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svc_dg.c revision 1.1
      1  1.1  fvdl /*	$NetBSD: svc_dg.c,v 1.1 2000/06/02 23:11:16 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 /*
     33  1.1  fvdl  * Copyright (c) 1986-1991 by Sun Microsystems Inc.
     34  1.1  fvdl  */
     35  1.1  fvdl 
     36  1.1  fvdl /* #ident	"@(#)svc_dg.c	1.17	94/04/24 SMI" */
     37  1.1  fvdl 
     38  1.1  fvdl 
     39  1.1  fvdl /*
     40  1.1  fvdl  * svc_dg.c, Server side for connectionless RPC.
     41  1.1  fvdl  *
     42  1.1  fvdl  * Does some caching in the hopes of achieving execute-at-most-once semantics.
     43  1.1  fvdl  */
     44  1.1  fvdl 
     45  1.1  fvdl #include "namespace.h"
     46  1.1  fvdl #include "reentrant.h"
     47  1.1  fvdl #include <sys/types.h>
     48  1.1  fvdl #include <sys/socket.h>
     49  1.1  fvdl #include <rpc/rpc.h>
     50  1.1  fvdl #include <errno.h>
     51  1.1  fvdl #include <unistd.h>
     52  1.1  fvdl #include <stdio.h>
     53  1.1  fvdl #include <stdlib.h>
     54  1.1  fvdl #ifdef RPC_CACHE_DEBUG
     55  1.1  fvdl #include <netconfig.h>
     56  1.1  fvdl #include <netdir.h>
     57  1.1  fvdl #endif
     58  1.1  fvdl #include <err.h>
     59  1.1  fvdl 
     60  1.1  fvdl #include "rpc_com.h"
     61  1.1  fvdl #include "svc_dg.h"
     62  1.1  fvdl 
     63  1.1  fvdl #define	su_data(xprt)	((struct svc_dg_data *)(xprt->xp_p2))
     64  1.1  fvdl #define	rpc_buffer(xprt) ((xprt)->xp_p1)
     65  1.1  fvdl 
     66  1.1  fvdl #ifdef __weak_alias
     67  1.1  fvdl __weak_alias(svc_dg_create,_svc_dg_create)
     68  1.1  fvdl #endif
     69  1.1  fvdl 
     70  1.1  fvdl #ifndef MAX
     71  1.1  fvdl #define	MAX(a, b)	(((a) > (b)) ? (a) : (b))
     72  1.1  fvdl #endif
     73  1.1  fvdl 
     74  1.1  fvdl static void svc_dg_ops __P((SVCXPRT *));
     75  1.1  fvdl static enum xprt_stat svc_dg_stat __P((SVCXPRT *));
     76  1.1  fvdl static bool_t svc_dg_recv __P((SVCXPRT *, struct rpc_msg *));
     77  1.1  fvdl static bool_t svc_dg_reply __P((SVCXPRT *, struct rpc_msg *));
     78  1.1  fvdl static bool_t svc_dg_getargs __P((SVCXPRT *, xdrproc_t, caddr_t));
     79  1.1  fvdl static bool_t svc_dg_freeargs __P((SVCXPRT *, xdrproc_t, caddr_t));
     80  1.1  fvdl static void svc_dg_destroy __P((SVCXPRT *));
     81  1.1  fvdl static bool_t svc_dg_control __P((SVCXPRT *, const u_int, void *));
     82  1.1  fvdl static int cache_get __P((SVCXPRT *, struct rpc_msg *, char **, size_t *));
     83  1.1  fvdl static void cache_set __P((SVCXPRT *, size_t));
     84  1.1  fvdl int svc_dg_enablecache __P((SVCXPRT *, u_int));
     85  1.1  fvdl 
     86  1.1  fvdl /*
     87  1.1  fvdl  * Usage:
     88  1.1  fvdl  *	xprt = svc_dg_create(sock, sendsize, recvsize);
     89  1.1  fvdl  * Does other connectionless specific initializations.
     90  1.1  fvdl  * Once *xprt is initialized, it is registered.
     91  1.1  fvdl  * see (svc.h, xprt_register). If recvsize or sendsize are 0 suitable
     92  1.1  fvdl  * system defaults are chosen.
     93  1.1  fvdl  * The routines returns NULL if a problem occurred.
