1 //*****************************************************************************
2 // MKE02Z4 startup code for use with MCUXpresso IDE
3 //
4 // Version : 160420
5 //*****************************************************************************
6 //
7 // Copyright 2016-2020 NXP
8 // All rights reserved.
9 //
10 // SPDX-License-Identifier: BSD-3-Clause
11 //*****************************************************************************
12
13 #if defined (DEBUG)
14 #pragma GCC push_options
15 #pragma GCC optimize ("Og")
16 #endif // (DEBUG)
17
18 #if defined (__cplusplus)
19 #ifdef __REDLIB__
20 #error Redlib does not support C++
21 #else
22 //*****************************************************************************
23 //
24 // The entry point for the C++ library startup
25 //
26 //*****************************************************************************
27 extern "C" {
28 extern void __libc_init_array(void);
29 }
30 #endif
31 #endif
32
33 #define WEAK __attribute__ ((weak))
34 #define WEAK_AV __attribute__ ((weak, section(".after_vectors")))
35 #define ALIAS(f) __attribute__ ((weak, alias (#f)))
36
37 //*****************************************************************************
38 #if defined (__cplusplus)
39 extern "C" {
40 #endif
41
42 //*****************************************************************************
43 // Flash Configuration block : 16-byte flash configuration field that stores
44 // default protection settings (loaded on reset) and security information that
45 // allows the MCU to restrict access to the Flash Memory module.
46 // Placed at address 0x400 by the linker script.
47 //*****************************************************************************
48 __attribute__ ((used,section(".FlashConfig"))) const struct {
49 unsigned int word1;
50 unsigned int word2;
51 unsigned int word3;
52 unsigned int word4;
53 } Flash_Config = {0xFFFFFFFF, 0xFFFFFFFF, 0xFFFFFFFF, 0xFFFEFFFF};
54 //*****************************************************************************
55 // Declaration of external SystemInit function
56 //*****************************************************************************
57 #if defined (__USE_CMSIS)
58 extern void SystemInit(void);
59 #endif // (__USE_CMSIS)
60
61 //*****************************************************************************
62 // Forward declaration of the core exception handlers.
63 // When the application defines a handler (with the same name), this will
64 // automatically take precedence over these weak definitions.
65 // If your application is a C++ one, then any interrupt handlers defined
66 // in C++ files within in your main application will need to have C linkage
67 // rather than C++ linkage. To do this, make sure that you are using extern "C"
68 // { .... } around the interrupt handler within your main application code.
69 //*****************************************************************************
70 void ResetISR(void);
71 WEAK void NMI_Handler(void);
72 WEAK void HardFault_Handler(void);
73 WEAK void SVC_Handler(void);
74 WEAK void PendSV_Handler(void);
75 WEAK void SysTick_Handler(void);
76 WEAK void IntDefaultHandler(void);
77
78 //*****************************************************************************
79 // Forward declaration of the application IRQ handlers. When the application
80 // defines a handler (with the same name), this will automatically take
81 // precedence over weak definitions below
82 //*****************************************************************************
83 WEAK void Reserved16_IRQHandler(void);
84 WEAK void Reserved17_IRQHandler(void);
85 WEAK void Reserved18_IRQHandler(void);
86 WEAK void Reserved19_IRQHandler(void);
87 WEAK void Reserved20_IRQHandler(void);
88 WEAK void FTMRH_IRQHandler(void);
89 WEAK void PMC_IRQHandler(void);
90 WEAK void IRQ_IRQHandler(void);
91 WEAK void I2C0_IRQHandler(void);
92 WEAK void Reserved25_IRQHandler(void);
93 WEAK void SPI0_IRQHandler(void);
94 WEAK void SPI1_IRQHandler(void);
95 WEAK void UART0_IRQHandler(void);
96 WEAK void UART1_IRQHandler(void);
97 WEAK void UART2_IRQHandler(void);
98 WEAK void ADC_IRQHandler(void);
99 WEAK void ACMP0_IRQHandler(void);
100 WEAK void FTM0_IRQHandler(void);
101 WEAK void FTM1_IRQHandler(void);
102 WEAK void FTM2_IRQHandler(void);
103 WEAK void RTC_IRQHandler(void);
104 WEAK void ACMP1_IRQHandler(void);
105 WEAK void PIT_CH0_IRQHandler(void);
106 WEAK void PIT_CH1_IRQHandler(void);
107 WEAK void KBI0_IRQHandler(void);
108 WEAK void KBI1_IRQHandler(void);
109 WEAK void Reserved42_IRQHandler(void);
110 WEAK void ICS_IRQHandler(void);
