1 | #include "protocol.hfa"
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2 |
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3 | #define _GNU_SOURCE
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4 | extern "C" {
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5 | #include <fcntl.h>
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6 | }
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7 |
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8 | #define xstr(s) str(s)
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9 | #define str(s) #s
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10 |
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11 | #include <fstream.hfa>
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12 | #include <iofwd.hfa>
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13 |
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14 | #include <assert.h>
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15 | // #include <stdio.h> // Don't use stdio.h, too slow to compile
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16 | extern "C" {
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17 | int snprintf ( char * s, size_t n, const char * format, ... );
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18 | // #include <linux/io_uring.h>
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19 | }
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20 | #include <string.h>
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21 | #include <errno.h>
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22 |
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23 | #include "options.hfa"
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24 |
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25 | #define PLAINTEXT_1WRITE
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26 | #define PLAINTEXT_MEMCPY
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27 | #define PLAINTEXT_NOCOPY
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28 |
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29 | struct https_msg_str {
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30 | char msg[512];
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31 | size_t len;
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32 | };
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33 |
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34 | const https_msg_str * volatile http_msgs[KNOWN_CODES] = { 0 };
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35 |
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36 | _Static_assert( KNOWN_CODES == (sizeof(http_msgs ) / sizeof(http_msgs [0])));
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37 |
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38 | const int http_codes[KNOWN_CODES] = {
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39 | 200,
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40 | 200,
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41 | 400,
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42 | 404,
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43 | 405,
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44 | 408,
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45 | 413,
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46 | 414,
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47 | };
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48 |
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49 | _Static_assert( KNOWN_CODES == (sizeof(http_codes) / sizeof(http_codes[0])));
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50 |
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51 | int code_val(HttpCode code) {
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52 | return http_codes[code];
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53 | }
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54 |
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55 | static inline int answer( int fd, const char * it, int len) {
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56 | while(len > 0) {
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57 | // Call write
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58 | int ret = cfa_send(fd, it, len, 0, CFA_IO_LAZY);
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59 | if( ret < 0 ) {
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60 | if( errno == ECONNRESET || errno == EPIPE ) return -ECONNRESET;
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61 | if( errno == EAGAIN || errno == EWOULDBLOCK) return -EAGAIN;
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62 |
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63 | abort( "'answer error' error: (%d) %s\n", (int)errno, strerror(errno) );
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64 | }
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65 |
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66 | // update it/len
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67 | it += ret;
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68 | len -= ret;
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69 | }
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70 | return 0;
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71 | }
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72 |
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73 | int answer_error( int fd, HttpCode code ) {
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74 | /* paranoid */ assert( code < KNOWN_CODES && code != OK200 );
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75 | int idx = (int)code;
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76 | return answer( fd, http_msgs[idx]->msg, http_msgs[idx]->len );
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77 | }
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78 |
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79 | int answer_header( int fd, size_t size ) {
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80 | char buffer[512];
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81 | char * it = buffer;
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82 | memcpy(it, http_msgs[OK200]->msg, http_msgs[OK200]->len);
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83 | it += http_msgs[OK200]->len;
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84 | int len = http_msgs[OK200]->len;
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85 | len += snprintf(it, 512 - len, "%d \n\n", size);
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86 | return answer( fd, buffer, len );
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87 | }
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88 |
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89 | #if defined(PLAINTEXT_NOCOPY)
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90 | int answer_plaintext( int fd ) {
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91 | return answer(fd, http_msgs[OK200_PlainText]->msg, http_msgs[OK200_PlainText]->len); // +1 cause snprintf doesn't count nullterminator
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92 | }
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93 | #elif defined(PLAINTEXT_MEMCPY)
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94 | #define TEXTSIZE 15
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95 | int answer_plaintext( int fd ) {
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96 | char text[] = "Hello, World!\n\n";
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97 | char ts[] = xstr(TEXTSIZE) " \n\n";
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98 | _Static_assert(sizeof(text) - 1 == TEXTSIZE);
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99 | char buffer[512 + TEXTSIZE];
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100 | char * it = buffer;
