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root = true
[*]
indent_style = space
indent_size = 2
end_of_line = lf
charset = utf-8
trim_trailing_whitespace = true
insert_final_newline = true
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.chinook
.environ
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name: allocators
gpid: malunal
semv: 1.0.0
requires:
- remote: git@git.erasit.com:malunal/assert
branch: v1.1.0
- remote: git@git.erasit.com:malunal/config
branch: v1.0.2
- remote: git@git.erasit.com:malunal/types
branch: v1.0.0
targets:
- name: malunal.allocators
type: archive
deps:
- malunal.assert
- malunal.config
- malunal.types
srcs:
- ./sources/allocator.c
- ./sources/arena.c
tests:
- name: allocator_tests
type: program
defs:
- MALUNAL_ENABLE_ASSERTIONS
deps:
- malunal.allocators
srcs:
- ./tests/libc_allocator.c
- ./tests/platform_allocator.c
- ./tests/arena_allocator.c
- ./tests/allocator.c
exports:
- malunal.allocators
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/**
* @file allocators.h
* @brief This header contains the definition of the memory functions and basic
* allocator object.
* @author John Christman (sorakatadzuma@gmail.com)
* @copyright Malunal Studios, LLC.
*/
#include "malunal/config.h"
#include "malunal/types.h"
#ifndef MALUNAL_ALLOCATORS_HEADER
#define MALUNAL_ALLOCATORS_HEADER
// Assuring that NULL_ADDRESS is correct.
#ifdef NULL_ADDRESS
#undef NULL_ADDRESS
#endif /* NULL_ADDRESS */
/**
* @def NULL_ADDRESS
* @brief Defines a null address.
* @details This is needed for functions to indicate that an address could not
* acquired.
*/
#define NULL_ADDRESS ((void*)0)
/**
* @brief Defines the basis of all allocators.
* @details You can create new allocators simply by providing your own virtual
* function table, an optional upstream allocator, and the allocator
* context.
*/
typedef struct Allocator allocator_t;
/**
* @brief A pointer to a mutable allocator.
* @details This is provided to simplify type declarations for functions
* requiring allocators that are meant to be mutable.
*/
typedef allocator_t* allocator_mptr_t;
/**
* @brief A pointer to a immutable allocator view.
* @details This is provided to simplify type declarations for functions
* requiring allocators that are meant to be immutable.
*/
typedef const allocator_t* allocator_iptr_t;
/**
* @brief Defines a set of exception that an allocator may throw.
* @details These are extremely useful for debugging an allocator or catching
* runtime issues that can be fixed.
*/
typedef enum AllocatorException {
/**
* @brief No exception was thrown.
* @details Some allocator functions only return an exception. This indicates
* for those functions that the operation was successful.
*/
ALLOCATOR_EXCEPTION_SUCCESS,
/**
* @brief The generic allocator exception.
* @details If the allocator does not know what to throw, or in test cases,
* this may be thrown.
*/
ALLOCATOR_EXCEPTION_FAILURE,
/**
* @brief The allocator instance was null.
* @details Allocator functions take it by reference because it is a rather
* large object. So, when the reference is expected to be non-null,
* which is always, this will be thrown.
*/
ALLOCATOR_EXCEPTION_NULL_ALLOCATOR,
/**
* @brief The allocator upstream was null.
* @details Allocator implementations may expect for the upstream parameter
* to pointer to a valid allocator. For those allocators that expect
* an upstream, and do not receive it, this will be thrown.
*/
ALLOCATOR_EXCEPTION_NULL_UPSTREAM,
/**
* @brief The allocator context was null.
* @details Allocator implementations often expect for the context parameter
* to point to a valid address. For those allocators that expect a
* context, and do not receive it, this will be thrown.
*/
ALLOCATOR_EXCEPTION_NULL_CONTEXT,
/**
* @brief The allocator ran out of memory.
* @details By nature of memory being a limited resource, if the system or the
* allocator run out of memory this will be thrown.
*/
ALLOCATOR_EXCEPTION_OUT_OF_MEMORY,
/**
* @brief The address being released does not belong to the allocator.
