mirror of
https://github.com/samba-team/samba.git
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f6eb8342cb
pipe.
The server side code gets generated as librpc/gen_ndr/ndr_NAME_s.c and
gets included in the pipe module
(This used to be commit bd3dcfe582
)
820 lines
20 KiB
C
820 lines
20 KiB
C
/*
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Unix SMB/CIFS implementation.
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server side dcerpc core code
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Copyright (C) Andrew Tridgell 2003
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program; if not, write to the Free Software
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Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
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*/
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#include "includes.h"
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/*
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find the set of endpoint operations for an endpoint server
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*/
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static const struct dcesrv_endpoint_ops *find_endpoint(struct dcesrv_context *dce,
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const struct dcesrv_endpoint *endpoint)
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{
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struct dce_endpoint *ep;
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for (ep=dce->endpoint_list; ep; ep=ep->next) {
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if (ep->endpoint_ops->query_endpoint(endpoint)) {
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return ep->endpoint_ops;
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}
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}
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return NULL;
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}
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/*
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find a call that is pending in our call list
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*/
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static struct dcesrv_call_state *dcesrv_find_call(struct dcesrv_state *dce, uint16 call_id)
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{
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struct dcesrv_call_state *c;
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for (c=dce->call_list;c;c=c->next) {
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if (c->pkt.call_id == call_id) {
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return c;
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}
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}
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return NULL;
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}
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/*
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register an endpoint server
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*/
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BOOL dcesrv_endpoint_register(struct dcesrv_context *dce,
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const struct dcesrv_endpoint_ops *ops,
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const struct dcerpc_interface_table *table)
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{
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BOOL done_smb=False;
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BOOL done_tcp=False;
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int i;
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for (i=0;i<table->endpoints->count;i++) {
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struct dce_endpoint *ep;
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BOOL tcp;
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tcp = (strncasecmp(table->endpoints->names[i], "TCP-", 4) == 0);
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if (tcp) {
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if (done_tcp) continue;
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done_tcp = True;
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} else {
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if (done_smb) continue;
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done_smb = True;
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}
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ep = malloc(sizeof(*ep));
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if (!ep) {
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return False;
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}
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if (tcp) {
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ep->endpoint.type = ENDPOINT_TCP;
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ep->endpoint.info.tcp_port = atoi(table->endpoints->names[i]+4);
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} else {
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ep->endpoint.type = ENDPOINT_SMB;
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ep->endpoint.info.smb_pipe = table->endpoints->names[i];
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}
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ep->endpoint_ops = ops;
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DLIST_ADD(dce->endpoint_list, ep);
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}
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return True;
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}
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/*
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connect to a dcerpc endpoint
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*/
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NTSTATUS dcesrv_endpoint_connect_ops(struct dcesrv_context *dce,
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const struct dcesrv_endpoint *endpoint,
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const struct dcesrv_endpoint_ops *ops,
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struct dcesrv_state **p)
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{
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TALLOC_CTX *mem_ctx;
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NTSTATUS status;
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mem_ctx = talloc_init("dcesrv_endpoint_connect");
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if (!mem_ctx) {
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return NT_STATUS_NO_MEMORY;
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}
