xref: /linux/drivers/soc/tegra/fuse/fuse-tegra.c (revision fab183d632628381b466a41479489541ac0e29a0)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (c) 2013-2023, NVIDIA CORPORATION.  All rights reserved.
4  */
5 
6 #include <linux/acpi.h>
7 #include <linux/clk.h>
8 #include <linux/device.h>
9 #include <linux/kobject.h>
10 #include <linux/init.h>
11 #include <linux/io.h>
12 #include <linux/nvmem-consumer.h>
13 #include <linux/nvmem-provider.h>
14 #include <linux/of.h>
15 #include <linux/of_address.h>
16 #include <linux/platform_device.h>
17 #include <linux/pm_runtime.h>
18 #include <linux/reset.h>
19 #include <linux/slab.h>
20 #include <linux/sys_soc.h>
21 
22 #include <soc/tegra/common.h>
23 #include <soc/tegra/fuse.h>
24 
25 #include "fuse.h"
26 
27 struct tegra_sku_info tegra_sku_info;
28 EXPORT_SYMBOL(tegra_sku_info);
29 
30 static const char *tegra_revision_name[TEGRA_REVISION_MAX] = {
31 	[TEGRA_REVISION_UNKNOWN] = "unknown",
32 	[TEGRA_REVISION_A01]     = "A01",
33 	[TEGRA_REVISION_A02]     = "A02",
34 	[TEGRA_REVISION_A03]     = "A03",
35 	[TEGRA_REVISION_A03p]    = "A03 prime",
36 	[TEGRA_REVISION_A04]     = "A04",
37 };
38 
39 static const char *tegra_platform_name[TEGRA_PLATFORM_MAX] = {
40 	[TEGRA_PLATFORM_SILICON]			= "Silicon",
41 	[TEGRA_PLATFORM_QT]				= "QT",
42 	[TEGRA_PLATFORM_SYSTEM_FPGA]			= "System FPGA",
43 	[TEGRA_PLATFORM_UNIT_FPGA]			= "Unit FPGA",
44 	[TEGRA_PLATFORM_ASIM_QT]			= "Asim QT",
45 	[TEGRA_PLATFORM_ASIM_LINSIM]			= "Asim Linsim",
46 	[TEGRA_PLATFORM_DSIM_ASIM_LINSIM]		= "Dsim Asim Linsim",
47 	[TEGRA_PLATFORM_VERIFICATION_SIMULATION]	= "Verification Simulation",
48 	[TEGRA_PLATFORM_VDK]				= "VDK",
49 	[TEGRA_PLATFORM_VSP]				= "VSP",
50 };
51 
52 static const struct of_device_id car_match[] __initconst = {
53 	{ .compatible = "nvidia,tegra20-car", },
54 	{ .compatible = "nvidia,tegra30-car", },
55 	{ .compatible = "nvidia,tegra114-car", },
56 	{ .compatible = "nvidia,tegra124-car", },
57 	{ .compatible = "nvidia,tegra132-car", },
58 	{ .compatible = "nvidia,tegra210-car", },
59 	{},
60 };
61 
62 static struct tegra_fuse *fuse = &(struct tegra_fuse) {
63 	.base = NULL,
64 	.soc = NULL,
65 };
66 
67 static const struct of_device_id tegra_fuse_match[] = {
68 #ifdef CONFIG_ARCH_TEGRA_234_SOC
69 	{ .compatible = "nvidia,tegra234-efuse", .data = &tegra234_fuse_soc },
70 #endif
71 #ifdef CONFIG_ARCH_TEGRA_194_SOC
72 	{ .compatible = "nvidia,tegra194-efuse", .data = &tegra194_fuse_soc },
73 #endif
74 #ifdef CONFIG_ARCH_TEGRA_186_SOC
75 	{ .compatible = "nvidia,tegra186-efuse", .data = &tegra186_fuse_soc },
76 #endif
77 #ifdef CONFIG_ARCH_TEGRA_210_SOC
