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https://github.com/ioacademy-jikim/debugging
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <errno.h>
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#include "flex_array.h"
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#define __GFP_ZERO 0x8000u
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struct flex_array_part {
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char elements[FLEX_ARRAY_PART_SIZE];
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};
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# define do_div(n,base) ({ \
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uint32_t __base = (base); \
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uint32_t __rem; \
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__rem = ((uint64_t)(n)) % __base; \
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(n) = ((uint64_t)(n)) / __base; \
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__rem; \
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})
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static __always_inline int fls(int x)
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{
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int r = 32;
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if (!x)
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return 0;
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if (!(x & 0xffff0000u)) {
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x <<= 16;
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r -= 16;
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}
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if (!(x & 0xff000000u)) {
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x <<= 8;
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r -= 8;
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}
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if (!(x & 0xf0000000u)) {
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x <<= 4;
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r -= 4;
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}
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if (!(x & 0xc0000000u)) {
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x <<= 2;
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r -= 2;
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}
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if (!(x & 0x80000000u)) {
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x <<= 1;
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r -= 1;
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}
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return r;
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}
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struct reciprocal_value reciprocal_value(u32 d)
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{
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struct reciprocal_value R;
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u64 m;
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int l;
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l = fls(d - 1);
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m = ((1ULL << 32) * ((1ULL << l) - d));
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do_div(m, d);
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++m;
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R.m = (u32)m;
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R.sh1 = min(l, 1);
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R.sh2 = max(l - 1, 0);
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return R;
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}
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int elements_fit_in_base(struct flex_array *fa)
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{
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int data_size = fa->element_size * fa->total_nr_elements;
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if (data_size <= FLEX_ARRAY_BASE_BYTES_LEFT)
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return 1;
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return 0;
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}
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/**
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* flex_array_alloc - allocate a new flexible array
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* @element_size: the size of individual elements in the array
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* @total: total number of elements that this should hold
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* @flags: page allocation flags to use for base array
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*
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* Note: all locking must be provided by the caller.
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*
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* @total is used to size internal structures. If the user ever
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* accesses any array indexes >=@total, it will produce errors.
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*
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* The maximum number of elements is defined as: the number of
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* elements that can be stored in a page times the number of
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* page pointers that we can fit in the base structure or (using
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* integer math):
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*
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* (PAGE_SIZE/element_size) * (PAGE_SIZE-8)/sizeof(void *)
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*
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* Here's a table showing example capacities. Note that the maximum
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* index that the get/put() functions is just nr_objects-1. This
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* basically means that you get 4MB of storage on 32-bit and 2MB on
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* 64-bit.
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*
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*
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* Element size | Objects | Objects |
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* PAGE_SIZE=4k | 32-bit | 64-bit |
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* ---------------------------------|
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* 1 bytes | 4177920 | 2088960 |
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* 2 bytes | 2088960 | 1044480 |
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* 3 bytes | 1392300 | 696150 |
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* 4 bytes | 1044480 | 522240 |
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* 32 bytes | 130560 | 65408 |
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* 33 bytes | 126480 | 63240 |
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* 2048 bytes | 2040 | 1020 |
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* 2049 bytes | 1020 | 510 |
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* void * | 1044480 | 261120 |
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*
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* Since 64-bit pointers are twice the size, we lose half the
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* capacity in the base structure. Also note that no effort is made
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* to efficiently pack objects across page boundaries.