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*p = talloc_p(mem_ctx, struct dcesrv_state);
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if (! *p) {
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talloc_destroy(mem_ctx);
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return NT_STATUS_NO_MEMORY;
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}
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(*p)->dce = dce;
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(*p)->mem_ctx = mem_ctx;
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(*p)->endpoint = *endpoint;
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(*p)->ops = ops;
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(*p)->private = NULL;
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(*p)->call_list = NULL;
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(*p)->cli_max_recv_frag = 0;
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(*p)->ndr = NULL;
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(*p)->dispatch = NULL;
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(*p)->handles = NULL;
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(*p)->next_handle = 0;
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(*p)->partial_input = data_blob(NULL, 0);
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(*p)->auth_state.ntlmssp_state = NULL;
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(*p)->auth_state.auth_info = NULL;
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/* make sure the endpoint server likes the connection */
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status = ops->connect(*p);
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if (!NT_STATUS_IS_OK(status)) {
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talloc_destroy(mem_ctx);
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return status;
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}
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return NT_STATUS_OK;
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}
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/*
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connect to a dcerpc endpoint
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*/
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NTSTATUS dcesrv_endpoint_connect(struct dcesrv_context *dce,
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const struct dcesrv_endpoint *endpoint,
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struct dcesrv_state **p)
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{
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const struct dcesrv_endpoint_ops *ops;
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/* make sure this endpoint exists */
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ops = find_endpoint(dce, endpoint);
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if (!ops) {
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return NT_STATUS_OBJECT_NAME_NOT_FOUND;
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}
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return dcesrv_endpoint_connect_ops(dce, endpoint, ops, p);
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}
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/*
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disconnect a link to an endpoint
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*/
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void dcesrv_endpoint_disconnect(struct dcesrv_state *p)
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{
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p->ops->disconnect(p);
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/* destroy any handles */
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while (p->handles) {
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TALLOC_CTX *m = p->handles->mem_ctx;
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DLIST_REMOVE(p->handles, p->handles);
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talloc_destroy(m);
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}
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talloc_destroy(p->mem_ctx);
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}
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/*
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return a dcerpc fault
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*/
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static NTSTATUS dcesrv_fault(struct dcesrv_call_state *call, uint32 fault_code)
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{
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struct dcerpc_packet pkt;
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struct dcesrv_call_reply *rep;
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NTSTATUS status;
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/* setup a bind_ack */
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pkt.rpc_vers = 5;
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pkt.rpc_vers_minor = 0;
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pkt.drep[0] = 0x10; /* Little endian */
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pkt.drep[1] = 0;
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pkt.drep[2] = 0;
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pkt.drep[3] = 0;
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pkt.auth_length = 0;
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pkt.call_id = call->pkt.call_id;
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pkt.ptype = DCERPC_PKT_FAULT;
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pkt.pfc_flags = DCERPC_PFC_FLAG_FIRST | DCERPC_PFC_FLAG_LAST;
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pkt.u.fault.alloc_hint = 0;
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pkt.u.fault.context_id = 0;
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pkt.u.fault.cancel_count = 0;
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pkt.u.fault.status = fault_code;
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rep = talloc_p(call->mem_ctx, struct dcesrv_call_reply);
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if (!rep) {
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return NT_STATUS_NO_MEMORY;
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}
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status = dcerpc_push_auth(&rep->data, call->mem_ctx, &pkt, NULL);
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if (!NT_STATUS_IS_OK(status)) {
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return status;
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}
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SSVAL(rep->data.data, DCERPC_FRAG_LEN_OFFSET, rep->data.length);
