
TBR=niklas.enbom@webrtc.org Review URL: https://webrtc-codereview.appspot.com/915006 git-svn-id: http://webrtc.googlecode.com/svn/trunk@2963 4adac7df-926f-26a2-2b94-8c16560cd09d
480 lines
16 KiB
C++
480 lines
16 KiB
C++
/*
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* Copyright (c) 2011 The WebRTC project authors. All Rights Reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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#include "gtest/gtest.h"
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#include "system_wrappers/interface/list_wrapper.h"
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#include "system_wrappers/interface/scoped_ptr.h"
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using ::webrtc::ListWrapper;
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using ::webrtc::ListItem;
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using ::webrtc::scoped_ptr;
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// Note: kNumberOfElements needs to be even.
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const unsigned int kNumberOfElements = 10;
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// An opaque implementation of dynamic or statically allocated unsigned ints.
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// This class makes it possible to use the exact same code for testing of both
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// the dynamic and static implementation of ListWrapper.
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// Clarification: ListWrapper has two versions of PushBack(..). It takes an
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// unsigned integer or a void pointer. The integer implementation takes care
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// of memory management. The void pointer version expect the caller to manage
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// the memory associated with the void pointer.
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// This class works like the integer version but can be implemented on top of
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// either the integer version or void pointer version of ListWrapper.
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// Note: the non-virtual fuctions behave the same for both versions.
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class ListWrapperSimple {
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public:
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static ListWrapperSimple* Create(bool static_allocation);
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virtual ~ListWrapperSimple() {}
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// These three functions should be used for manipulating ListItems so that
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// they are the type corresponding to the underlying implementation.
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virtual unsigned int GetUnsignedItem(
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const ListItem* item) const = 0;
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virtual ListItem* CreateListItem(unsigned int item_id) = 0;
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unsigned int GetSize() const {
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return list_.GetSize();
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}
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virtual int PushBack(const unsigned int item_id) = 0;
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virtual int PushFront(const unsigned int item_id) = 0;
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virtual int PopFront() = 0;
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virtual int PopBack() = 0;
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bool Empty() const {
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return list_.Empty();
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}
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ListItem* First() const {
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return list_.First();
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}
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ListItem* Last() const {
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return list_.Last();
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}
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ListItem* Next(ListItem* item) const {
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return list_.Next(item);
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}
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ListItem* Previous(ListItem* item) const {
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return list_.Previous(item);
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}
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virtual int Erase(ListItem* item) = 0;
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int Insert(ListItem* existing_previous_item,
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ListItem* new_item) {
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const int retval = list_.Insert(existing_previous_item, new_item);
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if (retval != 0) {
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EXPECT_TRUE(DestroyListItem(new_item));
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}
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return retval;
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}
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int InsertBefore(ListItem* existing_next_item,
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ListItem* new_item) {
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const int retval = list_.InsertBefore(existing_next_item, new_item);
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if (retval != 0) {
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EXPECT_TRUE(DestroyListItem(new_item));
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}
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return retval;
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}
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protected:
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ListWrapperSimple() {}
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virtual bool DestroyListItemContent(ListItem* item) = 0;
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bool DestroyListItem(ListItem* item) {
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const bool retval = DestroyListItemContent(item);
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delete item;
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return retval;
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}
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ListWrapper list_;
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};
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void ClearList(ListWrapperSimple* list_wrapper) {
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if (list_wrapper == NULL) {
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return;
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}
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ListItem* list_item = list_wrapper->First();
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while (list_item != NULL) {
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EXPECT_EQ(list_wrapper->Erase(list_item), 0);
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list_item = list_wrapper->First();
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}
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}
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class ListWrapperStatic : public ListWrapperSimple {
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public:
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ListWrapperStatic() {}
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virtual ~ListWrapperStatic() {
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ClearList(this);
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}
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virtual unsigned int GetUnsignedItem(const ListItem* item) const {
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return item->GetUnsignedItem();
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}
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virtual ListItem* CreateListItem(unsigned int item_id) {
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return new ListItem(item_id);
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}
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virtual bool DestroyListItemContent(ListItem* item) {
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return true;
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}
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virtual int PushBack(const unsigned int item_id) {
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return list_.PushBack(item_id);
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}
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virtual int PushFront(const unsigned int item_id) {
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return list_.PushFront(item_id);
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}
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virtual int PopFront() {
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return list_.PopFront();
