00_RPII2C.pm 35 KB

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  1. ##############################################
  2. # $Id: 00_RPII2C.pm 16799 2018-05-29 23:14:28Z klausw $
  3. package main;
  4. use strict;
  5. use warnings;
  6. use Time::HiRes qw(gettimeofday usleep);
  7. my @clients = qw(
  8. I2C_LCD
  9. I2C_DS1307
  10. I2C_PC.*
  11. I2C_MCP.*
  12. I2C_BM.*
  13. I2C_SH.*
  14. I2C_TSL.*
  15. I2C_SUSV
  16. I2C_LM.*
  17. );
  18. my $gpioprg = "/usr/local/bin/gpio"; #WiringPi GPIO utility
  19. my $I2C_SLAVE = 0x0703; #Variable for IOCTL (set I2C slave address)
  20. my $libcheck_SMBus = 1;
  21. my $check_ioctl_ph = 1;
  22. sub RPII2C_Initialize($) {
  23. my ($hash) = @_;
  24. eval "use Device::SMBus;";
  25. $libcheck_SMBus = 0 if($@);
  26. eval {require "sys/ioctl.ph"};
  27. $check_ioctl_ph = 0 if($@);
  28. # Provider
  29. $hash->{Clients} = join (':',@clients);
  30. $hash->{I2CWrtFn} = "RPII2C_Write"; #alternative fuer IOWrite
  31. # Normal devices
  32. $hash->{DefFn} = "RPII2C_Define";
  33. $hash->{UndefFn} = "RPII2C_Undef";
  34. $hash->{GetFn} = "RPII2C_Get";
  35. $hash->{SetFn} = "RPII2C_Set";
  36. $hash->{AttrFn} = "RPII2C_Attr";
  37. $hash->{NotifyFn} = "RPII2C_Notify";
  38. $hash->{AttrList}= "do_not_notify:1,0 ignore:1,0 showtime:1,0 " .
  39. "$readingFnAttributes";
  40. $hash->{AttrList} .= " useHWLib:IOCTL,SMBus " if( $libcheck_SMBus && $check_ioctl_ph);
  41. $hash->{AttrList} .= " swap_i2c0:off,on";
  42. }
  43. #####################################
  44. sub RPII2C_Define($$) { #
  45. my ($hash, $def) = @_;
  46. my @a = split("[ \t][ \t]*", $def);
  47. unless(@a == 3) {
  48. my $msg = "wrong syntax: define <name> RPII2C <0|1>";
  49. Log3 undef, 2, $msg;
  50. return $msg;
  51. }
  52. $hash->{SMBus_exists} = $libcheck_SMBus if($libcheck_SMBus);
  53. $hash->{ioctl_ph_exists} = $check_ioctl_ph if($check_ioctl_ph);
  54. my $name = $a[0];
  55. my $dev = $a[2];
  56. if ($check_ioctl_ph) {
  57. $hash->{hwfn} = \&RPII2C_HWACCESS_ioctl;
  58. } elsif ($libcheck_SMBus) {
  59. $hash->{hwfn} = \&RPII2C_HWACCESS;
  60. } else {
  61. return $name . ": Error! no library for Hardware access installed";
  62. }
  63. my $device = "/dev/i2c-".$dev;
  64. if ( RPII2C_CHECK_I2C_DEVICE($device) ) {
  65. Log3 $hash, 3, "$hash->{NAME}: file $device not accessible try to use gpio utility to fix it";
  66. if ( defined(my $ret = RPII2C_CHECK_GPIO_UTIL($gpioprg)) ) {
  67. Log3 $hash, 1, "$hash->{NAME}: " . $ret if $ret;
  68. } else { #I2C Devices mit gpio utility fuer FHEM User lesbar machen
  69. my $exp = $gpioprg.' load i2c';
  70. $exp = `$exp`;
  71. }
  72. }
  73. $hash->{NOTIFYDEV} = "global";
  74. if($dev eq "none") {
  75. Log3 $name, 1, "$name device is none, commands will be echoed only";
  76. $attr{$name}{dummy} = 1;
  77. return undef;
  78. }
  79. my $check = RPII2C_CHECK_I2C_DEVICE($device);
  80. return $name . $check if $check;
  81. $hash->{DeviceName} = $device;
  82. $hash->{STATE} = "initialized";
  83. return undef;
  84. }
  85. #####################################
  86. sub RPII2C_Notify { #
  87. my ($hash,$dev) = @_;
  88. my $name = $hash->{NAME};
  89. my $type = $hash->{TYPE};
  90. if( grep(m/^(INITIALIZED|REREADCFG)$/, @{$dev->{CHANGED}}) ) {
  91. RPII2C_forall_clients($hash,\&RPII2C_Init_Client,undef);;
  92. } elsif( grep(m/^SAVE$/, @{$dev->{CHANGED}}) ) {
  93. }
  94. }
  95. #####################################
  96. sub RPII2C_forall_clients($$$) { #
  97. my ($hash,$fn,$args) = @_;
  98. foreach my $d ( sort keys %main::defs ) {
  99. if ( defined( $main::defs{$d} )
  100. && defined( $main::defs{$d}{IODev} )
  101. && $main::defs{$d}{IODev} == $hash ) {
  102. &$fn($main::defs{$d},$args);
  103. }
  104. }
  105. return undef;
  106. }
  107. #####################################
  108. sub RPII2C_Init_Client($@) { #
  109. my ($hash,$args) = @_;
  110. if (!defined $args and defined $hash->{DEF}) {
  111. my @a = split("[ \t][ \t]*", $hash->{DEF});
  112. $args = \@a;
  113. }
  114. my $name = $hash->{NAME};
  115. Log3 $name,5,"im init client fuer $name ";
  116. my $ret = CallFn($name,"InitFn",$hash,$args);
  117. if ($ret) {
  118. Log3 $name,2,"error initializing '".$hash->{NAME}."': ".$ret;
  119. }
  120. }
  121. #####################################
  122. sub RPII2C_Undef($$) { #
  123. my ($hash, $arg) = @_;
  124. my $name = $hash->{NAME};
