#include #include #include #include #include "controller.h" NTL_CLIENT // The total number of nodes (that is, dpnodes) static unsigned short total_nodes = 0; // The amount of memory we can use per dpnode static unsigned short GB_mem_per_node = 0; void desired_resources(const ZZ &order, unsigned short &desired_dpnodes, unsigned int &max_workers, unsigned int &dpfreq) { // One point in how many is a DP by default? unsigned int dpscale = 1000; ZZ sorder = SqrRoot(order); // How many DPnodes should we use for a problem of this size? desired_dpnodes = 1; // 338 is bytes per DP in the table. 10 is a safety factor. ZZ dpnumerator = sorder * 338 * 10; ZZ dpdenominator; dpdenominator = dpscale; dpdenominator *= GB_mem_per_node; dpdenominator *= 1000000000UL; // Convert the above line to GB ZZ dpnodes = (dpnumerator / dpdenominator) + 1; if (dpnodes > total_nodes) { desired_dpnodes = total_nodes; } else { desired_dpnodes = trunc_long(dpnodes, 31); } // How many workers would we like to use? ZZ sorder23 = sorder >> 23; if (NumBits(sorder23) > 30) { // Just use all the workers we can find max_workers = 4294967295U; // 2^32 - 1 } else { max_workers = trunc_long(sorder23,31) + 1; } // By default, 1 in dpscale points are distinguished points. dpfreq = 4294967295U / dpscale; // Orders smaller than 100*scale^2 behave specially, in order to // avoid DP-free cycles ZZ orderlimit; orderlimit = 100; orderlimit *= dpscale; orderlimit *= dpscale; if (order < 1000) { // Just make every point a DP dpfreq = 4294967295U; } else if (order < orderlimit) { // The frequency of DPs should be 10/sqrt(order) to avoid // a DP-free cycle, so dpfreq = (10*2^32)/sqrt(order) ZZ f = (to_ZZ(10) << 32) / SqrRoot(order); dpfreq = trunc_long(f, 31); } } static void boundcb(const char *boundaddr, unsigned short boundport) { cout << "Listening on " << boundaddr << ":" << boundport << "\n"; const char *fdenv = getenv("CONTROLLER_BOUNDCB_FD"); if (fdenv) { int fd = atoi(fdenv); if (fd > 2) { write(fd, &boundport, 2); write(fd, boundaddr, strlen(boundaddr)); close(fd); } } } #ifdef TEST_DESIRED_RESOURCES int main(int argc, char **argv) { if (argc != 3) { std::cerr << "Usage: " << argv[0] << " num_nodes GB_mem_per_node\n"; return 1; } total_nodes = strtoul(argv[1], NULL, 10); GB_mem_per_node = strtoul(argv[2], NULL, 10); cout << "# log_2(order) dpnodes workers dpfreq\n"; for (int i=44; i<=90; ++i) { unsigned short desired_dpnodes; unsigned int max_workers; unsigned int dpfreq; ZZ order; order = 1; order <<= i; order += 1; desired_resources(order, desired_dpnodes, max_workers, dpfreq); cout << i << " " << desired_dpnodes << " " << max_workers << " " << dpfreq << "\n"; } } #else int main(int argc, char **argv) { unsigned short bindport = 0; Worklist worklist; if (controller_parse_args(argc, argv, bindport, worklist, total_nodes, GB_mem_per_node)) { std::cerr << "Usage: " << argv[0] << " [-p listenport] [-n num_nodes] [-m GB_mem_per_node] [-r reps] N1 iter1 N2 iter2 ...\n"; return 1; } return controller_main(worklist, bindport, boundcb); } #endif