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rpc_generic.c revision 1.1
      1  1.1  fvdl /*	$NetBSD: rpc_generic.c,v 1.1 2000/06/02 23:11:13 fvdl Exp $	*/
      2  1.1  fvdl 
      3  1.1  fvdl /*
      4  1.1  fvdl  * Sun RPC is a product of Sun Microsystems, Inc. and is provided for
      5  1.1  fvdl  * unrestricted use provided that this legend is included on all tape
      6  1.1  fvdl  * media and as a part of the software program in whole or part.  Users
      7  1.1  fvdl  * may copy or modify Sun RPC without charge, but are not authorized
      8  1.1  fvdl  * to license or distribute it to anyone else except as part of a product or
      9  1.1  fvdl  * program developed by the user.
     10  1.1  fvdl  *
     11  1.1  fvdl  * SUN RPC IS PROVIDED AS IS WITH NO WARRANTIES OF ANY KIND INCLUDING THE
     12  1.1  fvdl  * WARRANTIES OF DESIGN, MERCHANTIBILITY AND FITNESS FOR A PARTICULAR
     13  1.1  fvdl  * PURPOSE, OR ARISING FROM A COURSE OF DEALING, USAGE OR TRADE PRACTICE.
     14  1.1  fvdl  *
     15  1.1  fvdl  * Sun RPC is provided with no support and without any obligation on the
     16  1.1  fvdl  * part of Sun Microsystems, Inc. to assist in its use, correction,
     17  1.1  fvdl  * modification or enhancement.
     18  1.1  fvdl  *
     19  1.1  fvdl  * SUN MICROSYSTEMS, INC. SHALL HAVE NO LIABILITY WITH RESPECT TO THE
     20  1.1  fvdl  * INFRINGEMENT OF COPYRIGHTS, TRADE SECRETS OR ANY PATENTS BY SUN RPC
     21  1.1  fvdl  * OR ANY PART THEREOF.
     22  1.1  fvdl  *
     23  1.1  fvdl  * In no event will Sun Microsystems, Inc. be liable for any lost revenue
     24  1.1  fvdl  * or profits or other special, indirect and consequential damages, even if
     25  1.1  fvdl  * Sun has been advised of the possibility of such damages.
     26  1.1  fvdl  *
     27  1.1  fvdl  * Sun Microsystems, Inc.
     28  1.1  fvdl  * 2550 Garcia Avenue
     29  1.1  fvdl  * Mountain View, California  94043
     30  1.1  fvdl  */
     31  1.1  fvdl /*
     32  1.1  fvdl  * Copyright (c) 1986-1991 by Sun Microsystems Inc.
     33  1.1  fvdl  */
     34  1.1  fvdl 
     35  1.1  fvdl /* #pragma ident	"@(#)rpc_generic.c	1.17	94/04/24 SMI" */
     36  1.1  fvdl 
     37  1.1  fvdl /*
     38  1.1  fvdl  * rpc_generic.c, Miscl routines for RPC.
     39  1.1  fvdl  *
     40  1.1  fvdl  */
     41  1.1  fvdl 
     42  1.1  fvdl #include <sys/types.h>
     43  1.1  fvdl #include <sys/param.h>
     44  1.1  fvdl #include <sys/socket.h>
     45  1.1  fvdl #include <sys/un.h>
     46  1.1  fvdl #include <sys/resource.h>
     47  1.1  fvdl #include <netinet/in.h>
     48  1.1  fvdl #include <arpa/inet.h>
     49  1.1  fvdl #include <rpc/rpc.h>
     50  1.1  fvdl #include <ctype.h>
     51  1.1  fvdl #include <stdio.h>
     52  1.1  fvdl #include <netdb.h>
     53  1.1  fvdl #include <netconfig.h>
     54  1.1  fvdl #include <malloc.h>
     55  1.1  fvdl #include <string.h>
     56  1.1  fvdl #include <rpc/nettype.h>
     57  1.1  fvdl #include "rpc_com.h"
     58  1.1  fvdl 
     59  1.1  fvdl struct handle {
     60  1.1  fvdl 	NCONF_HANDLE *nhandle;
     61  1.1  fvdl 	int nflag;		/* Whether NETPATH or NETCONFIG */
     62  1.1  fvdl 	int nettype;
     63  1.1  fvdl };
     64  1.1  fvdl 
     65  1.1  fvdl struct _rpcnettype {
     66  1.1  fvdl 	const char *name;
     67  1.1  fvdl 	const int type;
     68  1.1  fvdl } _rpctypelist[] = {
     69  1.1  fvdl 	{ "netpath", _RPC_NETPATH },
     70  1.1  fvdl 	{ "visible", _RPC_VISIBLE },
     71  1.1  fvdl 	{ "circuit_v", _RPC_CIRCUIT_V },
     72  1.1  fvdl 	{ "datagram_v", _RPC_DATAGRAM_V },
     73  1.1  fvdl 	{ "circuit_n", _RPC_CIRCUIT_N },
     74  1.1  fvdl 	{ "datagram_n", _RPC_DATAGRAM_N },
     75  1.1  fvdl 	{ "tcp", _RPC_TCP },
     76  1.1  fvdl 	{ "udp", _RPC_UDP },
     77  1.1  fvdl 	{ 0, _RPC_NONE }
     78  1.1  fvdl };
     79  1.1  fvdl 
     80  1.1  fvdl struct netid_af {
     81  1.1  fvdl 	const char	*netid;
     82  1.1  fvdl 	int		af;
     83  1.1  fvdl 	int		protocol;
     84  1.1  fvdl };
     85  1.1  fvdl 
     86  1.1  fvdl static struct netid_af na_cvt[] = {
     87  1.1  fvdl 	{ "udp",  AF_INET,  IPPROTO_UDP },
     88  1.1  fvdl 	{ "tcp",  AF_INET,  IPPROTO_TCP },
     89  1.1  fvdl #ifdef INET6
     90  1.1  fvdl 	{ "udp6", AF_INET6, IPPROTO_UDP },
     91  1.1  fvdl 	{ "tcp6", AF_INET6, IPPROTO_TCP },
     92  1.1  fvdl #endif
     93  1.1  fvdl 	{ "local", AF_LOCAL, 0 }
     94  1.1  fvdl };
     95  1.1  fvdl 
     96  1.1  fvdl static char *strlocase __P((char *));
     97  1.1  fvdl static int getnettype __P((char *));
     98  1.1  fvdl 
     99  1.1  fvdl /*
    100  1.1  fvdl  * Cache the result of getrlimit(), so we don't have to do an
    101  1.1  fvdl  * expensive call every time.