  125. foreach my $d (sort keys %defs) {
  126. if(defined($defs{$d}) &&
  127. defined($defs{$d}{IODev}) &&
  128. $defs{$d}{IODev} == $hash)
  129. {
  130. Log3 $name, 3, "deleting port for $d";
  131. delete $defs{$d}{IODev};
  132. }
  133. }
  134. return undef;
  135. }
  136. #####################################
  137. sub RPII2C_Attr(@){
  138. my (undef, $name, $attr, $val) = @_;
  139. my $hash = $defs{$name};
  140. if ($attr && $attr eq 'useHWLib') {
  141. $hash->{hwfn} = \&RPII2C_HWACCESS_ioctl if $val eq "IOCTL";
  142. $hash->{hwfn} = \&RPII2C_HWACCESS if $val eq "SMBus";
  143. } elsif ($attr && $attr eq 'swap_i2c0' && defined($val)) {
  144. RPII2C_SWAPI2C0($hash,$val);
  145. }
  146. return undef;
  147. }
  148. #####################################
  149. sub RPII2C_Set($@) { #
  150. my ($hash, @a) = @_;
  151. my $name = shift @a;
  152. my $type = shift @a;
  153. my @sets = ('writeByte', 'writeByteReg', 'writeBlock', 'writeBlockReg'); #, 'writeNBlock');
  154. return "Unknown argument $type, choose one of " . join(" ", @sets) if @a < 2;
  155. foreach (@a) { #Hexwerte pruefen und in Dezimalwerte wandeln
  156. return "$name: $_ is no 1byte hexadecimal value" if $_ !~ /^(0x|)[0-9A-F]{1,2}$/xi ;
  157. $_ = hex;
  158. }
  159. my $i2ca = shift @a;
  160. return "$name: I2C Address not valid" unless ($i2ca > 3 && $i2ca < 128); #pruefe auf Hexzahl zwischen 4 und 7F
  161. my $i2chash = { i2caddress => $i2ca, direction => "i2cbytewrite", test => "local" };
  162. my ($reg, $nbyte, $data) = undef;
  163. if ($type eq "writeByte") {
  164. $data = join(" ", @a);
  165. } elsif ($type eq "writeByteReg") {
  166. $reg = shift @a;
  167. $data = join(" ", @a);
  168. } elsif ($type eq "writeBlock") {
  169. $nbyte = int(@a);
  170. return "$name maximal blocksize (32byte) exeeded" if $nbyte > 32;
  171. $data = join(" ", @a);
  172. $i2chash->{direction} = "i2cwrite";
  173. } elsif ($type eq "writeBlockReg") {
  174. $reg = shift @a;
  175. $nbyte = int(@a);
  176. return "$name maximal blocksize (32byte) exeeded" if $nbyte > 32;
  177. $data = join(" ", @a);
  178. $i2chash->{direction} = "i2cwrite";
  179. } else {
  180. return "Unknown argument $type, choose one of " . join(" ", @sets);
  181. }
  182. $i2chash->{reg} = $reg if defined($reg); #startadresse zum lesen
  183. $i2chash->{nbyte} = $nbyte if defined($nbyte);
  184. $i2chash->{data} = $data if defined($data);
  185. &{$hash->{hwfn}}($hash, $i2chash);
  186. undef $i2chash; #Hash loeschen
  187. return undef;
  188. }
  189. #####################################
  190. sub RPII2C_Get($@) { #
  191. my ($hash, @a) = @_;
  192. my $nargs = int(@a);
  193. my $name = $hash->{NAME};
  194. my @gets = ('read','readblock','readblockreg');
  195. unless ( exists($a[1]) && $a[1] ne "?" && grep {/^$a[1]$/} @gets ) {
  196. return "Unknown argument $a[1], choose one of " . join(" ", @gets);
  197. }
  198. if ($a[1] eq "read") {
  199. return "use: \"get $name $a[1] <i2cAddress> [<RegisterAddress> [<Number od bytes to get>]]\"" if(@a < 3);
  200. return "$name: I2C Address not valid" unless ( $a[2] =~ /^(0x|)([0-7]|)[0-9A-F]$/xi);
  201. return "$name register address must be a hexvalue" if (defined($a[3]) && $a[3] !~ /^(0x|)[0-9A-F]{1,4}$/xi);
  202. return "$name number of bytes must be decimal value" if (defined($a[4]) && $a[4] !~ /^[0-9]{1,2}$/);
  203. my $i2chash = { i2caddress => hex($a[2]), direction => "i2cbyteread" };
  204. $i2chash->{reg} = hex($a[3]) if defined($a[3]); #startadresse zum lesen
  205. $i2chash->{nbyte} = $a[4] if defined($a[4]);
  206. my $status = &{$hash->{hwfn}}($hash, $i2chash); #als Array
  207. my $received = $i2chash->{received}; #als Scalar
  208. undef $i2chash; #Hash loeschen
  209. return (defined($received) ? "received : " . $received ." | " : "" ) . " transmission: $status";
  210. } elsif ($a[1] eq "readblock") {
  211. return "use: \"get $name $a[1] <i2cAddress> [<Number od bytes to get>]\"" if(@a < 3);
  212. return "$name: I2C Address not valid" unless ( $a[2] =~ /^(0x|)([0-7]|)[0-9A-F]$/xi);
  213. return "$name number of bytes must be decimal value" if (defined($a[3]) && $a[3] !~ /^[0-9]{1,2}$/);
  214. my $i2chash = { i2caddress => hex($a[2]), direction => "i2cread" };
  215. $i2chash->{nbyte} = $a[3] if defined($a[3]);
  216. my $status = &{$hash->{hwfn}}($hash, $i2chash);
  217. my $received = $i2chash->{received}; #als Scalar