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}
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virtual int PopBack() {
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return list_.PopBack();
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}
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virtual int Erase(ListItem* item) {
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return list_.Erase(item);
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}
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};
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class ListWrapperDynamic : public ListWrapperSimple {
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public:
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ListWrapperDynamic() {}
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virtual ~ListWrapperDynamic() {
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ClearList(this);
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}
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virtual unsigned int GetUnsignedItem(const ListItem* item) const {
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const unsigned int* return_value_pointer =
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reinterpret_cast<unsigned int*> (item->GetItem());
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if (return_value_pointer == NULL) {
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return -1;
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}
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return *return_value_pointer;
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}
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virtual ListItem* CreateListItem(unsigned int item_id) {
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unsigned int* item_id_pointer = new unsigned int;
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if (item_id_pointer == NULL) {
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return NULL;
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}
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*item_id_pointer = item_id;
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ListItem* return_value = new ListItem(
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reinterpret_cast<void*>(item_id_pointer));
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if (return_value == NULL) {
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delete item_id_pointer;
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return NULL;
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}
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return return_value;
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}
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virtual bool DestroyListItemContent(ListItem* item) {
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if (item == NULL) {
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return false;
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}
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bool return_value = false;
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unsigned int* item_id_ptr = reinterpret_cast<unsigned int*>(
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item->GetItem());
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if (item_id_ptr != NULL) {
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return_value = true;
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delete item_id_ptr;
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}
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return return_value;
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}
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virtual int PushBack(const unsigned int item_id) {
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unsigned int* item_id_ptr = new unsigned int;
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if (item_id_ptr == NULL) {
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return -1;
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}
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*item_id_ptr = item_id;
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const int return_value = list_.PushBack(
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reinterpret_cast<void*>(item_id_ptr));
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if (return_value != 0) {
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delete item_id_ptr;
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}
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return return_value;
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}
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virtual int PushFront(const unsigned int item_id) {
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unsigned int* item_id_ptr = new unsigned int;
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if (item_id_ptr == NULL) {
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return -1;
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}
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*item_id_ptr = item_id;
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const int return_value = list_.PushFront(
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reinterpret_cast<void*>(item_id_ptr));
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if (return_value != 0) {
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delete item_id_ptr;
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}
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return return_value;
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}
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virtual int PopFront() {
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return Erase(list_.First());
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}
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virtual int PopBack() {
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return Erase(list_.Last());
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}
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virtual int Erase(ListItem* item) {
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if (item == NULL) {
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return -1;
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}
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int retval = 0;
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if (!DestroyListItemContent(item)) {
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retval = -1;
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ADD_FAILURE();
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}
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if (list_.Erase(item) != 0) {
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retval = -1;
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}
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return retval;
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}
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};
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ListWrapperSimple* ListWrapperSimple::Create(bool static_allocation) {
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if(static_allocation)
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{
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return new ListWrapperStatic();
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}
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return new ListWrapperDynamic();
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}
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ListWrapperSimple* CreateAscendingList(bool static_allocation) {
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ListWrapperSimple* return_value = ListWrapperSimple::Create(
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static_allocation);
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if (return_value == NULL) {
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return NULL;
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}
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for (unsigned int i = 0; i < kNumberOfElements; ++i) {
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if (return_value->PushBack(i) == -1) {
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ClearList(return_value);
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delete return_value;
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return NULL;
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}
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}
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return return_value;
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}
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ListWrapperSimple* CreateDescendingList(bool static_allocation) {
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ListWrapperSimple* return_value = ListWrapperSimple::Create(
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static_allocation);
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if (return_value == NULL) {
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return NULL;
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}
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for (unsigned int i = 0; i < kNumberOfElements; ++i) {
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if (return_value->PushBack(kNumberOfElements - i - 1) == -1) {
