* GPL HEADER END
*/
/*
- * Copyright 2008 Sun Microsystems, Inc. All rights reserved
+ * Copyright (c) 2007, 2010, Oracle and/or its affiliates. All rights reserved.
* Use is subject to license terms.
*/
/*
struct ptlrpc_cli_ctx *sptlrpc_cli_ctx_get(struct ptlrpc_cli_ctx *ctx)
{
- LASSERT(cfs_atomic_read(&ctx->cc_refcount) > 0);
cfs_atomic_inc(&ctx->cc_refcount);
return ctx;
}
struct ptlrpc_sec *sec = ctx->cc_sec;
LASSERT(sec);
- LASSERT(cfs_atomic_read(&ctx->cc_refcount));
+ LASSERT_ATOMIC_POS(&ctx->cc_refcount);
if (!cfs_atomic_dec_and_test(&ctx->cc_refcount))
return;
}
EXPORT_SYMBOL(sptlrpc_cli_ctx_put);
-/*
- * expire the context immediately.
- * the caller must hold at least 1 ref on the ctx.
+/**
+ * Expire the client context immediately.
+ *
+ * \pre Caller must hold at least 1 reference on the \a ctx.
*/
void sptlrpc_cli_ctx_expire(struct ptlrpc_cli_ctx *ctx)
{
}
EXPORT_SYMBOL(sptlrpc_cli_ctx_expire);
+/**
+ * To wake up the threads who are waiting for this client context. Called
+ * after some status change happened on \a ctx.
+ */
void sptlrpc_cli_ctx_wakeup(struct ptlrpc_cli_ctx *ctx)
{
struct ptlrpc_request *req, *next;
return 0;
}
+/**
+ * Given a \a req, find or allocate a appropriate context for it.
+ * \pre req->rq_cli_ctx == NULL.
+ *
+ * \retval 0 succeed, and req->rq_cli_ctx is set.
+ * \retval -ev error number, and req->rq_cli_ctx == NULL.
+ */
int sptlrpc_req_get_ctx(struct ptlrpc_request *req)
{
struct obd_import *imp = req->rq_import;
RETURN(0);
}
-/*
- * if @sync == 0, this function should return quickly without sleep;
- * otherwise might trigger ctx destroying rpc to server.
+/**
+ * Drop the context for \a req.
+ * \pre req->rq_cli_ctx != NULL.
+ * \post req->rq_cli_ctx == NULL.
+ *
+ * If \a sync == 0, this function should return quickly without sleep;
+ * otherwise it might trigger and wait for the whole process of sending
+ * an context-destroying rpc to server.
*/
void sptlrpc_req_put_ctx(struct ptlrpc_request *req, int sync)
{
struct ptlrpc_cli_ctx *newctx)
{
struct sptlrpc_flavor old_flvr;
- char *reqmsg;
+ char *reqmsg = NULL; /* to workaround old gcc */
int reqmsg_size;
- int rc;
+ int rc = 0;
LASSERT(req->rq_reqmsg);
LASSERT(req->rq_reqlen);
/* save request message */
reqmsg_size = req->rq_reqlen;
- OBD_ALLOC(reqmsg, reqmsg_size);
- if (reqmsg == NULL)
- return -ENOMEM;
- memcpy(reqmsg, req->rq_reqmsg, reqmsg_size);
+ if (reqmsg_size != 0) {
+ OBD_ALLOC_LARGE(reqmsg, reqmsg_size);
+ if (reqmsg == NULL)
+ return -ENOMEM;
+ memcpy(reqmsg, req->rq_reqmsg, reqmsg_size);
+ }
/* release old req/rep buf */
req->rq_cli_ctx = oldctx;
/* alloc new request buffer
* we don't need to alloc reply buffer here, leave it to the
- * rest procedure of ptlrpc
- */
- rc = sptlrpc_cli_alloc_reqbuf(req, reqmsg_size);
- if (!rc) {
- LASSERT(req->rq_reqmsg);
- memcpy(req->rq_reqmsg, reqmsg, reqmsg_size);
- } else {
- CWARN("failed to alloc reqbuf: %d\n", rc);
- req->rq_flvr = old_flvr;
- }
+ * rest procedure of ptlrpc */
+ if (reqmsg_size != 0) {
+ rc = sptlrpc_cli_alloc_reqbuf(req, reqmsg_size);
+ if (!rc) {
+ LASSERT(req->rq_reqmsg);
+ memcpy(req->rq_reqmsg, reqmsg, reqmsg_size);
+ } else {
+ CWARN("failed to alloc reqbuf: %d\n", rc);
+ req->rq_flvr = old_flvr;
+ }
- OBD_FREE(reqmsg, reqmsg_size);
+ OBD_FREE_LARGE(reqmsg, reqmsg_size);
+ }
return rc;
}
/**
- * if current context has died, or if we resend after flavor switched,
- * call this func to switch context. if no switch is needed, request
- * will end up with the same context.