78 	{ .compatible = "nvidia,tegra210-efuse", .data = &tegra210_fuse_soc },
79 #endif
80 #ifdef CONFIG_ARCH_TEGRA_132_SOC
81 	{ .compatible = "nvidia,tegra132-efuse", .data = &tegra124_fuse_soc },
82 #endif
83 #ifdef CONFIG_ARCH_TEGRA_124_SOC
84 	{ .compatible = "nvidia,tegra124-efuse", .data = &tegra124_fuse_soc },
85 #endif
86 #ifdef CONFIG_ARCH_TEGRA_114_SOC
87 	{ .compatible = "nvidia,tegra114-efuse", .data = &tegra114_fuse_soc },
88 #endif
89 #ifdef CONFIG_ARCH_TEGRA_3x_SOC
90 	{ .compatible = "nvidia,tegra30-efuse", .data = &tegra30_fuse_soc },
91 #endif
92 #ifdef CONFIG_ARCH_TEGRA_2x_SOC
93 	{ .compatible = "nvidia,tegra20-efuse", .data = &tegra20_fuse_soc },
94 #endif
95 	{ /* sentinel */ }
96 };
97 
tegra_fuse_read(void * priv,unsigned int offset,void * value,size_t bytes)98 static int tegra_fuse_read(void *priv, unsigned int offset, void *value,
99 			   size_t bytes)
100 {
101 	unsigned int count = bytes / 4, i;
102 	struct tegra_fuse *fuse = priv;
103 	u32 *buffer = value;
104 
105 	for (i = 0; i < count; i++)
106 		buffer[i] = fuse->read(fuse, offset + i * 4);
107 
108 	return 0;
109 }
110 
tegra_fuse_restore(void * base)111 static void tegra_fuse_restore(void *base)
112 {
113 	fuse->base = (void __iomem *)base;
114 	fuse->clk = NULL;
115 }
116 
tegra_fuse_print_sku_info(struct tegra_sku_info * tegra_sku_info)117 static void tegra_fuse_print_sku_info(struct tegra_sku_info *tegra_sku_info)
118 {
119 	pr_info("Tegra Revision: %s SKU: %d CPU Process: %d SoC Process: %d\n",
120 		tegra_revision_name[tegra_sku_info->revision],
121 		tegra_sku_info->sku_id, tegra_sku_info->cpu_process_id,
122 		tegra_sku_info->soc_process_id);
123 	pr_debug("Tegra CPU Speedo ID %d, SoC Speedo ID %d\n",
124 		tegra_sku_info->cpu_speedo_id, tegra_sku_info->soc_speedo_id);
125 }
126 
tegra_fuse_add_lookups(struct tegra_fuse * fuse)127 static int tegra_fuse_add_lookups(struct tegra_fuse *fuse)
128 {
129 	fuse->lookups = kmemdup_array(fuse->soc->lookups, fuse->soc->num_lookups,
130 				      sizeof(*fuse->lookups), GFP_KERNEL);
131 	if (!fuse->lookups)
132 		return -ENOMEM;
133 
134 	nvmem_add_cell_lookups(fuse->lookups, fuse->soc->num_lookups);
135 
136 	return 0;
137 }
138 
tegra_fuse_probe(struct platform_device * pdev)139 static int tegra_fuse_probe(struct platform_device *pdev)
140 {
141 	void __iomem *base = fuse->base;
142 	struct nvmem_config nvmem;
143 	struct resource *res;
144 	int err;
145 
146 	err = devm_add_action(&pdev->dev, tegra_fuse_restore, (void __force *)base);
147 	if (err)
148 		return err;
149 
150 	/* take over the memory region from the early initialization */