* @details Allocators expect any given address to have been allocated by
* itself. Most allocators can check if it was allocated from its
* memory pool, and if it wasn't this will be thrown.
*/
ALLOCATOR_EXCEPTION_NOT_MY_ADDRESS,
/**
* @brief The allocator has determined that memory is being leaked.
* @details Given the diagnostics within an allocator, the allocator may find
* some memory is still in use upon release or finalization. If this
* happens, the allocator may throw this exception.
*/
ALLOCATOR_EXCEPTION_LEAKY_MEMORY,
} allocator_exception_t;
/**
* @brief Packs together the information needed to initialize an allocator.
* @details By using a struct like this, we can easily indicate what parameters
* are being passed into the function.
*/
typedef struct AllocatorInitializeRequest {
/**
* @brief The allocator to initialize.
* @details There is a sort of double dispatch methodology with allocators.
* The primary @c allocator_initialize function will simply call into
* the provided allocators virtual function table, passing this data
* to it. This makes it possible for the virtual function to interact
* with the entirety of the allocator as if inherited.
*/
allocator_mptr_t allocator;
/**
* @brief The upstream allocator for allocator being initialized.
* @details This allows the allocator to get large memory allocations from an
* upstream allocator, such that it can partition those larger memory
* blocks.
*/
allocator_mptr_t upstream;
/**
* @brief The size to initialize the allocator to.
* @details It's useful for an allocator to be initialized to some initial
* size so that it can immediately begin to hand out allocated
* addresses.
*/
malunal_size_t size;
} allocator_initialize_req_t;
/**
* @brief A type definition for a pointer to a function that can initialize
* some allocator instance.
* @param request Contains the information necessary to fulfill the request.
* @returns @c ALLOCATOR_EXCEPTION_SUCCESS if the request could be fulfilled;
* otherwise, any other exception value.
*/
typedef allocator_exception_t
(*allocator_initialize_pfn_t)(
allocator_initialize_req_t request
);
/**
* @brief A type definition for a pointer to a function that can finalize some
* allocator instance.
* @param allocator The allocator to finalize.
* @returns @c ALLOCATOR_EXCEPTION_SUCCESS if the allocator could be finalized;
* otherwise, any other exception value.
*/
typedef allocator_exception_t
(*allocator_finalize_pfn_t)(
allocator_mptr_t allocator
);
/**
* @brief Packs together the information needed to acquire some memory.
* @details By using a struct like this, we can easily indicate what parameters
* are being passed into the function.
*/
typedef struct AllocatorAcquireRequest {
/**
* @brief The allocator to use to acquire the memory.
* @details There is a sort of double dispatch methodology with allocators.
* The primary @c allocator_acquire function will simply call into
* the provided allocators virtual function table, passing this data
* to it. This makes it possible for the virtual function to interact
* with the entirety of the allocator as if inherited.
*/
allocator_mptr_t allocator;
/**
* @brief The size of the allocation to acquire.
* @details Allocators need this to obtain a memory block. Allocators may also
* use it to perform bounds checking, update internals, or otherwise.
*/
malunal_size_t size;
} allocator_acquire_req_t;
/**
* @brief Represents the result of an acquisition request.
* @details This has two parts to it: a fulfilled acquisition and an possible
* exception. Which part is put into the result is indicated by the
* @c threw tag.
*/
typedef struct AllocatorAcquireResult {
/**
* @brief Indicates whether the result contains an allocation or exception.
* @details Allocators will set this to true when an exception has occurred,
* such as when there is no more memory to allocate from.
*/
malunal_bool_t threw;
union {
/**
* @brief The success of fulfilling the acquisition request.
* @details If the allocator sucessfully fulfilled the request, this will
* contain the pointer of the allocation.
*/
malunal_mptr_t address;
/**
* @brief The failure of fulfilling the acquisition request.
* @details If the allocator unsuccessfully fulfilled the request, this will
* contain the reason for failure.
*/
allocator_exception_t exception;
};
} allocator_acquire_res_t;
/**
* @brief A type definition of a pointer to a function that can acquire some
* newly allocated memory address.
* @param request Contains the information necessary to fulfill the request.