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*/
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struct flex_array *flex_array_alloc(int element_size, unsigned int total,
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gfp_t flags)
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{
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struct flex_array *ret;
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int elems_per_part = 0;
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int max_size = 0;
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struct reciprocal_value reciprocal_elems = { 0 };
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if (element_size) {
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elems_per_part = FLEX_ARRAY_ELEMENTS_PER_PART(element_size);
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reciprocal_elems = reciprocal_value(elems_per_part);
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max_size = FLEX_ARRAY_NR_BASE_PTRS * elems_per_part;
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}
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/* max_size will end up 0 if element_size > PAGE_SIZE */
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if (total > max_size)
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return NULL;
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ret = calloc( 1, sizeof(struct flex_array));
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if (!ret)
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return NULL;
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ret->element_size = element_size;
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ret->total_nr_elements = total;
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ret->elems_per_part = elems_per_part;
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ret->reciprocal_elems = reciprocal_elems;
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if (elements_fit_in_base(ret) && !(flags & __GFP_ZERO))
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memset(&ret->parts[0], FLEX_ARRAY_FREE,
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FLEX_ARRAY_BASE_BYTES_LEFT);
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return ret;
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}
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static int fa_element_to_part_nr(struct flex_array *fa,
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unsigned int element_nr)
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{
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/*
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* if element_size == 0 we don't get here, so we never touch
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* the zeroed fa->reciprocal_elems, which would yield invalid
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* results
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*/
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return reciprocal_divide(element_nr, fa->reciprocal_elems);
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}
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/**
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* flex_array_free_parts - just free the second-level pages
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* @fa: the flex array from which to free parts
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*
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* This is to be used in cases where the base 'struct flex_array'
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* has been statically allocated and should not be free.
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*/
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void flex_array_free_parts(struct flex_array *fa)
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{
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int part_nr;
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if (elements_fit_in_base(fa))
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return;
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for (part_nr = 0; part_nr < FLEX_ARRAY_NR_BASE_PTRS; part_nr++)
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free(fa->parts[part_nr]);
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}
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void flex_array_free(struct flex_array *fa)
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{
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flex_array_free_parts(fa);
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free(fa);
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}
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static unsigned int index_inside_part(struct flex_array *fa,
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unsigned int element_nr,
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unsigned int part_nr)
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{
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unsigned int part_offset;
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part_offset = element_nr - part_nr * fa->elems_per_part;
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return part_offset * fa->element_size;
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}
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static struct flex_array_part *
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__fa_get_part(struct flex_array *fa, int part_nr, gfp_t flags)
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{
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struct flex_array_part *part = fa->parts[part_nr];
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if (!part) {
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part = malloc(sizeof(struct flex_array_part));
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if (!part)
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return NULL;
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if (!(flags & __GFP_ZERO))
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memset(part, FLEX_ARRAY_FREE,
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sizeof(struct flex_array_part));
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fa->parts[part_nr] = part;
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}
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return part;
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}
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/**
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* flex_array_put - copy data into the array at @element_nr
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* @fa: the flex array to copy data into
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* @element_nr: index of the position in which to insert
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* the new element.
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* @src: address of data to copy into the array
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* @flags: page allocation flags to use for array expansion
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*
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*
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* Note that this *copies* the contents of @src into
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* the array. If you are trying to store an array of
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* pointers, make sure to pass in &ptr instead of ptr.
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* You may instead wish to use the flex_array_put_ptr()
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* helper function.
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*
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* Locking must be provided by the caller.
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*/
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int flex_array_put(struct flex_array *fa, unsigned int element_nr, void *src,
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gfp_t flags)
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{
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int part_nr = 0;
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struct flex_array_part *part;
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void *dst;
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if (element_nr >= fa->total_nr_elements)
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return -ENOSPC;
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if (!fa->element_size)
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return 0;
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if (elements_fit_in_base(fa))
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part = (struct flex_array_part *)&fa->parts[0];
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else {
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part_nr = fa_element_to_part_nr(fa, element_nr);
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part = __fa_get_part(fa, part_nr, flags);
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if (!part)
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return -ENOMEM;
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}
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dst = &part->elements[index_inside_part(fa, element_nr, part_nr)];
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memcpy(dst, src, fa->element_size);
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return 0;
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}
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/**
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* flex_array_clear - clear element in array at @element_nr
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* @fa: the flex array of the element.
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* @element_nr: index of the position to clear.
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*
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* Locking must be provided by the caller.