151 	fuse->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
152 	if (IS_ERR(fuse->base))
153 		return PTR_ERR(fuse->base);
154 	fuse->phys = res->start;
155 
156 	/* Initialize the soc data and lookups if using ACPI boot. */
157 	if (is_acpi_node(dev_fwnode(&pdev->dev)) && !fuse->soc) {
158 		u8 chip;
159 
160 		tegra_acpi_init_apbmisc();
161 
162 		chip = tegra_get_chip_id();
163 		switch (chip) {
164 #if defined(CONFIG_ARCH_TEGRA_194_SOC)
165 		case TEGRA194:
166 			fuse->soc = &tegra194_fuse_soc;
167 			break;
168 #endif
169 #if defined(CONFIG_ARCH_TEGRA_234_SOC)
170 		case TEGRA234:
171 			fuse->soc = &tegra234_fuse_soc;
172 			break;
173 #endif
174 #if defined(CONFIG_ARCH_TEGRA_241_SOC)
175 		case TEGRA241:
176 			fuse->soc = &tegra241_fuse_soc;
177 			break;
178 #endif
179 		default:
180 			return dev_err_probe(&pdev->dev, -EINVAL, "Unsupported SoC: %02x\n", chip);
181 		}
182 
183 		fuse->soc->init(fuse);
184 	}
185 
186 	fuse->clk = devm_clk_get_optional(&pdev->dev, "fuse");
187 	if (IS_ERR(fuse->clk))
188 		return dev_err_probe(&pdev->dev, PTR_ERR(fuse->clk), "failed to get FUSE clock\n");
189 
190 	platform_set_drvdata(pdev, fuse);
191 	fuse->dev = &pdev->dev;
192 
193 	err = devm_pm_runtime_enable(&pdev->dev);
194 	if (err)
195 		return err;
196 
197 	if (fuse->soc->probe) {
198 		err = fuse->soc->probe(fuse);
199 		if (err < 0)
200 			return err;
201 	}
202 
203 	memset(&nvmem, 0, sizeof(nvmem));
204 	nvmem.dev = &pdev->dev;
205 	nvmem.name = "fuse";
206 	nvmem.id = -1;
207 	nvmem.owner = THIS_MODULE;
208 	nvmem.cells = fuse->soc->cells;
209 	nvmem.ncells = fuse->soc->num_cells;
210 	nvmem.keepout = fuse->soc->keepouts;
211 	nvmem.nkeepout = fuse->soc->num_keepouts;
212 	nvmem.type = NVMEM_TYPE_OTP;
213 	nvmem.read_only = true;
214 	nvmem.root_only = false;
215 	nvmem.reg_read = tegra_fuse_read;
216 	nvmem.size = fuse->soc->info->size;
217 	nvmem.word_size = 4;
218 	nvmem.stride = 4;
219 	nvmem.priv = fuse;
220 
221 	fuse->nvmem = devm_nvmem_register(&pdev->dev, &nvmem);
222 	if (IS_ERR(fuse->nvmem)) {
223 		err = PTR_ERR(fuse->nvmem);
224 		dev_err(&pdev->dev, "failed to register NVMEM device: %d\n",
225 			err);
226 		return err;
227 	}
228 
229 	err = tegra_fuse_add_lookups(fuse);
230 	if (err)
231 		return dev_err_probe(&pdev->dev, err, "failed to add FUSE lookups\n");
232 
233 	fuse->rst = devm_reset_control_get_optional(&pdev->dev, "fuse");
234 	if (IS_ERR(fuse->rst))
235 		return dev_err_probe(&pdev->dev, PTR_ERR(fuse->rst), "failed to get FUSE reset\n");
236 
237 	/*
238 	 * FUSE clock is enabled at a boot time, hence this resume/suspend
239 	 * disables the clock besides the h/w resetting.