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101 | memcpy(it, http_msgs[OK200]->msg, http_msgs[OK200]->len);
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102 | it += http_msgs[OK200]->len;
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103 | int len = http_msgs[OK200]->len;
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104 | memcpy(it, ts, sizeof(ts) - 1);
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105 | it += sizeof(ts) - 1;
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106 | len += sizeof(ts) - 1;
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107 | memcpy(it, text, TEXTSIZE);
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108 | return answer(fd, buffer, len + TEXTSIZE);
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109 | }
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110 | #elif defined(PLAINTEXT_1WRITE)
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111 | int answer_plaintext( int fd ) {
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112 | char text[] = "Hello, World!\n\n";
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113 | char buffer[512 + sizeof(text)];
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114 | char * it = buffer;
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115 | memcpy(it, http_msgs[OK200]->msg, http_msgs[OK200]->len);
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116 | it += http_msgs[OK200]->len;
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117 | int len = http_msgs[OK200]->len;
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118 | int r = snprintf(it, 512 - len, "%d \n\n", sizeof(text));
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119 | it += r;
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120 | len += r;
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121 | memcpy(it, text, sizeof(text));
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122 | return answer(fd, buffer, len + sizeof(text));
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123 | }
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124 | #else
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125 | int answer_plaintext( int fd ) {
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126 | char text[] = "Hello, World!\n\n";
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127 | int ret = answer_header(fd, sizeof(text));
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128 | if( ret < 0 ) return ret;
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129 | return answer(fd, text, sizeof(text));
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130 | }
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131 | #endif
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132 |
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133 | int answer_empty( int fd ) {
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134 | return answer_header(fd, 0);
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135 | }
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136 |
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137 |
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138 | [HttpCode code, bool closed, * const char file, size_t len] http_read(int fd, []char buffer, size_t len) {
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139 | char * it = buffer;
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140 | size_t count = len - 1;
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141 | int rlen = 0;
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142 | READ:
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143 | for() {
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144 | int ret = cfa_recv(fd, (void*)it, count, 0, CFA_IO_LAZY);
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145 | // int ret = read(fd, (void*)it, count);
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146 | if(ret == 0 ) return [OK200, true, 0, 0];
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147 | if(ret < 0 ) {
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148 | if( errno == EAGAIN || errno == EWOULDBLOCK) continue READ;
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149 | if( errno == ECONNRESET ) return [E408, true, 0, 0];
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150 | if( errno == EPIPE ) return [E408, true, 0, 0];
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151 | abort( "read error: (%d) %s\n", (int)errno, strerror(errno) );
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152 | }
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153 | it[ret + 1] = '\0';
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154 | rlen += ret;
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155 |
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156 | if( strstr( it, "\r\n\r\n" ) ) break;
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157 |
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158 | it += ret;
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159 | count -= ret;
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160 |
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161 | if( count < 1 ) return [E414, false, 0, 0];
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162 | }
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163 |
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164 | if( options.log ) {
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165 | write(sout, buffer, rlen);
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166 | sout | nl;
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167 | }
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168 |
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169 | it = buffer;
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170 | int ret = memcmp(it, "GET /", 5);
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171 | if( ret != 0 ) return [E400, false, 0, 0];
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172 | it += 5;
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173 |
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174 | char * end = strstr( it, " " );
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175 | return [OK200, false, it, end - it];
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176 | }
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177 |
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178 | int sendfile( int pipe[2], int fd, int ans_fd, size_t count ) {
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179 | unsigned sflags = SPLICE_F_MOVE; // | SPLICE_F_MORE;
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180 | off_t offset = 0;
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181 | ssize_t ret;
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182 | SPLICE1: while(count > 0) {
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183 | ret = cfa_splice(ans_fd, &offset, pipe[1], 0p, count, sflags, CFA_IO_LAZY);
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184 | if( ret < 0 ) {
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185 | if( errno != EAGAIN && errno != EWOULDBLOCK) continue SPLICE1;
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186 | if( errno == ECONNRESET ) return -ECONNRESET;
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187 | if( errno == EPIPE ) return -EPIPE;
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188 | abort( "splice [0] error: (%d) %s\n", (int)errno, strerror(errno) );
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189 | }
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190 |
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191 | count -= ret;
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192 | offset += ret;
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193 | size_t in_pipe = ret;