+ * If current context of \a req is dead somehow, e.g. we just switched flavor
+ * thus marked original contexts dead, we'll find a new context for it. if
+ * no switch is needed, \a req will end up with the same context.
*
- * request must have a context. in any case of failure, restore the
- * restore the old one - a request must have a context.
+ * \note a request must have a context, to keep other parts of code happy.
+ * In any case of failure during the switching, we must restore the old one.
*/
int sptlrpc_req_replace_dead_ctx(struct ptlrpc_request *req)
{
cfs_spin_unlock(&ctx->cc_lock);
}
-/*
- * the status of context could be subject to be changed by other threads at any
- * time. we allow this race. but once we return with 0, the caller will
- * suppose it's uptodated and keep using it until the owning rpc is done.
+/**
+ * To refresh the context of \req, if it's not up-to-date.
+ * \param timeout
+ * - < 0: don't wait
+ * - = 0: wait until success or fatal error occur
+ * - > 0: timeout value (in seconds)
*
- * @timeout:
- * < 0 - don't wait
- * = 0 - wait until success or fatal error occur
- * > 0 - timeout value
+ * The status of the context could be subject to be changed by other threads
+ * at any time. We allow this race, but once we return with 0, the caller will
+ * suppose it's uptodated and keep using it until the owning rpc is done.
*
- * return 0 only if the context is uptodated.
+ * \retval 0 only if the context is uptodated.
+ * \retval -ev error number.
*/
int sptlrpc_req_refresh_ctx(struct ptlrpc_request *req, long timeout)
{
/*
* during the process a request's context might change type even
- * (e.g. from gss ctx to plain ctx), so each loop we need to re-check
+ * (e.g. from gss ctx to null ctx), so each loop we need to re-check
* everything
*/
again:
}
if (unlikely(cfs_test_bit(PTLRPC_CTX_ERROR_BIT, &ctx->cc_flags))) {
+ cfs_spin_lock(&req->rq_lock);
req->rq_err = 1;
+ cfs_spin_unlock(&req->rq_lock);
req_off_ctx_list(req, ctx);
RETURN(-EPERM);
}
- /* This is subtle. For resent message we have to keep original
- * context to survive following situation:
- * 1. the request sent to server
- * 2. recovery was kick start
- * 3. recovery finished, the request marked as resent
- * 4. resend the request
- * 5. old reply from server received (because xid is the same)
- * 6. verify reply (has to be success)
- * 7. new reply from server received, lnet drop it
+ /*
+ * There's a subtle issue for resending RPCs, suppose following
+ * situation:
+ * 1. the request was sent to server.
+ * 2. recovery was kicked start, after finished the request was
+ * marked as resent.
+ * 3. resend the request.
+ * 4. old reply from server received, we accept and verify the reply.
+ * this has to be success, otherwise the error will be aware
+ * by application.
+ * 5. new reply from server received, dropped by LNet.
*
- * Note we can't simply change xid for resent request because
- * server reply on it for reply reconstruction.
+ * Note the xid of old & new request is the same. We can't simply
+ * change xid for the resent request because the server replies on
+ * it for reply reconstruction.