* @returns The result of acquisition which indicates if the function threw or
* if the request was fulfilled along with the exception or allocation.
*/
typedef allocator_acquire_res_t
(*allocator_acquire_pfn_t)(
allocator_acquire_req_t request
);
/**
* @brief Packs together the information needed to reacquire some memory.
* @details By using a struct like this, we can easily indicate what parameters
* are being passed into the function.
*/
typedef struct AllocatorReacquireRequest {
/**
* @brief The allocator to use to reacquire the memory.
* @details There is a sort of double dispatch methodology with allocators.
* The primary @c allocator_acquire function will simply call into
* the provided allocators virtual function table, passing this data
* to it. This makes it possible for the virtual function to interact
* with the entirety of the allocator as if inherited.
*/
allocator_mptr_t allocator;
/**
* @brief The address of the previous allocation.
* @details The memory at this address will typically be released after its
* contents are copied to the new address, but some allocators will
* not fully release it, only soft release it.
*/
malunal_mptr_t prev;
/**
* @brief The size of the allocation to release.
* @details Allocators need this to release a memory block. Allocators may
* also use it to perform bounds checking, update internals, or
* otherwise.
*/
malunal_size_t oldsz;
/**
* @brief The size of the allocation to reacquire.
* @details Allocators need this to obtain a memory block. Allocators may also
* use it to perform bounds checking, update internals, or otherwise.
*/
malunal_size_t newsz;
} allocator_reacquire_req_t;
/**
* @brief A type definition of a pointer to a function that can reacquire some
* newly allocated memory address.
* @param request Contains the information necessary to fulfill the request.
* @returns The result of reacquisition which indicates if the function threw or
* if the request was fulfilled along with the exception or allocation.
*/
typedef allocator_acquire_res_t
(*allocator_reacquire_pfn_t)(
allocator_reacquire_req_t request
);
/**
* @brief Packs together the information needed to release some memory.
* @details By using a struct like this, we can easily indicate what parameters
* are being passed into the function.
*/
typedef struct AllocatorReleaseRequest {
/**
* @brief The allocator to use to release the memory.
* @details There is a sort of double dispatch methodology with allocators.
* The primary @c allocator_release function will simply call into
* the provided allocators virtual function table, passing this data
* to it. This makes it possible for the virtual function to interact
* with the entirety of the allocator as if inherited.
*/
allocator_mptr_t allocator;
/**
* @brief The address of the allocation to release.
* @details The address can be null, as most allocators will simply ignore it.
* However, when the address is not null, it should be aligned unless
* an allocator explicitly requires an address to be unaligned.
*/
malunal_mptr_t address;
/**
* @brief The size of the allocation to release.
* @details Allocators need this to release a memory block. Allocators may
* also use it to perform bounds checking, update internals, or
* otherwise.
*/
malunal_size_t size;
} allocator_release_req_t;
/**
* @brief A type definition of a pointer to a function that can release some
* previously allocated memory address.
* @param request
*/
typedef allocator_exception_t
(*allocator_release_pfn_t)(
allocator_release_req_t request
);
/**
* @brief Defines the basis of all allocators.
* @details You can create new allocators simply by providing your own virtual
* function table, an optional upstream allocator, and the allocator
* context.
*/
struct Allocator {
/**
* @brief The virtual function table for the allocator.
* @details Contains the pointers to the functions that make this allocator
* struct effectively an interface.
*/
struct {
/**
* @brief The initialization funciton for a given allocator.
* @details This is responsible for initializing an allocator, which may
* include acquiring some memory from an upstream allocator or
* otherwise.
*/
const allocator_initialize_pfn_t initialize;
/**
* @brief The finalization function for a given allocator.
* @details This is responsible for finalizing an allocator, which may
* include releasing some memory to an upstream allocator or
* otherwise.
*/
const allocator_finalize_pfn_t finalize;
/**
* @brief The acquisition function for a given allocator.
* @details This is responsible for acquiring a new valid memory address for
* the calling code to use.
*/
const allocator_acquire_pfn_t acquire;
/**
* @brief The reacquisition function for a given allocator.
* @details This is responsible for acquiring a new valid memory address for
* the calling code, copying the old contents over to the new address
* automatically for the caller.