  218. undef $i2chash; #Hash loeschen
  219. return (defined($received) ? "received : " . $received ." | " : "" ) . " transmission: $status";
  220. } elsif ($a[1] eq "readblockreg") {
  221. return "use: \"get $name $a[1] <i2cAddress> [<Number od bytes to get>]\"" if(@a < 2);
  222. return "$name: I2C Address not valid" unless ( $a[2] =~ /^(0x|)([0-7]|)[0-9A-F]$/xi);
  223. return "$name register address must be a hexvalue" if (defined($a[3]) && $a[3] !~ /^(0x|)[0-9A-F]{1,4}$/xi);
  224. return "$name number of bytes must be decimal value" if (defined($a[4]) && $a[4] !~ /^[0-9]{1,2}$/);
  225. my $i2chash = { i2caddress => hex($a[2]), direction => "i2cread" };
  226. $i2chash->{reg} = hex($a[3]) if defined($a[3]);
  227. $i2chash->{nbyte} = $a[4] if defined($a[4]);
  228. my $status = &{$hash->{hwfn}}($hash, $i2chash);
  229. my $received = $i2chash->{received}; #als Scalar
  230. undef $i2chash; #Hash loeschen
  231. return (defined($received) ? "received : " . $received ." | " : "" ) . " transmission: $status";
  232. }
  233. return undef;
  234. }
  235. #####################################
  236. sub RPII2C_Write($$) { #wird vom Client aufgerufen
  237. my ($hash, $clientmsg) = @_;
  238. my $name = $hash->{NAME};
  239. my $ankommen = "$name: vom client empfangen";
  240. foreach my $av (keys %{$clientmsg}) { $ankommen .= "|" . $av . ": " . $clientmsg->{$av}; }
  241. Log3 $hash, 5, $ankommen;
  242. if ( $clientmsg->{direction} && $clientmsg->{i2caddress} ) {
  243. $clientmsg->{$name . "_" . "SENDSTAT"} = &{$hash->{hwfn}}($hash, $clientmsg);
  244. #$clientmsg->{$name . "_" . "SENDSTAT"} = RPII2C_HWACCESS($hash, $clientmsg);
  245. }
  246. foreach my $d ( sort keys %main::defs ) { #zur Botschaft passenden Clienten ermitteln geht auf Client: I2CRecFn
  247. #Log3 $hash, 1, "d: $d". ($main::defs{$d}{IODev}? ", IODev: $main::defs{$d}{IODev}":"") . ($main::defs{$d}{I2C_Address} ? ", I2C: $main::defs{$d}{I2C_Address}":"") . ($clientmsg->{i2caddress} ? " CI2C: $clientmsg->{i2caddress}" : "");
  248. if ( defined( $main::defs{$d} )
  249. && defined( $main::defs{$d}{IODev} ) && $main::defs{$d}{IODev} == $hash
  250. && defined( $main::defs{$d}{I2C_Address} ) && defined($clientmsg->{i2caddress})
  251. && $main::defs{$d}{I2C_Address} eq $clientmsg->{i2caddress} ) {
  252. my $chash = $main::defs{$d};
  253. Log3 $hash, 5, "$name ->Client gefunden: $d". ($main::defs{$d}{I2C_Address} ? ", I2Caddress: $main::defs{$d}{I2C_Address}":"") . ($clientmsg->{data} ? " Data: $clientmsg->{data}" : "") . ($clientmsg->{received} ? " Gelesen: $clientmsg->{received}" : "");
  254. CallFn($d, "I2CRecFn", $chash, $clientmsg);
  255. undef $clientmsg #Hash loeschen nachdem Daten verteilt wurden
  256. }
  257. }
  258. return undef;
  259. }
  260. sub RPII2C_CHECK_I2C_DEVICE {
  261. my ($dev) = @_;
  262. my $ret = undef;
  263. if(-e $dev) {
  264. if(-r $dev) {
  265. unless(-w $dev) {
  266. $ret = ': Error! I2C device not writable: '.$dev . '. Please install wiringpi or change access rights for fhem user';
  267. }
  268. } else {
  269. $ret = ': Error! I2C device not readable: '.$dev . '. Please install wiringpi or change access rights for fhem user';
  270. }
  271. } else {
  272. $ret = ': Error! I2C device not found: ' .$dev . '. Please check kernelmodules must loaded: i2c_bcm2708, i2c_dev';
  273. }
  274. return $ret;
  275. }
  276. sub RPII2C_CHECK_GPIO_UTIL {
  277. my ($gpioprg) = @_;
  278. my $ret = undef;
  279. if(-e $gpioprg) {
  280. if(-x $gpioprg) {
  281. unless(-u $gpioprg) {
  282. $ret = "file $gpioprg is not setuid";
  283. }
  284. } else {
  285. $ret = "file $gpioprg is not executable";
  286. }
  287. } else {
  288. $ret = "file $gpioprg doesnt exist";
  289. }
  290. return $ret;
  291. }
  292. sub RPII2C_SWAPI2C0 {
  293. my ($hash,$set) = @_;
  294. unless (defined(my $ret = RPII2C_CHECK_GPIO_UTIL($gpioprg))) {
  295. if (defined($set) && $set eq "on") {
  296. system "$gpioprg -g mode 0 in";
  297. system "$gpioprg -g mode 1 in";
  298. system "$gpioprg -g mode 28 ALT0";
  299. system "$gpioprg -g mode 29 ALT0";
  300. } else {
  301. system "$gpioprg -g mode 28 in";
  302. system "$gpioprg -g mode 29 in";
  303. system "$gpioprg -g mode 0 ALT0";
  304. system "$gpioprg -g mode 1 ALT0";
  305. }
  306. } else {
  307. Log3 $hash, 1, $hash->{NAME} . ": " . $ret if $ret;
  308. }
  309. return
