crc->state = reflect(crc->state, crc->order);
}
-void crc_update(crc_t *crc, uint32_t indata, int data_width){
-
- uint32_t poly = crc->polynom;
-
- // if requested, return the initial CRC */
- if (indata == 0)
- return crc->initial_value;
-
- //reflected
+void crc_update2(crc_t *crc, uint32_t data, int data_width){
+
if (crc->refin)
- indata = reflect(indata, data_width);
+ data = reflect(data, data_width);
// Bring the next byte into the remainder.
- crc->state ^= indata << (crc->order - data_width);
+ crc->state ^= data << (crc->order - data_width);
for( uint8_t bit = data_width; bit > 0; --bit) {
- // Try to divide the current data bit.
+
if (crc->state & crc->topbit)
- crc->state = (crc->state << 1) ^ poly;
+ crc->state = (crc->state << 1) ^ crc->polynom;
else
crc->state = (crc->state << 1);
}
- return crc ^ model->xorout;
}
-void crc_update2(crc_t *crc, uint32_t data, int data_width)
+void crc_update(crc_t *crc, uint32_t data, int data_width)
{
if (crc->refin)
data = reflect(data, data_width);
crc_t crc;
crc_init_ref(&crc, 8, 0x63, 0x55, 0, TRUE, TRUE);
for ( int i = 0; i < size; ++i)
- crc_update(&crc, buff[i], 8);
+ crc_update2(&crc, buff[i], 8);
return reflect(crc_finish(&crc), 8);
}