111 WEAK void WDOG_IRQHandler(void);
112
113 //*****************************************************************************
114 // Forward declaration of the driver IRQ handlers. These are aliased
115 // to the IntDefaultHandler, which is a 'forever' loop. When the driver
116 // defines a handler (with the same name), this will automatically take
117 // precedence over these weak definitions
118 //*****************************************************************************
119 void Reserved16_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
120 void Reserved17_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
121 void Reserved18_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
122 void Reserved19_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
123 void Reserved20_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
124 void FTMRH_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
125 void PMC_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
126 void IRQ_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
127 void I2C0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
128 void Reserved25_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
129 void SPI0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
130 void SPI1_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
131 void UART0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
132 void UART1_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
133 void UART2_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
134 void ADC_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
135 void ACMP0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
136 void FTM0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
137 void FTM1_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
138 void FTM2_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
139 void RTC_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
140 void ACMP1_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
141 void PIT_CH0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
142 void PIT_CH1_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
143 void KBI0_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
144 void KBI1_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
145 void Reserved42_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
146 void ICS_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
147 void WDOG_DriverIRQHandler(void) ALIAS(IntDefaultHandler);
148
149 //*****************************************************************************
150 // The entry point for the application.
151 // __main() is the entry point for Redlib based applications
152 // main() is the entry point for Newlib based applications
153 //*****************************************************************************
154 #if defined (__REDLIB__)
155 extern void __main(void);
156 #endif
157 extern int main(void);
158
159 //*****************************************************************************
160 // External declaration for the pointer to the stack top from the Linker Script
161 //*****************************************************************************
162 extern void _vStackTop(void);
163 //*****************************************************************************
164 #if defined (__cplusplus)
165 } // extern "C"
166 #endif
167 //*****************************************************************************
168 // The vector table.
169 // This relies on the linker script to place at correct location in memory.
170 //*****************************************************************************
171
172
173
174 extern void (* const g_pfnVectors[])(void);
175 extern void * __Vectors __attribute__ ((alias ("g_pfnVectors")));
176
177 __attribute__ ((used, section(".isr_vector")))
178 void (* const g_pfnVectors[])(void) = {
179 // Core Level - CM0P
180 &_vStackTop, // The initial stack pointer
181 ResetISR, // The reset handler
182 NMI_Handler, // The NMI handler
183 HardFault_Handler, // The hard fault handler
184 0, // Reserved
185 0, // Reserved
186 0, // Reserved
187 0, // Reserved
188 0, // Reserved
189 0, // Reserved
190 0, // Reserved
191 SVC_Handler, // SVCall handler
192 0, // Reserved
193 0, // Reserved
194 PendSV_Handler, // The PendSV handler
195 SysTick_Handler, // The SysTick handler
196
197 // Chip Level - MKE02Z4
198 Reserved16_IRQHandler, // 16: Reserved interrupt
199 Reserved17_IRQHandler, // 17: Reserved interrupt
200 Reserved18_IRQHandler, // 18: Reserved interrupt
201 Reserved19_IRQHandler, // 19: Reserved interrupt