*/
const allocator_reacquire_pfn_t reacquire;
/**
* @brief The release function for a given allocator.
* @details This is responsible for releasing a previously allocated memory
* address. The caller is expected to destroy anything within the
* valid address.
*/
const allocator_release_pfn_t release;
} const vtable;
/**
* @brief The upstream allocator to this allocator.
* @details The purpose of an upstream allocator is to provide this allocator
* the ability to obtain other memory pages or blocks that it plans
* to further partition.
*/
allocator_mptr_t upstream;
/**
* @brief The context data for the allocator.
* @details This is passed to the allocator implementation through the vtable
* functions for the ability of the implementation to access its own
* data in the virtual functions.
*/
malunal_mptr_t context;
/**
* @brief How much of the reserved memory has been allocated.
* @details This is a piece of diagnostics that might be useful to know how
* much memory is being allocated by this allocator.
*/
malunal_size_t allocated;
/**
* @brief How much memory was reserved by this allocator.
* @details This is a piece of diagnostics that might be useful to know how
* much memory is being reserved by this allocator.
*/
malunal_size_t reserved;
/**
* @brief How many times this allocator was acquired from.
* @details This is a piece of diagnostics that might be useful to know how
* often this allocator is being used.
*/
malunal_size_t acquires;
/**
* @brief How many times this allocator was released from.
* @details This is a piece of diagnostics that might be useful to know how
* often this allocator is being used.
*/
malunal_size_t releases;
};
/**
* @brief Executes an acquisition request on an allocator.
* @details This simplifies the execution of an allocator's virtual function
* table entries, specifically @c acquire.
* @param request The acquisition request being made.
* @returns The result of the acquisition request to the allocator.
*/
allocator_acquire_res_t
allocator_acquire(allocator_acquire_req_t request);
/**
* @brief Executes a reacquisition request on an allocator.
* @details This simplifies the execution of an allocator's virtual function
* table entries, specifically @c reacquire.
* @param request The reacquisition request being made.
* @returns The result of the reacquisition request to the allocator.
*/
allocator_acquire_res_t
allocator_reacquire(allocator_reacquire_req_t request);
/**
* @brief Executes a release request on an allocator.
* @details This simplifies the execution of an allocator's virtual function
* table entries, specifically @c release.
* @param request The release request being made.
* @returns The result of the release request to the allocator.
*/
allocator_exception_t
allocator_release(allocator_release_req_t request);
/**
* @brief Rounds the given size up to the nearest multiple of @c alignment.
* @param size The current size to round up to the nearest multiple of
* the provided @c alignment.
* @param alignment The alignment to round the size to.
* @returns The rounded size.
*/
malunal_size_t
align_to(
malunal_size_t size,
malunal_size_t alignment
);
/**
* @brief Rounds the given size up to the nearest page.
* @details This will give you a size that is rounded up to the next multiple of
* the platform page size. For example, if you provide 4000 and the
* platform page size is 4096, then you will get 4096. Likewise, if you
* provided 5000 and the platform page size is 4096, then you will get
* 8192.
* @param size The current size that will be rounded up to the nearest page
* multiple for the platform.
* @returns The rounded page size.
*/
malunal_size_t
align_to_page(malunal_size_t size);
/**
* @brief Provides the platform page size.
* @details This can be really useful when you plan to allocate a lot of memory.
* Platforms typically round memory requests up to the nearest page and
* give the base address of the virtually allocated block back, but
* placing a guard on the portion of the memory that will not be used.
* By querying the page size for the platform and rounding a memory
* acquisition request up to the nearest page, you can get the full
* block the platform intends to hand back which, significantly helps
* in proper memory tracking.
* @returns The memory page size for the platform.
*/
malunal_size_t
platform_page_size();
/**
* @brief Provides the general libc allocator.
* @details This will provide a general purpose allocator backed by the standard
* library. The functions provided are equivalent to @c malloc,
* @c realloc, and @c free.
* @returns An allocator that interfaces with libc.
*/
allocator_t
libc_allocator();
/**
* @brief Provides the platform allocator.