    102  1.1  fvdl  */
    103  1.1  fvdl int
    104  1.1  fvdl __rpc_dtbsize()
    105  1.1  fvdl {
    106  1.1  fvdl 	static int tbsize;
    107  1.1  fvdl 	struct rlimit rl;
    108  1.1  fvdl 
    109  1.1  fvdl 	if (tbsize) {
    110  1.1  fvdl 		return (tbsize);
    111  1.1  fvdl 	}
    112  1.1  fvdl 	if (getrlimit(RLIMIT_NOFILE, &rl) == 0) {
    113  1.1  fvdl 		return (tbsize = rl.rlim_max);
    114  1.1  fvdl 	}
    115  1.1  fvdl 	/*
    116  1.1  fvdl 	 * Something wrong.  I'll try to save face by returning a
    117  1.1  fvdl 	 * pessimistic number.
    118  1.1  fvdl 	 */
    119  1.1  fvdl 	return (32);
    120  1.1  fvdl }
    121  1.1  fvdl 
    122  1.1  fvdl 
    123  1.1  fvdl /*
    124  1.1  fvdl  * Find the appropriate buffer size
    125  1.1  fvdl  */
    126  1.1  fvdl u_int
    127  1.1  fvdl __rpc_get_t_size(af, proto, size)
    128  1.1  fvdl 	int af, proto;
    129  1.1  fvdl 	int size;	/* Size requested */
    130  1.1  fvdl {
    131  1.1  fvdl 	int maxsize;
    132  1.1  fvdl 
    133  1.1  fvdl 	switch (proto) {
    134  1.1  fvdl 	case IPPROTO_TCP:
    135  1.1  fvdl 		maxsize = 65536;	/* XXX */
    136  1.1  fvdl 		break;
    137  1.1  fvdl 	case IPPROTO_UDP:
    138  1.1  fvdl 		maxsize = 8192;		/* XXX */
    139  1.1  fvdl 		break;
    140  1.1  fvdl 	default:
    141  1.1  fvdl 		maxsize = RPC_MAXDATASIZE;
    142  1.1  fvdl 		break;
    143  1.1  fvdl 	}
    144  1.1  fvdl 	if (size == 0)
    145  1.1  fvdl 		return maxsize;
    146  1.1  fvdl 
    147  1.1  fvdl 	/* Check whether the value is within the upper max limit */
    148  1.1  fvdl 	return (size > maxsize ? (u_int)maxsize : (u_int)size);
    149  1.1  fvdl }
    150  1.1  fvdl 
    151  1.1  fvdl /*
    152  1.1  fvdl  * Find the appropriate address buffer size
    153  1.1  fvdl  */
    154  1.1  fvdl u_int
    155  1.1  fvdl __rpc_get_a_size(af)
    156  1.1  fvdl 	int af;
    157  1.1  fvdl {
    158  1.1  fvdl 	switch (af) {
    159  1.1  fvdl 	case AF_INET:
    160  1.1  fvdl 		return sizeof (struct sockaddr_in);
    161  1.1  fvdl #ifdef INET6
    162  1.1  fvdl 	case AF_INET6:
    163  1.1  fvdl 		return sizeof (struct sockaddr_in6);
    164  1.1  fvdl #endif
    165  1.1  fvdl 	case AF_LOCAL:
    166  1.1  fvdl 		return sizeof (struct sockaddr_un);
    167  1.1  fvdl 	default:
    168  1.1  fvdl 		break;
    169  1.1  fvdl 	}
    170  1.1  fvdl 	return ((u_int)RPC_MAXADDRSIZE);
    171  1.1  fvdl }
    172  1.1  fvdl 
    173  1.1  fvdl static char *
    174  1.1  fvdl strlocase(p)
    175  1.1  fvdl 	char *p;
    176  1.1  fvdl {
    177  1.1  fvdl 	char *t = p;
    178  1.1  fvdl 
    179  1.1  fvdl 	for (; *p; p++)
    180  1.1  fvdl 		if (isupper(*p))
    181  1.1  fvdl 			*p = tolower(*p);
    182  1.1  fvdl 	return (t);
    183  1.1  fvdl }
    184  1.1  fvdl 
    185  1.1  fvdl /*
    186  1.1  fvdl  * Returns the type of the network as defined in <rpc/nettype.h>
    187  1.1  fvdl  * If nettype is NULL, it defaults to NETPATH.
    188  1.1  fvdl  */
    189  1.1  fvdl static int
    190  1.1  fvdl getnettype(nettype)
    191  1.1  fvdl 	char *nettype;
    192  1.1  fvdl {
    193  1.1  fvdl 	int i;
    194  1.1  fvdl 
    195  1.1  fvdl 	if ((nettype == NULL) || (nettype[0] == NULL)) {
    196  1.1  fvdl 		return (_RPC_NETPATH);	/* Default */
    197  1.1  fvdl 	}
    198  1.1  fvdl 
    199  1.1  fvdl 	nettype = strlocase(nettype);
    200  1.1  fvdl 	for (i = 0; _rpctypelist[i].name; i++)
    201  1.1  fvdl 		if (strcmp(nettype, _rpctypelist[i].name) == 0) {
    202  1.1  fvdl 			return (_rpctypelist[i].type);
    203  1.1  fvdl 		}
    204  1.1  fvdl 	return (_rpctypelist[i].type);
    205  1.1  fvdl }
    206  1.1  fvdl 
    207  1.1  fvdl /*
    208  1.1  fvdl  * For the given nettype (tcp or udp only), return the first structure found.