202 Reserved20_IRQHandler, // 20: Reserved interrupt
203 FTMRH_IRQHandler, // 21: Command complete and error interrupt
204 PMC_IRQHandler, // 22: Low-voltage warning
205 IRQ_IRQHandler, // 23: External interrupt
206 I2C0_IRQHandler, // 24: Single interrupt vector for all sources
207 Reserved25_IRQHandler, // 25: Reserved interrupt
208 SPI0_IRQHandler, // 26: Single interrupt vector for all sources
209 SPI1_IRQHandler, // 27: Single interrupt vector for all sources
210 UART0_IRQHandler, // 28: Status and error
211 UART1_IRQHandler, // 29: Status and error
212 UART2_IRQHandler, // 30: Status and error
213 ADC_IRQHandler, // 31: ADC conversion complete interrupt
214 ACMP0_IRQHandler, // 32: Analog comparator 0 interrupt
215 FTM0_IRQHandler, // 33: FTM0 single interrupt vector for all sources
216 FTM1_IRQHandler, // 34: FTM1 single interrupt vector for all sources
217 FTM2_IRQHandler, // 35: FTM2 single interrupt vector for all sources
218 RTC_IRQHandler, // 36: RTC overflow
219 ACMP1_IRQHandler, // 37: Analog comparator 1 interrupt
220 PIT_CH0_IRQHandler, // 38: PIT CH0 overflow
221 PIT_CH1_IRQHandler, // 39: PIT CH1 overflow
222 KBI0_IRQHandler, // 40: Keyboard interrupt0
223 KBI1_IRQHandler, // 41: Keyboard interrupt1
224 Reserved42_IRQHandler, // 42: Reserved interrupt
225 ICS_IRQHandler, // 43: Clock loss of lock
226 WDOG_IRQHandler, // 44: Watchdog timeout
227
228
229 }; /* End of g_pfnVectors */
230
231 //*****************************************************************************
232 // Functions to carry out the initialization of RW and BSS data sections. These
233 // are written as separate functions rather than being inlined within the
234 // ResetISR() function in order to cope with MCUs with multiple banks of
235 // memory.
236 //*****************************************************************************
237 __attribute__ ((section(".after_vectors.init_data")))
data_init(unsigned int romstart,unsigned int start,unsigned int len)238 void data_init(unsigned int romstart, unsigned int start, unsigned int len) {
239 unsigned int *pulDest = (unsigned int*) start;
240 unsigned int *pulSrc = (unsigned int*) romstart;
241 unsigned int loop;
242 for (loop = 0; loop < len; loop = loop + 4)
243 *pulDest++ = *pulSrc++;
244 }
245
246 __attribute__ ((section(".after_vectors.init_bss")))
bss_init(unsigned int start,unsigned int len)247 void bss_init(unsigned int start, unsigned int len) {
248 unsigned int *pulDest = (unsigned int*) start;
249 unsigned int loop;
250 for (loop = 0; loop < len; loop = loop + 4)
251 *pulDest++ = 0;
252 }
253
254 //*****************************************************************************
255 // The following symbols are constructs generated by the linker, indicating
256 // the location of various points in the "Global Section Table". This table is
257 // created by the linker via the Code Red managed linker script mechanism. It
258 // contains the load address, execution address and length of each RW data
259 // section and the execution and length of each BSS (zero initialized) section.
260 //*****************************************************************************
261 extern unsigned int __data_section_table;
262 extern unsigned int __data_section_table_end;
263 extern unsigned int __bss_section_table;
264 extern unsigned int __bss_section_table_end;
265
266 //*****************************************************************************
267 // Reset entry point for your code.
268 // Sets up a simple runtime environment and initializes the C/C++
269 // library.
270 //*****************************************************************************
271 __attribute__ ((naked, section(".after_vectors.reset")))
ResetISR(void)272 void ResetISR(void) {
273
274 // Disable interrupts
275 __asm volatile ("cpsid i");
276
277
278 #if defined (__USE_CMSIS)
279 // If __USE_CMSIS defined, then call CMSIS SystemInit code
280 SystemInit();
281
282 #else
283 // Disable Watchdog
284 // Write watchdog update key to unlock
285 *((volatile unsigned int *)0x40052002) = 0x20;
286 *((volatile unsigned int *)0x40052003) = 0xC5;
287 *((volatile unsigned int *)0x40052002) = 0x28;
288 *((volatile unsigned int *)0x40052003) = 0xD9;
289 // Set timeout value
290 *((volatile unsigned int *)0x40052004) = 0xFF;
291 *((volatile unsigned int *)0x40052005) = 0xFF;
292 // Now disable watchdog via control register
293 volatile unsigned int *WDOG_CS1 = (unsigned int *) 0x40052000;
294 *WDOG_CS1 = (*WDOG_CS1 & ~(1 << 7)) | (1 << 5);
295 #endif // (__USE_CMSIS)
296
297 //
298 // Copy the data sections from flash to SRAM.