  310. }
  311. sub RPII2C_HWACCESS($$) {
  312. my ($hash, $clientmsg) = @_;
  313. my $status = "error";
  314. my $inh = undef;
  315. Log3 $hash, 5, "$hash->{NAME}: HWaccess I2CAddr: " . sprintf("0x%.2X", $clientmsg->{i2caddress});
  316. my $dev = Device::SMBus->new(
  317. I2CBusDevicePath => $hash->{DeviceName},
  318. I2CDeviceAddress => hex( sprintf("%.2X", $clientmsg->{i2caddress}) ),
  319. );
  320. if ( defined($clientmsg->{reg}) && defined($clientmsg->{data}) && $clientmsg->{direction} eq "i2cwrite") { #blockweise beschreiben (Register)
  321. my @data = split(" ", $clientmsg->{data});
  322. my $dataref = \@data;
  323. $inh = $dev->writeBlockData( $clientmsg->{reg} , $dataref );
  324. my $wr = join(" ", @{$dataref});
  325. Log3 $hash, 5, "$hash->{NAME}: Block schreiben Register: " . sprintf("0x%.2X", $clientmsg->{reg}) . " Inhalt: " . $wr . " N: ". int(@data) ." Returnvar.: $inh";
  326. $status = "Ok" if $inh == 0;
  327. } elsif (defined($clientmsg->{reg}) && defined($clientmsg->{data}) && $clientmsg->{direction} eq "i2cbytewrite") { #byteweise beschreiben (Register)
  328. my @data = split(" ", $clientmsg->{data});
  329. foreach (@data) {
  330. $inh = $dev->writeByteData($clientmsg->{reg},$_);
  331. Log3 $hash, 5, "$hash->{NAME}; Register ".sprintf("0x%.2X", $clientmsg->{reg})." schreiben - Inhalt: " .sprintf("0x%.2X",$_) . " Returnvar.: $inh";
  332. last if $inh != 0;
  333. $status = "Ok" if $inh == 0;
  334. }
  335. } elsif (defined($clientmsg->{data}) && ( $clientmsg->{direction} eq "i2cwrite" || $clientmsg->{direction} eq "i2cbytewrite" ) ) { #Byte(s) schreiben
  336. my @data = split(" ", $clientmsg->{data});
  337. foreach (@data) {
  338. $inh = $dev->writeByte($_);
  339. Log3 $hash, 5, "$hash->{NAME} Byte schreiben; Inh: " . $_ . " Returnvar.: $inh";
  340. last if $inh != 0;
  341. $status = "Ok" if $inh == 0;
  342. }
  343. } elsif (defined($clientmsg->{reg}) && ( $clientmsg->{direction} eq "i2cread" || $clientmsg->{direction} eq "i2cbyteread" ) ) { #byteweise lesen (Register)
  344. my $nbyte = defined($clientmsg->{nbyte}) ? $clientmsg->{nbyte} : 1;
  345. my $rmsg = "";
  346. for (my $n = 0; $n < $nbyte; $n++) {
  347. $inh = $dev->readByteData($clientmsg->{reg} + $n );
  348. Log3 $hash, 5, "$hash->{NAME}; Register ".sprintf("0x%.2X", $clientmsg->{reg} + $n )." lesen - Inhalt: ".sprintf("0x%.2X",$inh);
  349. last if ($inh < 0);
  350. #$rmsg .= sprintf("%.2X",$inh);
  351. $rmsg .= $inh;
  352. $rmsg .= " " if $n <= $nbyte;
  353. $status = "Ok" if ($n + 1) == $nbyte;
  354. }
  355. #@{$clientmsg->{received}} = split(" ", $rmsg) if($rmsg); #Daten als Array uebertragen
  356. $clientmsg->{received} = $rmsg if($rmsg); #Daten als Scalar uebertragen
  357. } elsif ($clientmsg->{direction} eq "i2cread"|| $clientmsg->{direction} eq "i2cbyteread") { #Byte lesen
  358. my $nbyte = defined($clientmsg->{nbyte}) ? $clientmsg->{nbyte} : 1;
  359. my $rmsg = "";
  360. for (my $n = 0; $n < $nbyte; $n++) {
  361. $inh = $dev->readByte();
  362. Log3 $hash, 5, "$hash->{NAME} Byte lesen; Returnvar.: $inh";
  363. last if ($inh < 0);
  364. $rmsg .= $inh;
  365. $rmsg .= " " if $n <= $nbyte;
  366. $status = "Ok" if ($n + 1) == $nbyte;
  367. }
  368. #@{$clientmsg->{received}} = split(" ", $rmsg) if($rmsg); #Daten als Array uebertragen
  369. $clientmsg->{received} = $rmsg if($rmsg); #Daten als Scalar uebertragen
  370. }
  371. $hash->{STATE} = $status;
  372. $hash->{ERRORCNT} = defined($hash->{ERRORCNT}) ? $hash->{ERRORCNT} += 1 : 1 if $status ne "Ok";
  373. $clientmsg->{$hash->{NAME} . "_" . "RAWMSG"} = $inh;
  374. return $status;
  375. }
  376. #####################
  377. sub RPII2C_HWACCESS_ioctl($$) {
  378. my ($hash, $clientmsg) = @_;
  379. my $status = "error";
  380. Log3 $hash, 5, "$hash->{NAME}: HWaccess I2CAddr: " . sprintf("0x%.2X", $clientmsg->{i2caddress});
  381. my ($fh, $msg) = undef;
  382. my $ankommen = "$hash->{NAME}: vom client empfangen";
  383. foreach my $av (keys %{$clientmsg}) { $ankommen .= "|" . $av . ": " . $clientmsg->{$av}; }
  384. Log3 $hash, 5, $ankommen;
  385. my $i2caddr = hex(sprintf "%x", $clientmsg->{i2caddress});
  386. if ( sysopen(my $fh, $hash->{DeviceName}, O_RDWR) != 1) { #Datei oeffnen
  387. Log3 $hash, 3, "$hash->{NAME}: HWaccess sysopen failure: $!"
  388. } elsif( not defined( ioctl($fh,$I2C_SLAVE,$i2caddr) ) ) { #I2C Adresse per ioctl setzen
