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