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*/
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int flex_array_clear(struct flex_array *fa, unsigned int element_nr)
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{
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int part_nr = 0;
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struct flex_array_part *part;
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void *dst;
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if (element_nr >= fa->total_nr_elements)
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return -ENOSPC;
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if (!fa->element_size)
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return 0;
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if (elements_fit_in_base(fa))
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part = (struct flex_array_part *)&fa->parts[0];
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else {
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part_nr = fa_element_to_part_nr(fa, element_nr);
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part = fa->parts[part_nr];
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if (!part)
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return -EINVAL;
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}
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dst = &part->elements[index_inside_part(fa, element_nr, part_nr)];
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memset(dst, FLEX_ARRAY_FREE, fa->element_size);
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return 0;
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}
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/**
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* flex_array_prealloc - guarantee that array space exists
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* @fa: the flex array for which to preallocate parts
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* @start: index of first array element for which space is allocated
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* @nr_elements: number of elements for which space is allocated
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* @flags: page allocation flags
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*
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* This will guarantee that no future calls to flex_array_put()
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* will allocate memory. It can be used if you are expecting to
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* be holding a lock or in some atomic context while writing
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* data into the array.
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*
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* Locking must be provided by the caller.
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*/
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int flex_array_prealloc(struct flex_array *fa, unsigned int start,
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unsigned int nr_elements, gfp_t flags)
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{
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int start_part;
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int end_part;
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int part_nr;
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unsigned int end;
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struct flex_array_part *part;
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if (!start && !nr_elements)
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return 0;
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if (start >= fa->total_nr_elements)
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return -ENOSPC;
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if (!nr_elements)
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return 0;
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end = start + nr_elements - 1;
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if (end >= fa->total_nr_elements)
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return -ENOSPC;
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if (!fa->element_size)
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return 0;
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if (elements_fit_in_base(fa))
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return 0;
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start_part = fa_element_to_part_nr(fa, start);
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end_part = fa_element_to_part_nr(fa, end);
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for (part_nr = start_part; part_nr <= end_part; part_nr++) {
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part = __fa_get_part(fa, part_nr, flags);
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if (!part)
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return -ENOMEM;
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}
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return 0;
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}
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/**
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* flex_array_get - pull data back out of the array
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* @fa: the flex array from which to extract data
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* @element_nr: index of the element to fetch from the array
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*
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* Returns a pointer to the data at index @element_nr. Note
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* that this is a copy of the data that was passed in. If you
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* are using this to store pointers, you'll get back &ptr. You
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* may instead wish to use the flex_array_get_ptr helper.
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*
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* Locking must be provided by the caller.
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*/
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void *flex_array_get(struct flex_array *fa, unsigned int element_nr)
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{
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int part_nr = 0;
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struct flex_array_part *part;
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if (!fa->element_size)
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return NULL;
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if (element_nr >= fa->total_nr_elements)
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return NULL;
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if (elements_fit_in_base(fa))
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part = (struct flex_array_part *)&fa->parts[0];
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else {
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part_nr = fa_element_to_part_nr(fa, element_nr);
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part = fa->parts[part_nr];
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if (!part)
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return NULL;
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}
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return &part->elements[index_inside_part(fa, element_nr, part_nr)];
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}
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/**
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* flex_array_get_ptr - pull a ptr back out of the array
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* @fa: the flex array from which to extract data
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* @element_nr: index of the element to fetch from the array
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*
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* Returns the pointer placed in the flex array at element_nr using
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* flex_array_put_ptr(). This function should not be called if the
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* element in question was not set using the _put_ptr() helper.
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*/
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void *flex_array_get_ptr(struct flex_array *fa, unsigned int element_nr)
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{
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void **tmp;
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tmp = flex_array_get(fa, element_nr);
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if (!tmp)
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return NULL;
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return *tmp;
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}
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static int part_is_free(struct flex_array_part *part)
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{
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int i;
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for (i = 0; i < sizeof(struct flex_array_part); i++)
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if (part->elements[i] != FLEX_ARRAY_FREE)
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return 0;
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return 1;
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}
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/**
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* flex_array_shrink - free unused second-level pages
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* @fa: the flex array to shrink
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*
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* Frees all second-level pages that consist solely of unused
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* elements. Returns the number of pages freed.
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*
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* Locking must be provided by the caller.