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ClearList(return_value);
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delete return_value;
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return NULL;
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}
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}
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return return_value;
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}
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// [0,kNumberOfElements - 1,1,kNumberOfElements - 2,...] (this is why
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// kNumberOfElements need to be even)
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ListWrapperSimple* CreateInterleavedList(bool static_allocation) {
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ListWrapperSimple* return_value = ListWrapperSimple::Create(
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static_allocation);
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if (return_value == NULL) {
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return NULL;
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}
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unsigned int uneven_count = 0;
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unsigned int even_count = 0;
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for (unsigned int i = 0; i < kNumberOfElements; i++) {
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unsigned int push_value = 0;
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if ((i % 2) == 0) {
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push_value = even_count;
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even_count++;
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} else {
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push_value = kNumberOfElements - uneven_count - 1;
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uneven_count++;
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}
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if (return_value->PushBack(push_value) == -1) {
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ClearList(return_value);
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delete return_value;
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return NULL;
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}
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}
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return return_value;
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}
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void PrintList(const ListWrapperSimple* list) {
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ListItem* list_item = list->First();
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printf("[");
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while (list_item != NULL)
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{
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printf("%3u", list->GetUnsignedItem(list_item));
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list_item = list->Next(list_item);
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}
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printf("]\n");
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}
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bool CompareLists(const ListWrapperSimple* lhs, const ListWrapperSimple* rhs) {
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const unsigned int list_size = lhs->GetSize();
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if (lhs->GetSize() != rhs->GetSize()) {
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return false;
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}
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if (lhs->Empty()) {
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return rhs->Empty();
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}
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unsigned int i = 0;
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ListItem* lhs_item = lhs->First();
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ListItem* rhs_item = rhs->First();
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while (i < list_size) {
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if (lhs_item == NULL) {
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return false;
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}
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if (rhs_item == NULL) {
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return false;
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}
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if (lhs->GetUnsignedItem(lhs_item) != rhs->GetUnsignedItem(rhs_item)) {
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return false;
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}
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i++;
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lhs_item = lhs->Next(lhs_item);
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rhs_item = rhs->Next(rhs_item);
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}
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return true;
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}
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TEST(ListWrapperTest,ReverseNewIntList) {
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// Create a new temporary list with elements reversed those of
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// new_int_list_
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const scoped_ptr<ListWrapperSimple> descending_list(
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CreateDescendingList(rand()%2));
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ASSERT_FALSE(descending_list.get() == NULL);
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ASSERT_FALSE(descending_list->Empty());
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ASSERT_EQ(kNumberOfElements,descending_list->GetSize());
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const scoped_ptr<ListWrapperSimple> ascending_list(
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CreateAscendingList(rand()%2));
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ASSERT_FALSE(ascending_list.get() == NULL);
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ASSERT_FALSE(ascending_list->Empty());
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ASSERT_EQ(kNumberOfElements,ascending_list->GetSize());
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scoped_ptr<ListWrapperSimple> list_to_reverse(
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ListWrapperSimple::Create(rand()%2));
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// Reverse the list using PushBack and Previous.
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for (ListItem* item = ascending_list->Last(); item != NULL;
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item = ascending_list->Previous(item)) {
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list_to_reverse->PushBack(ascending_list->GetUnsignedItem(item));
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}
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ASSERT_TRUE(CompareLists(descending_list.get(), list_to_reverse.get()));
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scoped_ptr<ListWrapperSimple> list_to_un_reverse(
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ListWrapperSimple::Create(rand()%2));
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ASSERT_FALSE(list_to_un_reverse.get() == NULL);
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// Reverse the reversed list using PushFront and Next.
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for (ListItem* item = list_to_reverse->First(); item != NULL;
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item = list_to_reverse->Next(item)) {
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list_to_un_reverse->PushFront(list_to_reverse->GetUnsignedItem(item));
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}
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ASSERT_TRUE(CompareLists(ascending_list.get(), list_to_un_reverse.get()));
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}
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TEST(ListWrapperTest,PopTest) {
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scoped_ptr<ListWrapperSimple> ascending_list(CreateAscendingList(rand()%2));
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ASSERT_FALSE(ascending_list.get() == NULL);
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ASSERT_FALSE(ascending_list->Empty());
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EXPECT_EQ(0, ascending_list->PopFront());
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EXPECT_EQ(1U, ascending_list->GetUnsignedItem(ascending_list->First()));
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EXPECT_EQ(0, ascending_list->PopBack());
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EXPECT_EQ(kNumberOfElements - 2, ascending_list->GetUnsignedItem(
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ascending_list->Last()));
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EXPECT_EQ(kNumberOfElements - 2, ascending_list->GetSize());
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}
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// Use Insert to interleave two lists.
