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1 // SPDX-License-Identifier: GPL-1.0+
2 /*
3  * zcore module to export memory content and register sets for creating system
4  * dumps on SCSI/NVMe disks (zfcp/nvme dump).
5  *
6  * For more information please refer to Documentation/s390/zfcpdump.rst
7  *
8  * Copyright IBM Corp. 2003, 2008
9  * Author(s): Michael Holzheu
10  */
11 
12 #define KMSG_COMPONENT "zdump"
13 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
14 
15 #include <linux/init.h>
16 #include <linux/slab.h>
17 #include <linux/debugfs.h>
18 
19 #include <asm/asm-offsets.h>
20 #include <asm/ipl.h>
21 #include <asm/sclp.h>
22 #include <asm/setup.h>
23 #include <linux/uaccess.h>
24 #include <asm/debug.h>
25 #include <asm/processor.h>
26 #include <asm/irqflags.h>
27 #include <asm/checksum.h>
28 #include <asm/os_info.h>
29 #include <asm/switch_to.h>
30 #include "sclp.h"
31 
32 #define TRACE(x...) debug_sprintf_event(zcore_dbf, 1, x)
33 
34 enum arch_id {
35 	ARCH_S390	= 0,
36 	ARCH_S390X	= 1,
37 };
38 
39 struct ipib_info {
40 	unsigned long	ipib;
41 	u32		checksum;
42 }  __attribute__((packed));
43 
44 static struct debug_info *zcore_dbf;
45 static int hsa_available;
46 static struct dentry *zcore_dir;
47 static struct dentry *zcore_reipl_file;
48 static struct dentry *zcore_hsa_file;
49 static struct ipl_parameter_block *zcore_ipl_block;
50 
51 static DEFINE_MUTEX(hsa_buf_mutex);
52 static char hsa_buf[PAGE_SIZE] __aligned(PAGE_SIZE);
53 
54 /*
55  * Copy memory from HSA to user memory (not reentrant):
56  *
57  * @dest:  User buffer where memory should be copied to
58  * @src:   Start address within HSA where data should be copied
59  * @count: Size of buffer, which should be copied
60  */
memcpy_hsa_user(void __user * dest,unsigned long src,size_t count)61 int memcpy_hsa_user(void __user *dest, unsigned long src, size_t count)
62 {
63 	unsigned long offset, bytes;
64 
65 	if (!hsa_available)
66 		return -ENODATA;
67 
68 	mutex_lock(&hsa_buf_mutex);
69 	while (count) {
70 		if (sclp_sdias_copy(hsa_buf, src / PAGE_SIZE + 2, 1)) {
71 			TRACE("sclp_sdias_copy() failed\n");
72 			mutex_unlock(&hsa_buf_mutex);
73 			return -EIO;
74 		}
75 		offset = src % PAGE_SIZE;
76 		bytes = min(PAGE_SIZE - offset, count);
77 		if (copy_to_user(dest, hsa_buf + offset, bytes)) {
78 			mutex_unlock(&hsa_buf_mutex);
79 			return -EFAULT;
80 		}
81 		src += bytes;
82 		dest += bytes;
83 		count -= bytes;
84 	}
85 	mutex_unlock(&hsa_buf_mutex);
86 	return 0;
87 }
88 
89 /*
90  * Copy memory from HSA to kernel memory (not reentrant):
91  *
92  * @dest:  Kernel or user buffer where memory should be copied to
93  * @src:   Start address within HSA where data should be copied
94  * @count: Size of buffer, which should be copied
95  */
memcpy_hsa_kernel(void * dest,unsigned long src,size_t count)96 int memcpy_hsa_kernel(void *dest, unsigned long src, size_t count)
97 {
98 	unsigned long offset, bytes;
99 
100 	if (!hsa_available)
101 		return -ENODATA;
102 
103 	mutex_lock(&hsa_buf_mutex);
104 	while (count) {
105 		if (sclp_sdias_copy(hsa_buf, src / PAGE_SIZE + 2, 1)) {
106 			TRACE("sclp_sdias_copy() failed\n");
107 			mutex_unlock(&hsa_buf_mutex);
