在我的程序中,我使用通过链表的基数排序来对九位数字进行排序,但由于某种原因它没有正确排序。
这就是我生成数字的方式:
void genData(int *dta, int n)
{
// generate the numbers at random
for(int i=0; i < n; i++)
dta[i] = rand()%889 + 111 + 1000*(rand()%889 + 111) + 1000000*(rand()%889 + 111);
}
这是基数排序函数:外循环运行 3 次。每组 3 位数字一次。
int radixSort(int *dta, int n, int *out)
{
// the dta array contains the data to be sorted.
// n is the number of data items in the array
// out is the array to put the sorted data
node *bucket[1000];
int count = 0;
for(int i = 0; i < n; i++)out[i] = dta[i];
for (int pass = 0; pass < 3; pass++) // outer loop
{
for(int j = 0; j < 1000; j++) // set bucket[] to all zeroes (NULL) for each pass
{
bucket[j] = NULL;
}
for(int i = 0; i < n; i++) // inner loop -- walks through the out array (which contains the data to be sorted)
{
int index = 0;
int tmp = 0;
switch(pass)
{
case 0:
index = out[i] % 1000;
break;
case 1:
tmp = out[i]/1000; // tmp = 123456
index = tmp%1000; // mid = 456// set index to the middle 3 digits
break;
case 2:
tmp = out[i]/1000; // set index to the first 3 digits
index = tmp/1000;
break;
};
//Create new head node if nothing is stored in location
if(bucket[index] == NULL)
{
node *newNode = new node(0, bucket[0]);
}
else
{
node *newNode = new node(out[i], NULL); //Created new node, stores out[i] in it
node *temp = bucket[index];
while(temp->next != NULL) // finds the tail of the Linked List
{
temp = temp->next;
count++; //For Big-O
}
temp->next = newNode; // make tail point to the new node.
}
count++; //For Big-O
} // end of the inner (i) loop
int idx = 0; // for loading the out array
for(int i = 0; i < 1000; i++) // walk through the bucket
{
if(bucket[i] == NULL)continue; // nothing was stored here so skip to the next item
// something is stored here, so it is put into the out array starting at the beginning (idx)
out[idx++] = bucket[i]->data;
if(bucket[i]->next->next != NULL || bucket[i]->next->next)
// now see if there are more nodes in the linked list that starts at bucket[i]. If there are, put their data into out[idx++]
{
out[idx++] = bucket[i]->data;
}
count++; //For Big-O
}
}// end of the outer loop pass). The output (out) from this pass becomes the input for the next pass
return count; // Again -- for Big-O
}
我认为问题可能出在我创建的新节点上。我做错了什么?
您在链表中存储数字的逻辑不正确。
以下是建议的大纲:
- 始终创建一个新节点来存储数字。
- 始终将新节点的
next指针设置为NULL。 -
在
bucket[index]中找到链表的末尾。-
如果
bucket[index]没有链表,那么您已经找到了终点。node *newNode = new node(out[i], NULL); if (bucket[index] == NULL) { // there was no linked list there before; start one now. bucket[index] = newNode; } else { // find tail of linked list and append newNode node *temp = bucket[index]; while (temp->next != NULL) { temp = temp->next; count++; //For Big-O } temp->next = newNode; // make tail point to the new node. }
-
编辑:你已经有一个while循环,它跟随链表从它的头到尾。
要从链表中获取值,您还可以从头部开始,然后按照列表直到到达尾部。 但是,当您访问列表中的每个节点时,您会得到一个值。
if (bucket[i] == NULL)continue; // nothing was stored here so skip to the next item
// if we reach this point there is at least one value stored here
// get values out
node *temp = bucket[i];
out[idx++] = temp->data;
while (temp->next != NULL)
{
temp = temp->next;
out[idx++] = temp->data;
}
但是我们可以通过do/while循环来使这个更清洁。 当您想至少做一次甚至不止一次的事情时,您会使用 do/while。 在这种情况下,如果我们运行这个循环,那是因为我们想得到至少一个数字。 所以:
if (bucket[i] == NULL)continue; // nothing was stored here so skip to the next item
// if we reach this point there is at least one value stored here
// get values out
node *temp = bucket[i];
do
{
out[idx++] = temp->data;
temp = temp->next;
}
while (temp != NULL);
使用 do/while 循环比重复在 out 中存储值的行更干净。
循环可以处理长度 0 以外的任何长度列表,并且您已经与continue进行了检查,以处理 bucket[i] 中没有链表的情况。