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DLIST_ADD_END(call->replies, rep, struct dcesrv_call_reply *);
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return NT_STATUS_OK;
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}
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/*
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return a dcerpc fault from a ntstatus code
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*/
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static NTSTATUS dcesrv_fault_nt(struct dcesrv_call_state *call, NTSTATUS status)
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{
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uint32 fault_code = DCERPC_FAULT_OTHER;
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/* TODO: we need to expand this table to include more mappings */
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if (NT_STATUS_EQUAL(status, NT_STATUS_INVALID_HANDLE)) {
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fault_code = DCERPC_FAULT_CONTEXT_MISMATCH;
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}
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return dcesrv_fault(call, fault_code);
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}
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/*
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return a dcerpc bind_nak
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*/
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static NTSTATUS dcesrv_bind_nak(struct dcesrv_call_state *call, uint32 reason)
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{
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struct dcerpc_packet pkt;
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struct dcesrv_call_reply *rep;
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NTSTATUS status;
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/* setup a bind_ack */
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pkt.rpc_vers = 5;
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pkt.rpc_vers_minor = 0;
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pkt.drep[0] = 0x10; /* Little endian */
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pkt.drep[1] = 0;
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pkt.drep[2] = 0;
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pkt.drep[3] = 0;
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pkt.auth_length = 0;
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pkt.call_id = call->pkt.call_id;
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pkt.ptype = DCERPC_PKT_BIND_NAK;
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pkt.pfc_flags = DCERPC_PFC_FLAG_FIRST | DCERPC_PFC_FLAG_LAST;
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pkt.u.bind_nak.reject_reason = reason;
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pkt.u.bind_nak.num_versions = 0;
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rep = talloc_p(call->mem_ctx, struct dcesrv_call_reply);
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if (!rep) {
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return NT_STATUS_NO_MEMORY;
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}
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status = dcerpc_push_auth(&rep->data, call->mem_ctx, &pkt, NULL);
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if (!NT_STATUS_IS_OK(status)) {
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return status;
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}
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SSVAL(rep->data.data, DCERPC_FRAG_LEN_OFFSET, rep->data.length);
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DLIST_ADD_END(call->replies, rep, struct dcesrv_call_reply *);
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return NT_STATUS_OK;
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}
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/*
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handle a bind request
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*/
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static NTSTATUS dcesrv_bind(struct dcesrv_call_state *call)
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{
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const char *uuid, *transfer_syntax;
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uint32 if_version, transfer_syntax_version;
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struct dcerpc_packet pkt;
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struct dcesrv_call_reply *rep;
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NTSTATUS status;
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uint32 result=0, reason=0;
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if (call->pkt.u.bind.num_contexts != 1 ||
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call->pkt.u.bind.ctx_list[0].num_transfer_syntaxes < 1) {
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return dcesrv_bind_nak(call, 0);
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}
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if_version = call->pkt.u.bind.ctx_list[0].abstract_syntax.major_version;
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uuid = GUID_string(call->mem_ctx, &call->pkt.u.bind.ctx_list[0].abstract_syntax.uuid);
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if (!uuid) {
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return dcesrv_bind_nak(call, 0);
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}
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transfer_syntax_version = call->pkt.u.bind.ctx_list[0].transfer_syntaxes[0].major_version;
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transfer_syntax = GUID_string(call->mem_ctx,
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&call->pkt.u.bind.ctx_list[0].transfer_syntaxes[0].uuid);
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if (!transfer_syntax ||
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strcasecmp(NDR_GUID, transfer_syntax) != 0 ||
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NDR_GUID_VERSION != transfer_syntax_version) {
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/* we only do NDR encoded dcerpc */
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return dcesrv_bind_nak(call, 0);
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}
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if (!call->dce->ops->set_interface(call->dce, uuid, if_version)) {
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DEBUG(2,("Request for unknown dcerpc interface %s/%d\n", uuid, if_version));
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/* we don't know about that interface */