    209  1.1  fvdl  * This should be freed by calling freenetconfigent()
    210  1.1  fvdl  */
    211  1.1  fvdl struct netconfig *
    212  1.1  fvdl __rpc_getconfip(nettype)
    213  1.1  fvdl 	char *nettype;
    214  1.1  fvdl {
    215  1.1  fvdl 	char *netid;
    216  1.1  fvdl 	char *netid_tcp = (char *) NULL;
    217  1.1  fvdl 	char *netid_udp = (char *) NULL;
    218  1.1  fvdl 	static char *netid_tcp_main;
    219  1.1  fvdl 	static char *netid_udp_main;
    220  1.1  fvdl 	struct netconfig *dummy;
    221  1.1  fvdl #ifdef __REENT
    222  1.1  fvdl 	int main_thread;
    223  1.1  fvdl 	static thread_key_t tcp_key, udp_key;
    224  1.1  fvdl 	extern mutex_t tsd_lock;
    225  1.1  fvdl 
    226  1.1  fvdl 	if ((main_thread = _thr_main())) {
    227  1.1  fvdl 		netid_udp = netid_udp_main;
    228  1.1  fvdl 		netid_tcp = netid_tcp_main;
    229  1.1  fvdl 	} else {
    230  1.1  fvdl 		if (tcp_key == 0) {
    231  1.1  fvdl 			mutex_lock(&tsd_lock);
    232  1.1  fvdl 			if (tcp_key == 0)
    233  1.1  fvdl 				thr_keycreate(&tcp_key, free);
    234  1.1  fvdl 			mutex_unlock(&tsd_lock);
    235  1.1  fvdl 		}
    236  1.1  fvdl 		thr_getspecific(tcp_key, (void **) &netid_tcp);
    237  1.1  fvdl 		if (udp_key == 0) {
    238  1.1  fvdl 			mutex_lock(&tsd_lock);
    239  1.1  fvdl 			if (udp_key == 0)
    240  1.1  fvdl 				thr_keycreate(&udp_key, free);
    241  1.1  fvdl 			mutex_unlock(&tsd_lock);
    242  1.1  fvdl 		}
    243  1.1  fvdl 		thr_getspecific(udp_key, (void **) &netid_udp);
    244  1.1  fvdl 	}
    245  1.1  fvdl #else
    246  1.1  fvdl 	netid_udp = netid_udp_main;
    247  1.1  fvdl 	netid_tcp = netid_tcp_main;
    248  1.1  fvdl #endif
    249  1.1  fvdl 	if (!netid_udp && !netid_tcp) {
    250  1.1  fvdl 		struct netconfig *nconf;
    251  1.1  fvdl 		void *confighandle;
    252  1.1  fvdl 
    253  1.1  fvdl 		if (!(confighandle = setnetconfig())) {
    254  1.1  fvdl 			return (NULL);
    255  1.1  fvdl 		}
    256  1.1  fvdl 		while ((nconf = getnetconfig(confighandle))) {
    257  1.1  fvdl 			if (strcmp(nconf->nc_protofmly, NC_INET) == 0) {
    258  1.1  fvdl 				if (strcmp(nconf->nc_proto, NC_TCP) == 0) {
    259  1.1  fvdl 					netid_tcp = strdup(nconf->nc_netid);
    260  1.1  fvdl #ifdef __REENT
    261  1.1  fvdl 					if (main_thread)
    262  1.1  fvdl 						netid_tcp_main = netid_tcp;
    263  1.1  fvdl 					else
    264  1.1  fvdl 						thr_setspecific(tcp_key,
    265  1.1  fvdl 							(void *) netid_tcp);
    266  1.1  fvdl #else
    267  1.1  fvdl 					netid_tcp_main = netid_tcp;
    268  1.1  fvdl #endif
    269  1.1  fvdl 				} else
    270  1.1  fvdl 				if (strcmp(nconf->nc_proto, NC_UDP) == 0) {
    271  1.1  fvdl 					netid_udp = strdup(nconf->nc_netid);
    272  1.1  fvdl #ifdef __REENT
    273  1.1  fvdl 					if (main_thread)
    274  1.1  fvdl 						netid_udp_main = netid_udp;
    275  1.1  fvdl 					else
    276  1.1  fvdl 						thr_setspecific(udp_key,
    277  1.1  fvdl 							(void *) netid_udp);
    278  1.1  fvdl #else
    279  1.1  fvdl 					netid_udp_main = netid_udp;
    280  1.1  fvdl #endif
    281  1.1  fvdl 				}
    282  1.1  fvdl 			}
    283  1.1  fvdl 		}
    284  1.1  fvdl 		endnetconfig(confighandle);
    285  1.1  fvdl 	}
    286  1.1  fvdl 	if (strcmp(nettype, "udp") == 0)
    287  1.1  fvdl 		netid = netid_udp;
    288  1.1  fvdl 	else if (strcmp(nettype, "tcp") == 0)
    289  1.1  fvdl 		netid = netid_tcp;
    290  1.1  fvdl 	else {
    291  1.1  fvdl 		return ((struct netconfig *)NULL);
    292  1.1  fvdl 	}
    293  1.1  fvdl 	if ((netid == NULL) || (netid[0] == NULL)) {
    294  1.1  fvdl 		return ((struct netconfig *)NULL);
    295  1.1  fvdl 	}
    296  1.1  fvdl 	dummy = getnetconfigent(netid);
    297  1.1  fvdl 	return (dummy);
    298  1.1  fvdl }
    299  1.1  fvdl 
    300  1.1  fvdl /*
    301  1.1  fvdl  * Returns the type of the nettype, which should then be used with
    302  1.1  fvdl  * __rpc_getconf().