240 	 */
241 	err = pm_runtime_resume_and_get(&pdev->dev);
242 	if (err)
243 		return err;
244 
245 	err = reset_control_reset(fuse->rst);
246 	pm_runtime_put(&pdev->dev);
247 
248 	if (err < 0) {
249 		dev_err(&pdev->dev, "failed to reset FUSE: %d\n", err);
250 		return err;
251 	}
252 
253 	/* release the early I/O memory mapping */
254 	iounmap(base);
255 
256 	return 0;
257 }
258 
tegra_fuse_runtime_resume(struct device * dev)259 static int __maybe_unused tegra_fuse_runtime_resume(struct device *dev)
260 {
261 	struct tegra_fuse *fuse = dev_get_drvdata(dev);
262 	int err;
263 
264 	err = clk_prepare_enable(fuse->clk);
265 	if (err < 0) {
266 		dev_err(dev, "failed to enable FUSE clock: %d\n", err);
267 		return err;
268 	}
269 
270 	return 0;
271 }
272 
tegra_fuse_runtime_suspend(struct device * dev)273 static int __maybe_unused tegra_fuse_runtime_suspend(struct device *dev)
274 {
275 	struct tegra_fuse *fuse = dev_get_drvdata(dev);
276 
277 	clk_disable_unprepare(fuse->clk);
278 
279 	return 0;
280 }
281 
tegra_fuse_suspend(struct device * dev)282 static int __maybe_unused tegra_fuse_suspend(struct device *dev)
283 {
284 	struct tegra_fuse *fuse = dev_get_drvdata(dev);
285 	int ret;
286 
287 	/*
288 	 * Critical for RAM re-repair operation, which must occur on resume
289 	 * from LP1 system suspend and as part of CCPLEX cluster switching.
290 	 */
291 	if (fuse->soc->clk_suspend_on)
292 		ret = pm_runtime_resume_and_get(dev);
293 	else
294 		ret = pm_runtime_force_suspend(dev);
295 
296 	return ret;
297 }
298 
tegra_fuse_resume(struct device * dev)299 static int __maybe_unused tegra_fuse_resume(struct device *dev)
300 {
301 	struct tegra_fuse *fuse = dev_get_drvdata(dev);
302 	int ret = 0;
303 
304 	if (fuse->soc->clk_suspend_on)
305 		pm_runtime_put(dev);
306 	else
307 		ret = pm_runtime_force_resume(dev);
308 
309 	return ret;
310 }
311 
312 static const struct dev_pm_ops tegra_fuse_pm = {
313 	SET_RUNTIME_PM_OPS(tegra_fuse_runtime_suspend, tegra_fuse_runtime_resume,
314 			   NULL)
315 	SET_SYSTEM_SLEEP_PM_OPS(tegra_fuse_suspend, tegra_fuse_resume)
316 };
317 
318 static const struct acpi_device_id tegra_fuse_acpi_match[] = {
319 	{ "NVDA200F" },
320 	{ /* sentinel */ }
321 };
322 MODULE_DEVICE_TABLE(acpi, tegra_fuse_acpi_match);
323 
324 static struct platform_driver tegra_fuse_driver = {
325 	.driver = {
326 		.name = "tegra-fuse",
327 		.of_match_table = tegra_fuse_match,
328 		.acpi_match_table = tegra_fuse_acpi_match,
329 		.pm = &tegra_fuse_pm,
330 		.suppress_bind_attrs = true,
331 	},
332 	.probe = tegra_fuse_probe,
333 };
334 builtin_platform_driver(tegra_fuse_driver);
335 
tegra_fuse_read_spare(unsigned int spare)336 u32 __init tegra_fuse_read_spare(unsigned int spare)
337 {
338 	unsigned int offset = fuse->soc->info->spare + spare * 4;
339 
340 	return fuse->read_early(fuse, offset) & 1;
341 }
342 
tegra_fuse_read_early(unsigned int offset)343 u32 __init tegra_fuse_read_early(unsigned int offset)
344 {
345 	return fuse->read_early(fuse, offset);
346 }
347 
tegra_fuse_readl(unsigned long offset,u32 * value)348 int tegra_fuse_readl(unsigned long offset, u32 *value)
349 {
350 	if (!fuse->dev)
351 		return -EPROBE_DEFER;
352 
353 	/*
354 	 * Wait for fuse->clk to be initialized if device-tree boot is used.
355 	 */
356 	if (is_of_node(dev_fwnode(fuse->dev)) && !fuse->clk)
357 		return -EPROBE_DEFER;
358 
359 	if (!fuse->read)
360 		return -EPROBE_DEFER;
361 
362 	if (IS_ERR(fuse->clk))
363 		return PTR_ERR(fuse->clk);
364 
365 	*value = fuse->read(fuse, offset);
366 
367 	return 0;
368 }
369 EXPORT_SYMBOL(tegra_fuse_readl);
370 
tegra_enable_fuse_clk(void __iomem * base)371 static void tegra_enable_fuse_clk(void __iomem *base)
372 {
373 	u32 reg;
374 
375 	reg = readl_relaxed(base + 0x48);
376 	reg |= 1 << 28;
377 	writel(reg, base + 0x48);
378 
379 	/*
380 	 * Enable FUSE clock. This needs to be hardcoded because the clock
381 	 * subsystem is not active during early boot.