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result = DCERPC_BIND_PROVIDER_REJECT;
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reason = DCERPC_BIND_REASON_ASYNTAX;
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}
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if (call->dce->cli_max_recv_frag == 0) {
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call->dce->cli_max_recv_frag = call->pkt.u.bind.max_recv_frag;
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}
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/* handle any authentication that is being requested */
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if (!dcesrv_auth_bind(call)) {
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return dcesrv_bind_nak(call, 0);
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}
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/* setup a bind_ack */
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pkt.rpc_vers = 5;
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pkt.rpc_vers_minor = 0;
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pkt.drep[0] = 0x10; /* Little endian */
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pkt.drep[1] = 0;
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pkt.drep[2] = 0;
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pkt.drep[3] = 0;
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pkt.auth_length = 0;
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pkt.call_id = call->pkt.call_id;
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pkt.ptype = DCERPC_PKT_BIND_ACK;
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pkt.pfc_flags = DCERPC_PFC_FLAG_FIRST | DCERPC_PFC_FLAG_LAST;
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pkt.u.bind_ack.max_xmit_frag = 0x2000;
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pkt.u.bind_ack.max_recv_frag = 0x2000;
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pkt.u.bind_ack.assoc_group_id = call->pkt.u.bind.assoc_group_id;
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if (call->dce->ndr) {
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pkt.u.bind_ack.secondary_address = talloc_asprintf(call->mem_ctx, "\\PIPE\\%s",
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call->dce->ndr->name);
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} else {
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pkt.u.bind_ack.secondary_address = "";
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}
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pkt.u.bind_ack.num_results = 1;
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pkt.u.bind_ack.ctx_list = talloc_p(call->mem_ctx, struct dcerpc_ack_ctx);
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if (!pkt.u.bind_ack.ctx_list) {
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return NT_STATUS_NO_MEMORY;
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}
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pkt.u.bind_ack.ctx_list[0].result = result;
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pkt.u.bind_ack.ctx_list[0].reason = reason;
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GUID_from_string(uuid, &pkt.u.bind_ack.ctx_list[0].syntax.uuid);
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pkt.u.bind_ack.ctx_list[0].syntax.major_version = if_version;
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pkt.u.bind_ack.ctx_list[0].syntax.minor_version = 0;
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pkt.u.bind_ack.auth_info = data_blob(NULL, 0);
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if (!dcesrv_auth_bind_ack(call, &pkt)) {
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return dcesrv_bind_nak(call, 0);
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}
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rep = talloc_p(call->mem_ctx, struct dcesrv_call_reply);
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if (!rep) {
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return NT_STATUS_NO_MEMORY;
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}
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status = dcerpc_push_auth(&rep->data, call->mem_ctx, &pkt,
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call->dce->auth_state.auth_info);
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if (!NT_STATUS_IS_OK(status)) {
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return status;
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}
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SSVAL(rep->data.data, DCERPC_FRAG_LEN_OFFSET, rep->data.length);
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DLIST_ADD_END(call->replies, rep, struct dcesrv_call_reply *);
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DLIST_ADD_END(call->dce->call_list, call, struct dcesrv_call_state *);
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return NT_STATUS_OK;
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}
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/*
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handle a auth3 request
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*/
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static NTSTATUS dcesrv_auth3(struct dcesrv_call_state *call)
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{
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/* handle the auth3 in the auth code */
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if (!dcesrv_auth_auth3(call)) {
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return dcesrv_fault(call, DCERPC_FAULT_OTHER);
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}
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talloc_destroy(call->mem_ctx);
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/* we don't send a reply to a auth3 request, except by a
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fault */
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return NT_STATUS_OK;
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}
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/*
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handle a dcerpc request packet
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*/
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static NTSTATUS dcesrv_request(struct dcesrv_call_state *call)
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{
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struct ndr_pull *pull;
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struct ndr_push *push;
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uint16 opnum;
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void *r;
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NTSTATUS status;
