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fb_assert(count > 0);
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return *data;
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}
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T& back() {
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fb_assert(count > 0);
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return *(data + count - 1);
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}
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T* begin() { return data; }
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T* end() { return data + count; }
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void insert(int index, const T& item) {
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fb_assert(index >= 0 && index <= count);
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ensureCapacity(count + 1);
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memmove(data + index + 1, data + index, sizeof(T) * (count++ - index));
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data[index] = item;
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}
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void insert(int index, const Array<T, Storage>& L) {
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fb_assert(index >= 0 && index <= count);
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ensureCapacity(count + L.count);
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memmove(data + index + L.count, data + index, sizeof(T) * (count - index));
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memcpy(data + index, L.data, L.count);
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count += L.count;
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}
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int add(const T& item) {
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ensureCapacity(count + 1);
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data[count++] = item;
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return count;
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};
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void remove(int index) {
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fb_assert(index >= 0 && index < count);
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memmove(data + index, data + index + 1, sizeof(T) * (--count - index));
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}
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void remove(T* itr) {
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int index = itr - begin();
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fb_assert(index >= 0 && index < count);
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memmove(data + index, data + index + 1, sizeof(T) * (--count - index));
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}
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void shrink(int newCount) {
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fb_assert(newCount <= count);
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count = newCount;
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};
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// Grow size of our array and zero-initialize new items
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void grow(int newCount) {
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fb_assert(newCount >= count);
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ensureCapacity(newCount);
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memset(data + count, 0, sizeof(T) * (newCount - count));
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count = newCount;
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}
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void join(const Array<T, Storage>& L) {
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ensureCapacity(count + L.count);
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memcpy(data + count, L.data, sizeof(T) * L.count);
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count += L.count;
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}
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int getCount() const { return count; }
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int getCapacity() const { return capacity; }
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void push(const T& item) {
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add(item);
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}
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T pop() {
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fb_assert(count > 0);
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count--;
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return data[count];
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}
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// prepare array to be used as a buffer of capacity items
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T* getBuffer(int capacityL) {
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ensureCapacity(capacityL);
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count = capacityL;
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return data;
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}
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// clear array and release dinamically allocated memory
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void free()
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{
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clear();
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freeData();
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capacity = this->getStorageSize();
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data = this->getStorage();
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}
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protected:
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int count, capacity;
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T* data;
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void ensureCapacity(int newcapacity) {
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if (newcapacity > capacity) {
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if (newcapacity < capacity * 2) {
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newcapacity = capacity * 2;
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}
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T* newdata = reinterpret_cast<T*>
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(this->getPool().allocate(sizeof(T) * newcapacity
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#ifdef DEBUG_GDS_ALLOC
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, 1, __FILE__, __LINE__
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#endif
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));
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memcpy(newdata, data, sizeof(T) * count);
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freeData();
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data = newdata;
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capacity = newcapacity;
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}
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}
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};
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// Dynamic sorted array of simple objects
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template <typename Value,
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typename Storage = EmptyStorage<Value>,
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typename Key = Value,
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typename KeyOfValue = DefaultKeyValue<Value>,
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typename Cmp = DefaultComparator<Key> >
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class SortedArray : public Array<Value, Storage> {
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public:
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SortedArray(MemoryPool& p, int s) : Array<Value, Storage>(p, s) {}
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explicit SortedArray(MemoryPool& p) : Array<Value, Storage>(p) {}
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explicit SortedArray(int s) : Array<Value, Storage>(s) {}
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SortedArray() : Array<Value, Storage>() {}
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bool find(const Key& item, int& pos) const {
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int highBound = this->count, lowBound = 0;
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while (highBound > lowBound) {
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int temp = (highBound + lowBound) >> 1;
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if (Cmp::greaterThan(item, KeyOfValue::generate(this, this->data[temp])))
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lowBound = temp + 1;
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else
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highBound = temp;
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}
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pos = lowBound;
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return highBound != this->count &&
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!Cmp::greaterThan(KeyOfValue::generate(this, this->data[lowBound]), item);
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}
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int add(const Value& item) {
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int pos;
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find(KeyOfValue::generate(this, item), pos);
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insert(pos, item);
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return pos;
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}
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};
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// Nice shorthand for arrays with static part
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template <typename T, int InlineCapacity>
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class HalfStaticArray : public Array<T, InlineStorage<T, InlineCapacity> > {
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public:
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explicit HalfStaticArray(MemoryPool& p) : Array<T,InlineStorage<T, InlineCapacity> > (p) {}
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HalfStaticArray(MemoryPool& p, int InitialCapacity) :
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Array<T, InlineStorage<T, InlineCapacity> > (p, InitialCapacity) {}
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HalfStaticArray() : Array<T,InlineStorage<T, InlineCapacity> > () {}
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explicit HalfStaticArray(int InitialCapacity) :
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Array<T, InlineStorage<T, InlineCapacity> > (InitialCapacity) {}
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};
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} // namespace Firebird
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#endif // CLASSES_ARRAY_H
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