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*/
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int flex_array_shrink(struct flex_array *fa)
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{
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struct flex_array_part *part;
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int part_nr;
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int ret = 0;
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if (!fa->total_nr_elements || !fa->element_size)
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return 0;
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if (elements_fit_in_base(fa))
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return ret;
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for (part_nr = 0; part_nr < FLEX_ARRAY_NR_BASE_PTRS; part_nr++) {
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part = fa->parts[part_nr];
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if (!part)
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continue;
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if (part_is_free(part)) {
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fa->parts[part_nr] = NULL;
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free(part);
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ret++;
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}
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}
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return ret;
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}
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@@ -0,0 +1,95 @@
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#ifndef _FLEX_ARRAY_H
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#define _FLEX_ARRAY_H
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typedef unsigned char u8;
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typedef unsigned short u16;
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typedef unsigned int u32;
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typedef unsigned int uint32_t;
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typedef unsigned long long u64;
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typedef unsigned long long uint64_t;
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typedef int gfp_t;
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#define PAGE_SIZE 4096
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#define FLEX_ARRAY_PART_SIZE PAGE_SIZE
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#define FLEX_ARRAY_BASE_SIZE PAGE_SIZE
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struct reciprocal_value {
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u32 m;
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u8 sh1, sh2;
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};
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static inline u32 reciprocal_divide(u32 a, struct reciprocal_value R)
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{
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u32 t = (u32)(((u64)a * R.m) >> 32);
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return (t + ((a - t) >> R.sh1)) >> R.sh2;
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}
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#define min(x, y) ({ \
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typeof(x) _min1 = (x); \
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typeof(y) _min2 = (y); \
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(void) (&_min1 == &_min2); \
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_min1 < _min2 ? _min1 : _min2; })
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||||
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#define max(x, y) ({ \
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typeof(x) _max1 = (x); \
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typeof(y) _max2 = (y); \
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(void) (&_max1 == &_max2); \
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_max1 > _max2 ? _max1 : _max2; })
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#define FLEX_ARRAY_FREE 0x6c /* for use-after-free poisoning */
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#define offsetof(TYPE, MEMBER) ((size_t)&((TYPE *)0)->MEMBER)
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struct flex_array_part;
|
||||
|