  389. Log3 $hash, 3, "$hash->{NAME}: HWaccess (0x".unpack( "H2",pack "C", $clientmsg->{i2caddress}).") ioctl failure: $!"
  390. } elsif ( defined($clientmsg->{data}) && $clientmsg->{direction} eq "i2cwrite") { #blockweise schreiben
  391. my $data = defined($clientmsg->{reg}) ? chr($clientmsg->{reg}) : undef;
  392. foreach (split(" ", $clientmsg->{data})) {
  393. $data .= chr($_);
  394. }
  395. my $retval = syswrite($fh, $data, length($data));
  396. unless (defined($retval) && $retval == length($data)) {
  397. Log3 $hash, 3, "$hash->{NAME}: HWaccess blockweise nach 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." schreiben, " . (defined($clientmsg->{reg}) ? "Reg: 0x". unpack( "H2",pack "C", $clientmsg->{reg}) : "") . " Inh: $clientmsg->{data}, laenge: ".length($data)."| -> syswrite failure: $!";
  398. } else {
  399. $status = "Ok";
  400. Log3 $hash, 5, "$hash->{NAME}: HWaccess block schreiben, " . (defined($clientmsg->{reg}) ? "Reg: 0x". unpack( "H2",pack "C", $clientmsg->{reg}) : "") . " Inh(dec):|$clientmsg->{data}|, laenge: |".length($data)."|";
  401. }
  402. } elsif (defined($clientmsg->{data}) && $clientmsg->{direction} eq "i2cbytewrite") { #byteweise schreiben
  403. my $reg = undef;
  404. $reg = $clientmsg->{reg} if (defined($clientmsg->{reg}));
  405. $status = "Ok";
  406. foreach (split(" ", $clientmsg->{data})) {
  407. my $data = (defined($reg) ? chr($reg++) : "") . chr($_);
  408. my $retval = syswrite($fh, $data, length($data));
  409. #Log3 $hash, 1, "retval= $retval" if $clientmsg->{test} eq "local";
  410. unless (defined($retval) && $retval == length($data)) {
  411. Log3 $hash, 3, "$hash->{NAME}: HWaccess byteweise nach 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." schreiben, ". (defined($reg) ? "Reg: 0x". unpack( "H2",pack "C", ($reg - 1)) . " " : "")."Inh: 0x" . unpack( "H2",pack "C", $_) .", laenge: ".length($data)."| -> syswrite failure: $!";
  412. $status = "error";
  413. last;
  414. }
  415. Log3 $hash, 5, "$hash->{NAME}: HWaccess byteweise schreiben, ". (defined($reg) ? "Reg: 0x". unpack( "H2",pack "C", ($reg - 1)) . " " : "")."Inh: 0x" . unpack( "H2",pack "C", $_) .", laenge: ".length($data);
  416. #Log3 $hash, 1, "$hash->{NAME}: HWaccess byteweise zu 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." schreiben, ". (defined($reg) ? "Reg: 0x". unpack( "H2",pack "C", ($reg - 1)) . " " : "")."Inh: 0x" . unpack( "H2",pack "C", $_) .", laenge: ".length($data) if $clientmsg->{test} eq "local";
  417. }
  418. } elsif ($clientmsg->{direction} eq "i2cbyteread") { #byteweise lesen
  419. my $nbyte = defined($clientmsg->{nbyte}) ? $clientmsg->{nbyte} : 1;
  420. my $rmsg = "";
  421. foreach (my $n = 0; $n < $nbyte; $n++) {
  422. if ( defined($clientmsg->{reg}) ) {
  423. Log3 $hash, 5, "$hash->{NAME}: HWaccess byteweise lesen setze Registerpointer auf " . ($clientmsg->{reg} + $n);
  424. my $retval = syswrite($fh, chr($clientmsg->{reg} + $n), 1);
  425. unless (defined($retval) && $retval == 1) {
  426. Log3 $hash, 3, "$hash->{NAME}: HWaccess byteweise von 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." lesen,". (defined($clientmsg->{reg}) ? " Reg: 0x". unpack( "H2",pack "C", ($clientmsg->{reg} + $n)) : "") . " -> syswrite failure: $!" if $!;
  427. last;
  428. }
  429. }
  430. if (defined($clientmsg->{usleep})) {
  431. usleep($clientmsg->{usleep});
  432. }
  433. my $buf = undef;
  434. my $retval = sysread($fh, $buf, 1);
  435. unless (defined($retval) && $retval == 1) {
  436. Log3 $hash, 3, "$hash->{NAME}: HWaccess byteweise von 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." lesen,". (defined($clientmsg->{reg}) ? " Reg: 0x". unpack( "H2",pack "C", ($clientmsg->{reg} + $n)) : "") . " -> sysread failure: $!" if $!;
  437. last;
  438. }
  439. $rmsg .= ord($buf);
  440. $rmsg .= " " if $n <= $nbyte;
  441. $status = "Ok" if ($n + 1) == $nbyte;
  442. }
  443. $clientmsg->{received} = $rmsg if($rmsg); #Daten als Scalar uebertragen
  444. } elsif ($clientmsg->{direction} eq "i2cread") { #blockweise lesen
  445. my $nbyte = defined($clientmsg->{nbyte}) ? $clientmsg->{nbyte} : 1;
  446. my $rmsg = "";
  447. if ( defined($clientmsg->{reg}) ) {
  448. Log3 $hash, 4, "$hash->{NAME}: HWaccess blockweise lesen setze Registerpointer auf " . ($clientmsg->{reg});
  449. my $retval = syswrite($fh, chr($clientmsg->{reg}), 1);
  450. unless (defined($retval) && $retval == 1) {
  451. Log3 $hash, 3, "$hash->{NAME}: HWaccess blockweise von 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." lesen,". (defined($clientmsg->{reg}) ? " Reg: 0x". unpack( "H2",pack "C", ($clientmsg->{reg})) : "") . " -> syswrite failure: $!" if $!;
  452. $status = "regerror";
  453. }
  454. }
  455. unless ($status eq "regerror") {
  456. usleep($clientmsg->{usleep}) if defined $clientmsg->{usleep};
  457. my $buf = undef;
  458. my $retval = sysread($fh, $buf, $nbyte);
  459. unless (defined($retval) && $retval == $nbyte) {
  460. Log3 $hash, 3, "$hash->{NAME}: HWaccess blockweise von 0x".unpack( "H2",pack "C", $clientmsg->{i2caddress})." lesen,". (defined($clientmsg->{reg}) ? " Reg: 0x". unpack( "H2",pack "C", ($clientmsg->{reg})) : "") . " -> sysread failure: $!" if $!;
  461. } else {
  462. $rmsg = $buf;
  463. $rmsg =~ s/(.|\n)/sprintf("%u ",ord($1))/eg;
  464. #Log3 $hash, 1, "test Blockweise lesen menge: |$nbyte|, inh: |$buf|, ergebnis: |$rmsg|";
  465. $clientmsg->{received} = $rmsg if($rmsg); #Daten als Scalar uebertragen
  466. $status = "Ok"
  467. }
  468. }
  469. }
  470. $hash->{STATE} = $status;
  471. $hash->{ERRORCNT} = defined($hash->{ERRORCNT}) ? $hash->{ERRORCNT} += 1 : 1 if $status ne "Ok";
  472. #$clientmsg->{$hash->{NAME} . "_" . "RAWMSG"} = $inh;
  473. return $status;
  474. }
  475. =pod
  476. =item device
  477. =item summary accesses I2C interface via sysfs on linux
  478. =item summary_DE Zugriff auf das I2C-Interface &uuml;ber sysfs auf Linux Systemen
  479. =begin html
  480. <a name="RPII2C"></a>
  481. <h3>RPII2C</h3>
  482. (en | <a href="commandref_DE.html#RPII2C">de</a>)
  483. <ul>
  484. <a name="RPII2C"></a>
  485. Provides access to Raspberry Pi's I2C interfaces for some logical modules and also directly.<br>
  486. This modul will basically work on every linux system that provides <code>/dev/i2c-x</code>.<br><br>
  487. <b>preliminary:</b><br>
  488. <ul>
  489. <li>
  490. load I2C kernel modules (choose <b>one</b> of the following options):<br>
  491. <ul>
  492. <li>
  493. open /etc/modules<br>
  494. <ul><code>sudo nano /etc/modules</code></ul><br>
  495. add these lines<br>
  496. <ul><code>
  497. i2c-dev<br>
  498. i2c-bcm2708<br>
  499. </code></ul>
  500. </li>
  501. <li>
  502. Since Kernel 3.18.x on raspberry pi and maybe on other boards too, device tree support was implemented and enabled by default.