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DATA_BLOB stub;
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opnum = call->pkt.u.request.opnum;
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if (opnum >= call->dce->ndr->num_calls) {
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return dcesrv_fault(call, DCERPC_FAULT_OP_RNG_ERROR);
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}
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pull = ndr_pull_init_blob(&call->pkt.u.request.stub_and_verifier, call->mem_ctx);
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if (!pull) {
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return NT_STATUS_NO_MEMORY;
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}
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r = talloc(call->mem_ctx, call->dce->ndr->calls[opnum].struct_size);
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if (!r) {
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return NT_STATUS_NO_MEMORY;
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}
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/* unravel the NDR for the packet */
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status = call->dce->ndr->calls[opnum].ndr_pull(pull, NDR_IN, r);
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if (!NT_STATUS_IS_OK(status)) {
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return dcesrv_fault(call, DCERPC_FAULT_NDR);
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}
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/* call the dispatch function */
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status = call->dce->dispatch[opnum](call->dce, call->mem_ctx, r);
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if (!NT_STATUS_IS_OK(status)) {
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return dcesrv_fault_nt(call, status);
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}
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/* form the reply NDR */
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push = ndr_push_init_ctx(call->mem_ctx);
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if (!push) {
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return NT_STATUS_NO_MEMORY;
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}
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status = call->dce->ndr->calls[opnum].ndr_push(push, NDR_OUT, r);
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if (!NT_STATUS_IS_OK(status)) {
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return dcesrv_fault(call, DCERPC_FAULT_NDR);
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}
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stub = ndr_push_blob(push);
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do {
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uint32 length;
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struct dcesrv_call_reply *rep;
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struct dcerpc_packet pkt;
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rep = talloc_p(call->mem_ctx, struct dcesrv_call_reply);
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if (!rep) {
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return NT_STATUS_NO_MEMORY;
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}
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length = stub.length;
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if (length + DCERPC_RESPONSE_LENGTH > call->dce->cli_max_recv_frag) {
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/* the 32 is to cope with signing data */
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length = call->dce->cli_max_recv_frag -
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(DCERPC_MAX_SIGN_SIZE+DCERPC_RESPONSE_LENGTH);
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}
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/* form the dcerpc response packet */
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pkt.rpc_vers = 5;
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pkt.rpc_vers_minor = 0;
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pkt.drep[0] = 0x10; /* Little endian */
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pkt.drep[1] = 0;
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pkt.drep[2] = 0;
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pkt.drep[3] = 0;
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pkt.auth_length = 0;
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pkt.call_id = call->pkt.call_id;
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pkt.ptype = DCERPC_PKT_RESPONSE;
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pkt.pfc_flags = 0;
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if (!call->replies) {
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pkt.pfc_flags |= DCERPC_PFC_FLAG_FIRST;
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}
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if (length == stub.length) {
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pkt.pfc_flags |= DCERPC_PFC_FLAG_LAST;
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}
|
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pkt.u.response.alloc_hint = stub.length;
|
|
pkt.u.response.context_id = call->pkt.u.request.context_id;
|
|
pkt.u.response.cancel_count = 0;
|
|
pkt.u.response.stub_and_verifier.data = stub.data;
|
|
pkt.u.response.stub_and_verifier.length = length;
|
|
|
|
if (!dcesrv_auth_response(call, &rep->data, &pkt)) {
|
|
return dcesrv_fault(call, DCERPC_FAULT_OTHER);
|
|
}
|
|
|
|
SSVAL(rep->data.data, DCERPC_FRAG_LEN_OFFSET, rep->data.length);
|
|
|
|
DLIST_ADD_END(call->replies, rep, struct dcesrv_call_reply *);
|
|
|
|
stub.data += length;
|
|
stub.length -= length;
|
|
} while (stub.length != 0);
|
|
|
|
DLIST_ADD_END(call->dce->call_list, call, struct dcesrv_call_state *);
|
|
|
|
return NT_STATUS_OK;
|
|
}
|
|
|
|
|
|
/*
|
|
work out if we have a full packet yet
|
|
*/
|
|
static BOOL dce_full_packet(const DATA_BLOB *data)
|
|
{
|
|
if (data->length < DCERPC_FRAG_LEN_OFFSET+2) {
|
|
return False;
|
|
}
|
|
if (SVAL(data->data, DCERPC_FRAG_LEN_OFFSET) > data->length) {
|
|
return False;
|
|
}
|
|
return True;
|
|
}
|
|
|
|
/*
|
|
we might have consumed only part of our input - advance past that part
|
|
*/
|
|
static void dce_partial_advance(struct dcesrv_state *dce, uint32 offset)
|
|
{
|
|
DATA_BLOB blob;
|
|
|
|
if (dce->partial_input.length == offset) {
|
|
free(dce->partial_input.data);
|
|
dce->partial_input = data_blob(NULL, 0);
|
|
return;
|
|
}
|
|
|
|
blob = dce->partial_input;
|
|
dce->partial_input = data_blob(blob.data + offset,
|
|
blob.length - offset);
|
|
free(blob.data);
|
|
}
|
|
|
|
/*
|
|
process some input to a dcerpc endpoint server.