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TEST(ListWrapperTest,InterLeaveTest) {
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scoped_ptr<ListWrapperSimple> interleave_list(
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CreateAscendingList(rand()%2));
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ASSERT_FALSE(interleave_list.get() == NULL);
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ASSERT_FALSE(interleave_list->Empty());
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scoped_ptr<ListWrapperSimple> descending_list(
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CreateDescendingList(rand()%2));
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ASSERT_FALSE(descending_list.get() == NULL);
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for (unsigned int i = 0; i < kNumberOfElements/2; ++i) {
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ASSERT_EQ(0, interleave_list->PopBack());
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ASSERT_EQ(0, descending_list->PopBack());
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}
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ASSERT_EQ(kNumberOfElements/2, interleave_list->GetSize());
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ASSERT_EQ(kNumberOfElements/2, descending_list->GetSize());
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unsigned int insert_position = kNumberOfElements/2;
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ASSERT_EQ(insert_position * 2, kNumberOfElements);
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while (!descending_list->Empty())
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{
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ListItem* item = descending_list->Last();
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ASSERT_FALSE(item == NULL);
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const unsigned int item_id = descending_list->GetUnsignedItem(item);
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ASSERT_EQ(0, descending_list->Erase(item));
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ListItem* insert_item = interleave_list->CreateListItem(item_id);
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ASSERT_FALSE(insert_item == NULL);
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item = interleave_list->First();
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ASSERT_FALSE(item == NULL);
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for (unsigned int j = 0; j < insert_position - 1; ++j) {
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item = interleave_list->Next(item);
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ASSERT_FALSE(item == NULL);
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}
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EXPECT_EQ(0, interleave_list->Insert(item, insert_item));
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--insert_position;
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}
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scoped_ptr<ListWrapperSimple> interleaved_list(
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CreateInterleavedList(rand()%2));
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ASSERT_FALSE(interleaved_list.get() == NULL);
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ASSERT_FALSE(interleaved_list->Empty());
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ASSERT_TRUE(CompareLists(interleaved_list.get(), interleave_list.get()));
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}
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// Use InsertBefore to interleave two lists.
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TEST(ListWrapperTest,InterLeaveTestII) {
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scoped_ptr<ListWrapperSimple> interleave_list(
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CreateDescendingList(rand()%2));
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ASSERT_FALSE(interleave_list.get() == NULL);
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ASSERT_FALSE(interleave_list->Empty());
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scoped_ptr<ListWrapperSimple> ascending_list(CreateAscendingList(rand()%2));
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ASSERT_FALSE(ascending_list.get() == NULL);
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for (unsigned int i = 0; i < kNumberOfElements/2; ++i) {
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ASSERT_EQ(0, interleave_list->PopBack());
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ASSERT_EQ(0, ascending_list->PopBack());
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}
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ASSERT_EQ(kNumberOfElements/2, interleave_list->GetSize());
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ASSERT_EQ(kNumberOfElements/2, ascending_list->GetSize());
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unsigned int insert_position = kNumberOfElements/2;
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ASSERT_EQ(insert_position * 2, kNumberOfElements);
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while (!ascending_list->Empty())
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{
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ListItem* item = ascending_list->Last();
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ASSERT_FALSE(item == NULL);
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const unsigned int item_id = ascending_list->GetUnsignedItem(item);
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ASSERT_EQ(0,ascending_list->Erase(item));
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ListItem* insert_item = interleave_list->CreateListItem(item_id);
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ASSERT_FALSE(insert_item == NULL);
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item = interleave_list->First();
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ASSERT_FALSE(item == NULL);
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for (unsigned int j = 0; j < insert_position - 1; ++j) {
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item = interleave_list->Next(item);
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ASSERT_FALSE(item == NULL);
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}
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EXPECT_EQ(interleave_list->InsertBefore(item, insert_item), 0);
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--insert_position;
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}
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scoped_ptr<ListWrapperSimple> interleaved_list(
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CreateInterleavedList(rand()%2));
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ASSERT_FALSE(interleaved_list.get() == NULL);
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ASSERT_FALSE(interleaved_list->Empty());
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ASSERT_TRUE(CompareLists(interleaved_list.get(), interleave_list.get()));
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}
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