给定(在C++中)
char * byte_sequence;
size_t byte_sequence_length;
char * buffer;
size_t N;
假设byte_sequence并byte_sequence_length初始化为某个任意长度的字节序列(及其长度),并buffer初始化为指向N * byte_sequence_length字节,那么复制byte_sequence到buffer N时间的最简单方法是什么?STL/BOOST中有什么东西可以做这样的事吗?
例如,如果序列是"abcd",并且N是3,那么buffer最终将包含"abcdabcdabcd".
Ecl*_*pse 12
我可能会这样做:
for (int i=0; i < N; ++i)
memcpy(buffer + i * byte_sequence_length, byte_sequence, byte_sequence_length);
这假设您正在处理二进制数据并且正在跟踪长度,而不是使用'\0'终止.
如果你想要这些是c字符串,你必须分配一个额外的字节并添加'\0'到最后.给定一个c字符串和一个整数,你想这样做:
char *RepeatN(char *source, size_t n)
{
assert(n >= 0 && source != NULL);
size_t length = strlen(source) - 1;
char *buffer = new char[length*n + 1];
for (int i=0; i < n; ++i)
memcpy(buffer + i * length, source, length);
buffer[n * length] = '\0';
}
在避免指针算术的同时重复缓冲:
您可以使用std :: vector <char>或std :: string来使您更轻松.这两个容器也可以保存二进制数据.
此解决方案具有以下良好属性:
.
//Note this works even for binary data.
void appendSequenceToMyBuffer(std::string &sBuffer
, const char *byte_sequence
, int byte_sequence_length
, int N)
{
for(int i = 0; i < N; ++i)
sBuffer.append(byte_sequence, byte_sequence_length);
}
//Note: buffer == sBuffer.c_str()
备用:对于使用memcpy的二进制数据:
buffer = new char[byte_sequence_length*N];
for (int i=0; i < N; ++i)
memcpy(buffer+i*byte_sequence_length, byte_sequence, byte_sequence_length);
//...
delete[] buffer;
备用:对于使用strcpy的空终止字符串数据:
buffer = new char[byte_sequence_length*N+1];
int byte_sequence_length = strlen(byte_sequence);
for (int i=0; i < N; ++i)
strcpy(buffer+i*byte_sequence_length, byte_sequence, byte_sequence_length);
//...
delete[] buffer;
备用:如果使用单个值填充缓冲区:
buffer = new char[N];
memset(buffer, byte_value, N);
//...
delete[] buffer;