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154 lines
5.6 KiB
154 lines
5.6 KiB
#include <cassert>
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#include <set>
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#include "third_party/json11/json11.hpp"
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#include "common/util.h"
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#include "common/clutil.h"
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#include "common/swaglog.h"
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#include "selfdrive/modeld/thneed/thneed.h"
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using namespace json11;
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extern map<cl_program, string> g_program_source;
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void Thneed::load(const char *filename) {
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LOGD("Thneed::load: loading from %s\n", filename);
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string buf = util::read_file(filename);
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int jsz = *(int *)buf.data();
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string jsonerr;
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string jj(buf.data() + sizeof(int), jsz);
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Json jdat = Json::parse(jj, jsonerr);
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map<cl_mem, cl_mem> real_mem;
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real_mem[NULL] = NULL;
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int ptr = sizeof(int)+jsz;
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for (auto &obj : jdat["objects"].array_items()) {
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auto mobj = obj.object_items();
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int sz = mobj["size"].int_value();
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cl_mem clbuf = NULL;
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if (mobj["buffer_id"].string_value().size() > 0) {
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// image buffer must already be allocated
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clbuf = real_mem[*(cl_mem*)(mobj["buffer_id"].string_value().data())];
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assert(mobj["needs_load"].bool_value() == false);
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} else {
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if (mobj["needs_load"].bool_value()) {
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clbuf = clCreateBuffer(context, CL_MEM_COPY_HOST_PTR | CL_MEM_READ_WRITE, sz, &buf[ptr], NULL);
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if (debug >= 1) printf("loading %p %d @ 0x%X\n", clbuf, sz, ptr);
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ptr += sz;
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} else {
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// TODO: is there a faster way to init zeroed out buffers?
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void *host_zeros = calloc(sz, 1);
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clbuf = clCreateBuffer(context, CL_MEM_COPY_HOST_PTR | CL_MEM_READ_WRITE, sz, host_zeros, NULL);
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free(host_zeros);
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}
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}
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assert(clbuf != NULL);
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if (mobj["arg_type"] == "image2d_t" || mobj["arg_type"] == "image1d_t") {
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cl_image_desc desc = {0};
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desc.image_type = (mobj["arg_type"] == "image2d_t") ? CL_MEM_OBJECT_IMAGE2D : CL_MEM_OBJECT_IMAGE1D_BUFFER;
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desc.image_width = mobj["width"].int_value();
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desc.image_height = mobj["height"].int_value();
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desc.image_row_pitch = mobj["row_pitch"].int_value();
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assert(sz == desc.image_height*desc.image_row_pitch);
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#ifdef QCOM2
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desc.buffer = clbuf;
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#else
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// TODO: we are creating unused buffers on PC
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clReleaseMemObject(clbuf);
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#endif
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cl_image_format format = {0};
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format.image_channel_order = CL_RGBA;
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format.image_channel_data_type = mobj["float32"].bool_value() ? CL_FLOAT : CL_HALF_FLOAT;
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cl_int errcode;
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#ifndef QCOM2
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if (mobj["needs_load"].bool_value()) {
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clbuf = clCreateImage(context, CL_MEM_COPY_HOST_PTR | CL_MEM_READ_WRITE, &format, &desc, &buf[ptr-sz], &errcode);
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} else {
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clbuf = clCreateImage(context, CL_MEM_READ_WRITE, &format, &desc, NULL, &errcode);
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}
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#else
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clbuf = clCreateImage(context, CL_MEM_READ_WRITE, &format, &desc, NULL, &errcode);
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#endif
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if (clbuf == NULL) {
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LOGE("clError: %s create image %zux%zu rp %zu with buffer %p\n", cl_get_error_string(errcode),
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desc.image_width, desc.image_height, desc.image_row_pitch, desc.buffer);
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}
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assert(clbuf != NULL);
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}
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real_mem[*(cl_mem*)(mobj["id"].string_value().data())] = clbuf;
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}
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map<string, cl_program> g_programs;
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for (const auto &[name, source] : jdat["programs"].object_items()) {
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if (debug >= 1) printf("building %s with size %zu\n", name.c_str(), source.string_value().size());
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g_programs[name] = cl_program_from_source(context, device_id, source.string_value());
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}
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for (auto &obj : jdat["inputs"].array_items()) {
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auto mobj = obj.object_items();
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int sz = mobj["size"].int_value();
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cl_mem aa = real_mem[*(cl_mem*)(mobj["buffer_id"].string_value().data())];
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input_clmem.push_back(aa);
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input_sizes.push_back(sz);
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LOGD("Thneed::load: adding input %s with size %d\n", mobj["name"].string_value().data(), sz);
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cl_int cl_err;
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void *ret = clEnqueueMapBuffer(command_queue, aa, CL_TRUE, CL_MAP_WRITE, 0, sz, 0, NULL, NULL, &cl_err);
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if (cl_err != CL_SUCCESS) LOGE("clError: %s map %p %d\n", cl_get_error_string(cl_err), aa, sz);
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assert(cl_err == CL_SUCCESS);
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inputs.push_back(ret);
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}
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for (auto &obj : jdat["outputs"].array_items()) {
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auto mobj = obj.object_items();
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int sz = mobj["size"].int_value();
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LOGD("Thneed::save: adding output with size %d\n", sz);
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// TODO: support multiple outputs
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output = real_mem[*(cl_mem*)(mobj["buffer_id"].string_value().data())];
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assert(output != NULL);
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}
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for (auto &obj : jdat["binaries"].array_items()) {
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string name = obj["name"].string_value();
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size_t length = obj["length"].int_value();
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if (debug >= 1) printf("binary %s with size %zu\n", name.c_str(), length);
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g_programs[name] = cl_program_from_binary(context, device_id, (const uint8_t*)&buf[ptr], length);
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ptr += length;
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}
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for (auto &obj : jdat["kernels"].array_items()) {
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auto gws = obj["global_work_size"];
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auto lws = obj["local_work_size"];
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auto kk = shared_ptr<CLQueuedKernel>(new CLQueuedKernel(this));
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kk->name = obj["name"].string_value();
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kk->program = g_programs[kk->name];
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kk->work_dim = obj["work_dim"].int_value();
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for (int i = 0; i < kk->work_dim; i++) {
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kk->global_work_size[i] = gws[i].int_value();
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kk->local_work_size[i] = lws[i].int_value();
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}
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kk->num_args = obj["num_args"].int_value();
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for (int i = 0; i < kk->num_args; i++) {
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string arg = obj["args"].array_items()[i].string_value();
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int arg_size = obj["args_size"].array_items()[i].int_value();
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kk->args_size.push_back(arg_size);
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if (arg_size == 8) {
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cl_mem val = *(cl_mem*)(arg.data());
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val = real_mem[val];
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kk->args.push_back(string((char*)&val, sizeof(val)));
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} else {
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kk->args.push_back(arg);
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}
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}
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kq.push_back(kk);
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}
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clFinish(command_queue);
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}
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