* @details This will provide the appropriate platform allocator depending on
* what operating system this library was compiled for.
* @returns One of: @c linux_allocator or @c win32_allocator.
*/
allocator_t
platform_allocator();
#if MALUNAL_PLATFORM_LINUX
/**
* @brief Provides a linux specific allocator.
* @details This is the linux specific allocator. It uses @c mmap and @c munmap
* to acquire, reacquire, and release memory.
* @returns An allocator that works specifically with linux.
*/
allocator_t
linux_allocator();
#elif MALUNAL_PLATFORM_WIN32
/**
* @brief Provides a windows specific allocator.
* @details Thisis the windows specific allocator. It uses @c VirtualAlloc and
* @c VirtualFree to acquire, reacquire, and release memory.
* @returns An allocator that works specifically with windows.
*/
allocator_t
win32_allocator();
#endif /* Platform specific allocators */
#endif /* MALUNAL_ALLOCATORS_HEADER */
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/**
* @file arena.h
* @brief Contains the definition of an arena allocator and all the functions
* needed to utilize it.
* @author John Christman (sorakatadzuma@gmail.com)
* @copyright Malunal Studios, LLC.
*/
#include "../allocators.h"
#ifndef MALUNAL_ALLOCATORS_ARENA_HEADER
#define MALUNAL_ALLOCATORS_ARENA_HEADER
/**
* @def ARENA_DEFAULT_PAGE_SIZE
* @brief Defines the default page size for the arena in terms of bytes.
* @details This should be, but is not required to be, a multiple of 4KiB. This
* is because, on most systems the memory page size will be 4KiB.
*/
#ifndef ARENA_DEFAULT_PAGE_SIZE
#define ARENA_DEFAULT_PAGE_SIZE 8192
#endif /* ARENA_DEFAULT_PAGE_SIZE */
/**
* @brief Defines an arena allocator page.
* @details Pages are large blocks of memory typically acquired from the
* operating system, but may be acquired from any upstream allocator.
* These pages may be subdivided by another allocator if the arena is
* used as an upstream itself.
*/
typedef struct ArenaAllocatorPage arena_page_t;
/**
* @brief A pointer to a mutable arena page.
* @details This is provided to simplify type declarations for functions
* requiring arena pages that are meant to be mutable.
*/
typedef arena_page_t* arena_page_mptr_t;
/**
* @brief A pointer to a immutable arena page.
* @details This is provided to simplify type declarations for functions
* requiring arena pages that are meant to be immutable.
*/
typedef const arena_page_t* arena_page_iptr_t;
struct ArenaAllocatorPage {
/**
* @brief A pointer to the next page.
* @details This is a linked list of pages making it possible for the arena
* to easily add new pages and find available memory blocks.
*/
arena_page_mptr_t next;
/**
* @brief How much of this page is already been used.
* @details This helps the arena know if it can fit the allocation request it
* has into this page, acquiring a new page if necessary.
*/
malunal_uint32_t used;
/**
* @brief The full size of this page.
* @details This helps the arena know if it can fit the allocation request it
* has into this page, acquiring a new page if necessary.
*/
malunal_uint32_t size;
/**
* @brief The acquired page data.
* @details This is where the arena allocator will retrieve a memory block
* address from when fulfilling an acquisition request.
*/
malunal_int8_t data[];
};
/**
* @brief Initializes the given arena.
* @details The arena is initialized by using the upstream allocator to obtain
* pages to fill the arena with.
* @param arena The arena to initialize.
* @param upstream The allocator to use to acquire arena pages.
* @param size The initial amount of memory to acquire for the arena.
*/
allocator_t
arena_allocator(
allocator_mptr_t upstream,
malunal_size_t size
);
/**
* @brief Arena implementation for memory acquisition.
* @details This will find the next available memory location within the pages
* of the arena and reserve the required memory for the acquisition
* request.
* @param request The request to an arena allocator to acquire the specified
* amount of memory listed in the request.
* @returns An object containing either the address acquired or an exception if
* the allocator threw.
*/
allocator_acquire_res_t
arena_acquire(allocator_acquire_req_t request);
/**
* @brief Arena implementation for memory re-acquisition.