*
* Commonly the original context should be uptodate because we
- * have a expiry nice time; And server will keep their half part
- * context because we at least hold a ref of old context which
- * prevent the context destroy RPC be sent. So server still can
- * accept the request and finish RPC. Two cases:
+ * have a expiry nice time; server will keep its context because
+ * we at least hold a ref of old context which prevent context
+ * destroying RPC being sent. So server still can accept the request
+ * and finish the RPC. But if that's not the case:
* 1. If server side context has been trimmed, a NO_CONTEXT will
* be returned, gss_cli_ctx_verify/unseal will switch to new
* context by force.
* don't switch ctx if import was deactivated
*/
if (req->rq_import->imp_deactive) {
+ cfs_spin_lock(&req->rq_lock);
req->rq_err = 1;
+ cfs_spin_unlock(&req->rq_lock);
RETURN(-EINTR);
}
LASSERT(ctx == req->rq_cli_ctx);
CERROR("req %p: failed to replace dead ctx %p: %d\n",
req, ctx, rc);
+ cfs_spin_lock(&req->rq_lock);
req->rq_err = 1;
+ cfs_spin_unlock(&req->rq_lock);
RETURN(rc);
}
goto again;
}
- /* Now we're sure this context is during upcall, add myself into
+ /*
+ * Now we're sure this context is during upcall, add myself into
* waiting list
*/
cfs_spin_lock(&ctx->cc_lock);
ctx_refresh_interrupt, req);
rc = l_wait_event(req->rq_reply_waitq, ctx_check_refresh(ctx), &lwi);
- /* following cases we could be here:
+ /*
+ * following cases could lead us here:
* - successfully refreshed;
- * - interruptted;
+ * - interrupted;
* - timedout, and we don't want recover from the failure;
* - timedout, and waked up upon recovery finished;
* - someone else mark this ctx dead by force;
goto again;
}
-/*
- * Note this could be called in two situations:
+/**
+ * Initialize flavor settings for \a req, according to \a opcode.
+ *
+ * \note this could be called in two situations:
* - new request from ptlrpc_pre_req(), with proper @opcode
* - old request which changed ctx in the middle, with @opcode == 0
*/
req->rq_reqbuf_len = 0;
}
-/*
- * check whether current user have valid context for an import or not.
- * might repeatedly try in case of non-fatal errors.
- * return 0 on success, < 0 on failure
+/**
+ * Given an import \a imp, check whether current user has a valid context
+ * or not. We may create a new context and try to refresh it, and try
+ * repeatedly try in case of non-fatal errors. Return 0 means success.
*/
int sptlrpc_import_check_ctx(struct obd_import *imp)
{
cfs_atomic_set(&req->rq_refcount, 10000);
CFS_INIT_LIST_HEAD(&req->rq_ctx_chain);
cfs_waitq_init(&req->rq_reply_waitq);
+ cfs_waitq_init(&req->rq_set_waitq);
req->rq_import = imp;
req->rq_flvr = sec->ps_flvr;
req->rq_cli_ctx = ctx;
RETURN(rc);
}
+/**
+ * Used by ptlrpc client, to perform the pre-defined security transformation
+ * upon the request message of \a req. After this function called,
+ * req->rq_reqmsg is still accessible as clear text.
+ */
int sptlrpc_cli_wrap_request(struct ptlrpc_request *req)
{
struct ptlrpc_cli_ctx *ctx = req->rq_cli_ctx;
RETURN(rc);
}
-/*
- * upon this be called, the reply buffer should have been un-posted,
- * so nothing is going to change.
+/**
+ * Used by ptlrpc client, to perform security transformation upon the reply
+ * message of \a req. After return successfully, req->rq_repmsg points to
+ * the reply message in clear text.
+ *
+ * \pre the reply buffer should have been un-posted from LNet, so nothing is
+ * going to change.
*/
int sptlrpc_cli_unwrap_reply(struct ptlrpc_request *req)
{
}
/**
- * Upon called, the receive buffer might be still posted, so the reply data
- * might be changed at any time, no matter we're holding rq_lock or not. we
- * expect the rq_reply_off be 0, rq_nob_received is the early reply size.