     94  1.1  fvdl  */
     95  1.1  fvdl static const char svc_dg_str[] = "svc_dg_create: %s";
     96  1.1  fvdl static const char svc_dg_err1[] = "could not get transport information";
     97  1.1  fvdl static const char svc_dg_err2[] = " transport does not support data transfer";
     98  1.1  fvdl static const char __no_mem_str[] = "out of memory";
     99  1.1  fvdl 
    100  1.1  fvdl SVCXPRT *
    101  1.1  fvdl svc_dg_create(fd, sendsize, recvsize)
    102  1.1  fvdl 	int fd;
    103  1.1  fvdl 	u_int sendsize;
    104  1.1  fvdl 	u_int recvsize;
    105  1.1  fvdl {
    106  1.1  fvdl 	SVCXPRT *xprt;
    107  1.1  fvdl 	struct svc_dg_data *su = NULL;
    108  1.1  fvdl 	struct __rpc_sockinfo si;
    109  1.1  fvdl 	struct sockaddr_storage ss;
    110  1.1  fvdl 	socklen_t slen;
    111  1.1  fvdl 
    112  1.1  fvdl 	if (!__rpc_fd2sockinfo(fd, &si)) {
    113  1.1  fvdl 		warnx(svc_dg_str, svc_dg_err1);
    114  1.1  fvdl 		return ((SVCXPRT *)NULL);
    115  1.1  fvdl 	}
    116  1.1  fvdl 	/*
    117  1.1  fvdl 	 * Find the receive and the send size
    118  1.1  fvdl 	 */
    119  1.1  fvdl 	sendsize = __rpc_get_t_size(si.si_af, si.si_proto, (int)sendsize);
    120  1.1  fvdl 	recvsize = __rpc_get_t_size(si.si_af, si.si_proto, (int)recvsize);
    121  1.1  fvdl 	if ((sendsize == 0) || (recvsize == 0)) {
    122  1.1  fvdl 		warnx(svc_dg_str, svc_dg_err2);
    123  1.1  fvdl 		return ((SVCXPRT *)NULL);
    124  1.1  fvdl 	}
    125  1.1  fvdl 
    126  1.1  fvdl 	xprt = (SVCXPRT *)mem_alloc(sizeof (SVCXPRT));
    127  1.1  fvdl 	if (xprt == NULL)
    128  1.1  fvdl 		goto freedata;
    129  1.1  fvdl 	memset((char *)xprt, 0, sizeof (SVCXPRT));
    130  1.1  fvdl 
    131  1.1  fvdl 	su = (struct svc_dg_data *)mem_alloc(sizeof (*su));
    132  1.1  fvdl 	if (su == NULL)
    133  1.1  fvdl 		goto freedata;
    134  1.1  fvdl 	su->su_iosz = ((MAX(sendsize, recvsize) + 3) / 4) * 4;
    135  1.1  fvdl 	if ((rpc_buffer(xprt) = (char *)mem_alloc(su->su_iosz)) == NULL)
    136  1.1  fvdl 		goto freedata;
    137  1.1  fvdl 	xdrmem_create(&(su->su_xdrs), rpc_buffer(xprt), su->su_iosz,
    138  1.1  fvdl 		XDR_DECODE);
    139  1.1  fvdl 	su->su_cache = NULL;
    140  1.1  fvdl 	xprt->xp_fd = fd;
    141  1.1  fvdl 	xprt->xp_p2 = (caddr_t)su;
    142  1.1  fvdl 	xprt->xp_verf.oa_base = su->su_verfbody;
    143  1.1  fvdl 	svc_dg_ops(xprt);
    144  1.1  fvdl 	xprt->xp_rtaddr.maxlen = sizeof (struct sockaddr_storage);
    145  1.1  fvdl 
    146  1.1  fvdl 	slen = sizeof ss;
    147  1.1  fvdl 	if (getsockname(fd, (struct sockaddr *)&ss, &slen) < 0)
    148  1.1  fvdl 		goto freedata;
    149  1.1  fvdl 	xprt->xp_ltaddr.buf = mem_alloc(sizeof (struct sockaddr_storage));
    150  1.1  fvdl 	xprt->xp_ltaddr.maxlen = sizeof (struct sockaddr_storage);
    151  1.1  fvdl 	xprt->xp_ltaddr.len = slen;
    152  1.1  fvdl 	memcpy(xprt->xp_ltaddr.buf, &ss, slen);
    153  1.1  fvdl 
    154  1.1  fvdl 	xprt_register(xprt);
    155  1.1  fvdl 	return (xprt);
    156  1.1  fvdl freedata:
    157  1.1  fvdl 	(void) warnx(svc_dg_str, __no_mem_str);
    158  1.1  fvdl 	if (xprt) {
    159  1.1  fvdl 		if (su)
    160  1.1  fvdl 			(void) mem_free((char *) su, sizeof (*su));
    161  1.1  fvdl 		(void) mem_free((char *)xprt, sizeof (SVCXPRT));
    162  1.1  fvdl 	}
    163  1.1  fvdl 	return ((SVCXPRT *)NULL);