    303  1.1  fvdl  */
    304  1.1  fvdl void *
    305  1.1  fvdl __rpc_setconf(nettype)
    306  1.1  fvdl 	char *nettype;
    307  1.1  fvdl {
    308  1.1  fvdl 	struct handle *handle;
    309  1.1  fvdl 
    310  1.1  fvdl 	handle = (struct handle *) malloc(sizeof (struct handle));
    311  1.1  fvdl 	if (handle == NULL) {
    312  1.1  fvdl 		return (NULL);
    313  1.1  fvdl 	}
    314  1.1  fvdl 	switch (handle->nettype = getnettype(nettype)) {
    315  1.1  fvdl 	case _RPC_NETPATH:
    316  1.1  fvdl 	case _RPC_CIRCUIT_N:
    317  1.1  fvdl 	case _RPC_DATAGRAM_N:
    318  1.1  fvdl 		if (!(handle->nhandle = setnetpath())) {
    319  1.1  fvdl 			free(handle);
    320  1.1  fvdl 			return (NULL);
    321  1.1  fvdl 		}
    322  1.1  fvdl 		handle->nflag = TRUE;
    323  1.1  fvdl 		break;
    324  1.1  fvdl 	case _RPC_VISIBLE:
    325  1.1  fvdl 	case _RPC_CIRCUIT_V:
    326  1.1  fvdl 	case _RPC_DATAGRAM_V:
    327  1.1  fvdl 	case _RPC_TCP:
    328  1.1  fvdl 	case _RPC_UDP:
    329  1.1  fvdl 		if (!(handle->nhandle = setnetconfig())) {
    330  1.1  fvdl 			free(handle);
    331  1.1  fvdl 			return (NULL);
    332  1.1  fvdl 		}
    333  1.1  fvdl 		handle->nflag = FALSE;
    334  1.1  fvdl 		break;
    335  1.1  fvdl 	default:
    336  1.1  fvdl 		return (NULL);
    337  1.1  fvdl 	}
    338  1.1  fvdl 
    339  1.1  fvdl 	return (handle);
    340  1.1  fvdl }
    341  1.1  fvdl 
    342  1.1  fvdl /*
    343  1.1  fvdl  * Returns the next netconfig struct for the given "net" type.
    344  1.1  fvdl  * __rpc_setconf() should have been called previously.
    345  1.1  fvdl  */
    346  1.1  fvdl struct netconfig *
    347  1.1  fvdl __rpc_getconf(vhandle)
    348  1.1  fvdl 	void *vhandle;
    349  1.1  fvdl {
    350  1.1  fvdl 	struct handle *handle;
    351  1.1  fvdl 	struct netconfig *nconf;
    352  1.1  fvdl 
    353  1.1  fvdl 	handle = (struct handle *)vhandle;
    354  1.1  fvdl 	if (handle == NULL) {
    355  1.1  fvdl 		return (NULL);
    356  1.1  fvdl 	}
    357  1.1  fvdl 	while (1) {
    358  1.1  fvdl 		if (handle->nflag)
    359  1.1  fvdl 			nconf = getnetpath(handle->nhandle);
    360  1.1  fvdl 		else
    361  1.1  fvdl 			nconf = getnetconfig(handle->nhandle);
    362  1.1  fvdl 		if (nconf == (struct netconfig *)NULL)
    363  1.1  fvdl 			break;
    364  1.1  fvdl 		if ((nconf->nc_semantics != NC_TPI_CLTS) &&
    365  1.1  fvdl 			(nconf->nc_semantics != NC_TPI_COTS) &&
    366  1.1  fvdl 			(nconf->nc_semantics != NC_TPI_COTS_ORD))
    367  1.1  fvdl 			continue;
    368  1.1  fvdl 		switch (handle->nettype) {
    369  1.1  fvdl 		case _RPC_VISIBLE:
    370  1.1  fvdl 			if (!(nconf->nc_flag & NC_VISIBLE))
    371  1.1  fvdl 				continue;
    372  1.1  fvdl 			/* FALLTHROUGH */
    373  1.1  fvdl 		case _RPC_NETPATH:	/* Be happy */
    374  1.1  fvdl 			break;
    375  1.1  fvdl 		case _RPC_CIRCUIT_V:
    376  1.1  fvdl 			if (!(nconf->nc_flag & NC_VISIBLE))
    377  1.1  fvdl 				continue;
    378  1.1  fvdl 			/* FALLTHROUGH */
    379  1.1  fvdl 		case _RPC_CIRCUIT_N:
    380  1.1  fvdl 			if ((nconf->nc_semantics != NC_TPI_COTS) &&
    381  1.1  fvdl 				(nconf->nc_semantics != NC_TPI_COTS_ORD))
    382  1.1  fvdl 				continue;
    383  1.1  fvdl 			break;
    384  1.1  fvdl 		case _RPC_DATAGRAM_V:
    385  1.1  fvdl 			if (!(nconf->nc_flag & NC_VISIBLE))
    386  1.1  fvdl 				continue;
    387  1.1  fvdl 			/* FALLTHROUGH */
    388  1.1  fvdl 		case _RPC_DATAGRAM_N:
    389  1.1  fvdl 			if (nconf->nc_semantics != NC_TPI_CLTS)
    390  1.1  fvdl 				continue;
    391  1.1  fvdl 			break;
    392  1.1  fvdl 		case _RPC_TCP:
    393  1.1  fvdl 			if (((nconf->nc_semantics != NC_TPI_COTS) &&
    394  1.1  fvdl 				(nconf->nc_semantics != NC_TPI_COTS_ORD)) ||
    395  1.1  fvdl 				(strcmp(nconf->nc_protofmly, NC_INET)
    396  1.1  fvdl #ifdef INET6
    397  1.1  fvdl 				 && strcmp(nconf->nc_protofmly, NC_INET6))
    398  1.1  fvdl #else
    399  1.1  fvdl 				)
    400  1.1  fvdl #endif
    401  1.1  fvdl 				||
    402  1.1  fvdl 				strcmp(nconf->nc_proto, NC_TCP))