|
|
*/
|
|
NTSTATUS dcesrv_input_process(struct dcesrv_state *dce)
|
|
{
|
|
struct ndr_pull *ndr;
|
|
TALLOC_CTX *mem_ctx;
|
|
NTSTATUS status;
|
|
struct dcesrv_call_state *call;
|
|
DATA_BLOB blob;
|
|
|
|
mem_ctx = talloc_init("dcesrv_input");
|
|
if (!mem_ctx) {
|
|
return NT_STATUS_NO_MEMORY;
|
|
}
|
|
call = talloc_p(mem_ctx, struct dcesrv_call_state);
|
|
if (!call) {
|
|
talloc_free(dce->mem_ctx, dce->partial_input.data);
|
|
talloc_destroy(mem_ctx);
|
|
return NT_STATUS_NO_MEMORY;
|
|
}
|
|
call->mem_ctx = mem_ctx;
|
|
call->dce = dce;
|
|
call->replies = NULL;
|
|
|
|
blob = dce->partial_input;
|
|
blob.length = SVAL(blob.data, DCERPC_FRAG_LEN_OFFSET);
|
|
|
|
ndr = ndr_pull_init_blob(&blob, mem_ctx);
|
|
if (!ndr) {
|
|
talloc_free(dce->mem_ctx, dce->partial_input.data);
|
|
talloc_destroy(mem_ctx);
|
|
return NT_STATUS_NO_MEMORY;
|
|
}
|
|
|
|
status = ndr_pull_dcerpc_packet(ndr, NDR_SCALARS|NDR_BUFFERS, &call->pkt);
|
|
if (!NT_STATUS_IS_OK(status)) {
|
|
talloc_free(dce->mem_ctx, dce->partial_input.data);
|
|
talloc_destroy(mem_ctx);
|
|
return status;
|
|
}
|
|
|
|
dce_partial_advance(dce, blob.length);
|
|
|
|
/* we have to check the signing here, before combining the
|
|
pdus */
|
|
if (call->pkt.ptype == DCERPC_PKT_REQUEST &&
|
|
!dcesrv_auth_request(call)) {
|
|
return dcesrv_fault(call, DCERPC_FAULT_OTHER);
|
|
}
|
|
|
|
/* see if this is a continued packet */
|
|
if (!(call->pkt.pfc_flags & DCERPC_PFC_FLAG_FIRST)) {
|
|
struct dcesrv_call_state *call2 = call;
|
|
uint32 alloc_size;
|
|
|
|
/* we only allow fragmented requests, no other packet types */
|
|
if (call->pkt.ptype != DCERPC_PKT_REQUEST) {
|
|
return dcesrv_fault(call2, DCERPC_FAULT_OTHER);
|
|
}
|
|
|
|
/* this is a continuation of an existing call - find the call then
|
|
tack it on the end */
|
|
call = dcesrv_find_call(dce, call2->pkt.call_id);
|
|
if (!call) {
|
|
return dcesrv_fault(call2, DCERPC_FAULT_OTHER);
|
|
}
|
|
|
|
if (call->pkt.ptype != call2->pkt.ptype) {
|
|
/* trying to play silly buggers are we? */
|
|
return dcesrv_fault(call2, DCERPC_FAULT_OTHER);
|
|
}
|
|
|
|
alloc_size = call->pkt.u.request.stub_and_verifier.length +
|
|
call2->pkt.u.request.stub_and_verifier.length;
|
|
if (call->pkt.u.request.alloc_hint > alloc_size) {
|
|
alloc_size = call->pkt.u.request.alloc_hint;
|
|
}
|
|
|
|
call->pkt.u.request.stub_and_verifier.data =
|
|
talloc_realloc(call->mem_ctx,