    164  1.1  fvdl }
    165  1.1  fvdl 
    166  1.1  fvdl static enum xprt_stat
    167  1.1  fvdl svc_dg_stat(xprt)
    168  1.1  fvdl 	SVCXPRT *xprt;
    169  1.1  fvdl {
    170  1.1  fvdl 	return (XPRT_IDLE);
    171  1.1  fvdl }
    172  1.1  fvdl 
    173  1.1  fvdl static bool_t
    174  1.1  fvdl svc_dg_recv(xprt, msg)
    175  1.1  fvdl 	register SVCXPRT *xprt;
    176  1.1  fvdl 	struct rpc_msg *msg;
    177  1.1  fvdl {
    178  1.1  fvdl 	struct svc_dg_data *su = su_data(xprt);
    179  1.1  fvdl 	XDR *xdrs = &(su->su_xdrs);
    180  1.1  fvdl 	char *reply;
    181  1.1  fvdl 	struct sockaddr_storage ss;
    182  1.1  fvdl 	socklen_t alen;
    183  1.1  fvdl 	size_t replylen;
    184  1.1  fvdl 	int rlen;
    185  1.1  fvdl 
    186  1.1  fvdl again:
    187  1.1  fvdl 	alen = sizeof (struct sockaddr_storage);
    188  1.1  fvdl 	rlen = recvfrom(xprt->xp_fd, rpc_buffer(xprt), su->su_iosz, 0,
    189  1.1  fvdl 	    (struct sockaddr *)&ss, &alen);
    190  1.1  fvdl 	if (rlen == -1 && errno == EINTR)
    191  1.1  fvdl 		goto again;
    192  1.1  fvdl 	if (rlen == -1 || (rlen < 4 * sizeof (u_int32_t)))
    193  1.1  fvdl 		return (FALSE);
    194  1.1  fvdl 	xprt->xp_rtaddr.buf = mem_alloc(alen);
    195  1.1  fvdl 	memcpy(xprt->xp_rtaddr.buf, &ss, alen);
    196  1.1  fvdl 	xprt->xp_rtaddr.len = alen;
    197  1.1  fvdl #ifdef PORTMAP
    198  1.1  fvdl 	if (ss.ss_family == AF_INET) {
    199  1.1  fvdl 		xprt->xp_raddr = *(struct sockaddr_in *)xprt->xp_rtaddr.buf;
    200  1.1  fvdl 		xprt->xp_addrlen = sizeof (struct sockaddr_in);
    201  1.1  fvdl 	}
    202  1.1  fvdl #endif
    203  1.1  fvdl 	xdrs->x_op = XDR_DECODE;
    204  1.1  fvdl 	XDR_SETPOS(xdrs, 0);
    205  1.1  fvdl 	if (! xdr_callmsg(xdrs, msg)) {
    206  1.1  fvdl 		return (FALSE);
    207  1.1  fvdl 	}
    208  1.1  fvdl 	su->su_xid = msg->rm_xid;
    209  1.1  fvdl 	if (su->su_cache != NULL) {
    210  1.1  fvdl 		if (cache_get(xprt, msg, &reply, &replylen)) {
    211  1.1  fvdl 			(void)sendto(xprt->xp_fd, reply, replylen, 0,
    212  1.1  fvdl 			    (struct sockaddr *)&ss, alen);
    213  1.1  fvdl 			return (FALSE);
    214  1.1  fvdl 		}
    215  1.1  fvdl 	}
    216  1.1  fvdl 	return (TRUE);
    217  1.1  fvdl }
    218  1.1  fvdl 
    219  1.1  fvdl static bool_t
    220  1.1  fvdl svc_dg_reply(xprt, msg)
    221  1.1  fvdl 	register SVCXPRT *xprt;
    222  1.1  fvdl 	struct rpc_msg *msg;
    223  1.1  fvdl {
    224  1.1  fvdl 	struct svc_dg_data *su = su_data(xprt);
    225  1.1  fvdl 	XDR *xdrs = &(su->su_xdrs);
    226  1.1  fvdl 	bool_t stat = FALSE;
    227  1.1  fvdl 	size_t slen;
    228  1.1  fvdl 
    229  1.1  fvdl 	xdrs->x_op = XDR_ENCODE;
    230  1.1  fvdl 	XDR_SETPOS(xdrs, 0);
    231  1.1  fvdl 	msg->rm_xid = su->su_xid;
    232  1.1  fvdl 	if (xdr_replymsg(xdrs, msg)) {
    233  1.1  fvdl 		slen = XDR_GETPOS(xdrs);
    234  1.1  fvdl 		if (sendto(xprt->xp_fd, rpc_buffer(xprt), slen, 0,
    235  1.1  fvdl 		    (struct sockaddr *)xprt->xp_rtaddr.buf,
    236  1.1  fvdl 		    (socklen_t)xprt->xp_rtaddr.len) == slen) {
    237  1.1  fvdl 			stat = TRUE;
    238  1.1  fvdl 			if (su->su_cache && slen >= 0)
    239  1.1  fvdl 				cache_set(xprt, slen);
    240  1.1  fvdl 		}
    241  1.1  fvdl 	}
    242  1.1  fvdl 	return (stat);
    243  1.1  fvdl }
    244  1.1  fvdl 
    245  1.1  fvdl static bool_t