    403  1.1  fvdl 				continue;
    404  1.1  fvdl 			break;
    405  1.1  fvdl 		case _RPC_UDP:
    406  1.1  fvdl 			if ((nconf->nc_semantics != NC_TPI_CLTS) ||
    407  1.1  fvdl 				(strcmp(nconf->nc_protofmly, NC_INET)
    408  1.1  fvdl #ifdef INET6
    409  1.1  fvdl 				&& strcmp(nconf->nc_protofmly, NC_INET6))
    410  1.1  fvdl #else
    411  1.1  fvdl 				)
    412  1.1  fvdl #endif
    413  1.1  fvdl 				||
    414  1.1  fvdl 				strcmp(nconf->nc_proto, NC_UDP))
    415  1.1  fvdl 				continue;
    416  1.1  fvdl 			break;
    417  1.1  fvdl 		}
    418  1.1  fvdl 		break;
    419  1.1  fvdl 	}
    420  1.1  fvdl 	return (nconf);
    421  1.1  fvdl }
    422  1.1  fvdl 
    423  1.1  fvdl void
    424  1.1  fvdl __rpc_endconf(vhandle)
    425  1.1  fvdl 	void * vhandle;
    426  1.1  fvdl {
    427  1.1  fvdl 	struct handle *handle;
    428  1.1  fvdl 
    429  1.1  fvdl 	handle = (struct handle *) vhandle;
    430  1.1  fvdl 	if (handle == NULL) {
    431  1.1  fvdl 		return;
    432  1.1  fvdl 	}
    433  1.1  fvdl 	if (handle->nflag) {
    434  1.1  fvdl 		endnetpath(handle->nhandle);
    435  1.1  fvdl 	} else {
    436  1.1  fvdl 		endnetconfig(handle->nhandle);
    437  1.1  fvdl 	}
    438  1.1  fvdl 	free(handle);
    439  1.1  fvdl }
    440  1.1  fvdl 
    441  1.1  fvdl /*
    442  1.1  fvdl  * Used to ping the NULL procedure for clnt handle.
    443  1.1  fvdl  * Returns NULL if fails, else a non-NULL pointer.
    444  1.1  fvdl  */
    445  1.1  fvdl void *
    446  1.1  fvdl rpc_nullproc(clnt)
    447  1.1  fvdl 	CLIENT *clnt;
    448  1.1  fvdl {
    449  1.1  fvdl 	struct timeval TIMEOUT = {25, 0};
    450  1.1  fvdl 
    451  1.1  fvdl 	if (clnt_call(clnt, NULLPROC, (xdrproc_t) xdr_void, (char *)NULL,
    452  1.1  fvdl 		(xdrproc_t) xdr_void, (char *)NULL, TIMEOUT) != RPC_SUCCESS) {
    453  1.1  fvdl 		return ((void *) NULL);
    454  1.1  fvdl 	}
    455  1.1  fvdl 	return ((void *) clnt);
    456  1.1  fvdl }
    457  1.1  fvdl 
    458  1.1  fvdl /*
    459  1.1  fvdl  * Try all possible transports until
    460  1.1  fvdl  * one succeeds in finding the netconf for the given fd.
    461  1.1  fvdl  */
    462  1.1  fvdl struct netconfig *
    463  1.1  fvdl __rpcgettp(fd)
    464  1.1  fvdl 	int fd;
    465  1.1  fvdl {
    466  1.1  fvdl 	const char *netid;
    467  1.1  fvdl 	struct __rpc_sockinfo si;
    468  1.1  fvdl 
    469  1.1  fvdl 	if (!__rpc_fd2sockinfo(fd, &si))
    470  1.1  fvdl 		return NULL;
    471  1.1  fvdl 
    472  1.1  fvdl 	if (!__rpc_sockinfo2netid(&si, &netid))
    473  1.1  fvdl 		return NULL;
    474  1.1  fvdl 
    475  1.1  fvdl 	return getnetconfigent((char *)netid);
    476  1.1  fvdl }
    477  1.1  fvdl 
    478  1.1  fvdl int
    479  1.1  fvdl __rpc_fd2sockinfo(int fd, struct __rpc_sockinfo *sip)
    480  1.1  fvdl {
    481  1.1  fvdl 	socklen_t len;
    482  1.1  fvdl 	int type, proto;
    483  1.1  fvdl 	struct sockaddr_storage ss;
    484  1.1  fvdl 
    485  1.1  fvdl 	len = sizeof ss;
    486  1.1  fvdl 	if (getsockname(fd, (struct sockaddr *)&ss, &len) < 0)
    487  1.1  fvdl 		return 0;
    488  1.1  fvdl 	sip->si_alen = len;
    489  1.1  fvdl 
    490  1.1  fvdl 	len = sizeof type;
    491  1.1  fvdl 	if (getsockopt(fd, SOL_SOCKET, SO_TYPE, &type, &len) < 0)
    492  1.1  fvdl 		return 0;
    493  1.1  fvdl 
    494  1.1  fvdl 	/* XXX */
    495  1.1  fvdl 	if (ss.ss_family != AF_LOCAL) {
    496  1.1  fvdl 		if (type == SOCK_STREAM)
    497  1.1  fvdl 			proto = IPPROTO_TCP;
    498  1.1  fvdl 		else if (type == SOCK_DGRAM)
    499  1.1  fvdl 			proto = IPPROTO_UDP;
    500  1.1  fvdl 		else
    501  1.1  fvdl 			return 0;
    502  1.1  fvdl 	} else
    503  1.1  fvdl 		proto = 0;
    504  1.1  fvdl 
    505  1.1  fvdl 	sip->si_af = ss.ss_family;
    506  1.1  fvdl 	sip->si_proto = proto;
    507  1.1  fvdl 	sip->si_socktype = type;
    508  1.1  fvdl 
    509  1.1  fvdl 	return 1;
    510  1.1  fvdl }
    511  1.1  fvdl 
    512  1.1  fvdl /*
    513  1.1  fvdl  * Linear search, but the number of entries is small.