299 //
300 unsigned int LoadAddr, ExeAddr, SectionLen;
301 unsigned int *SectionTableAddr;
302
303 // Load base address of Global Section Table
304 SectionTableAddr = &__data_section_table;
305
306 // Copy the data sections from flash to SRAM.
307 while (SectionTableAddr < &__data_section_table_end) {
308 LoadAddr = *SectionTableAddr++;
309 ExeAddr = *SectionTableAddr++;
310 SectionLen = *SectionTableAddr++;
311 data_init(LoadAddr, ExeAddr, SectionLen);
312 }
313
314 // At this point, SectionTableAddr = &__bss_section_table;
315 // Zero fill the bss segment
316 while (SectionTableAddr < &__bss_section_table_end) {
317 ExeAddr = *SectionTableAddr++;
318 SectionLen = *SectionTableAddr++;
319 bss_init(ExeAddr, SectionLen);
320 }
321
322
323 #if !defined (__USE_CMSIS)
324 // Assume that if __USE_CMSIS defined, then CMSIS SystemInit code
325 // will setup the VTOR register
326
327 // Check to see if we are running the code from a non-zero
328 // address (eg RAM, external flash), in which case we need
329 // to modify the VTOR register to tell the CPU that the
330 // vector table is located at a non-0x0 address.
331 unsigned int * pSCB_VTOR = (unsigned int *) 0xE000ED08;
332 if ((unsigned int *)g_pfnVectors!=(unsigned int *) 0x00000000) {
333 *pSCB_VTOR = (unsigned int)g_pfnVectors;
334 }
335 #endif // (__USE_CMSIS)
336 #if defined (__cplusplus)
337 //
338 // Call C++ library initialisation
339 //
340 __libc_init_array();
341 #endif
342
343 // Reenable interrupts
344 __asm volatile ("cpsie i");
345
346 #if defined (__REDLIB__)
347 // Call the Redlib library, which in turn calls main()
348 __main();
349 #else
350 main();
351 #endif
352
353 //
354 // main() shouldn't return, but if it does, we'll just enter an infinite loop
355 //
356 while (1) {
357 ;
358 }
359 }
360
361 //*****************************************************************************
362 // Default core exception handlers. Override the ones here by defining your own
363 // handler routines in your application code.
364 //*****************************************************************************
NMI_Handler(void)365 WEAK_AV void NMI_Handler(void)
366 { while(1) {}
367 }
368
HardFault_Handler(void)369 WEAK_AV void HardFault_Handler(void)
370 { while(1) {}
371 }
372
SVC_Handler(void)373 WEAK_AV void SVC_Handler(void)
374 { while(1) {}
375 }
376
PendSV_Handler(void)377 WEAK_AV void PendSV_Handler(void)
378 { while(1) {}
379 }
380
SysTick_Handler(void)381 WEAK_AV void SysTick_Handler(void)
382 { while(1) {}
383 }
384
385 //*****************************************************************************
386 // Processor ends up here if an unexpected interrupt occurs or a specific
387 // handler is not present in the application code.
388 //*****************************************************************************
IntDefaultHandler(void)389 WEAK_AV void IntDefaultHandler(void)
390 { while(1) {}
391 }
392
393 //*****************************************************************************
394 // Default application exception handlers. Override the ones here by defining
395 // your own handler routines in your application code. These routines call
396 // driver exception handlers or IntDefaultHandler() if no driver exception
397 // handler is included.