|
|
call->pkt.u.request.stub_and_verifier.data, alloc_size);
|
|
if (!call->pkt.u.request.stub_and_verifier.data) {
|
|
return dcesrv_fault(call2, DCERPC_FAULT_OTHER);
|
|
}
|
|
memcpy(call->pkt.u.request.stub_and_verifier.data +
|
|
call->pkt.u.request.stub_and_verifier.length,
|
|
call2->pkt.u.request.stub_and_verifier.data,
|
|
call2->pkt.u.request.stub_and_verifier.length);
|
|
call->pkt.u.request.stub_and_verifier.length +=
|
|
call2->pkt.u.request.stub_and_verifier.length;
|
|
|
|
call->pkt.pfc_flags |= (call2->pkt.pfc_flags & DCERPC_PFC_FLAG_LAST);
|
|
}
|
|
|
|
/* this may not be the last pdu in the chain - if its isn't then
|
|
just put it on the call_list and wait for the rest */
|
|
if (!(call->pkt.pfc_flags & DCERPC_PFC_FLAG_LAST)) {
|
|
DLIST_ADD_END(dce->call_list, call, struct dcesrv_call_state *);
|
|
return NT_STATUS_OK;
|
|
}
|
|
|
|
switch (call->pkt.ptype) {
|
|
case DCERPC_PKT_BIND:
|
|
status = dcesrv_bind(call);
|
|
break;
|
|
case DCERPC_PKT_AUTH3:
|
|
status = dcesrv_auth3(call);
|
|
break;
|
|
case DCERPC_PKT_REQUEST:
|
|
status = dcesrv_request(call);
|
|
break;
|
|
default:
|
|
status = NT_STATUS_INVALID_PARAMETER;
|
|
break;
|
|
}
|
|
|
|
/* if we are going to be sending a reply then add
|
|
it to the list of pending calls. We add it to the end to keep the call
|
|
list in the order we will answer */
|
|
if (!NT_STATUS_IS_OK(status)) {
|
|
talloc_destroy(mem_ctx);
|
|
}
|
|
|
|
return status;
|
|
}
|
|
|
|
|
|
/*
|
|
provide some input to a dcerpc endpoint server. This passes data
|
|
from a dcerpc client into the server
|
|
*/
|
|
NTSTATUS dcesrv_input(struct dcesrv_state *dce, const DATA_BLOB *data)
|
|
{
|
|
NTSTATUS status;
|
|
|
|
dce->partial_input.data = Realloc(dce->partial_input.data,
|
|
dce->partial_input.length + data->length);
|
|
if (!dce->partial_input.data) {
|
|
return NT_STATUS_NO_MEMORY;
|
|
}
|
|
memcpy(dce->partial_input.data + dce->partial_input.length,
|
|
data->data, data->length);
|
|
dce->partial_input.length += data->length;
|
|
|
|
while (dce_full_packet(&dce->partial_input)) {
|
|
status = dcesrv_input_process(dce);
|
|
if (!NT_STATUS_IS_OK(status)) {
|
|
return status;
|
|
}
|
|
}
|
|
|
|
return NT_STATUS_OK;
|
|
}
|
|
|
|
/*
|
|
retrieve some output from a dcerpc server. The amount of data that
|
|
is wanted is in data->length and data->data is already allocated
|
|
to hold that much data.