- *
- * we allocate separate ptlrpc_request and reply buffer for early reply
- * processing, return 0 and \a req_ret is a duplicated ptlrpc_request. caller
- * must call sptlrpc_cli_finish_early_reply() on the returned request to
- * release it. if anything goes wrong \a req_ret will not be set.
+ * Used by ptlrpc client, to perform security transformation upon the early
+ * reply message of \a req. We expect the rq_reply_off is 0, and
+ * rq_nob_received is the early reply size.
+ *
+ * Because the receive buffer might be still posted, the reply data might be
+ * changed at any time, no matter we're holding rq_lock or not. For this reason
+ * we allocate a separate ptlrpc_request and reply buffer for early reply
+ * processing.
+ *
+ * \retval 0 success, \a req_ret is filled with a duplicated ptlrpc_request.
+ * Later the caller must call sptlrpc_cli_finish_early_reply() on the returned
+ * \a *req_ret to release it.
+ * \retval -ev error number, and \a req_ret will not be set.
*/
int sptlrpc_cli_unwrap_early_reply(struct ptlrpc_request *req,
struct ptlrpc_request **req_ret)
early_size = req->rq_nob_received;
early_bufsz = size_roundup_power2(early_size);
- OBD_ALLOC(early_buf, early_bufsz);
+ OBD_ALLOC_LARGE(early_buf, early_bufsz);
if (early_buf == NULL)
GOTO(err_req, rc = -ENOMEM);
early_req->rq_repdata = (struct lustre_msg *) early_buf;
early_req->rq_repdata_len = early_size;
early_req->rq_early = 1;
+ early_req->rq_reqmsg = req->rq_reqmsg;
rc = do_cli_unwrap_reply(early_req);
if (rc) {
err_ctx:
sptlrpc_cli_ctx_put(early_req->rq_cli_ctx, 1);
err_buf:
- OBD_FREE(early_buf, early_bufsz);
+ OBD_FREE_LARGE(early_buf, early_bufsz);
err_req:
OBD_FREE_PTR(early_req);
RETURN(rc);
}
+/**
+ * Used by ptlrpc client, to release a processed early reply \a early_req.
+ *
+ * \pre \a early_req was obtained from calling sptlrpc_cli_unwrap_early_reply().
+ */
void sptlrpc_cli_finish_early_reply(struct ptlrpc_request *early_req)
{
LASSERT(early_req->rq_repbuf);
LASSERT(early_req->rq_repmsg);
sptlrpc_cli_ctx_put(early_req->rq_cli_ctx, 1);
- OBD_FREE(early_req->rq_repbuf, early_req->rq_repbuf_len);
+ OBD_FREE_LARGE(early_req->rq_repbuf, early_req->rq_repbuf_len);
OBD_FREE_PTR(early_req);
}
{
struct ptlrpc_sec_policy *policy = sec->ps_policy;
- LASSERT(cfs_atomic_read(&sec->ps_refcount) == 0);
- LASSERT(cfs_atomic_read(&sec->ps_nctx) == 0);
+ LASSERT_ATOMIC_ZERO(&sec->ps_refcount);
+ LASSERT_ATOMIC_ZERO(&sec->ps_nctx);
LASSERT(policy->sp_cops->destroy_sec);
CDEBUG(D_SEC, "%s@%p: being destroied\n", sec->ps_policy->sp_name, sec);
static void sptlrpc_sec_kill(struct ptlrpc_sec *sec)
{
- LASSERT(cfs_atomic_read(&sec->ps_refcount) > 0);
+ LASSERT_ATOMIC_POS(&sec->ps_refcount);
if (sec->ps_policy->sp_cops->kill_sec) {
sec->ps_policy->sp_cops->kill_sec(sec);
struct ptlrpc_sec *sptlrpc_sec_get(struct ptlrpc_sec *sec)
{
- if (sec) {
- LASSERT(cfs_atomic_read(&sec->ps_refcount) > 0);
+ if (sec)
cfs_atomic_inc(&sec->ps_refcount);
- }
return sec;
}
void sptlrpc_sec_put(struct ptlrpc_sec *sec)
{
if (sec) {
- LASSERT(cfs_atomic_read(&sec->ps_refcount) > 0);
+ LASSERT_ATOMIC_POS(&sec->ps_refcount);
if (cfs_atomic_dec_and_test(&sec->ps_refcount)) {
- LASSERT(cfs_atomic_read(&sec->ps_nctx) == 0);
-
sptlrpc_gc_del_sec(sec);
sec_cop_destroy_sec(sec);
}
{
struct ptlrpc_sec *old_sec;
- LASSERT(cfs_atomic_read(&sec->ps_refcount) > 0);
+ LASSERT_ATOMIC_POS(&sec->ps_refcount);
cfs_spin_lock(&imp->imp_lock);
old_sec = imp->imp_sec;
cfs_spin_unlock(&sec->ps_lock);
}
-/*
- * for normal import, @svc_ctx should be NULL and @flvr is ignored;
- * for reverse import, @svc_ctx and @flvr is from incoming request.