* @details This works exactly the same as @c arena_acquire but will copy the
* contents of the previous block to the new block.
* @param request The request to an arena allocator to reacquire the specified
* amount of memory listed in the request, releasing the old memory.
* @returns An object containing either the address acquired or an exception if
* the allocator threw.
*/
allocator_acquire_res_t
arena_reacquire(allocator_reacquire_req_t request);
/**
* @brief Arena implementation for memory release.
* @details For an arena, this will not do anything internally. This is because
* arenas are like push allocators. They are there so a bunch of data
* can be dumped in it and released all at once.
* @param request The request to an arena allocator to release the specified
* amount of memory listed in the request.
* @returns An exception if the memory could not be released.
*/
allocator_exception_t
arena_release(allocator_release_req_t request);
/**
* @brief Resets the entire arena without freeing its pages.
* @details This will iterate through each of the pages acquired for the arena
* setting the usage of each page to zero. This will allow the arena to
* overwrite the data within the pages.
* @param arena The arena to reset.
* @returns An exception if the arena could not be reset.
*/
allocator_exception_t
arena_reset(allocator_mptr_t arena);
/**
* @brief Frees the entire arena.
* @details This will iterate through each of the pages acquired for the arena,
* releasing them back to the upstream.
* @param arena The arena to free.
* @returns An exception if the arena could not be freed.
*/
allocator_exception_t
arena_free(allocator_mptr_t arena);
#endif /* MALUNAL_ALLOCATORS_ARENA_HEADER */
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#include <stdlib.h>
#include <string.h>
#include "malunal/allocators.h"
#include "malunal/assert.h"
#if MALUNAL_PLATFORM_LINUX
# include <sys/mman.h>
# include <unistd.h>
#elif MALUNAL_PLATFORM_WIN32
# include <memoryapi.h>
#endif /* Platform headers */
allocator_acquire_res_t
allocator_acquire(allocator_acquire_req_t request) {
if (request.allocator == NULL_ADDRESS)
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_NULL_ALLOCATOR
};
return request.allocator->vtable.acquire != NULL_ADDRESS
? request.allocator->vtable.acquire(request)
: (allocator_acquire_res_t) {
.threw = 0,
.address = NULL_ADDRESS
};
}
allocator_acquire_res_t
allocator_reacquire(allocator_reacquire_req_t request) {
if (request.allocator == NULL_ADDRESS)
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_NULL_ALLOCATOR
};
return request.allocator->vtable.reacquire != NULL_ADDRESS
? request.allocator->vtable.reacquire(request)
: (allocator_acquire_res_t) {
.threw = 0,
.address = NULL_ADDRESS
};
}
allocator_exception_t
allocator_release(allocator_release_req_t request) {
if (request.allocator == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_NULL_ALLOCATOR;
return request.allocator->vtable.release != NULL_ADDRESS
? request.allocator->vtable.release(request)
: ALLOCATOR_EXCEPTION_SUCCESS;
}
malunal_size_t
align_to(
malunal_size_t size,
malunal_size_t alignment
) {
return (size + alignment - 1) & ~(alignment - 1);
}
malunal_size_t
align_to_page(malunal_size_t size) {
return align_to(size, platform_page_size());
}
static
malunal_size_t
g_platform_page_size = 0;
malunal_size_t
platform_page_size() {
if (g_platform_page_size != 0)
return g_platform_page_size;
#if MALUNAL_PLATFORM_LINUX
g_platform_page_size = sysconf(_SC_PAGESIZE);
#elif MALUNAL_PLATFORM_WIN32
SYSTEM_INFO si;
GetSystemInfo(&si);
g_platform_page_size = si.dwPageSize;
#endif
return g_platform_page_size;
}
static
allocator_acquire_res_t
libc_acquire(allocator_acquire_req_t request);
static
allocator_acquire_res_t
libc_reacquire(allocator_reacquire_req_t request);
static
allocator_exception_t
