xref: /spdk/test/unit/lib/nvmf/rdma.c/rdma_ut.c (revision 13a58c41ad5c01eefaf68f049b6c7da2b9d19426)
1 /*-
2  *   BSD LICENSE
3  *
4  *   Copyright (c) Intel Corporation.
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8  *   modification, are permitted provided that the following conditions
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14  *       notice, this list of conditions and the following disclaimer in
15  *       the documentation and/or other materials provided with the
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19  *       from this software without specific prior written permission.
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23  *   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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32  */
33 
34 #include "spdk/stdinc.h"
35 #include "spdk_cunit.h"
36 #include "common/lib/test_env.c"
37 #include "nvmf/rdma.c"
38 
39 uint64_t g_mr_size;
40 struct ibv_mr g_rdma_mr;
41 
42 #define RDMA_UT_UNITS_IN_MAX_IO 16
43 
44 struct spdk_nvmf_transport_opts g_rdma_ut_transport_opts = {
45 	.max_queue_depth = SPDK_NVMF_RDMA_DEFAULT_MAX_QUEUE_DEPTH,
46 	.max_qpairs_per_ctrlr = SPDK_NVMF_RDMA_DEFAULT_MAX_QPAIRS_PER_CTRLR,
47 	.in_capsule_data_size = SPDK_NVMF_RDMA_DEFAULT_IN_CAPSULE_DATA_SIZE,
48 	.max_io_size = (SPDK_NVMF_RDMA_DEFAULT_IO_BUFFER_SIZE * RDMA_UT_UNITS_IN_MAX_IO),
49 	.io_unit_size = SPDK_NVMF_RDMA_DEFAULT_IO_BUFFER_SIZE,
50 	.max_aq_depth = SPDK_NVMF_RDMA_DEFAULT_AQ_DEPTH,
51 	.num_shared_buffers = SPDK_NVMF_RDMA_DEFAULT_NUM_SHARED_BUFFERS,
52 };
53 
54 SPDK_LOG_REGISTER_COMPONENT("nvmf", SPDK_LOG_NVMF)
55 DEFINE_STUB(spdk_mem_map_set_translation, int, (struct spdk_mem_map *map, uint64_t vaddr,
56 		uint64_t size, uint64_t translation), 0);
57 DEFINE_STUB(spdk_mem_map_clear_translation, int, (struct spdk_mem_map *map, uint64_t vaddr,
58 		uint64_t size), 0);
59 DEFINE_STUB(spdk_mem_map_alloc, struct spdk_mem_map *, (uint64_t default_translation,
60 		const struct spdk_mem_map_ops *ops, void *cb_ctx), NULL);
61 DEFINE_STUB(spdk_nvmf_qpair_disconnect, int, (struct spdk_nvmf_qpair *qpair,
62 		nvmf_qpair_disconnect_cb cb_fn, void *ctx), 0);
63 DEFINE_STUB_V(spdk_mem_map_free, (struct spdk_mem_map **pmap));
64 
65 struct spdk_trace_histories *g_trace_histories;
66 DEFINE_STUB_V(spdk_trace_add_register_fn, (struct spdk_trace_register_fn *reg_fn));
67 DEFINE_STUB_V(spdk_trace_register_object, (uint8_t type, char id_prefix));
68 DEFINE_STUB_V(spdk_trace_register_description, (const char *name, const char *short_name,
69 		uint16_t tpoint_id, uint8_t owner_type, uint8_t object_type, uint8_t new_object,
70 		uint8_t arg1_is_ptr, const char *arg1_name));
71 DEFINE_STUB_V(_spdk_trace_record, (uint64_t tsc, uint16_t tpoint_id, uint16_t poller_id,
72 				   uint32_t size, uint64_t object_id, uint64_t arg1));
73 
74 DEFINE_STUB_V(spdk_nvmf_request_exec, (struct spdk_nvmf_request *req));
75 DEFINE_STUB(spdk_nvme_transport_id_compare, int, (const struct spdk_nvme_transport_id *trid1,
76 		const struct spdk_nvme_transport_id *trid2), 0);
77 DEFINE_STUB_V(spdk_nvmf_ctrlr_abort_aer, (struct spdk_nvmf_ctrlr *ctrlr));
78 
79 uint64_t
80 spdk_mem_map_translate(const struct spdk_mem_map *map, uint64_t vaddr, uint64_t *size)
81 {
82 	if (g_mr_size != 0) {
83 		*(uint32_t *)size = g_mr_size;
84 	}
85 
