C++ zlib deflate/inflate 和 z_stream 参数

在我了解（在一些帮助下...）zlib 库的压缩和解压缩功能如何工作之后，我现在尝试了解 deflate 和 inflate 如何工作。据我了解，compress 用于一次调用，而 deflate 可以调用多次。

有了一个带有 Particle 结构（坐标 x、y、z）的简单程序，我可以毫无错误地缩小我的数据（获得 Z_STREAM_END 响应），然后用另一个 z_stream 对象（也有 Z_STREAM_END 响应）来膨胀它们。但是当我尝试从 inflate 响应中显示数据时，我可以获得结构的 x 和 y 坐标，但不能获得第三个坐标 (z)。

我认为这是由于我为 z_stream 对象提供的 inflate 参数不正确，但我找不到哪些参数。据我了解阅读文档和示例，这就是我认为 z_stream 的工作方式（这只是一个示例）：

// Here i give a total memory size for the output buffer used by deflate func
#define CHUNK 16384

struct Particle
{
    float x;
    float y;
    float z;
};

...

// An element to get a single particle and give it to deflate func
Bytef *dataOriginal = (Bytef*)malloc( sizeof(Particle) );

// This var will be used to pass compressed data
Bytef *dataCompressed = (Bytef*)malloc( CHUNK );

z_stream strm;
strm.zalloc = Z_NULL;
strm.zfree = Z_NULL;
strm.opaque = Z_NULL;
deflateInit(&strm, Z_DEFAULT_COMPRESSION);

strm.avail_out = CHUNK;
strm.next_out = dataCompressed;

int nbrLoop = 2;
int spaceUsed = 0;
int flush;
Particle p;

for (var i = 0; i<nbrLoop; i++){
    // set all values equal to 0
    memset( &p, 0, sizeof(Particle) );

    // insert some random values
    p.x = (i+1) * 1;
    p.y = (i+1) * 3;
    p.z = (i+1) * 7;

    // copy this values in a Bytef* elements
    memcpy( dataOriginal, &p, sizeof(Particle) );


    strm.avail_in = sizeof(dataOriginal);
    strm.next_in = dataOriginal;

    // If it's the last particle:
    if(i == nbrLoop - 1){
    flush = Z_FINISH;
    }
    else{
        flush = Z_NO_FLUSH;
    }

    int response = deflate(&strm, flush);

    // I don't get any errors here
    // EDIT : Get Z_OK at first loop, then Z_STREAM_END at second (last)
    if( res == Z_STREAM_END ){
        spaceUsed = CHUNK - strm.avail_out;
    }
}

deflateEnd(&strm);

// Trying to get back my data
Bytef *decomp = (Bytef*)malloc( sizeof(Particle) );

z_stream strmInflate;
strmInflate.zalloc = Z_NULL;
strmInflate.zfree = Z_NULL;
strmInflate.opaque = Z_NULL;
inflateInit(&strmInflate);

// data I want to get at the next inflate
strmInflate.avail_in = sizeof(Particle);
strmInflate.next_in = dataCompressed;

// Two particles were compressed, so I need to get back two
strmInflate.avail_out = sizeof(Particle) * 2;
strmInflate.next_out = decomp;

int response = inflate( &strmInflate, Z_NO_FLUSH );
// No error here,
// EDIT : Get Z_OK

inflateEnd( &strmInflate );

Particle testP;
memset( &testP, 0, sizeof(Particle) );
memcpy( &testP, decomp, sizeof(Particle) );

std::cout << testP.x << std::endl; // display 1 OK
std::cout << testP.y << std::endl; // display 3 OK
std::cout << testP.z << std::endl; // display 0 NOT OK

此外，我认为第二次调用 inflate 将允许我恢复在 for 循环中创建的第二个粒子的数据，但我无法检索它。

预先感谢您的帮助！