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// termux-api.c - helper binary for calling termux api classes
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// Usage: termux-api ${API_METHOD} ${ADDITIONAL_FLAGS}
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// This executes
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// am broadcast com.termux.api/.TermuxApiReceiver --es socket_input ${INPUT_SOCKET}
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// --es socket_output ${OUTPUT_SOCKET}
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// --es ${API_METHOD}
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// ${ADDITIONAL_FLAGS}
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// where ${INPUT_SOCKET} and ${OUTPUT_SOCKET} are addresses to linux abstract namespace sockets,
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// used to pass on stdin to the java implementation and pass back output from java to stdout.
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#define _POSIX_SOURCE
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#define _GNU_SOURCE
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#include <fcntl.h>
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#include <pthread.h>
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#include <signal.h>
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#include <stdbool.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <sys/socket.h>
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#include <sys/stat.h>
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#include <sys/types.h>
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#include <sys/un.h>
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#include <time.h>
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#include <unistd.h>
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// Function which execs "am broadcast ..".
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void exec_am_broadcast(int argc, char** argv, char* input_address_string, char* output_address_string)
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{
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// Redirect stdout to /dev/null (but leave stderr open):
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close(STDOUT_FILENO);
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open("/dev/null", O_RDONLY);
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// Close stdin:
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close(STDIN_FILENO);
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// The user is calculated from the uid in android.os.UserHandle#getUserId(int uid) as "uid / 100000", so we do the same:
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uid_t current_uid = getuid();
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int android_user_id = current_uid / 100000;
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char* android_user_id_string;
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if (asprintf(&android_user_id_string, "%d", android_user_id) == -1) {
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fprintf(stderr, "asprintf() error");
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return;
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}
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int const extra_args = 15; // Including ending NULL.
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char** child_argv = malloc((sizeof(char*)) * (argc + extra_args));
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child_argv[0] = "am";
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child_argv[1] = "broadcast";
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child_argv[2] = "--user";
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child_argv[3] = android_user_id_string;
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child_argv[4] = "-n";
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child_argv[5] = "com.termux.api/.TermuxApiReceiver";
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child_argv[6] = "--es";
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// Input/output are reversed for the java process (our output is its input):
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child_argv[7] = "socket_input";
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child_argv[8] = output_address_string;
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child_argv[9] = "--es";
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child_argv[10] = "socket_output";
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child_argv[11] = input_address_string;
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child_argv[12] = "--es";
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child_argv[13] = "api_method";
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child_argv[14] = argv[1];
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// Copy the remaining arguments -2 for first binary and second api name:
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memcpy(child_argv + extra_args, argv + 2, (argc-1) * sizeof(char*));
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// End with NULL:
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child_argv[argc + extra_args] = NULL;
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// Use an a executable taking care of PATH and LD_LIBRARY_PATH:
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char const* const am_executable = "/data/data/com.termux/files/usr/bin/am";
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execv(am_executable, child_argv);
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perror("execv(\"/system/bin/am\")");
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exit(1);
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}
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void generate_uuid(char* str) {
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sprintf(str, "%x%x-%x-%x-%x-%x%x%x",
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rand(), rand(), // Generates a 64-bit Hex number
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(uint32_t) getpid(), // Generates a 32-bit Hex number
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((rand() & 0x0fff) | 0x4000), // Generates a 32-bit Hex number of the form 4xxx (4 indicates the UUID version)
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rand() % 0x3fff + 0x8000, // Generates a 32-bit Hex number in the range [0x8000, 0xbfff]
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rand(), rand(), rand()); // Generates a 96-bit Hex number
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}
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// Thread function which reads from stdin and writes to socket.
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void* transmit_stdin_to_socket(void* arg) {
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int output_server_socket = *((int*) arg);
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struct sockaddr_un remote_addr;
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socklen_t addrlen = sizeof(remote_addr);
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int output_client_socket = accept(output_server_socket, (struct sockaddr*) &remote_addr, &addrlen);
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int len;
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char buffer[1024];
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while (len = read(STDIN_FILENO, &buffer, sizeof(buffer)-1), len > 0) {
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if (write(output_client_socket, buffer, len) < 0) break;
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}
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// Close output socket on end of input:
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close(output_client_socket);
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return NULL;
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}
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// Main thread function which reads from input socket and writes to stdout.
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void transmit_socket_to_stdout(int input_socket_fd) {
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int len;
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char buffer[1024];
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while ((len = read(input_socket_fd, &buffer, sizeof(buffer)-1)) > 0) {
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buffer[len] = 0;
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write(STDOUT_FILENO, buffer, len);
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}
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if (len < 0) perror("read()");
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}
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int main(int argc, char** argv) {
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// Do not transform children into zombies when they terminate:
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struct sigaction sigchld_action = { .sa_handler = SIG_DFL, .sa_flags = SA_RESTART | SA_NOCLDSTOP | SA_NOCLDWAIT };
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sigaction(SIGCHLD, &sigchld_action, NULL);
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char input_address_string[100]; // This program reads from it.
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char output_address_string[100]; // This program writes to it.
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// Seed the random number generator:
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struct timeval time;
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gettimeofday(&time,NULL);
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srand((time.tv_sec * 1000) + (time.tv_usec / 1000));
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generate_uuid(input_address_string);
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generate_uuid(output_address_string);
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struct sockaddr_un input_address = { .sun_family = AF_UNIX };
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struct sockaddr_un output_address = { .sun_family = AF_UNIX };
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// Leave struct sockaddr_un.sun_path[0] as 0 and use the UUID string as abstract linux namespace:
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strncpy(&input_address.sun_path[1], input_address_string, strlen(input_address_string));
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strncpy(&output_address.sun_path[1], output_address_string, strlen(output_address_string));
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int input_server_socket = socket(AF_UNIX, SOCK_STREAM|SOCK_CLOEXEC, 0);
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if (input_server_socket == -1) { perror("socket()"); return 1; }
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int output_server_socket = socket(AF_UNIX, SOCK_STREAM|SOCK_CLOEXEC, 0);
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if (output_server_socket == -1) { perror("socket()"); return 1; }
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if (bind(input_server_socket, (struct sockaddr*) &input_address, sizeof(sa_family_t) + strlen(input_address_string) + 1) == -1) {
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perror("bind(input)");
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return 1;
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}
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if (bind(output_server_socket, (struct sockaddr*) &output_address, sizeof(sa_family_t) + strlen(output_address_string) + 1) == -1) {
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perror("bind(output)");
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return 1;
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}
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if (listen(input_server_socket, 1) == -1) { perror("listen()"); return 1; }
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if (listen(output_server_socket, 1) == -1) { perror("listen()"); return 1; }
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pid_t fork_result = fork();
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switch (fork_result) {
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case -1: perror("fork()"); return 1;
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case 0: exec_am_broadcast(argc, argv, input_address_string, output_address_string); return 0;
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}
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struct sockaddr_un remote_addr;
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socklen_t addrlen = sizeof(remote_addr);
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int input_client_socket = accept(input_server_socket, (struct sockaddr*) &remote_addr, &addrlen);
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pthread_t transmit_thread;
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pthread_create(&transmit_thread, NULL, transmit_stdin_to_socket, &output_server_socket);
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transmit_socket_to_stdout(input_client_socket);
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return 0;
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}
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