|
|
*/
|
|
NTSTATUS dcesrv_output(struct dcesrv_state *dce, DATA_BLOB *data)
|
|
{
|
|
struct dcesrv_call_state *call;
|
|
struct dcesrv_call_reply *rep;
|
|
|
|
call = dce->call_list;
|
|
if (!call || !call->replies) {
|
|
return NT_STATUS_FOOBAR;
|
|
}
|
|
rep = call->replies;
|
|
|
|
if (data->length >= rep->data.length) {
|
|
data->length = rep->data.length;
|
|
}
|
|
|
|
memcpy(data->data, rep->data.data, data->length);
|
|
rep->data.length -= data->length;
|
|
rep->data.data += data->length;
|
|
|
|
if (rep->data.length == 0) {
|
|
/* we're done with this section of the call */
|
|
DLIST_REMOVE(call->replies, rep);
|
|
}
|
|
|
|
if (call->replies == NULL) {
|
|
/* we're done with the whole call */
|
|
DLIST_REMOVE(dce->call_list, call);
|
|
talloc_destroy(call->mem_ctx);
|
|
}
|
|
|
|
return NT_STATUS_OK;
|
|
}
|
|
|
|
|
|
/*
|
|
a useful function for implementing the query endpoint op
|
|
*/
|
|
BOOL dcesrv_table_query(const struct dcerpc_interface_table *table,
|
|
const struct dcesrv_endpoint *ep)
|
|
{
|
|
int i;
|
|
const struct dcerpc_endpoint_list *endpoints = table->endpoints;
|
|
|
|
if (ep->type != ENDPOINT_SMB) {
|
|
return False;
|
|
}
|
|
|
|
for (i=0;i<endpoints->count;i++) {
|
|
if (strcasecmp(ep->info.smb_pipe, endpoints->names[i]) == 0) {
|
|
return True;
|
|
}
|
|
}
|
|
return False;
|
|
}
|
|
|
|
|
|
/*
|
|
a useful function for implementing the lookup_endpoints op
|
|
*/
|
|
int dcesrv_lookup_endpoints(const struct dcerpc_interface_table *table,
|
|
TALLOC_CTX *mem_ctx,
|
|
struct dcesrv_ep_iface **e)
|
|
{
|
|
int i;
|
|
*e = talloc_array_p(mem_ctx, struct dcesrv_ep_iface, table->endpoints->count);
|
|
if (! *e) {
|
|
return -1;
|
|
}
|
|
|
|
for (i=0;i<table->endpoints->count;i++) {
|
|
(*e)[i].name = table->name;
|
|
(*e)[i].uuid = table->uuid;
|
|
(*e)[i].if_version = table->if_version;
|
|
if (strncmp(table->endpoints->names[i], "TCP-", 4) == 0) {
|
|
(*e)[i].endpoint.type = ENDPOINT_TCP;
|
|
(*e)[i].endpoint.info.tcp_port = atoi(table->endpoints->names[i]+4);
|
|
} else {
|
|
(*e)[i].endpoint.type = ENDPOINT_SMB;
|
|
(*e)[i].endpoint.info.smb_pipe = table->endpoints->names[i];
|
|
}
|
|
}
|
|
|
|
return i;
|
|
}
|
|
|
|
|
|
BOOL dcesrv_set_interface(struct dcesrv_state *dce,
|
|
const char *uuid, uint32 if_version,
|
|
const struct dcerpc_interface_table *table,
|
|
const dcesrv_dispatch_fn_t *dispatch_table)
|
|
{
|
|
if (strcasecmp(table->uuid, uuid) != 0 || if_version != table->if_version) {
|
|
DEBUG(2,("Attempt to use unknown interface %s/%d\n", uuid, if_version));
|
|
return False;
|
|
}
|
|
|
|
dce->ndr = table;
|
|
dce->dispatch = dispatch_table;
|
|
return True;
|
|
}
|
|
|
|
|
|
/*
|
|
initialise the dcerpc server subsystem
|
|
*/
|
|
BOOL dcesrv_init(struct dcesrv_context *dce)
|
|
{
|
|
rpc_rpcecho_init(dce);
|
|
rpc_epmapper_init(dce);
|
|
return True;
|
|
}
|