382 	 */
383 	reg = readl(base + 0x14);
384 	reg |= 1 << 7;
385 	writel(reg, base + 0x14);
386 }
387 
major_show(struct device * dev,struct device_attribute * attr,char * buf)388 static ssize_t major_show(struct device *dev, struct device_attribute *attr,
389 			     char *buf)
390 {
391 	return sprintf(buf, "%d\n", tegra_get_major_rev());
392 }
393 
394 static DEVICE_ATTR_RO(major);
395 
minor_show(struct device * dev,struct device_attribute * attr,char * buf)396 static ssize_t minor_show(struct device *dev, struct device_attribute *attr,
397 			     char *buf)
398 {
399 	return sprintf(buf, "%d\n", tegra_get_minor_rev());
400 }
401 
402 static DEVICE_ATTR_RO(minor);
403 
404 static struct attribute *tegra_soc_attr[] = {
405 	&dev_attr_major.attr,
406 	&dev_attr_minor.attr,
407 	NULL,
408 };
409 
410 const struct attribute_group tegra_soc_attr_group = {
411 	.attrs = tegra_soc_attr,
412 };
413 
414 #if IS_ENABLED(CONFIG_ARCH_TEGRA_194_SOC) || \
415     IS_ENABLED(CONFIG_ARCH_TEGRA_234_SOC) || \
416     IS_ENABLED(CONFIG_ARCH_TEGRA_241_SOC)
platform_show(struct device * dev,struct device_attribute * attr,char * buf)417 static ssize_t platform_show(struct device *dev, struct device_attribute *attr,
418 			     char *buf)
419 {
420 	/*
421 	 * Displays the value in the 'pre_si_platform' field of the HIDREV
422 	 * register for Tegra194 devices. A value of 0 indicates that the
423 	 * platform type is silicon and all other non-zero values indicate
424 	 * the type of simulation platform is being used.
425 	 */
426 	return sprintf(buf, "%d\n", tegra_get_platform());
427 }
428 
429 static DEVICE_ATTR_RO(platform);
430 
431 static struct attribute *tegra194_soc_attr[] = {
432 	&dev_attr_major.attr,
433 	&dev_attr_minor.attr,
434 	&dev_attr_platform.attr,
435 	NULL,
436 };
437 
438 const struct attribute_group tegra194_soc_attr_group = {
439 	.attrs = tegra194_soc_attr,
440 };
441 #endif
442 
tegra_soc_device_register(void)443 struct device *tegra_soc_device_register(void)
444 {
445 	struct soc_device_attribute *attr;
446 	struct soc_device *dev;
447 
448 	attr = kzalloc_obj(*attr);
449 	if (!attr)
450 		return NULL;
451 
452 	attr->family = kasprintf(GFP_KERNEL, "Tegra");
453 	if (tegra_is_silicon())
454 		attr->revision = kasprintf(GFP_KERNEL, "%s %s",
455 					   tegra_platform_name[tegra_sku_info.platform],
456 					   tegra_revision_name[tegra_sku_info.revision]);
457 	else
458 		attr->revision = kasprintf(GFP_KERNEL, "%s",
459 					   tegra_platform_name[tegra_sku_info.platform]);
460 	attr->soc_id = kasprintf(GFP_KERNEL, "%u", tegra_get_chip_id());
461 	attr->custom_attr_group = fuse->soc->soc_attr_group;
462 
463 	dev = soc_device_register(attr);
464 	if (IS_ERR(dev)) {
465 		kfree(attr->soc_id);
466 		kfree(attr->revision);
467 		kfree(attr->family);
468 		kfree(attr);
469 		return ERR_CAST(dev);
470 	}
471 
472 	return soc_device_to_device(dev);
473 }
474 
tegra_init_fuse(void)475 static int __init tegra_init_fuse(void)
476 {
477 	const struct of_device_id *match;
478 	struct device_node *np;
479 	struct resource regs;
480 	int err = 0;
481 
482 	tegra_init_apbmisc();
483 
484 	np = of_find_matching_node_and_match(NULL, tegra_fuse_match, &match);
485 	if (!np) {
486 		/*
487 		 * Fall back to legacy initialization for 32-bit ARM only. All
488 		 * 64-bit ARM device tree files for Tegra are required to have
489 		 * a FUSE node.