+/**
+ * To get an appropriate ptlrpc_sec for the \a imp, according to the current
+ * configuration. Upon called, imp->imp_sec may or may not be NULL.
+ *
+ * - regular import: \a svc_ctx should be NULL and \a flvr is ignored;
+ * - reverse import: \a svc_ctx and \a flvr are obtained from incoming request.
*/
int sptlrpc_import_sec_adapt(struct obd_import *imp,
struct ptlrpc_svc_ctx *svc_ctx,
}
EXPORT_SYMBOL(sptlrpc_import_flush_all_ctx);
-/*
- * when complete successfully, req->rq_reqmsg should point to the
- * right place.
+/**
+ * Used by ptlrpc client to allocate request buffer of \a req. Upon return
+ * successfully, req->rq_reqmsg points to a buffer with size \a msgsize.
*/
int sptlrpc_cli_alloc_reqbuf(struct ptlrpc_request *req, int msgsize)
{
int rc;
LASSERT(ctx);
- LASSERT(cfs_atomic_read(&ctx->cc_refcount));
LASSERT(ctx->cc_sec);
LASSERT(ctx->cc_sec->ps_policy);
LASSERT(req->rq_reqmsg == NULL);
+ LASSERT_ATOMIC_POS(&ctx->cc_refcount);
policy = ctx->cc_sec->ps_policy;
rc = policy->sp_cops->alloc_reqbuf(ctx->cc_sec, req, msgsize);
return rc;
}
+/**
+ * Used by ptlrpc client to free request buffer of \a req. After this
+ * req->rq_reqmsg is set to NULL and should not be accessed anymore.
+ */
void sptlrpc_cli_free_reqbuf(struct ptlrpc_request *req)
{
struct ptlrpc_cli_ctx *ctx = req->rq_cli_ctx;
struct ptlrpc_sec_policy *policy;
LASSERT(ctx);
- LASSERT(cfs_atomic_read(&ctx->cc_refcount));
LASSERT(ctx->cc_sec);
LASSERT(ctx->cc_sec->ps_policy);
+ LASSERT_ATOMIC_POS(&ctx->cc_refcount);
if (req->rq_reqbuf == NULL && req->rq_clrbuf == NULL)
return;
policy = ctx->cc_sec->ps_policy;
policy->sp_cops->free_reqbuf(ctx->cc_sec, req);
+ req->rq_reqmsg = NULL;
}
/*
}
EXPORT_SYMBOL(_sptlrpc_enlarge_msg_inplace);
-/*
- * enlarge @segment of upper message req->rq_reqmsg to @newsize, all data
- * will be preserved after enlargement. this must be called after rq_reqmsg has
- * been intialized at least.
+/**
+ * Used by ptlrpc client to enlarge the \a segment of request message pointed
+ * by req->rq_reqmsg to size \a newsize, all previously filled-in data will be
+ * preserved after the enlargement. this must be called after original request
+ * buffer being allocated.
*
- * caller's attention: upon return, rq_reqmsg and rq_reqlen might have
- * been changed.
