如何正确地将 uint8* 复制到 vector<Uint8>
How to copy uint8* to vector<Uint8> correctly
我正在尝试从 Uint8* 生成 Uint8 的向量,但由于某些值不相同的原因。这是我的代码。
std::vector<Uint8> wav_vector = {};
Uint8* wav_buffer_;
for (unsigned int i = 0; i < wav_length_; i++) {
wav_vector.push_back(wav_buffer_[i]);
}
然后我会尝试验证这些值:
for (unsigned int i = 0; i < wav_length_; i++){
if (wav_buffer_[i]!=wav_vector[i]){
cout<<i<<endl;
printf("Orignal Buffer %u\n", wav_buffer_[i]);
printf("Vector Buffer %u\n", wav_vector[i]);
}
}
这些是我的示例输出:
Index: 0
Orignal Buffer 208
Vector Buffer 40
Index: 1
Orignal Buffer 72
Vector Buffer 3
Index: 2
Orignal Buffer 111
Vector Buffer 183
Index: 3
Orignal Buffer 1
Vector Buffer 97
Index: 4
Orignal Buffer 0
Vector Buffer 79
Index: 5
Orignal Buffer 0
Vector Buffer 127
Index: 8
Orignal Buffer 120
Vector Buffer 40
Index: 9
Orignal Buffer 251
Vector Buffer 3
Index: 10
Orignal Buffer 182
Vector Buffer 183
Index: 16
Orignal Buffer 0
Vector Buffer 176
Index: 17
Orignal Buffer 0
Vector Buffer 200
Index: 18
Orignal Buffer 0
Vector Buffer 109
Index: 19
Orignal Buffer 0
Vector Buffer 1
Index: 24
Orignal Buffer 0
Vector Buffer 176
Index: 25
Orignal Buffer 0
Vector Buffer 200
Index: 26
Orignal Buffer 0
Vector Buffer 109
Index: 27
Orignal Buffer 0
Vector Buffer 1
Index: 32768
Orignal Buffer 16
Vector Buffer 120
任何帮助将不胜感激。
注意:
我试过了,它有效。但我想使用 for 循环,因为我有一些其他需要位移的音频格式。
std::vector<Uint8> wav_vector(&wav_buffer_[0], &wav_buffer_[wav_length_]);
看起来 std::vector 有一个可以从迭代器(或指针)复制的构造函数。
你可以这样做:
std::vector<uint8_t> my_vector(&wave_buffer[0], &wave_buffer[N]);
也许你可以试试 memcpy:
#include <iostream>
#include <vector>
int main()
{
uint8_t arr[3] = {1, 2, 3};
std::vector<uint8_t> vec(3);
memcpy(vec.data(), arr, 3);
for (auto i : vec)
std::cout << static_cast<int>(i) << " ";
std::cout << std::endl;
}
可以找到有关将数组复制到向量的更多详细信息:https://www.techiedelight.com/convert-array-vector-cpp/
希望对您有所帮助。
我正在尝试从 Uint8* 生成 Uint8 的向量,但由于某些值不相同的原因。这是我的代码。
std::vector<Uint8> wav_vector = {};
Uint8* wav_buffer_;
for (unsigned int i = 0; i < wav_length_; i++) {
wav_vector.push_back(wav_buffer_[i]);
}
然后我会尝试验证这些值:
for (unsigned int i = 0; i < wav_length_; i++){
if (wav_buffer_[i]!=wav_vector[i]){
cout<<i<<endl;
printf("Orignal Buffer %u\n", wav_buffer_[i]);
printf("Vector Buffer %u\n", wav_vector[i]);
}
}
这些是我的示例输出:
Index: 0
Orignal Buffer 208
Vector Buffer 40
Index: 1
Orignal Buffer 72
Vector Buffer 3
Index: 2
Orignal Buffer 111
Vector Buffer 183
Index: 3
Orignal Buffer 1
Vector Buffer 97
Index: 4
Orignal Buffer 0
Vector Buffer 79
Index: 5
Orignal Buffer 0
Vector Buffer 127
Index: 8
Orignal Buffer 120
Vector Buffer 40
Index: 9
Orignal Buffer 251
Vector Buffer 3
Index: 10
Orignal Buffer 182
Vector Buffer 183
Index: 16
Orignal Buffer 0
Vector Buffer 176
Index: 17
Orignal Buffer 0
Vector Buffer 200
Index: 18
Orignal Buffer 0
Vector Buffer 109
Index: 19
Orignal Buffer 0
Vector Buffer 1
Index: 24
Orignal Buffer 0
Vector Buffer 176
Index: 25
Orignal Buffer 0
Vector Buffer 200
Index: 26
Orignal Buffer 0
Vector Buffer 109
Index: 27
Orignal Buffer 0
Vector Buffer 1
Index: 32768
Orignal Buffer 16
Vector Buffer 120
任何帮助将不胜感激。
注意: 我试过了,它有效。但我想使用 for 循环,因为我有一些其他需要位移的音频格式。
std::vector<Uint8> wav_vector(&wav_buffer_[0], &wav_buffer_[wav_length_]);
看起来 std::vector 有一个可以从迭代器(或指针)复制的构造函数。
你可以这样做:
std::vector<uint8_t> my_vector(&wave_buffer[0], &wave_buffer[N]);
也许你可以试试 memcpy:
#include <iostream>
#include <vector>
int main()
{
uint8_t arr[3] = {1, 2, 3};
std::vector<uint8_t> vec(3);
memcpy(vec.data(), arr, 3);
for (auto i : vec)
std::cout << static_cast<int>(i) << " ";
std::cout << std::endl;
}
可以找到有关将数组复制到向量的更多详细信息:https://www.techiedelight.com/convert-array-vector-cpp/
希望对您有所帮助。