    246  1.1  fvdl svc_dg_getargs(xprt, xdr_args, args_ptr)
    247  1.1  fvdl 	SVCXPRT *xprt;
    248  1.1  fvdl 	xdrproc_t xdr_args;
    249  1.1  fvdl 	caddr_t args_ptr;
    250  1.1  fvdl {
    251  1.1  fvdl 	return (*xdr_args)(&(su_data(xprt)->su_xdrs), args_ptr);
    252  1.1  fvdl }
    253  1.1  fvdl 
    254  1.1  fvdl static bool_t
    255  1.1  fvdl svc_dg_freeargs(xprt, xdr_args, args_ptr)
    256  1.1  fvdl 	SVCXPRT *xprt;
    257  1.1  fvdl 	xdrproc_t xdr_args;
    258  1.1  fvdl 	caddr_t args_ptr;
    259  1.1  fvdl {
    260  1.1  fvdl 	register XDR *xdrs = &(su_data(xprt)->su_xdrs);
    261  1.1  fvdl 
    262  1.1  fvdl 	xdrs->x_op = XDR_FREE;
    263  1.1  fvdl 	return (*xdr_args)(xdrs, args_ptr);
    264  1.1  fvdl }
    265  1.1  fvdl 
    266  1.1  fvdl static void
    267  1.1  fvdl svc_dg_destroy(xprt)
    268  1.1  fvdl 	register SVCXPRT *xprt;
    269  1.1  fvdl {
    270  1.1  fvdl 	register struct svc_dg_data *su = su_data(xprt);
    271  1.1  fvdl 
    272  1.1  fvdl 	xprt_unregister(xprt);
    273  1.1  fvdl 	if (xprt->xp_fd != -1)
    274  1.1  fvdl 		(void)close(xprt->xp_fd);
    275  1.1  fvdl 	XDR_DESTROY(&(su->su_xdrs));
    276  1.1  fvdl 	(void) mem_free(rpc_buffer(xprt), su->su_iosz);
    277  1.1  fvdl 	(void) mem_free((caddr_t)su, sizeof (*su));
    278  1.1  fvdl 	if (xprt->xp_rtaddr.buf)
    279  1.1  fvdl 		(void) mem_free(xprt->xp_rtaddr.buf, xprt->xp_rtaddr.maxlen);
    280  1.1  fvdl 	if (xprt->xp_ltaddr.buf)
    281  1.1  fvdl 		(void) mem_free(xprt->xp_ltaddr.buf, xprt->xp_ltaddr.maxlen);
    282  1.1  fvdl 	if (xprt->xp_tp)
    283  1.1  fvdl 		(void) free(xprt->xp_tp);
    284  1.1  fvdl 	(void) mem_free((caddr_t)xprt, sizeof (SVCXPRT));
    285  1.1  fvdl }
    286  1.1  fvdl 
    287  1.1  fvdl static bool_t
    288  1.1  fvdl svc_dg_control(xprt, rq, in)
    289  1.1  fvdl 	SVCXPRT *xprt;
    290  1.1  fvdl 	const u_int	rq;
    291  1.1  fvdl 	void		*in;
    292  1.1  fvdl {
    293  1.1  fvdl 	return (FALSE);
    294  1.1  fvdl }
    295  1.1  fvdl 
    296  1.1  fvdl static void
    297  1.1  fvdl svc_dg_ops(xprt)
    298  1.1  fvdl 	SVCXPRT *xprt;
    299  1.1  fvdl {
    300  1.1  fvdl 	static struct xp_ops ops;
    301  1.1  fvdl 	static struct xp_ops2 ops2;
    302  1.1  fvdl #ifdef __REENT
    303  1.1  fvdl 	extern mutex_t ops_lock;
    304  1.1  fvdl #endif
    305  1.1  fvdl 
    306  1.1  fvdl /* VARIABLES PROTECTED BY ops_lock: ops */
    307  1.1  fvdl 
    308  1.1  fvdl 	mutex_lock(&ops_lock);
    309  1.1  fvdl 	if (ops.xp_recv == NULL) {
    310  1.1  fvdl 		ops.xp_recv = svc_dg_recv;
    311  1.1  fvdl 		ops.xp_stat = svc_dg_stat;
    312  1.1  fvdl 		ops.xp_getargs = svc_dg_getargs;
    313  1.1  fvdl 		ops.xp_reply = svc_dg_reply;
    314  1.1  fvdl 		ops.xp_freeargs = svc_dg_freeargs;
    315  1.1  fvdl 		ops.xp_destroy = svc_dg_destroy;
    316  1.1  fvdl 		ops2.xp_control = svc_dg_control;
    317  1.1  fvdl 	}
    318  1.1  fvdl 	xprt->xp_ops = &ops;
    319  1.1  fvdl 	xprt->xp_ops2 = &ops2;
    320  1.1  fvdl 	mutex_unlock(&ops_lock);
    321  1.1  fvdl }
    322  1.1  fvdl 
    323  1.1  fvdl /*  The CACHING COMPONENT */
    324  1.1  fvdl 
    325  1.1  fvdl /*
    326  1.1  fvdl  * Could have been a separate file, but some part of it depends upon the
    327  1.1  fvdl  * private structure of the client handle.