  503. To enable I2C support just add
  504. <ul><code>device_tree_param=i2c0=on,i2c1=on</code></ul> to /boot/config.txt
  505. You can also enable just one of the I2C. In this case remove the unwantet one from the line.
  506. </li>
  507. <li>
  508. On Raspbian images since 2015 just start <code>sudo raspi-config</code> and enable I2C there. Parameters will be added automaticly to /boot/config.txt
  509. </li>
  510. reboot
  511. </ul>
  512. </li><br>
  513. <li>Choose <b>only one</b> of the three follwing methodes do grant access to <code>/dev/i2c-*</code> for FHEM user:
  514. <ul>
  515. <li>
  516. <code>sudo apt-get install i2c-tools<br>
  517. sudo adduser fhem i2c<br>
  518. sudo reboot</code><br>
  519. </li><br>
  520. <li>
  521. Add following lines into <code>/etc/init.d/fhem</code> before <code>perl fhem.pl</code> line in start or into <code>/etc/rc.local</code>:<br>
  522. <code>
  523. sudo chown fhem /dev/i2c-*<br>
  524. sudo chgrp dialout /dev/i2c-*<br>
  525. sudo chmod +t /dev/i2c-*<br>
  526. sudo chmod 660 /dev/i2c-*<br>
  527. </code>
  528. </li><br>
  529. <li>
  530. Alternatively for Raspberry Pi you can install the gpio utility from <a href="http://wiringpi.com/download-and-install/">WiringPi</a> library change access rights of I2C-Interface<br>
  531. WiringPi installation is described here: <a href="#RPI_GPIO">RPI_GPIO.</a><br>
  532. gpio utility will be automaticly used, if installed.<br>
  533. Important: to use I2C-0 at P5 connector you must use attribute <code>swap_i2c0</code>.<br>
  534. </li>
  535. </ul>
  536. </li><br>
  537. <li>
  538. <b>Optional</b>: access via IOCTL will be used (RECOMMENDED) if Device::SMBus is not present.<br>
  539. To access the I2C-Bus via the Device::SMBus module, following steps are necessary:<br>
  540. <ul><code>sudo apt-get install libmoose-perl<br>
  541. sudo cpan Device::SMBus</code></ul><br>
  542. </li>
  543. <li>
  544. <b>For Raspbian users only</b><br>
  545. If you are using I2C-0 at P5 connector on Raspberry Pi model B with newer raspbian versions, including support for Raspberry Pi model B+, you must add following line to <code>/boot/cmdline.txt</code>:<br>
  546. <ul><code>bcm2708.vc_i2c_override=1</code></ul><br>
  547. </li>
  548. </ul>
  549. <a name="RPII2CDefine"></a><br>
  550. <b>Define</b>
  551. <ul>
  552. <code>define &lt;name&gt; RPII2C &lt;I2C Bus Number&gt;</code><br>
  553. where <code>&lt;I2C Bus Number&gt;</code> is the number of the I2C bus that should be used (0 or 1)<br><br>
  554. </ul>
  555. <a name="RPII2CSet"></a>
  556. <b>Set</b>
  557. <ul>
  558. <li>
  559. Write one byte (or more bytes sequentially) directly to an I2C device (for devices that have only one register to write):<br>
  560. <code>set &lt;name&gt; writeByte &lt;I2C Address&gt; &lt;value&gt;</code><br><br>
  561. </li>
  562. <li>
  563. Write n-bytes to an register range (as an series of single register write operations), beginning at the specified register:<br>
  564. <code>set &lt;name&gt; writeByteReg &lt;I2C Address&gt; &lt;Register Address&gt; &lt;value&gt; [&lt;value&gt; [..]]</code><br><br>
  565. </li>
  566. <li>
  567. Write n-bytes directly to an I2C device (as an block write operation):<br>
  568. <code>set &lt;name&gt; writeBlock &lt;I2C Address&gt; &lt;Register Address&gt; &lt;value&gt; [&lt;value&gt; [..]]</code><br><br>
  569. </li>
  570. <li>
  571. Write n-bytes to an register range (as an block write operation), beginning at the specified register:<br>
  572. <code>set &lt;name&gt; writeBlockReg &lt;I2C Address&gt; &lt;Register Address&gt; &lt;value&gt; [&lt;value&gt; [..]]</code><br><br>
  573. </li><br>
  574. Examples:
  575. <ul>
  576. Write 0xAA to device with I2C address 0x60<br>
  577. <code>set test1 writeByte 60 AA</code><br>
  578. Write 0xAA to register 0x01 of device with I2C address 0x6E<br>
  579. <code>set test1 writeByteReg 6E 01 AA</code><br>
  580. Write 0xAA to register 0x01 of device with I2C address 0x6E, after it write 0x55 to 0x02 as two separate commands<br>
  581. <code>set test1 writeByteReg 6E 01 AA 55</code><br>
  582. Write 0xA4 to register 0x03, 0x00 to register 0x04 and 0xDA to register 0x05 of device with I2C address 0x60 as an block command<br>
  583. <code>set test1 writeBlock 60 03 A4 00 DA</code><br>
  584. </ul><br>
  585. </ul>
  586. <a name="RPII2CGet"></a>
  587. <b>Get</b>
  588. <ul>
  589. <li>
  590. Gets value of I2C device's registers:<br>
  591. <code>get &lt;name&gt; read &lt;I2C Address&gt; [&lt;Register Address&gt; [&lt;number of registers&gt;]]</code><br><br>
  592. </li>
  593. <li>
  594. Gets value of I2C device in blockwise mode:<br>