    514  1.1  fvdl  */
    515  1.1  fvdl int
    516  1.1  fvdl __rpc_nconf2sockinfo(const struct netconfig *nconf, struct __rpc_sockinfo *sip)
    517  1.1  fvdl {
    518  1.1  fvdl 	int i;
    519  1.1  fvdl 
    520  1.1  fvdl 	for (i = 0; i < (sizeof na_cvt) / (sizeof (struct netid_af)); i++)
    521  1.1  fvdl 		if (!strcmp(na_cvt[i].netid, nconf->nc_netid)) {
    522  1.1  fvdl 			sip->si_af = na_cvt[i].af;
    523  1.1  fvdl 			sip->si_proto = na_cvt[i].protocol;
    524  1.1  fvdl 			sip->si_socktype =
    525  1.1  fvdl 			    __rpc_seman2socktype(nconf->nc_semantics);
    526  1.1  fvdl 			if (sip->si_socktype == -1)
    527  1.1  fvdl 				return 0;
    528  1.1  fvdl 			sip->si_alen = __rpc_get_a_size(sip->si_af);
    529  1.1  fvdl 			return 1;
    530  1.1  fvdl 		}
    531  1.1  fvdl 
    532  1.1  fvdl 	return 0;
    533  1.1  fvdl }
    534  1.1  fvdl 
    535  1.1  fvdl int
    536  1.1  fvdl __rpc_nconf2fd(const struct netconfig *nconf)
    537  1.1  fvdl {
    538  1.1  fvdl 	struct __rpc_sockinfo si;
    539  1.1  fvdl 
    540  1.1  fvdl 	if (!__rpc_nconf2sockinfo(nconf, &si))
    541  1.1  fvdl 		return 0;
    542  1.1  fvdl 
    543  1.1  fvdl 	return socket(si.si_af, si.si_socktype, si.si_proto);
    544  1.1  fvdl }
    545  1.1  fvdl 
    546  1.1  fvdl int
    547  1.1  fvdl __rpc_sockinfo2netid(struct __rpc_sockinfo *sip, const char **netid)
    548  1.1  fvdl {
    549  1.1  fvdl 	int i;
    550  1.1  fvdl 
    551  1.1  fvdl 	for (i = 0; i < (sizeof na_cvt) / (sizeof (struct netid_af)); i++)
    552  1.1  fvdl 		if (na_cvt[i].af == sip->si_af &&
    553  1.1  fvdl 		    na_cvt[i].protocol == sip->si_proto) {
    554  1.1  fvdl 			if (netid)
    555  1.1  fvdl 				*netid = na_cvt[i].netid;
    556  1.1  fvdl 			return 1;
    557  1.1  fvdl 		}
    558  1.1  fvdl 
    559  1.1  fvdl 	return 0;
    560  1.1  fvdl }
    561  1.1  fvdl 
    562  1.1  fvdl char *
    563  1.1  fvdl taddr2uaddr(const struct netconfig *nconf, const struct netbuf *nbuf)
    564  1.1  fvdl {
    565  1.1  fvdl 	struct __rpc_sockinfo si;
    566  1.1  fvdl 
    567  1.1  fvdl 	if (!__rpc_nconf2sockinfo(nconf, &si))
    568  1.1  fvdl 		return NULL;
    569  1.1  fvdl 	return __rpc_taddr2uaddr_af(si.si_af, nbuf);
    570  1.1  fvdl }
    571  1.1  fvdl 
    572  1.1  fvdl struct netbuf *
    573  1.1  fvdl uaddr2taddr(const struct netconfig *nconf, const char *uaddr)
    574  1.1  fvdl {
    575  1.1  fvdl 	struct __rpc_sockinfo si;
    576  1.1  fvdl 
    577  1.1  fvdl 	if (!__rpc_nconf2sockinfo(nconf, &si))
    578  1.1  fvdl 		return NULL;
    579  1.1  fvdl 	return __rpc_uaddr2taddr_af(si.si_af, uaddr);
    580  1.1  fvdl }
    581  1.1  fvdl 
    582  1.1  fvdl char *
    583  1.1  fvdl __rpc_taddr2uaddr_af(int af, const struct netbuf *nbuf)
    584  1.1  fvdl {
    585  1.1  fvdl 	char *ret;
    586  1.1  fvdl 	struct sockaddr_in *sin;
    587  1.1  fvdl 	struct sockaddr_un *sun;
    588  1.1  fvdl 	char namebuf[INET_ADDRSTRLEN];
    589  1.1  fvdl #ifdef INET6
    590  1.1  fvdl 	struct sockaddr_in6 *sin6;
    591  1.1  fvdl 	char namebuf6[INET6_ADDRSTRLEN];
    592  1.1  fvdl #endif
    593  1.1  fvdl 	u_int16_t port;
    594  1.1  fvdl 
    595  1.1  fvdl 	switch (af) {
    596  1.1  fvdl 	case AF_INET:
    597  1.1  fvdl 		sin = nbuf->buf;
    598  1.1  fvdl 		if (inet_ntop(af, &sin->sin_addr, namebuf, sizeof namebuf)
    599  1.1  fvdl 		    == NULL)
    600  1.1  fvdl 			return NULL;
    601  1.1  fvdl 		port = ntohs(sin->sin_port);
    602  1.1  fvdl 		if (asprintf(&ret, "%s.%u.%u", namebuf, port >> 8, port & 0xff)
    603  1.1  fvdl 		    < 0)
    604  1.1  fvdl 			return NULL;
    605  1.1  fvdl 		break;
    606  1.1  fvdl #ifdef INET6
    607  1.1  fvdl 	case AF_INET6:
    608  1.1  fvdl 		sin6 = nbuf->buf;
    609  1.1  fvdl 		if (inet_ntop(af, &sin6->sin6_addr, namebuf6, sizeof namebuf6)
    610  1.1  fvdl 		    == NULL)
    611  1.1  fvdl 			return NULL;
    612  1.1  fvdl 		port = ntohs(sin6->sin6_port);
