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05/09/2024 07:14:12 AM
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Kbuild
599 bytes
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MC68328.h
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MC68EZ328.h
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MC68VZ328.h
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apollohw.h
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asm-offsets.h
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asm-prototypes.h
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atafd.h
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atomic.h
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bootinfo.h
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bootstd.h
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bugs.h
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bvme6000hw.h
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cache.h
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cacheflush.h
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cacheflush_mm.h
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cacheflush_no.h
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checksum.h
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cmpxchg.h
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coldfire.h
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contregs.h
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current.h
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delay.h
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div64.h
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dma-mapping.h
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dma.h
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dsp56k.h
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dvma.h
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elf.h
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entry.h
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export.h
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flat.h
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floppy.h
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fpu.h
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ftrace.h
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gpio.h
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hardirq.h
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hash.h
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hp300hw.h
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hwtest.h
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ide.h
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idprom.h
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intersil.h
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io.h
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io_mm.h
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io_no.h
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irq.h
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irqflags.h
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kexec.h
732 bytes
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linkage.h
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m5206sim.h
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m520xsim.h
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m523xsim.h
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m525xsim.h
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m5272sim.h
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m527xsim.h
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m528xsim.h
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m52xxacr.h
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m5307sim.h
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m53xxacr.h
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m53xxsim.h
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m5407sim.h
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m5441xsim.h
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m54xxacr.h
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m54xxgpt.h
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m54xxpci.h
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m54xxsim.h
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mac_asc.h
520 bytes
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mac_baboon.h
999 bytes
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mac_iop.h
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mac_oss.h
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mac_psc.h
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mac_via.h
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machdep.h
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machines.h
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machw.h
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macintosh.h
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macints.h
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math-emu.h
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mc146818rtc.h
598 bytes
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mcf8390.h
3.75 KB
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mcf_pgalloc.h
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mcf_pgtable.h
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mcfclk.h
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mcfdma.h
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mcfgpio.h
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mcfintc.h
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mcfmmu.h
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mcfpit.h
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mcfqspi.h
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mcfsim.h
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mcfslt.h
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mcftimer.h
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mcfuart.h
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mcfwdebug.h
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mmu.h
243 bytes
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mmu_context.h
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mmzone.h
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module.h
847 bytes
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motorola_pgalloc.h
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motorola_pgtable.h
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movs.h
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mvme147hw.h
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mvme16xhw.h
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natfeat.h
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nettel.h
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nubus.h
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openprom.h
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oplib.h
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page.h
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page_mm.h
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page_offset.h
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parport.h
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pci.h
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pgalloc.h
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pgtable.h
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pgtable_mm.h
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pgtable_no.h
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processor.h
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ptrace.h
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q40_master.h
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q40ints.h
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quicc_simple.h
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raw_io.h
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segment.h
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serial.h
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setup.h
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signal.h
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smp.h
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string.h
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sun3-head.h
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sun3_pgalloc.h
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sun3_pgtable.h
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sun3ints.h
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sun3mmu.h
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sun3x.h
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sun3xflop.h
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switch_to.h
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thread_info.h
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timex.h
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tlb.h
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tlbflush.h
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traps.h
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uaccess.h
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uaccess_mm.h
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ucontext.h
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unaligned.h
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unistd.h
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user.h
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vga.h
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virtconvert.h
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zorro.h
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Editing: delay.h
Close
/* SPDX-License-Identifier: GPL-2.0 */ #ifndef _M68K_DELAY_H #define _M68K_DELAY_H #include <asm/param.h> /* * Copyright (C) 1994 Hamish Macdonald * Copyright (C) 2004 Greg Ungerer <gerg@uclinux.com> * * Delay routines, using a pre-computed "loops_per_jiffy" value. */ #if defined(CONFIG_COLDFIRE) /* * The ColdFire runs the delay loop at significantly different speeds * depending upon long word alignment or not. We'll pad it to * long word alignment which is the faster version. * The 0x4a8e is of course a 'tstl %fp' instruction. This is better * than using a NOP (0x4e71) instruction because it executes in one * cycle not three and doesn't allow for an arbitrary delay waiting * for bus cycles to finish. Also fp/a6 isn't likely to cause a * stall waiting for the register to become valid if such is added * to the coldfire at some stage. */ #define DELAY_ALIGN ".balignw 4, 0x4a8e\n\t" #else /* * No instruction alignment required for other m68k types. */ #define DELAY_ALIGN #endif static inline void __delay(unsigned long loops) { __asm__ __volatile__ ( DELAY_ALIGN "1: subql #1,%0\n\t" "jcc 1b" : "=d" (loops) : "0" (loops)); } extern void __bad_udelay(void); #ifdef CONFIG_CPU_HAS_NO_MULDIV64 /* * The simpler m68k and ColdFire processors do not have a 32*32->64 * multiply instruction. So we need to handle them a little differently. * We use a bit of shifting and a single 32*32->32 multiply to get close. * This is a macro so that the const version can factor out the first * multiply and shift. */ #define HZSCALE (268435456 / (1000000 / HZ)) #define __const_udelay(u) \ __delay(((((u) * HZSCALE) >> 11) * (loops_per_jiffy >> 11)) >> 6) #else static inline void __xdelay(unsigned long xloops) { unsigned long tmp; __asm__ ("mulul %2,%0:%1" : "=d" (xloops), "=d" (tmp) : "d" (xloops), "1" (loops_per_jiffy)); __delay(xloops * HZ); } /* * The definition of __const_udelay is specifically made a macro so that * the const factor (4295 = 2**32 / 1000000) can be optimized out when * the delay is a const. */ #define __const_udelay(n) (__xdelay((n) * 4295)) #endif static inline void __udelay(unsigned long usecs) { __const_udelay(usecs); } /* * Use only for very small delays ( < 1 msec). Should probably use a * lookup table, really, as the multiplications take much too long with * short delays. This is a "reasonable" implementation, though (and the * first constant multiplications gets optimized away if the delay is * a constant) */ #define udelay(n) (__builtin_constant_p(n) ? \ ((n) > 20000 ? __bad_udelay() : __const_udelay(n)) : __udelay(n)) /* * nanosecond delay: * * ((((HZSCALE) >> 11) * (loops_per_jiffy >> 11)) >> 6) is the number of loops * per microsecond * * 1000 / ((((HZSCALE) >> 11) * (loops_per_jiffy >> 11)) >> 6) is the number of * nanoseconds per loop * * So n / ( 1000 / ((((HZSCALE) >> 11) * (loops_per_jiffy >> 11)) >> 6) ) would * be the number of loops for n nanoseconds */ /* * The simpler m68k and ColdFire processors do not have a 32*32->64 * multiply instruction. So we need to handle them a little differently. * We use a bit of shifting and a single 32*32->32 multiply to get close. * This is a macro so that the const version can factor out the first * multiply and shift. */ #define HZSCALE (268435456 / (1000000 / HZ)) #define ndelay(n) __delay(DIV_ROUND_UP((n) * ((((HZSCALE) >> 11) * (loops_per_jiffy >> 11)) >> 6), 1000)) #endif /* defined(_M68K_DELAY_H) */