+ * \note after this be called, rq_reqmsg and rq_reqlen might have been changed,
+ * so caller should refresh its local pointers if needed.
*/
int sptlrpc_cli_enlarge_reqbuf(struct ptlrpc_request *req,
int segment, int newsize)
}
EXPORT_SYMBOL(sptlrpc_cli_enlarge_reqbuf);
+/**
+ * Used by ptlrpc client to allocate reply buffer of \a req.
+ *
+ * \note After this, req->rq_repmsg is still not accessible.
+ */
int sptlrpc_cli_alloc_repbuf(struct ptlrpc_request *req, int msgsize)
{
struct ptlrpc_cli_ctx *ctx = req->rq_cli_ctx;
ENTRY;
LASSERT(ctx);
- LASSERT(cfs_atomic_read(&ctx->cc_refcount));
LASSERT(ctx->cc_sec);
LASSERT(ctx->cc_sec->ps_policy);
RETURN(policy->sp_cops->alloc_repbuf(ctx->cc_sec, req, msgsize));
}
+/**
+ * Used by ptlrpc client to free reply buffer of \a req. After this
+ * req->rq_repmsg is set to NULL and should not be accessed anymore.
+ */
void sptlrpc_cli_free_repbuf(struct ptlrpc_request *req)
{
struct ptlrpc_cli_ctx *ctx = req->rq_cli_ctx;
ENTRY;
LASSERT(ctx);
- LASSERT(cfs_atomic_read(&ctx->cc_refcount));
LASSERT(ctx->cc_sec);
LASSERT(ctx->cc_sec->ps_policy);
+ LASSERT_ATOMIC_POS(&ctx->cc_refcount);
if (req->rq_repbuf == NULL)
return;
policy = ctx->cc_sec->ps_policy;
policy->sp_cops->free_repbuf(ctx->cc_sec, req);
+ req->rq_repmsg = NULL;
EXIT;
}
#define EXP_FLVR_UPDATE_EXPIRE (OBD_TIMEOUT_DEFAULT + 10)
+/**
+ * Given an export \a exp, check whether the flavor of incoming \a req
+ * is allowed by the export \a exp. Main logic is about taking care of
+ * changing configurations. Return 0 means success.
+ */
int sptlrpc_target_export_check(struct obd_export *exp,
struct ptlrpc_request *req)
{
/* if it's gss, we only interested in root ctx init */
if (req->rq_auth_gss &&
- !(req->rq_ctx_init && (req->rq_auth_usr_root ||
- req->rq_auth_usr_mdt))) {
+ !(req->rq_ctx_init &&
+ (req->rq_auth_usr_root || req->rq_auth_usr_mdt ||
+ req->rq_auth_usr_ost))) {
cfs_spin_unlock(&exp->exp_lock);
- CDEBUG(D_SEC, "is good but not root(%d:%d:%d:%d)\n",
+ CDEBUG(D_SEC, "is good but not root(%d:%d:%d:%d:%d)\n",
req->rq_auth_gss, req->rq_ctx_init,
- req->rq_auth_usr_root, req->rq_auth_usr_mdt);
+ req->rq_auth_usr_root, req->rq_auth_usr_mdt,
+ req->rq_auth_usr_ost);
return 0;
}
/* most cases should return here, we only interested in
* gss root ctx init */
if (!req->rq_auth_gss || !req->rq_ctx_init ||
- (!req->rq_auth_usr_root && !req->rq_auth_usr_mdt)) {
+ (!req->rq_auth_usr_root && !req->rq_auth_usr_mdt &&
+ !req->rq_auth_usr_ost)) {
cfs_spin_unlock(&exp->exp_lock);
return 0;
}
cfs_spin_unlock(&exp->exp_lock);
- CWARN("exp %p(%s): req %p (%u|%u|%u|%u|%u) with "
+ CWARN("exp %p(%s): req %p (%u|%u|%u|%u|%u|%u) with "
"unauthorized flavor %x, expect %x|%x(%+ld)|%x(%+ld)\n",
exp, exp->exp_obd->obd_name,
req, req->rq_auth_gss, req->rq_ctx_init, req->rq_ctx_fini,
- req->rq_auth_usr_root, req->rq_auth_usr_mdt, req->rq_flvr.sf_rpc,
+ req->rq_auth_usr_root, req->rq_auth_usr_mdt, req->rq_auth_usr_ost,
+ req->rq_flvr.sf_rpc,
exp->exp_flvr.sf_rpc,
exp->exp_flvr_old[0].sf_rpc,
exp->exp_flvr_expire[0] ?