    613  1.1  fvdl 		if (asprintf(&ret, "%s.%u.%u", namebuf6, port >> 8, port & 0xff)
    614  1.1  fvdl 		    < 0)
    615  1.1  fvdl 			return NULL;
    616  1.1  fvdl 		break;
    617  1.1  fvdl #endif
    618  1.1  fvdl 	case AF_LOCAL:
    619  1.1  fvdl 		sun = nbuf->buf;
    620  1.1  fvdl 		sun->sun_path[sizeof(sun->sun_path) - 1] = '\0'; /* safety */
    621  1.1  fvdl 		ret = strdup(sun->sun_path);
    622  1.1  fvdl 		break;
    623  1.1  fvdl 	default:
    624  1.1  fvdl 		return NULL;
    625  1.1  fvdl 	}
    626  1.1  fvdl 
    627  1.1  fvdl 	return ret;
    628  1.1  fvdl }
    629  1.1  fvdl 
    630  1.1  fvdl struct netbuf *
    631  1.1  fvdl __rpc_uaddr2taddr_af(int af, const char *uaddr)
    632  1.1  fvdl {
    633  1.1  fvdl 	struct netbuf *ret = NULL;
    634  1.1  fvdl 	char *addrstr, *p;
    635  1.1  fvdl 	unsigned port, portlo, porthi;
    636  1.1  fvdl 	struct sockaddr_in *sin;
    637  1.1  fvdl #ifdef INET6
    638  1.1  fvdl 	struct sockaddr_in6 *sin6;
    639  1.1  fvdl #endif
    640  1.1  fvdl 	struct sockaddr_un *sun;
    641  1.1  fvdl 
    642  1.1  fvdl 	addrstr = strdup(uaddr);
    643  1.1  fvdl 	if (addrstr == NULL)
    644  1.1  fvdl 		return NULL;
    645  1.1  fvdl 
    646  1.1  fvdl 	/*
    647  1.1  fvdl 	 * AF_LOCAL addresses are expected to be absolute
    648  1.1  fvdl 	 * pathnames, anything else will be AF_INET or AF_INET6.
    649  1.1  fvdl 	 */
    650  1.1  fvdl 	if (*addrstr != '/') {
    651  1.1  fvdl 		p = strrchr(addrstr, '.');
    652  1.1  fvdl 		if (p == NULL)
    653  1.1  fvdl 			goto out;
    654  1.1  fvdl 		portlo = (unsigned)atoi(p + 1);
    655  1.1  fvdl 		*p = '\0';
    656  1.1  fvdl 
    657  1.1  fvdl 		p = strrchr(addrstr, '.');
    658  1.1  fvdl 		if (p == NULL)
    659  1.1  fvdl 			goto out;
    660  1.1  fvdl 		porthi = (unsigned)atoi(p + 1);
    661  1.1  fvdl 		*p = '\0';
    662  1.1  fvdl 		port = (porthi << 8) | portlo;
    663  1.1  fvdl 	}
    664  1.1  fvdl 
    665  1.1  fvdl 	ret = (struct netbuf *)malloc(sizeof *ret);
    666  1.1  fvdl 
    667  1.1  fvdl 	switch (af) {
    668  1.1  fvdl 	case AF_INET:
    669  1.1  fvdl 		sin = (struct sockaddr_in *)malloc(sizeof *sin);
    670  1.1  fvdl 		if (sin == NULL)
    671  1.1  fvdl 			goto out;
    672  1.1  fvdl 		memset(sin, 0, sizeof *sin);
    673  1.1  fvdl 		sin->sin_family = AF_INET;
    674  1.1  fvdl 		sin->sin_port = htons(port);
    675  1.1  fvdl 		if (inet_pton(AF_INET, addrstr, &sin->sin_addr) <= 0) {
    676  1.1  fvdl 			free(sin);
    677  1.1  fvdl 			free(ret);
    678  1.1  fvdl 			ret = NULL;
    679  1.1  fvdl 			goto out;
    680  1.1  fvdl 		}
    681  1.1  fvdl 		sin->sin_len = ret->maxlen = ret->len = sizeof *sin;
    682  1.1  fvdl 		ret->buf = sin;
    683  1.1  fvdl 		break;
    684  1.1  fvdl #ifdef INET6
    685  1.1  fvdl 	case AF_INET6:
    686  1.1  fvdl 		sin6 = (struct sockaddr_in6 *)malloc(sizeof *sin6);
    687  1.1  fvdl 		if (sin6 == NULL)
    688  1.1  fvdl 			goto out;
    689  1.1  fvdl 		memset(sin6, 0, sizeof *sin6);
    690  1.1  fvdl 		sin6->sin6_family = AF_INET6;
    691  1.1  fvdl 		sin6->sin6_port = htons(port);
    692  1.1  fvdl 		if (inet_pton(AF_INET6, addrstr, &sin6->sin6_addr) <= 0) {
    693  1.1  fvdl 			free(sin);
    694  1.1  fvdl 			free(ret);
    695  1.1  fvdl 			ret = NULL;
    696  1.1  fvdl 			goto out;
    697  1.1  fvdl 		}
    698  1.1  fvdl 		sin6->sin6_len = ret->maxlen = ret->len = sizeof *sin6;
    699  1.1  fvdl 		ret->buf = sin6;
    700  1.1  fvdl 		break;
    701  1.1  fvdl #endif
    702  1.1  fvdl 	case AF_LOCAL:
    703  1.1  fvdl 		sun = (struct sockaddr_un *)malloc(sizeof *sun);
    704  1.1  fvdl 		if (sun == NULL)
    705  1.1  fvdl 			goto out;
    706  1.1  fvdl 		memset(sun, 0, sizeof *sun);
    707  1.1  fvdl 		sun->sun_family = AF_LOCAL;
    708  1.1  fvdl 		strncpy(sun->sun_path, addrstr, sizeof(sun->sun_path) - 1);
    709  1.1  fvdl 	default:
    710  1.1  fvdl 		break;