    328  1.1  fvdl  *
    329  1.1  fvdl  * Fifo cache for cl server
    330  1.1  fvdl  * Copies pointers to reply buffers into fifo cache
    331  1.1  fvdl  * Buffers are sent again if retransmissions are detected.
    332  1.1  fvdl  */
    333  1.1  fvdl 
    334  1.1  fvdl #define	SPARSENESS 4	/* 75% sparse */
    335  1.1  fvdl 
    336  1.1  fvdl #define	ALLOC(type, size)	\
    337  1.1  fvdl 	(type *) mem_alloc((unsigned) (sizeof (type) * (size)))
    338  1.1  fvdl 
    339  1.1  fvdl #define	MEMZERO(addr, type, size)	 \
    340  1.1  fvdl 	(void) memset((char *) (addr), 0, sizeof (type) * (int) (size))
    341  1.1  fvdl 
    342  1.1  fvdl #define	FREE(addr, type, size)	\
    343  1.1  fvdl 	mem_free((char *) (addr), (sizeof (type) * (size)))
    344  1.1  fvdl 
    345  1.1  fvdl /*
    346  1.1  fvdl  * An entry in the cache
    347  1.1  fvdl  */
    348  1.1  fvdl typedef struct cache_node *cache_ptr;
    349  1.1  fvdl struct cache_node {
    350  1.1  fvdl 	/*
    351  1.1  fvdl 	 * Index into cache is xid, proc, vers, prog and address
    352  1.1  fvdl 	 */
    353  1.1  fvdl 	u_int32_t cache_xid;
    354  1.1  fvdl 	rpcproc_t cache_proc;
    355  1.1  fvdl 	rpcvers_t cache_vers;
    356  1.1  fvdl 	rpcprog_t cache_prog;
    357  1.1  fvdl 	struct netbuf cache_addr;
    358  1.1  fvdl 	/*
    359  1.1  fvdl 	 * The cached reply and length
    360  1.1  fvdl 	 */
    361  1.1  fvdl 	char *cache_reply;
    362  1.1  fvdl 	size_t cache_replylen;
    363  1.1  fvdl 	/*
    364  1.1  fvdl 	 * Next node on the list, if there is a collision
    365  1.1  fvdl 	 */
    366  1.1  fvdl 	cache_ptr cache_next;
    367  1.1  fvdl };
    368  1.1  fvdl 
    369  1.1  fvdl /*
    370  1.1  fvdl  * The entire cache
    371  1.1  fvdl  */
    372  1.1  fvdl struct cl_cache {
    373  1.1  fvdl 	u_int uc_size;		/* size of cache */
    374  1.1  fvdl 	cache_ptr *uc_entries;	/* hash table of entries in cache */
    375  1.1  fvdl 	cache_ptr *uc_fifo;	/* fifo list of entries in cache */
    376  1.1  fvdl 	u_int uc_nextvictim;	/* points to next victim in fifo list */
    377  1.1  fvdl 	rpcprog_t uc_prog;	/* saved program number */
    378  1.1  fvdl 	rpcvers_t uc_vers;	/* saved version number */
    379  1.1  fvdl 	rpcproc_t uc_proc;	/* saved procedure number */
    380  1.1  fvdl };
    381  1.1  fvdl 
    382  1.1  fvdl 
    383  1.1  fvdl /*
    384  1.1  fvdl  * the hashing function
    385  1.1  fvdl  */
    386  1.1  fvdl #define	CACHE_LOC(transp, xid)	\
    387  1.1  fvdl 	(xid % (SPARSENESS * ((struct cl_cache *) \
    388  1.1  fvdl 		su_data(transp)->su_cache)->uc_size))
    389  1.1  fvdl 
    390  1.1  fvdl #ifdef __REENT
    391  1.1  fvdl extern mutex_t	dupreq_lock;
    392  1.1  fvdl #endif
    393  1.1  fvdl 
    394  1.1  fvdl /*
    395  1.1  fvdl  * Enable use of the cache. Returns 1 on success, 0 on failure.