  595. <code>get &lt;name&gt; readblock &lt;I2C Address&gt; [&lt;number of registers&gt;]</code><br><br>
  596. </li>
  597. <li>
  598. Gets value of I2C device's registers in blockwise mode:<br>
  599. <code>get &lt;name&gt; readblockreg &lt;I2C Address&gt; &lt;Register Address&gt; [&lt;number of registers&gt;]</code><br><br>
  600. </li><br>
  601. Examples:
  602. <ul>
  603. Reads byte from device with I2C address 0x60<br>
  604. <code>get test1 read 60</code><br>
  605. Reads register 0x01 of device with I2C address 0x6E.<br>
  606. <code>get test1 read 6E 01 AA 55</code><br>
  607. Reads register 0x03 to 0x06 of device with I2C address 0x60.<br>
  608. <code>get test1 read 60 03 4</code><br>
  609. </ul><br>
  610. </ul><br>
  611. <a name="RPII2CAttr"></a>
  612. <b>Attributes</b>
  613. <ul>
  614. <li>swap_i2c0<br>
  615. Swap Raspberry Pi's I2C-0 from J5 to P5 rev. B<br>
  616. This attribute is for Raspberry Pi only and needs gpio utility from <a href="http://wiringpi.com/download-and-install/">WiringPi</a> library.<br>
  617. Default: none, valid values: on, off<br><br>
  618. </li>
  619. <li>useHWLib<br>
  620. Change hardware access method.<br>
  621. Attribute exists only if both access methods are usable<br>
  622. Default: IOCTL, valid values: IOCTL, SMBus<br><br>
  623. </li>
  624. <li><a href="#ignore">ignore</a></li>
  625. <li><a href="#do_not_notify">do_not_notify</a></li>
  626. <li><a href="#showtime">showtime</a></li>
  627. </ul>
  628. <br>
  629. </ul>
  630. =end html
  631. =begin html_DE
  632. <a name="RPII2C"></a>
  633. <h3>RPII2C</h3>
  634. (<a href="commandref.html#RPII2C">en</a> | de)
  635. <ul>
  636. <a name="RPII2C"></a>
  637. Erm&ouml;glicht den Zugriff auf die I2C Schnittstellen des Raspberry Pi, BBB, Cubie &uuml;ber logische Module. Register von I2C IC's k&ouml;nnen auch direkt gelesen und geschrieben werden.<br><br>
  638. Dieses Modul funktioniert gruns&auml;tzlich auf allen Linux Systemen, die <code>/dev/i2c-x</code> bereitstellen.<br><br>
  639. <b>Vorbereitung:</b><br>
  640. <ul>
  641. <li>
  642. I2C Kernelmodule laden (chose <b>one</b> of the following options):<br>
  643. <ul>
  644. <li>
  645. I2C Kernelmodule laden:<br>
  646. modules Datei &ouml;ffnen<br>
  647. <ul><code>sudo nano /etc/modules</code></ul><br>
  648. folgendes einf&uuml;gen<br>
  649. <ul><code>
  650. i2c-dev<br>
  651. i2c-bcm2708<br>
  652. </code></ul>
  653. </li>
  654. <li>
  655. Seit Kernel 3.18.x auf dem Raspberry Pi und evtl. auch auf anderen Systemen ist der "Device tree support" implementiert und standardm&auml;&szlig;ig aktiviert.
  656. Um I2C Unterst&uuml;tzung zu aktivieren mu&szlig;
  657. <ul><code>device_tree_param=i2c0=on,i2c1=on</code></ul> zur /boot/config.txt hinzu gef&uuml;gt werden.
  658. Wenn nur einer der Busse genutzt wird, kann der andere einfach aus der Zeile entfernt werden.
  659. </li>
  660. <li>
  661. Bei Raspbian Images seit 2015 kann der I2C Bus einfach &uuml;ber <code>sudo raspi-config</code> aktiviert werden. Die Parameter werden automatisch in die /boot/config.txt eingetragen.
  662. </li>
  663. Neustart
  664. </ul>
  665. </li><br>
  666. <li><b>Eine</b> der folgenden drei M&ouml;glichkeiten w&auml;hlen um dem FHEM User Zugriff auf <code>/dev/i2c-*</code> zu geben:
  667. <ul>
  668. <li>
  669. <code>
  670. sudo apt-get install i2c-tools<br>
  671. sudo adduser fhem i2c</code><br>
  672. </li><br>
  673. <li>
  674. Folgende Zeilen entweder in die Datei <code>/etc/init.d/fhem</code> vor <code>perl fhem.pl</code> in start, oder in die Datei <code>/etc/rc.local</code> eingef&uuml;gen:<br>
  675. <code>
  676. sudo chown fhem /dev/i2c-*<br>
  677. sudo chgrp dialout /dev/i2c-*<br>
  678. sudo chmod +t /dev/i2c-*<br>
  679. sudo chmod 660 /dev/i2c-*<br>
  680. </code>
  681. </li><br>
  682. <li>
  683. F&uumlr das Raspberry Pi kann alternativ das gpio Utility der <a href="http://wiringpi.com/download-and-install/">WiringPi</a> Bibliothek benutzt werden um FHEM Schreibrechte auf die I2C Schnittstelle zu bekommen.<br>
  684. WiringPi Installation ist hier beschrieben: <a href="#RPI_GPIO">RPI_GPIO</a><br>
  685. Das gpio Utility wird, wenn vorhanden, automatisch verwendet<br>
  686. Wichtig: um den I2C-0 am P5 Stecker des Raspberry nutzen zu k&ouml;nnen muss das Attribut <code>swap_i2c0</code> verwendet werden.<br>
  687. </li>
  688. </ul>
  689. </li><br>
  690. <li>
  691. <b>Optional</b>: Hardwarezugriff via IOCTL wird standardm&auml;&szlig;ig genutzt (EMPFOHLEN), wenn Device::SMBus nicht installiert ist<br>
  692. Soll der Hardwarezugriff &uuml;ber das Perl Modul Device::SMBus erfolgen sind diese Schritte notwendig:<br>