static int sptlrpc_svc_check_from(struct ptlrpc_request *req, int svc_rc)
{
- if (svc_rc == SECSVC_DROP)
- return SECSVC_DROP;
+ /* peer's claim is unreliable unless gss is being used */
+ if (!req->rq_auth_gss || svc_rc == SECSVC_DROP)
+ return svc_rc;
switch (req->rq_sp_from) {
case LUSTRE_SP_CLI:
+ if (req->rq_auth_usr_mdt || req->rq_auth_usr_ost) {
+ DEBUG_REQ(D_ERROR, req, "faked source CLI");
+ svc_rc = SECSVC_DROP;
+ }
+ break;
case LUSTRE_SP_MDT:
+ if (!req->rq_auth_usr_mdt) {
+ DEBUG_REQ(D_ERROR, req, "faked source MDT");
+ svc_rc = SECSVC_DROP;
+ }
+ break;
case LUSTRE_SP_OST:
- case LUSTRE_SP_MGC:
+ if (!req->rq_auth_usr_ost) {
+ DEBUG_REQ(D_ERROR, req, "faked source OST");
+ svc_rc = SECSVC_DROP;
+ }
+ break;
case LUSTRE_SP_MGS:
- case LUSTRE_SP_ANY:
+ case LUSTRE_SP_MGC:
+ if (!req->rq_auth_usr_root && !req->rq_auth_usr_mdt &&
+ !req->rq_auth_usr_ost) {
+ DEBUG_REQ(D_ERROR, req, "faked source MGC/MGS");
+ svc_rc = SECSVC_DROP;
+ }
break;
+ case LUSTRE_SP_ANY:
default:
DEBUG_REQ(D_ERROR, req, "invalid source %u", req->rq_sp_from);
- return SECSVC_DROP;
- }
-
- if (!req->rq_auth_gss)
- return svc_rc;
-
- if (unlikely(req->rq_sp_from == LUSTRE_SP_ANY)) {
- CERROR("not specific part\n");
- return SECSVC_DROP;
- }
-
- /* from MDT, must be authenticated as MDT */
- if (unlikely(req->rq_sp_from == LUSTRE_SP_MDT &&
- !req->rq_auth_usr_mdt)) {
- DEBUG_REQ(D_ERROR, req, "fake source MDT");
- return SECSVC_DROP;
- }
-
- /* from OST, must be callback to MDT and CLI, the reverse sec
- * was from mdt/root keytab, so it should be MDT or root FIXME */
- if (unlikely(req->rq_sp_from == LUSTRE_SP_OST &&
- !req->rq_auth_usr_mdt && !req->rq_auth_usr_root)) {
- DEBUG_REQ(D_ERROR, req, "fake source OST");
- return SECSVC_DROP;
+ svc_rc = SECSVC_DROP;
}
return svc_rc;
}
+/**
+ * Used by ptlrpc server, to perform transformation upon request message of
+ * incoming \a req. This must be the first thing to do with a incoming
+ * request in ptlrpc layer.
+ *
+ * \retval SECSVC_OK success, and req->rq_reqmsg point to request message in
+ * clear text, size is req->rq_reqlen; also req->rq_svc_ctx is set.
+ * \retval SECSVC_COMPLETE success, the request has been fully processed, and
+ * reply message has been prepared.
+ * \retval SECSVC_DROP failed, this request should be dropped.
+ */
int sptlrpc_svc_unwrap_request(struct ptlrpc_request *req)
{
struct ptlrpc_sec_policy *policy;
RETURN(rc);
}
-int sptlrpc_svc_alloc_rs(struct ptlrpc_request *req,
- int msglen)
+/**
+ * Used by ptlrpc server, to allocate reply buffer for \a req. If succeed,
+ * req->rq_reply_state is set, and req->rq_reply_state->rs_msg point to
+ * a buffer of \a msglen size.