490 		 *
491 		 * This is for backwards-compatibility with old device trees
492 		 * that didn't contain a FUSE node.
493 		 */
494 		if (IS_ENABLED(CONFIG_ARM) && soc_is_tegra()) {
495 			u8 chip = tegra_get_chip_id();
496 
497 			regs.start = 0x7000f800;
498 			regs.end = 0x7000fbff;
499 			regs.flags = IORESOURCE_MEM;
500 
501 			switch (chip) {
502 #ifdef CONFIG_ARCH_TEGRA_2x_SOC
503 			case TEGRA20:
504 				fuse->soc = &tegra20_fuse_soc;
505 				break;
506 #endif
507 
508 #ifdef CONFIG_ARCH_TEGRA_3x_SOC
509 			case TEGRA30:
510 				fuse->soc = &tegra30_fuse_soc;
511 				break;
512 #endif
513 
514 #ifdef CONFIG_ARCH_TEGRA_114_SOC
515 			case TEGRA114:
516 				fuse->soc = &tegra114_fuse_soc;
517 				break;
518 #endif
519 
520 #ifdef CONFIG_ARCH_TEGRA_124_SOC
521 			case TEGRA124:
522 				fuse->soc = &tegra124_fuse_soc;
523 				break;
524 #endif
525 
526 			default:
527 				pr_warn("Unsupported SoC: %02x\n", chip);
528 				break;
529 			}
530 		} else {
531 			/*
532 			 * At this point we're not running on Tegra, so play
533 			 * nice with multi-platform kernels.
534 			 */
535 			return 0;
536 		}
537 	} else {
538 		/*
539 		 * Extract information from the device tree if we've found a
540 		 * matching node.
541 		 */
542 		if (of_address_to_resource(np, 0, &regs) < 0) {
543 			pr_err("failed to get FUSE register\n");
544 			return -ENXIO;
545 		}
546 
547 		fuse->soc = match->data;
548 	}
549 
550 	np = of_find_matching_node(NULL, car_match);
551 	if (np) {
552 		void __iomem *base = of_iomap(np, 0);
553 		of_node_put(np);
554 		if (base) {
555 			tegra_enable_fuse_clk(base);
556 			iounmap(base);
557 		} else {
558 			pr_err("failed to map clock registers\n");
559 			return -ENXIO;
560 		}
561 	}
562 
563 	fuse->base = ioremap(regs.start, resource_size(&regs));
564 	if (!fuse->base) {
565 		pr_err("failed to map FUSE registers\n");
566 		return -ENXIO;
567 	}
568 
569 	fuse->soc->init(fuse);
570 
571 	tegra_fuse_print_sku_info(&tegra_sku_info);
572 
573 	return err;
574 }
575 early_initcall(tegra_init_fuse);
576 
577 #ifdef CONFIG_ARM64
tegra_init_soc(void)578 static int __init tegra_init_soc(void)
579 {
580 	struct device_node *np;
581 	struct device *soc;
582 
583 	/* make sure we're running on Tegra */
584 	np = of_find_matching_node(NULL, tegra_fuse_match);
585 	if (!np)
586 		return 0;
587 
588 	of_node_put(np);
589 
590 	soc = tegra_soc_device_register();
591 	if (IS_ERR(soc)) {
592 		pr_err("failed to register SoC device: %ld\n", PTR_ERR(soc));
593 		return PTR_ERR(soc);
594 	}
595 
596 	return 0;
597 }
598 device_initcall(tegra_init_soc);
599 #endif
600