108 			return -EIO;
109 		}
110 		offset = src % PAGE_SIZE;
111 		bytes = min(PAGE_SIZE - offset, count);
112 		memcpy(dest, hsa_buf + offset, bytes);
113 		src += bytes;
114 		dest += bytes;
115 		count -= bytes;
116 	}
117 	mutex_unlock(&hsa_buf_mutex);
118 	return 0;
119 }
120 
init_cpu_info(void)121 static int __init init_cpu_info(void)
122 {
123 	struct save_area *sa;
124 
125 	/* get info for boot cpu from lowcore, stored in the HSA */
126 	sa = save_area_boot_cpu();
127 	if (!sa)
128 		return -ENOMEM;
129 	if (memcpy_hsa_kernel(hsa_buf, __LC_FPREGS_SAVE_AREA, 512) < 0) {
130 		TRACE("could not copy from HSA\n");
131 		return -EIO;
132 	}
133 	save_area_add_regs(sa, hsa_buf); /* vx registers are saved in smp.c */
134 	return 0;
135 }
136 
137 /*
138  * Release the HSA
139  */
release_hsa(void)140 static void release_hsa(void)
141 {
142 	diag308(DIAG308_REL_HSA, NULL);
143 	hsa_available = 0;
144 }
145 
zcore_reipl_write(struct file * filp,const char __user * buf,size_t count,loff_t * ppos)146 static ssize_t zcore_reipl_write(struct file *filp, const char __user *buf,
147 				 size_t count, loff_t *ppos)
148 {
149 	if (zcore_ipl_block) {
150 		diag308(DIAG308_SET, zcore_ipl_block);
151 		diag308(DIAG308_LOAD_CLEAR, NULL);
152 	}
153 	return count;
154 }
155 
zcore_reipl_open(struct inode * inode,struct file * filp)156 static int zcore_reipl_open(struct inode *inode, struct file *filp)
157 {
158 	return stream_open(inode, filp);
159 }
160 
zcore_reipl_release(struct inode * inode,struct file * filp)161 static int zcore_reipl_release(struct inode *inode, struct file *filp)
162 {
163 	return 0;
164 }
165 
166 static const struct file_operations zcore_reipl_fops = {
167 	.owner		= THIS_MODULE,
168 	.write		= zcore_reipl_write,
169 	.open		= zcore_reipl_open,
170 	.release	= zcore_reipl_release,
171 	.llseek		= no_llseek,
172 };
173 
zcore_hsa_read(struct file * filp,char __user * buf,size_t count,loff_t * ppos)174 static ssize_t zcore_hsa_read(struct file *filp, char __user *buf,
175 			      size_t count, loff_t *ppos)
176 {
177 	static char str[18];
178 
179 	if (hsa_available)
180 		snprintf(str, sizeof(str), "%lx\n", sclp.hsa_size);
181 	else
182 		snprintf(str, sizeof(str), "0\n");
183 	return simple_read_from_buffer(buf, count, ppos, str, strlen(str));
184 }
185 
zcore_hsa_write(struct file * filp,const char __user * buf,size_t count,loff_t * ppos)186 static ssize_t zcore_hsa_write(struct file *filp, const char __user *buf,
187 			       size_t count, loff_t *ppos)
188 {
189 	char value;
190 
191 	if (*ppos != 0)
192 		return -EPIPE;
193 	if (copy_from_user(&value, buf, 1))
194 		return -EFAULT;
195 	if (value != '0')
196 		return -EINVAL;
197 	release_hsa();
198 	return count;
199 }
200 
201 static const struct file_operations zcore_hsa_fops = {
202 	.owner		= THIS_MODULE,
203 	.write		= zcore_hsa_write,
204 	.read		= zcore_hsa_read,
205 	.open		= nonseekable_open,
206 	.llseek		= no_llseek,
207 };
208 
check_sdias(void)209 static int __init check_sdias(void)
210 {
211 	if (!sclp.hsa_size) {
212 		TRACE("Could not determine HSA size\n");
213 		return -ENODEV;
214 	}
215 	return 0;
216 }
217 
218 /*