86 	return (uint64_t)&g_rdma_mr;
87 }
88 
89 static void reset_nvmf_rdma_request(struct spdk_nvmf_rdma_request *rdma_req)
90 {
91 	int i;
92 
93 	rdma_req->req.length = 0;
94 	rdma_req->data_from_pool = false;
95 	rdma_req->req.data = NULL;
96 	rdma_req->data.wr.num_sge = 0;
97 	rdma_req->data.wr.wr.rdma.remote_addr = 0;
98 	rdma_req->data.wr.wr.rdma.rkey = 0;
99 
100 	for (i = 0; i < SPDK_NVMF_MAX_SGL_ENTRIES; i++) {
101 		rdma_req->req.iov[i].iov_base = 0;
102 		rdma_req->req.iov[i].iov_len = 0;
103 		rdma_req->data.buffers[i] = 0;
104 		rdma_req->data.wr.sg_list[i].addr = 0;
105 		rdma_req->data.wr.sg_list[i].length = 0;
106 		rdma_req->data.wr.sg_list[i].lkey = 0;
107 	}
108 }
109 
110 static void
111 test_spdk_nvmf_rdma_request_parse_sgl(void)
112 {
113 	struct spdk_nvmf_rdma_transport rtransport;
114 	struct spdk_nvmf_rdma_device device;
115 	struct spdk_nvmf_rdma_request rdma_req;
116 	struct spdk_nvmf_rdma_recv recv;
117 	union nvmf_c2h_msg cpl;
118 	union nvmf_h2c_msg cmd;
119 	struct spdk_nvme_sgl_descriptor *sgl;
120 	int rc, i;
121 
122 	sgl = &cmd.nvme_cmd.dptr.sgl1;
123 	rdma_req.recv = &recv;
124 	rdma_req.req.cmd = &cmd;
125 	rdma_req.req.rsp = &cpl;
126 	rdma_req.data.wr.sg_list = rdma_req.data.sgl;
127 
128 	rtransport.transport.opts = g_rdma_ut_transport_opts;
129 
130 	device.attr.device_cap_flags = 0;
131 	g_rdma_mr.lkey = 0xABCD;
132 	sgl->keyed.key = 0xEEEE;
133 	sgl->address = 0xFFFF;
134 	rdma_req.recv->buf = (void *)0xDDDD;
135 
136 	/* Test 1: sgl type: keyed data block subtype: address */
137 	sgl->generic.type = SPDK_NVME_SGL_TYPE_KEYED_DATA_BLOCK;
138 	sgl->keyed.subtype = SPDK_NVME_SGL_SUBTYPE_ADDRESS;
139 
140 	/* Part 1: simple I/O, one SGL smaller than the transport io unit size */
141 	MOCK_SET(spdk_mempool_get, (void *)0x2000);
142 	reset_nvmf_rdma_request(&rdma_req);
143 	sgl->keyed.length = rtransport.transport.opts.io_unit_size / 2;
144 
145 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
146 	CU_ASSERT(rc == 0);
147 	CU_ASSERT(rdma_req.data_from_pool == true);
148 	CU_ASSERT(rdma_req.req.length == rtransport.transport.opts.io_unit_size / 2);
149 	CU_ASSERT((uint64_t)rdma_req.req.data == 0x2000);
150 	CU_ASSERT(rdma_req.data.wr.num_sge == 1);
151 	CU_ASSERT(rdma_req.data.wr.wr.rdma.rkey == 0xEEEE);
152 	CU_ASSERT(rdma_req.data.wr.wr.rdma.remote_addr == 0xFFFF);
153 	CU_ASSERT((uint64_t)rdma_req.data.buffers[0] == 0x2000);
154 	CU_ASSERT(rdma_req.data.wr.sg_list[0].addr == 0x2000);
155 	CU_ASSERT(rdma_req.data.wr.sg_list[0].length == rtransport.transport.opts.io_unit_size / 2);
156 	CU_ASSERT(rdma_req.data.wr.sg_list[0].lkey == g_rdma_mr.lkey);
157 
158 	/* Part 2: simple I/O, one SGL larger than the transport io unit size (equal to the max io size) */
159 	reset_nvmf_rdma_request(&rdma_req);
160 	sgl->keyed.length = rtransport.transport.opts.io_unit_size * RDMA_UT_UNITS_IN_MAX_IO;
161 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
162 
163 	CU_ASSERT(rc == 0);
164 	CU_ASSERT(rdma_req.data_from_pool == true);
165 	CU_ASSERT(rdma_req.req.length == rtransport.transport.opts.io_unit_size * RDMA_UT_UNITS_IN_MAX_IO);
166 	CU_ASSERT(rdma_req.data.wr.num_sge == RDMA_UT_UNITS_IN_MAX_IO);
167 	CU_ASSERT(rdma_req.data.wr.wr.rdma.rkey == 0xEEEE);
168 	CU_ASSERT(rdma_req.data.wr.wr.rdma.remote_addr == 0xFFFF);
169 	for (i = 0; i < RDMA_UT_UNITS_IN_MAX_IO; i++) {
