* for that.
*/
unsigned channel = iter * 2 + i;
- fs_reg dest = shuffle_64bit_data_for_32bit_write(bld,
- offset(value, bld, channel), 1);
+ fs_reg dest = shuffle_for_32bit_write(bld, value, channel, 1);
srcs[header_regs + (i + first_component) * 2] = dest;
srcs[header_regs + (i + first_component) * 2 + 1] =
unsigned type_size = 4;
if (nir_src_bit_size(instr->src[0]) == 64) {
type_size = 8;
- val_reg = shuffle_64bit_data_for_32bit_write(bld,
- val_reg, instr->num_components);
+ val_reg = shuffle_for_32bit_write(bld, val_reg, 0,
+ instr->num_components);
}
unsigned type_slots = type_size / 4;
* iteration handle the rest.
*/
num_components = MIN2(2, num_components);
- write_src = shuffle_64bit_data_for_32bit_write(bld, write_src,
- num_components);
+ write_src = shuffle_for_32bit_write(bld, write_src, 0,
+ num_components);
} else if (type_size < 4) {
assert(type_size == 2);
/* For 16-bit types we pack two consecutive values into a 32-bit
unsigned num_components = instr->num_components;
unsigned first_component = nir_intrinsic_component(instr);
if (nir_src_bit_size(instr->src[0]) == 64) {
- src = shuffle_64bit_data_for_32bit_write(bld, src, num_components);
+ src = shuffle_for_32bit_write(bld, src, 0, num_components);
num_components *= 2;
}