398 //*****************************************************************************
Reserved16_IRQHandler(void)399 WEAK_AV void Reserved16_IRQHandler(void)
400 { Reserved16_DriverIRQHandler();
401 }
402
Reserved17_IRQHandler(void)403 WEAK_AV void Reserved17_IRQHandler(void)
404 { Reserved17_DriverIRQHandler();
405 }
406
Reserved18_IRQHandler(void)407 WEAK_AV void Reserved18_IRQHandler(void)
408 { Reserved18_DriverIRQHandler();
409 }
410
Reserved19_IRQHandler(void)411 WEAK_AV void Reserved19_IRQHandler(void)
412 { Reserved19_DriverIRQHandler();
413 }
414
Reserved20_IRQHandler(void)415 WEAK_AV void Reserved20_IRQHandler(void)
416 { Reserved20_DriverIRQHandler();
417 }
418
FTMRH_IRQHandler(void)419 WEAK_AV void FTMRH_IRQHandler(void)
420 { FTMRH_DriverIRQHandler();
421 }
422
PMC_IRQHandler(void)423 WEAK_AV void PMC_IRQHandler(void)
424 { PMC_DriverIRQHandler();
425 }
426
IRQ_IRQHandler(void)427 WEAK_AV void IRQ_IRQHandler(void)
428 { IRQ_DriverIRQHandler();
429 }
430
I2C0_IRQHandler(void)431 WEAK_AV void I2C0_IRQHandler(void)
432 { I2C0_DriverIRQHandler();
433 }
434
Reserved25_IRQHandler(void)435 WEAK_AV void Reserved25_IRQHandler(void)
436 { Reserved25_DriverIRQHandler();
437 }
438
SPI0_IRQHandler(void)439 WEAK_AV void SPI0_IRQHandler(void)
440 { SPI0_DriverIRQHandler();
441 }
442
SPI1_IRQHandler(void)443 WEAK_AV void SPI1_IRQHandler(void)
444 { SPI1_DriverIRQHandler();
445 }
446
UART0_IRQHandler(void)447 WEAK_AV void UART0_IRQHandler(void)
448 { UART0_DriverIRQHandler();
449 }
450
UART1_IRQHandler(void)451 WEAK_AV void UART1_IRQHandler(void)
452 { UART1_DriverIRQHandler();
453 }
454
UART2_IRQHandler(void)455 WEAK_AV void UART2_IRQHandler(void)
456 { UART2_DriverIRQHandler();
457 }
458
ADC_IRQHandler(void)459 WEAK_AV void ADC_IRQHandler(void)
460 { ADC_DriverIRQHandler();
461 }
462
ACMP0_IRQHandler(void)463 WEAK_AV void ACMP0_IRQHandler(void)
464 { ACMP0_DriverIRQHandler();
465 }
466
FTM0_IRQHandler(void)467 WEAK_AV void FTM0_IRQHandler(void)
468 { FTM0_DriverIRQHandler();
469 }
470
FTM1_IRQHandler(void)471 WEAK_AV void FTM1_IRQHandler(void)
472 { FTM1_DriverIRQHandler();
473 }
474
FTM2_IRQHandler(void)475 WEAK_AV void FTM2_IRQHandler(void)
476 { FTM2_DriverIRQHandler();
477 }
478
RTC_IRQHandler(void)479 WEAK_AV void RTC_IRQHandler(void)
480 { RTC_DriverIRQHandler();
481 }
482
ACMP1_IRQHandler(void)483 WEAK_AV void ACMP1_IRQHandler(void)
484 { ACMP1_DriverIRQHandler();
485 }
486
PIT_CH0_IRQHandler(void)487 WEAK_AV void PIT_CH0_IRQHandler(void)
488 { PIT_CH0_DriverIRQHandler();
489 }
490
PIT_CH1_IRQHandler(void)491 WEAK_AV void PIT_CH1_IRQHandler(void)
492 { PIT_CH1_DriverIRQHandler();
493 }
494
KBI0_IRQHandler(void)495 WEAK_AV void KBI0_IRQHandler(void)
496 { KBI0_DriverIRQHandler();
497 }
498
KBI1_IRQHandler(void)499 WEAK_AV void KBI1_IRQHandler(void)
500 { KBI1_DriverIRQHandler();
501 }
502
Reserved42_IRQHandler(void)503 WEAK_AV void Reserved42_IRQHandler(void)
504 { Reserved42_DriverIRQHandler();
505 }
506
ICS_IRQHandler(void)507 WEAK_AV void ICS_IRQHandler(void)
508 { ICS_DriverIRQHandler();
509 }
510
WDOG_IRQHandler(void)511 WEAK_AV void WDOG_IRQHandler(void)
512 { WDOG_DriverIRQHandler();
513 }
514
515 //*****************************************************************************
516
517 #if defined (DEBUG)
518 #pragma GCC pop_options
519 #endif // (DEBUG)
520