||||
struct flex_array {
|
||||
union {
|
||||
struct {
|
||||
int element_size;
|
||||
int total_nr_elements;
|
||||
int elems_per_part;
|
||||
struct reciprocal_value reciprocal_elems;
|
||||
struct flex_array_part *parts[];
|
||||
};
|
||||
/*
|
||||
* This little trick makes sure that
|
||||
* sizeof(flex_array) == PAGE_SIZE
|
||||
*/
|
||||
char padding[FLEX_ARRAY_BASE_SIZE];
|
||||
};
|
||||
};
|
||||
|
||||
#define FLEX_ARRAY_BASE_BYTES_LEFT \
|
||||
(FLEX_ARRAY_BASE_SIZE - offsetof(struct flex_array, parts))
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||||
|
||||
#define FLEX_ARRAY_NR_BASE_PTRS \
|
||||
(FLEX_ARRAY_BASE_BYTES_LEFT / sizeof(struct flex_array_part *))
|
||||
|
||||
#define FLEX_ARRAY_ELEMENTS_PER_PART(size) \
|
||||
(FLEX_ARRAY_PART_SIZE / size)
|
||||
|
||||
#define DEFINE_FLEX_ARRAY(__arrayname, __element_size, __total) \
|
||||
struct flex_array __arrayname = { { { \
|
||||
.element_size = (__element_size), \
|
||||
.total_nr_elements = (__total), \
|
||||
} } }; \
|
||||
static inline void __arrayname##_invalid_parameter(void) \
|
||||
{ \
|
||||
BUILD_BUG_ON((__total) > FLEX_ARRAY_NR_BASE_PTRS * \
|
||||
FLEX_ARRAY_ELEMENTS_PER_PART(__element_size)); \
|
||||
}
|
||||
|
||||
struct flex_array *flex_array_alloc(int element_size, unsigned int total, gfp_t flags);
|
||||
int flex_array_prealloc(struct flex_array *fa, unsigned int start, unsigned int nr_elements, gfp_t flags);
|
||||
void flex_array_free(struct flex_array *fa);
|
||||
void flex_array_free_parts(struct flex_array *fa);
|
||||
int flex_array_put(struct flex_array *fa, unsigned int element_nr, void *src,
|
||||
gfp_t flags);
|
||||
int flex_array_clear(struct flex_array *fa, unsigned int element_nr);
|
||||
void *flex_array_get(struct flex_array *fa, unsigned int element_nr);
|
||||
int flex_array_shrink(struct flex_array *fa);
|
||||
|
||||
#define flex_array_put_ptr(fa, nr, src, gfp) \
|
||||
flex_array_put(fa, nr, (void *)&(src), gfp)
|
||||
|
||||
void *flex_array_get_ptr(struct flex_array *fa, unsigned int element_nr);
|
||||
|
||||
#endif /* _FLEX_ARRAY_H */
|
||||
@@ -0,0 +1,13 @@
|
||||
#include <stdio.h>
|
||||
#include "flex_array.h"
|
||||
int main()
|
||||
{
|
||||
struct flex_array *fa;
|
||||
int data=10;
|
||||
int *temp;
|
||||
fa = flex_array_alloc(4, 200, 0 );
|
||||
flex_array_put(fa, 100, &data, 0 );
|
||||
temp = flex_array_get(fa, 100);
|
||||
printf("%d\n", *temp);
|
||||
return 0;
|
||||
}
|
||||
@@ -0,0 +1,35 @@
|
||||
#ifndef _LINUX_RECIPROCAL_DIV_H
|
||||
#define _LINUX_RECIPROCAL_DIV_H
|
||||
|
||||
#include <linux/types.h>
|
||||
|
||||
/*
|
||||
* This algorithm is based on the paper "Division by Invariant
|
||||
* Integers Using Multiplication" by Torbjörn Granlund and Peter
|
||||
* L. Montgomery.
|
||||
*
|
||||
* The assembler implementation from Agner Fog, which this code is
|
||||
* based on, can be found here:
|
||||
* http://www.agner.org/optimize/asmlib.zip
|
||||
*
|
||||
* This optimization for A/B is helpful if the divisor B is mostly
|
||||
* runtime invariant. The reciprocal of B is calculated in the
|
||||
* slow-path with reciprocal_value(). The fast-path can then just use
|
||||
* a much faster multiplication operation with a variable dividend A
|
||||
* to calculate the division A/B.
|
||||
*/
|
||||
|
||||
struct reciprocal_value {
|
||||
u32 m;
|
||||
u8 sh1, sh2;
|
||||
};
|
||||
|
||||
struct reciprocal_value reciprocal_value(u32 d);
|
||||
|
||||
static inline u32 reciprocal_divide(u32 a, struct reciprocal_value R)
|
||||
{
|
||||
u32 t = (u32)(((u64)a * R.m) >> 32);
|
||||
return (t + ((a - t) >> R.sh1)) >> R.sh2;
|
||||
}
|
||||
|
||||
#endif /* _LINUX_RECIPROCAL_DIV_H */
|
||||
@@ -0,0 +1,28 @@
|
||||
#ifndef _LINUX_STDDEF_H
|
||||
#define _LINUX_STDDEF_H
|
||||
|
||||
#undef NULL
|
||||
#define NULL ((void *)0)
|
||||
|
||||
enum {
|
||||
false = 0,
|
||||
true = 1
|
||||
};
|
||||
|
||||
#undef offsetof
|
||||
#ifdef __compiler_offsetof
|
||||
#define offsetof(TYPE, MEMBER) __compiler_offsetof(TYPE, MEMBER)
|
||||
#else
|
||||
#define offsetof(TYPE, MEMBER) ((size_t)&((TYPE *)0)->MEMBER)
|
||||
#endif
|
||||
|
||||
/**
|
||||
* offsetofend(TYPE, MEMBER)
|
||||
*
|
||||
* @TYPE: The type of the structure
|
||||
* @MEMBER: The member within the structure to get the end offset of
|
||||
*/
|
||||
#define offsetofend(TYPE, MEMBER) \
|
||||
(offsetof(TYPE, MEMBER) + sizeof(((TYPE *)0)->MEMBER))
|
||||
|
||||
#endif
|
||||
Reference in New Issue
Block a user