219  * Provide IPL parameter information block from either HSA or memory
220  * for future reipl
221  */
zcore_reipl_init(void)222 static int __init zcore_reipl_init(void)
223 {
224 	struct ipib_info ipib_info;
225 	int rc;
226 
227 	rc = memcpy_hsa_kernel(&ipib_info, __LC_DUMP_REIPL, sizeof(ipib_info));
228 	if (rc)
229 		return rc;
230 	if (ipib_info.ipib == 0)
231 		return 0;
232 	zcore_ipl_block = (void *) __get_free_page(GFP_KERNEL);
233 	if (!zcore_ipl_block)
234 		return -ENOMEM;
235 	if (ipib_info.ipib < sclp.hsa_size)
236 		rc = memcpy_hsa_kernel(zcore_ipl_block, ipib_info.ipib,
237 				       PAGE_SIZE);
238 	else
239 		rc = memcpy_real(zcore_ipl_block, (void *) ipib_info.ipib,
240 				 PAGE_SIZE);
241 	if (rc || (__force u32)csum_partial(zcore_ipl_block, zcore_ipl_block->hdr.len, 0) !=
242 	    ipib_info.checksum) {
243 		TRACE("Checksum does not match\n");
244 		free_page((unsigned long) zcore_ipl_block);
245 		zcore_ipl_block = NULL;
246 	}
247 	return 0;
248 }
249 
zcore_init(void)250 static int __init zcore_init(void)
251 {
252 	unsigned char arch;
253 	int rc;
254 
255 	if (!is_ipl_type_dump())
256 		return -ENODATA;
257 	if (OLDMEM_BASE)
258 		return -ENODATA;
259 
260 	zcore_dbf = debug_register("zcore", 4, 1, 4 * sizeof(long));
261 	debug_register_view(zcore_dbf, &debug_sprintf_view);
262 	debug_set_level(zcore_dbf, 6);
263 
264 	if (ipl_info.type == IPL_TYPE_FCP_DUMP) {
265 		TRACE("type:   fcp\n");
266 		TRACE("devno:  %x\n", ipl_info.data.fcp.dev_id.devno);
267 		TRACE("wwpn:   %llx\n", (unsigned long long) ipl_info.data.fcp.wwpn);
268 		TRACE("lun:    %llx\n", (unsigned long long) ipl_info.data.fcp.lun);
269 	} else if (ipl_info.type == IPL_TYPE_NVME_DUMP) {
270 		TRACE("type:   nvme\n");
271 		TRACE("fid:    %x\n", ipl_info.data.nvme.fid);
272 		TRACE("nsid:   %x\n", ipl_info.data.nvme.nsid);
273 	}
274 
275 	rc = sclp_sdias_init();
276 	if (rc)
277 		goto fail;
278 
279 	rc = check_sdias();
280 	if (rc)
281 		goto fail;
282 	hsa_available = 1;
283 
284 	rc = memcpy_hsa_kernel(&arch, __LC_AR_MODE_ID, 1);
285 	if (rc)
286 		goto fail;
287 
288 	if (arch == ARCH_S390) {
289 		pr_alert("The 64-bit dump tool cannot be used for a "
290 			 "32-bit system\n");
291 		rc = -EINVAL;
292 		goto fail;
293 	}
294 
295 	pr_alert("The dump process started for a 64-bit operating system\n");
296 	rc = init_cpu_info();
297 	if (rc)
298 		goto fail;
299 
300 	rc = zcore_reipl_init();
301 	if (rc)
302 		goto fail;
303 
304 	zcore_dir = debugfs_create_dir("zcore" , NULL);
305 	if (!zcore_dir) {
306 		rc = -ENOMEM;
307 		goto fail;
308 	}
309 	zcore_reipl_file = debugfs_create_file("reipl", S_IRUSR, zcore_dir,
310 						NULL, &zcore_reipl_fops);
311 	if (!zcore_reipl_file) {
312 		rc = -ENOMEM;
313 		goto fail_dir;
314 	}
315 	zcore_hsa_file = debugfs_create_file("hsa", S_IRUSR|S_IWUSR, zcore_dir,
316 					     NULL, &zcore_hsa_fops);
317 	if (!zcore_hsa_file) {
318 		rc = -ENOMEM;
319 		goto fail_reipl_file;
320 	}
321 	return 0;
322 
323 fail_reipl_file:
324 	debugfs_remove(zcore_reipl_file);
325 fail_dir:
326 	debugfs_remove(zcore_dir);
327 fail:
328 	diag308(DIAG308_REL_HSA, NULL);
329 	return rc;
330 }
331 subsys_initcall(zcore_init);
332