    396  1.1  fvdl  * Note: there is no disable.
    397  1.1  fvdl  */
    398  1.1  fvdl static const char cache_enable_str[] = "svc_enablecache: %s %s";
    399  1.1  fvdl static const char alloc_err[] = "could not allocate cache ";
    400  1.1  fvdl static const char enable_err[] = "cache already enabled";
    401  1.1  fvdl 
    402  1.1  fvdl int
    403  1.1  fvdl svc_dg_enablecache(transp, size)
    404  1.1  fvdl 	SVCXPRT *transp;
    405  1.1  fvdl 	u_int size;
    406  1.1  fvdl {
    407  1.1  fvdl 	struct svc_dg_data *su = su_data(transp);
    408  1.1  fvdl 	struct cl_cache *uc;
    409  1.1  fvdl 
    410  1.1  fvdl 	mutex_lock(&dupreq_lock);
    411  1.1  fvdl 	if (su->su_cache != NULL) {
    412  1.1  fvdl 		(void) warnx(cache_enable_str, enable_err, " ");
    413  1.1  fvdl 		mutex_unlock(&dupreq_lock);
    414  1.1  fvdl 		return (0);
    415  1.1  fvdl 	}
    416  1.1  fvdl 	uc = ALLOC(struct cl_cache, 1);
    417  1.1  fvdl 	if (uc == NULL) {
    418  1.1  fvdl 		warnx(cache_enable_str, alloc_err, " ");
    419  1.1  fvdl 		mutex_unlock(&dupreq_lock);
    420  1.1  fvdl 		return (0);
    421  1.1  fvdl 	}
    422  1.1  fvdl 	uc->uc_size = size;
    423  1.1  fvdl 	uc->uc_nextvictim = 0;
    424  1.1  fvdl 	uc->uc_entries = ALLOC(cache_ptr, size * SPARSENESS);
    425  1.1  fvdl 	if (uc->uc_entries == NULL) {
    426  1.1  fvdl 		warnx(cache_enable_str, alloc_err, "data");
    427  1.1  fvdl 		FREE(uc, struct cl_cache, 1);
    428  1.1  fvdl 		mutex_unlock(&dupreq_lock);
    429  1.1  fvdl 		return (0);
    430  1.1  fvdl 	}
    431  1.1  fvdl 	MEMZERO(uc->uc_entries, cache_ptr, size * SPARSENESS);
    432  1.1  fvdl 	uc->uc_fifo = ALLOC(cache_ptr, size);
    433  1.1  fvdl 	if (uc->uc_fifo == NULL) {
    434  1.1  fvdl 		warnx(cache_enable_str, alloc_err, "fifo");
    435  1.1  fvdl 		FREE(uc->uc_entries, cache_ptr, size * SPARSENESS);
    436  1.1  fvdl 		FREE(uc, struct cl_cache, 1);
    437  1.1  fvdl 		mutex_unlock(&dupreq_lock);
    438  1.1  fvdl 		return (0);
    439  1.1  fvdl 	}
    440  1.1  fvdl 	MEMZERO(uc->uc_fifo, cache_ptr, size);
    441  1.1  fvdl 	su->su_cache = (char *) uc;
    442  1.1  fvdl 	mutex_unlock(&dupreq_lock);
    443  1.1  fvdl 	return (1);
    444  1.1  fvdl }
    445  1.1  fvdl 
    446  1.1  fvdl /*
    447  1.1  fvdl  * Set an entry in the cache.  It assumes that the uc entry is set from
    448  1.1  fvdl  * the earlier call to cache_get() for the same procedure.  This will always
    449  1.1  fvdl  * happen because cache_get() is calle by svc_dg_recv and cache_set() is called
    450  1.1  fvdl  * by svc_dg_reply().  All this hoopla because the right RPC parameters are
    451  1.1  fvdl  * not available at svc_dg_reply time.