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194 | SPLICE2: while(in_pipe > 0) {
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195 | ret = cfa_splice(pipe[0], 0p, fd, 0p, in_pipe, sflags, CFA_IO_LAZY);
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196 | if( ret < 0 ) {
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197 | if( errno != EAGAIN && errno != EWOULDBLOCK) continue SPLICE2;
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198 | if( errno == ECONNRESET ) return -ECONNRESET;
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199 | if( errno == EPIPE ) return -EPIPE;
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200 | abort( "splice [1] error: (%d) %s\n", (int)errno, strerror(errno) );
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201 | }
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202 | in_pipe -= ret;
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203 | }
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204 |
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205 | }
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206 | return count;
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207 | }
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208 |
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209 | //=============================================================================================
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210 |
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211 | #include <clock.hfa>
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212 | #include <time.hfa>
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213 | #include <thread.hfa>
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214 |
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215 | const char * original_http_msgs[] = {
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216 | "HTTP/1.1 200 OK\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: ",
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217 | "HTTP/1.1 200 OK\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 15\n\nHello, World!\n\n",
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218 | "HTTP/1.1 400 Bad Request\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 0 \n\n",
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219 | "HTTP/1.1 404 Not Found\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 0 \n\n",
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220 | "HTTP/1.1 405 Method Not Allowed\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 0 \n\n",
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221 | "HTTP/1.1 408 Request Timeout\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 0 \n\n",
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222 | "HTTP/1.1 413 Payload Too Large\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 0 \n\n",
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223 | "HTTP/1.1 414 URI Too Long\nServer: HttoForall\nDate: %s \nContent-Type: text/plain\nContent-Length: 0 \n\n",
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224 | };
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225 |
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226 | struct date_buffer {
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227 | https_msg_str strs[KNOWN_CODES];
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228 | };
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229 |
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230 | thread DateFormater {
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231 | int idx;
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232 | date_buffer buffers[2];
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233 | };
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234 |
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235 | void ?{}( DateFormater & this ) {
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236 | ((thread&)this){ "Server Date Thread", *options.clopts.instance[0] };
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237 | this.idx = 0;
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238 | memset( &this.buffers[0], 0, sizeof(this.buffers[0]) );
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239 | memset( &this.buffers[1], 0, sizeof(this.buffers[1]) );
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240 | }
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241 |
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242 | void main(DateFormater & this) {
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243 | LOOP: for() {
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244 | waitfor( ^?{} : this) {
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245 | break LOOP;
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246 | }
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247 | or else {}
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248 |
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249 |
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250 | char buff[100];
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251 | Time now = timeHiRes();
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252 | strftime( buff, 100, "%a, %d %b %Y %H:%M:%S %Z", now );
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253 | sout | "Updated date to '" | buff | "'";
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254 |
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255 | for(i; KNOWN_CODES) {
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256 | size_t len = snprintf( this.buffers[this.idx].strs[i].msg, 512, original_http_msgs[i], buff );
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257 | this.buffers[this.idx].strs[i].len = len;
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258 | }
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259 |
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260 | for(i; KNOWN_CODES) {
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261 | https_msg_str * next = &this.buffers[this.idx].strs[i];
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262 | __atomic_exchange_n((https_msg_str * volatile *)&http_msgs[i], next, __ATOMIC_SEQ_CST);
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263 | }
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264 | this.idx = (this.idx + 1) % 2;
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265 |
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266 | sout | "Date thread sleeping";
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267 |
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268 | sleep(1`s);
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269 | }
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270 | }
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271 |
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272 | //=============================================================================================
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273 | DateFormater * the_date_formatter;
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274 |
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275 | void init_protocol(void) {
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276 | the_date_formatter = alloc();
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277 | (*the_date_formatter){};
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278 | }
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279 |
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280 | void deinit_protocol(void) {
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281 | ^(*the_date_formatter){};
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282 | free( the_date_formatter );
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283 | }
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