    711  1.1  fvdl 	}
    712  1.1  fvdl out:
    713  1.1  fvdl 	free(addrstr);
    714  1.1  fvdl 	return ret;
    715  1.1  fvdl }
    716  1.1  fvdl 
    717  1.1  fvdl int
    718  1.1  fvdl __rpc_seman2socktype(int semantics)
    719  1.1  fvdl {
    720  1.1  fvdl 	switch (semantics) {
    721  1.1  fvdl 	case NC_TPI_CLTS:
    722  1.1  fvdl 		return SOCK_DGRAM;
    723  1.1  fvdl 	case NC_TPI_COTS_ORD:
    724  1.1  fvdl 		return SOCK_STREAM;
    725  1.1  fvdl 	case NC_TPI_RAW:
    726  1.1  fvdl 		return SOCK_RAW;
    727  1.1  fvdl 	default:
    728  1.1  fvdl 		break;
    729  1.1  fvdl 	}
    730  1.1  fvdl 
    731  1.1  fvdl 	return -1;
    732  1.1  fvdl }
    733  1.1  fvdl 
    734  1.1  fvdl int
    735  1.1  fvdl __rpc_socktype2seman(int socktype)
    736  1.1  fvdl {
    737  1.1  fvdl 	switch (socktype) {
    738  1.1  fvdl 	case SOCK_DGRAM:
    739  1.1  fvdl 		return NC_TPI_CLTS;
    740  1.1  fvdl 	case SOCK_STREAM:
    741  1.1  fvdl 		return NC_TPI_COTS_ORD;
    742  1.1  fvdl 	case SOCK_RAW:
    743  1.1  fvdl 		return NC_TPI_RAW;
    744  1.1  fvdl 	default:
    745  1.1  fvdl 		break;
    746  1.1  fvdl 	}
    747  1.1  fvdl 
    748  1.1  fvdl 	return -1;
    749  1.1  fvdl }
    750  1.1  fvdl 
    751  1.1  fvdl /*
    752  1.1  fvdl  * XXXX - IPv6 scope IDs can't be handled in universal addresses.
    753  1.1  fvdl  * Here, we compare the original server address to that of the RPC
    754  1.1  fvdl  * service we just received back from a call to rpcbind on the remote
    755  1.1  fvdl  * machine. If they are both "link local" or "site local", copy
    756  1.1  fvdl  * the scope id of the server address over to the service address.
    757  1.1  fvdl  */
    758  1.1  fvdl int
    759  1.1  fvdl __rpc_fixup_addr(struct netbuf *new, const struct netbuf *svc)
    760  1.1  fvdl {
    761  1.1  fvdl #ifdef INET6
    762  1.1  fvdl 	struct sockaddr *sa_new, *sa_svc;
    763  1.1  fvdl 	struct sockaddr_in6 *sin6_new, *sin6_svc;
    764  1.1  fvdl 
    765  1.1  fvdl 	sa_svc = (struct sockaddr *)svc->buf;
    766  1.1  fvdl 	sa_new = (struct sockaddr *)new->buf;
    767  1.1  fvdl 
    768  1.1  fvdl 	if (sa_new->sa_family == sa_svc->sa_family &&
    769  1.1  fvdl 	    sa_new->sa_family == AF_INET6) {
    770  1.1  fvdl 		sin6_new = (struct sockaddr_in6 *)new->buf;
    771  1.1  fvdl 		sin6_svc = (struct sockaddr_in6 *)svc->buf;
    772  1.1  fvdl 
    773  1.1  fvdl 		if ((IN6_IS_ADDR_LINKLOCAL(&sin6_new->sin6_addr) &&
    774  1.1  fvdl 		     IN6_IS_ADDR_LINKLOCAL(&sin6_svc->sin6_addr)) ||
    775  1.1  fvdl 		    (IN6_IS_ADDR_SITELOCAL(&sin6_new->sin6_addr) &&
    776  1.1  fvdl 		     IN6_IS_ADDR_SITELOCAL(&sin6_svc->sin6_addr))) {
    777  1.1  fvdl 			sin6_new->sin6_scope_id = sin6_svc->sin6_scope_id;
    778  1.1  fvdl 		}
    779  1.1  fvdl 	}
    780  1.1  fvdl #endif
    781  1.1  fvdl 	return 1;
    782  1.1  fvdl }
    783  1.1  fvdl 
    784  1.1  fvdl int
    785  1.1  fvdl __rpc_sockisbound(int fd)
    786  1.1  fvdl {
    787  1.1  fvdl 	struct sockaddr_storage ss;
    788  1.1  fvdl 	socklen_t slen;
    789  1.1  fvdl 
    790  1.1  fvdl 	slen = sizeof (struct sockaddr_storage);
    791  1.1  fvdl 	if (getsockname(fd, (struct sockaddr *)&ss, &slen) < 0)
    792  1.1  fvdl 		return 0;
    793  1.1  fvdl 
    794  1.1  fvdl 	switch (ss.ss_family) {
    795  1.1  fvdl 		case AF_INET:
    796  1.1  fvdl 			return (((struct sockaddr_in *)&ss)->sin_port != 0);
    797  1.1  fvdl #ifdef INET6
    798  1.1  fvdl 		case AF_INET6:
    799  1.1  fvdl 			return (((struct sockaddr_in6 *)&ss)->sin6_port != 0);
    800  1.1  fvdl #endif
    801  1.1  fvdl 		case AF_LOCAL:
    802  1.1  fvdl 			/* XXX check this */
    803  1.1  fvdl 			return
    804  1.1  fvdl 			    (((struct sockaddr_un *)&ss)->sun_path[0] != '\0');
    805  1.1  fvdl 		default:
    806  1.1  fvdl 			break;
    807  1.1  fvdl 	}
    808  1.1  fvdl 
    809  1.1  fvdl 	return 0;
    810  1.1  fvdl }
    811