    452  1.1  fvdl  */
    453  1.1  fvdl 
    454  1.1  fvdl static const char cache_set_str[] = "cache_set: %s";
    455  1.1  fvdl static const char cache_set_err1[] = "victim not found";
    456  1.1  fvdl static const char cache_set_err2[] = "victim alloc failed";
    457  1.1  fvdl static const char cache_set_err3[] = "could not allocate new rpc buffer";
    458  1.1  fvdl 
    459  1.1  fvdl static void
    460  1.1  fvdl cache_set(xprt, replylen)
    461  1.1  fvdl 	SVCXPRT *xprt;
    462  1.1  fvdl 	size_t replylen;
    463  1.1  fvdl {
    464  1.1  fvdl 	register cache_ptr victim;
    465  1.1  fvdl 	register cache_ptr *vicp;
    466  1.1  fvdl 	register struct svc_dg_data *su = su_data(xprt);
    467  1.1  fvdl 	struct cl_cache *uc = (struct cl_cache *) su->su_cache;
    468  1.1  fvdl 	u_int loc;
    469  1.1  fvdl 	char *newbuf;
    470  1.1  fvdl #ifdef RPC_CACHE_DEBUG
    471  1.1  fvdl 	struct netconfig *nconf;
    472  1.1  fvdl 	char *uaddr;
    473  1.1  fvdl #endif
    474  1.1  fvdl 
    475  1.1  fvdl 	mutex_lock(&dupreq_lock);
    476  1.1  fvdl 	/*
    477  1.1  fvdl 	 * Find space for the new entry, either by
    478  1.1  fvdl 	 * reusing an old entry, or by mallocing a new one
    479  1.1  fvdl 	 */
    480  1.1  fvdl 	victim = uc->uc_fifo[uc->uc_nextvictim];
    481  1.1  fvdl 	if (victim != NULL) {
    482  1.1  fvdl 		loc = CACHE_LOC(xprt, victim->cache_xid);
    483  1.1  fvdl 		for (vicp = &uc->uc_entries[loc];
    484  1.1  fvdl 			*vicp != NULL && *vicp != victim;
    485  1.1  fvdl 			vicp = &(*vicp)->cache_next)
    486  1.1  fvdl 			;
    487  1.1  fvdl 		if (*vicp == NULL) {
    488  1.1  fvdl 			warnx(cache_set_str, cache_set_err1);
    489  1.1  fvdl 			mutex_unlock(&dupreq_lock);
    490  1.1  fvdl 			return;
    491  1.1  fvdl 		}
    492  1.1  fvdl 		*vicp = victim->cache_next;	/* remove from cache */
    493  1.1  fvdl 		newbuf = victim->cache_reply;
    494  1.1  fvdl 	} else {
    495  1.1  fvdl 		victim = ALLOC(struct cache_node, 1);
    496  1.1  fvdl 		if (victim == NULL) {
    497  1.1  fvdl 			warnx(cache_set_str, cache_set_err2);
    498  1.1  fvdl 			mutex_unlock(&dupreq_lock);
    499  1.1  fvdl 			return;
    500  1.1  fvdl 		}
    501  1.1  fvdl 		newbuf = (char *)mem_alloc(su->su_iosz);
    502  1.1  fvdl 		if (newbuf == NULL) {
    503  1.1  fvdl 			warnx(cache_set_str, cache_set_err3);
    504  1.1  fvdl 			FREE(victim, struct cache_node, 1);
    505  1.1  fvdl 			mutex_unlock(&dupreq_lock);
    506  1.1  fvdl 			return;
    507  1.1  fvdl 		}
    508  1.1  fvdl 	}
    509  1.1  fvdl 
    510  1.1  fvdl 	/*
    511  1.1  fvdl 	 * Store it away
    512  1.1  fvdl 	 */
    513  1.1  fvdl #ifdef RPC_CACHE_DEBUG
    514  1.1  fvdl 	if (nconf = getnetconfigent(xprt->xp_netid)) {
    515  1.1  fvdl 		uaddr = taddr2uaddr(nconf, &xprt->xp_rtaddr);
    516  1.1  fvdl 		freenetconfigent(nconf);
    517  1.1  fvdl 		printf(
    518  1.1  fvdl 	"cache set for xid= %x prog=%d vers=%d proc=%d for rmtaddr=%s\n",
    519  1.1  fvdl 			su->su_xid, uc->uc_prog, uc->uc_vers,
    520  1.1  fvdl 			uc->uc_proc, uaddr);
    521  1.1  fvdl 		free(uaddr);
    522  1.1  fvdl 	}
    523  1.1  fvdl #endif
    524  1.1  fvdl 	victim->cache_replylen = replylen;
    525  1.1  fvdl 	victim->cache_reply = rpc_buffer(xprt);
    526  1.1  fvdl 	rpc_buffer(xprt) = newbuf;
    527  1.1  fvdl 	xdrmem_create(&(su->su_xdrs), rpc_buffer(xprt),
    528  1.1  fvdl 			su->su_iosz, XDR_ENCODE);
    529  1.1  fvdl 	victim->cache_xid = su->su_xid;