  693. <ul><code>sudo apt-get install libmoose-perl<br>
  694. sudo cpan Device::SMBus</code></ul><br>
  695. </li>
  696. <li>
  697. <b>Nur f&uuml;r Raspbian Nutzer</b><br>
  698. Um I2C-0 am P5 Stecker auf Raspberry Pi modell B mit neueren Raspbian Versionen zu nutzen, welche auch das Raspberry Pi model B+ unterst&uuml;tzen, muss folgende Zeile in die <code>/boot/cmdline.txt</code> eingef&uuml;gt werden:<br>
  699. <ul><code>bcm2708.vc_i2c_override=1</code></ul><br>
  700. </li>
  701. </ul>
  702. <a name="RPII2CDefine"></a><br>
  703. <b>Define</b>
  704. <ul>
  705. <code>define &lt;name&gt; RPII2C &lt;I2C Bus Number&gt;</code><br>
  706. Die <code>&lt;I2C Bus Number&gt;</code> ist die Nummer des I2C Bus an den die I2C IC's angeschlossen werden<br><br>
  707. </ul>
  708. <a name="RPII2CSet"></a>
  709. <b>Set</b>
  710. <ul>
  711. <li>
  712. Schreibe ein Byte (oder auch mehrere nacheinander) direkt auf ein I2C device (manche I2C Module sind so einfach, das es nicht einmal mehrere Register gibt):<br>
  713. <code>set &lt;name&gt; writeByte &lt;I2C Address&gt; &lt;value&gt;</code><br><br>
  714. </li>
  715. <li>
  716. Schreibe n-bytes auf einen Registerbereich (als Folge von Einzelbefehlen), beginnend mit dem angegebenen Register:<br>
  717. <code>set &lt;name&gt; writeByteReg &lt;I2C Address&gt; &lt;Register Address&gt; &lt;value&gt; [&lt;value&gt; [..]]</code><br><br>
  718. </li>
  719. <li>
  720. Schreibe n-bytes auf ein I2C device (als Blockoperation):<br>
  721. <code>set &lt;name&gt; writeBlock &lt;I2C Address&gt; &lt;value&gt; [&lt;value&gt; [..]]</code><br><br>
  722. </li>
  723. <li>
  724. Schreibe n-bytes auf einen Registerbereich (als Blockoperation), beginnend mit dem angegebenen Register:<br>
  725. <code>set &lt;name&gt; writeBlockReg &lt;I2C Address&gt; &lt;Register Address&gt; &lt;value&gt; [&lt;value&gt; [..]]</code><br><br>
  726. </li><br>
  727. Beispiele:
  728. <ul>
  729. Schreibe 0xAA zu Modul mit I2C Addresse 0x60<br>
  730. <code>set test1 writeByte 60 AA</code><br>
  731. Schreibe 0xAA zu Register 0x01 des Moduls mit der I2C Adresse 0x6E<br>
  732. <code>set test1 writeByteReg 6E 01 AA</code><br>
  733. Schreibe 0xAA zu Register 0x01 des Moduls mit der I2C Adresse 0x6E, schreibe danach 0x55 in das Register 0x02 als einzelne Befehle<br>
  734. <code>set test1 writeByteReg 6E 01 AA 55</code><br>
  735. Schreibe 0xA4 zu Register 0x03, 0x00 zu Register 0x04 und 0xDA zu Register 0x05 des Moduls mit der I2C Adresse 0x60 zusammen als ein Blockbefehl<br>
  736. <code>set test1 writeBlockReg 60 03 A4 00 DA</code><br>
  737. </ul><br>
  738. </ul>
  739. <a name="RPII2CGet"></a>
  740. <b>Get</b>
  741. <ul>
  742. <li>
  743. Auslesen der Registerinhalte des I2C Moduls:<br>
  744. <code>get &lt;name&gt; read &lt;I2C Address&gt; [&lt;Register Address&gt; [&lt;number of registers&gt;]]</code><br><br>
  745. </li>
  746. <li>
  747. Blockweises Auslesen des I2C Moduls (ohne separate Register):<br>
  748. <code>get &lt;name&gt; readblock &lt;I2C Address&gt; [&lt;number of registers&gt;]</code><br><br>
  749. </li>
  750. <li>
  751. Blockweises Auslesen der Registerinhalte des I2C Moduls:<br>
  752. <code>get &lt;name&gt; readblockreg &lt;I2C Address&gt; &lt;Register Address&gt; [&lt;number of registers&gt;]</code><br><br>
  753. </li><br>
  754. Beispiele:
  755. <ul>
  756. Lese Byte vom Modul mit der I2C Adresse 0x60<br>
  757. <code>get test1 read 60</code><br>
  758. Lese den Inhalt des Registers 0x01 vom Modul mit der I2C Adresse 0x6E.<br>
  759. <code>get test1 read 6E 01 AA 55</code><br>
  760. Lese den Inhalt des Registerbereichs 0x03 bis 0x06 vom Modul mit der I2C Adresse 0x60.<br>
  761. <code>get test1 read 60 03 4</code><br>
  762. </ul><br>
  763. </ul><br>
  764. <a name="RPII2CAttr"></a>
  765. <b>Attribute</b>
  766. <ul>
  767. <li>swap_i2c0<br>
  768. Umschalten von I2C-0 des Raspberry Pi Rev. B von J5 auf P5<br>
  769. Dieses Attribut ist nur f&uuml;r das Raspberry Pi vorgesehen und ben&ouml;tigt das gpio utility wie unter dem Punkt Vorbereitung beschrieben.<br>
  770. Standard: keiner, g&uuml;ltige Werte: on, off<br><br>
  771. </li>
  772. <li>useHWLib<br>
  773. &Auml;ndern der Methode des Hardwarezugriffs.<br>
  774. Dieses Attribut existiert nur, wenn beide Zugriffsmethoden verf&uuml;gbar sind<br>
  775. Standard: IOCTL, g&uuml;ltige Werte: IOCTL, SMBus<br><br>
  776. </li>
  777. <li><a href="#ignore">ignore</a></li>
  778. <li><a href="#do_not_notify">do_not_notify</a></li>
  779. <li><a href="#showtime">showtime</a></li>
  780. </ul>
  781. <br>
  782. </ul>
  783. =end html_DE
  784. 1;