170 		CU_ASSERT((uint64_t)rdma_req.data.buffers[i] == 0x2000);
171 		CU_ASSERT(rdma_req.data.wr.sg_list[i].addr == 0x2000);
172 		CU_ASSERT(rdma_req.data.wr.sg_list[i].length == rtransport.transport.opts.io_unit_size);
173 		CU_ASSERT(rdma_req.data.wr.sg_list[i].lkey == g_rdma_mr.lkey);
174 	}
175 
176 	/* Part 3: simple I/O one SGL larger than the transport max io size */
177 	reset_nvmf_rdma_request(&rdma_req);
178 	sgl->keyed.length = rtransport.transport.opts.max_io_size * 2;
179 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
180 
181 	CU_ASSERT(rc == -1);
182 
183 	/* Part 4: Pretend there are no buffer pools */
184 	MOCK_SET(spdk_mempool_get, NULL);
185 	reset_nvmf_rdma_request(&rdma_req);
186 	sgl->keyed.length = rtransport.transport.opts.io_unit_size * RDMA_UT_UNITS_IN_MAX_IO;
187 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
188 
189 	CU_ASSERT(rc == 0);
190 	CU_ASSERT(rdma_req.data_from_pool == false);
191 	CU_ASSERT(rdma_req.req.data == NULL);
192 	CU_ASSERT(rdma_req.data.wr.num_sge == 0);
193 	CU_ASSERT(rdma_req.data.buffers[0] == NULL);
194 	CU_ASSERT(rdma_req.data.wr.sg_list[0].addr == 0);
195 	CU_ASSERT(rdma_req.data.wr.sg_list[0].length == 0);
196 	CU_ASSERT(rdma_req.data.wr.sg_list[0].lkey == 0);
197 
198 
199 	rdma_req.recv->buf = (void *)0xDDDD;
200 	/* Test 2: sgl type: keyed data block subtype: offset (in capsule data) */
201 	sgl->generic.type = SPDK_NVME_SGL_TYPE_DATA_BLOCK;
202 	sgl->unkeyed.subtype = SPDK_NVME_SGL_SUBTYPE_OFFSET;
203 
204 	/* Part 1: Normal I/O smaller than in capsule data size no offset */
205 	reset_nvmf_rdma_request(&rdma_req);
206 	sgl->address = 0;
207 	sgl->unkeyed.length = rtransport.transport.opts.in_capsule_data_size;
208 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
209 
210 	CU_ASSERT(rc == 0);
211 	CU_ASSERT(rdma_req.req.data == (void *)0xDDDD);
212 	CU_ASSERT(rdma_req.req.length == rtransport.transport.opts.in_capsule_data_size);
213 	CU_ASSERT(rdma_req.data_from_pool == false);
214 
215 	/* Part 2: I/O offset + length too large */
216 	reset_nvmf_rdma_request(&rdma_req);
217 	sgl->address = rtransport.transport.opts.in_capsule_data_size;
218 	sgl->unkeyed.length = rtransport.transport.opts.in_capsule_data_size;
219 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
220 
221 	CU_ASSERT(rc == -1);
222 
223 	/* Part 3: I/O too large */
224 	reset_nvmf_rdma_request(&rdma_req);
225 	sgl->address = 0;
226 	sgl->unkeyed.length = rtransport.transport.opts.in_capsule_data_size * 2;
227 	rc = spdk_nvmf_rdma_request_parse_sgl(&rtransport, &device, &rdma_req);
228 
229 	CU_ASSERT(rc == -1);
230 }
231 
232 int main(int argc, char **argv)
233 {
234 	CU_pSuite	suite = NULL;
235 	unsigned int	num_failures;
236 
237 	if (CU_initialize_registry() != CUE_SUCCESS) {
238 		return CU_get_error();
239 	}
240 
241 	suite = CU_add_suite("nvmf", NULL, NULL);
242 	if (suite == NULL) {
243 		CU_cleanup_registry();
244 		return CU_get_error();
245 	}
246 
247 	if (
248 		CU_add_test(suite, "test_parse_sgl", test_spdk_nvmf_rdma_request_parse_sgl) == NULL) {
249 		CU_cleanup_registry();
250 		return CU_get_error();
251 	}
252 
253 	CU_basic_set_mode(CU_BRM_VERBOSE);
254 	CU_basic_run_tests();
255 	num_failures = CU_get_number_of_failures();
256 	CU_cleanup_registry();
257 	return num_failures;
258 }
259