    530  1.1  fvdl 	victim->cache_proc = uc->uc_proc;
    531  1.1  fvdl 	victim->cache_vers = uc->uc_vers;
    532  1.1  fvdl 	victim->cache_prog = uc->uc_prog;
    533  1.1  fvdl 	victim->cache_addr = xprt->xp_rtaddr;
    534  1.1  fvdl 	victim->cache_addr.buf = ALLOC(char, xprt->xp_rtaddr.len);
    535  1.1  fvdl 	(void) memcpy(victim->cache_addr.buf, xprt->xp_rtaddr.buf,
    536  1.1  fvdl 			(int)xprt->xp_rtaddr.len);
    537  1.1  fvdl 	loc = CACHE_LOC(xprt, victim->cache_xid);
    538  1.1  fvdl 	victim->cache_next = uc->uc_entries[loc];
    539  1.1  fvdl 	uc->uc_entries[loc] = victim;
    540  1.1  fvdl 	uc->uc_fifo[uc->uc_nextvictim++] = victim;
    541  1.1  fvdl 	uc->uc_nextvictim %= uc->uc_size;
    542  1.1  fvdl 	mutex_unlock(&dupreq_lock);
    543  1.1  fvdl }
    544  1.1  fvdl 
    545  1.1  fvdl /*
    546  1.1  fvdl  * Try to get an entry from the cache
    547  1.1  fvdl  * return 1 if found, 0 if not found and set the stage for cache_set()
    548  1.1  fvdl  */
    549  1.1  fvdl static int
    550  1.1  fvdl cache_get(xprt, msg, replyp, replylenp)
    551  1.1  fvdl 	SVCXPRT *xprt;
    552  1.1  fvdl 	struct rpc_msg *msg;
    553  1.1  fvdl 	char **replyp;
    554  1.1  fvdl 	size_t *replylenp;
    555  1.1  fvdl {
    556  1.1  fvdl 	u_int loc;
    557  1.1  fvdl 	register cache_ptr ent;
    558  1.1  fvdl 	register struct svc_dg_data *su = su_data(xprt);
    559  1.1  fvdl 	register struct cl_cache *uc = (struct cl_cache *) su->su_cache;
    560  1.1  fvdl #ifdef RPC_CACHE_DEBUG
    561  1.1  fvdl 	struct netconfig *nconf;
    562  1.1  fvdl 	char *uaddr;
    563  1.1  fvdl #endif
    564  1.1  fvdl 
    565  1.1  fvdl 	mutex_lock(&dupreq_lock);
    566  1.1  fvdl 	loc = CACHE_LOC(xprt, su->su_xid);
    567  1.1  fvdl 	for (ent = uc->uc_entries[loc]; ent != NULL; ent = ent->cache_next) {
    568  1.1  fvdl 		if (ent->cache_xid == su->su_xid &&
    569  1.1  fvdl 			ent->cache_proc == msg->rm_call.cb_proc &&
    570  1.1  fvdl 			ent->cache_vers == msg->rm_call.cb_vers &&
    571  1.1  fvdl 			ent->cache_prog == msg->rm_call.cb_prog &&
    572  1.1  fvdl 			ent->cache_addr.len == xprt->xp_rtaddr.len &&
    573  1.1  fvdl 			(memcmp(ent->cache_addr.buf, xprt->xp_rtaddr.buf,
    574  1.1  fvdl 				xprt->xp_rtaddr.len) == 0)) {
    575  1.1  fvdl #ifdef RPC_CACHE_DEBUG
    576  1.1  fvdl 			if (nconf = getnetconfigent(xprt->xp_netid)) {
    577  1.1  fvdl 				uaddr = taddr2uaddr(nconf, &xprt->xp_rtaddr);
    578  1.1  fvdl 				freenetconfigent(nconf);
    579  1.1  fvdl 				printf(
    580  1.1  fvdl 	"cache entry found for xid=%x prog=%d vers=%d proc=%d for rmtaddr=%s\n",
    581  1.1  fvdl 					su->su_xid, msg->rm_call.cb_prog,
    582  1.1  fvdl 					msg->rm_call.cb_vers,
    583  1.1  fvdl 					msg->rm_call.cb_proc, uaddr);
    584  1.1  fvdl 				free(uaddr);
    585  1.1  fvdl 			}
    586  1.1  fvdl #endif
    587  1.1  fvdl 			*replyp = ent->cache_reply;
    588  1.1  fvdl 			*replylenp = ent->cache_replylen;
    589  1.1  fvdl 			mutex_unlock(&dupreq_lock);
    590  1.1  fvdl 			return (1);
    591  1.1  fvdl 		}
    592  1.1  fvdl 	}
    593  1.1  fvdl 	/*
    594  1.1  fvdl 	 * Failed to find entry
    595  1.1  fvdl 	 * Remember a few things so we can do a set later
    596  1.1  fvdl 	 */
    597  1.1  fvdl 	uc->uc_proc = msg->rm_call.cb_proc;
    598  1.1  fvdl 	uc->uc_vers = msg->rm_call.cb_vers;
    599  1.1  fvdl 	uc->uc_prog = msg->rm_call.cb_prog;
    600  1.1  fvdl 	mutex_unlock(&dupreq_lock);
    601  1.1  fvdl 	return (0);
    602  1.1  fvdl }
    603