+ */
+int sptlrpc_svc_alloc_rs(struct ptlrpc_request *req, int msglen)
{
struct ptlrpc_sec_policy *policy;
struct ptlrpc_reply_state *rs;
RETURN(rc);
}
+/**
+ * Used by ptlrpc server, to perform transformation upon reply message.
+ *
+ * \post req->rq_reply_off is set to approriate server-controlled reply offset.
+ * \post req->rq_repmsg and req->rq_reply_state->rs_msg becomes inaccessible.
+ */
int sptlrpc_svc_wrap_reply(struct ptlrpc_request *req)
{
struct ptlrpc_sec_policy *policy;
RETURN(rc);
}
+/**
+ * Used by ptlrpc server, to free reply_state.
+ */
void sptlrpc_svc_free_rs(struct ptlrpc_reply_state *rs)
{
struct ptlrpc_sec_policy *policy;
{
struct ptlrpc_svc_ctx *ctx = req->rq_svc_ctx;
- if (ctx == NULL)
- return;
-
- LASSERT(cfs_atomic_read(&ctx->sc_refcount) > 0);
- cfs_atomic_inc(&ctx->sc_refcount);
+ if (ctx != NULL)
+ cfs_atomic_inc(&ctx->sc_refcount);
}
void sptlrpc_svc_ctx_decref(struct ptlrpc_request *req)
if (ctx == NULL)
return;
- LASSERT(cfs_atomic_read(&ctx->sc_refcount) > 0);
+ LASSERT_ATOMIC_POS(&ctx->sc_refcount);
if (cfs_atomic_dec_and_test(&ctx->sc_refcount)) {
if (ctx->sc_policy->sp_sops->free_ctx)
ctx->sc_policy->sp_sops->free_ctx(ctx);
if (ctx == NULL)
return;
- LASSERT(cfs_atomic_read(&ctx->sc_refcount) > 0);
+ LASSERT_ATOMIC_POS(&ctx->sc_refcount);
if (ctx->sc_policy->sp_sops->invalidate_ctx)
ctx->sc_policy->sp_sops->invalidate_ctx(ctx);
}
* bulk security *
****************************************/
+/**
+ * Perform transformation upon bulk data pointed by \a desc. This is called
+ * before transforming the request message.
+ */
int sptlrpc_cli_wrap_bulk(struct ptlrpc_request *req,
struct ptlrpc_bulk_desc *desc)
{
}
EXPORT_SYMBOL(sptlrpc_cli_wrap_bulk);
-/*
+/**
+ * This is called after unwrap the reply message.
* return nob of actual plain text size received, or error code.
*/
int sptlrpc_cli_unwrap_bulk_read(struct ptlrpc_request *req,
}
EXPORT_SYMBOL(sptlrpc_cli_unwrap_bulk_read);
-/*
+/**
+ * This is called after unwrap the reply message.
* return 0 for success or error code.
*/
int sptlrpc_cli_unwrap_bulk_write(struct ptlrpc_request *req,
}
EXPORT_SYMBOL(sptlrpc_cli_unwrap_bulk_write);
+/**
+ * Performe transformation upon outgoing bulk read.
+ */
int sptlrpc_svc_wrap_bulk(struct ptlrpc_request *req,
struct ptlrpc_bulk_desc *desc)
{
}
EXPORT_SYMBOL(sptlrpc_svc_wrap_bulk);
+/**
+ * Performe transformation upon incoming bulk write.
+ */
int sptlrpc_svc_unwrap_bulk(struct ptlrpc_request *req,
struct ptlrpc_bulk_desc *desc)
{
}
EXPORT_SYMBOL(sptlrpc_svc_unwrap_bulk);
+/**
+ * Prepare buffers for incoming bulk write.
+ */
int sptlrpc_svc_prep_bulk(struct ptlrpc_request *req,
struct ptlrpc_bulk_desc *desc)
{