libc_release(allocator_release_req_t request);
static
allocator_acquire_res_t
libc_acquire(allocator_acquire_req_t request) {
allocator_acquire_res_t result;
malunal_mptr_t addr = malloc(request.size);
if (addr == NULL_ADDRESS) {
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_OUT_OF_MEMORY
};
}
request.allocator->allocated += request.size;
request.allocator->reserved += request.size;
request.allocator->acquires += 1;
return (allocator_acquire_res_t) {
.threw = 0,
.address = addr
};
}
static
allocator_acquire_res_t
libc_reacquire(allocator_reacquire_req_t request) {
allocator_acquire_res_t result =
libc_acquire((allocator_acquire_req_t) {
.allocator = request.allocator,
.size = request.newsz
});
if (result.threw)
return result;
result.address = memcpy(
result.address,
request.prev,
request.oldsz
);
libc_release((allocator_release_req_t) {
.allocator = request.allocator,
.address = request.prev,
.size = request.oldsz
});
return result;
}
static
allocator_exception_t
libc_release(allocator_release_req_t request) {
free(request.address);
request.allocator->allocated -= request.size;
request.allocator->reserved -= request.size;
request.allocator->releases += 1;
return ALLOCATOR_EXCEPTION_SUCCESS;
}
allocator_t
libc_allocator() {
return (allocator_t) {
.vtable = {
.acquire = &libc_acquire,
.reacquire = &libc_reacquire,
.release = &libc_release
},
.context = NULL_ADDRESS
};
}
allocator_t
platform_allocator() {
#if MALUNAL_PLATFORM_LINUX
return linux_allocator();
#elif MALUNAL_PLATFORM_WIN32
return win32_allocator();
#endif /* Platform specific allocators */
}
#if MALUNAL_PLATFORM_LINUX
static
allocator_acquire_res_t
linux_acquire(allocator_acquire_req_t request);
static
allocator_acquire_res_t
linux_reacquire(allocator_reacquire_req_t request);
static
allocator_exception_t
linux_release(allocator_release_req_t request);
static
allocator_acquire_res_t
linux_acquire(allocator_acquire_req_t request) {
const malunal_int32_t memops = PROT_READ | PROT_WRITE;
const malunal_int32_t memprms = MAP_PRIVATE | MAP_ANONYMOUS;
allocator_acquire_res_t result;
// TODO:
malunal_size_t size = request.size;
malunal_mptr_t ptr = mmap(0, size, memops, memprms, -1, 0);
if (ptr == MAP_FAILED || ptr == NULL_ADDRESS) {
result = (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_OUT_OF_MEMORY
};
} else {
result = (allocator_acquire_res_t) {
.threw = 0,
.address = ptr
};
}
return result;
}
static
allocator_acquire_res_t
linux_reacquire(allocator_reacquire_req_t request) {
allocator_acquire_res_t result =
linux_acquire((allocator_acquire_req_t) {
.allocator = request.allocator,
.size = request.newsz
});
if (result.threw)
return result;
result.address = memcpy(
result.address,
request.prev,
request.oldsz
);
linux_release((allocator_release_req_t) {
.allocator = request.allocator,
.address = request.prev,
.size = request.oldsz
});
return result;
}
static
allocator_exception_t
linux_release(allocator_release_req_t request) {
munmap(request.address, request.size);
return ALLOCATOR_EXCEPTION_SUCCESS;
}
allocator_t
linux_allocator() {
return (allocator_t) {
.vtable = {
.acquire = &linux_acquire,
.reacquire = &linux_reacquire,
.release = &linux_release
},
.context = NULL_ADDRESS
};
}
#elif MALUNAL_PLATFORM_WIN32
static
allocator_acquire_res_t
win32_acquire(allocator_acquire_req_t request);
static
allocator_acquire_res_t
win32_reacquire(allocator_reacquire_req_t request);
static
allocator_exception_t
win32_release(allocator_release_req_t request);
static
allocator_acquire_res_t
win32_acquire(allocator_acquire_req_t request) {
const malunal_int32_t memops = MEM_COMMIT | MEM_RESERVE;
const malunal_int32_t pageops = PAGE_READWRITE;
malunal_mptr_t addr = VirtualAlloc(
NULL_ADDRESS,
request.size,
memops,
pageops
);
if (addr == NULL_ADDRESS) {
result = (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_OUT_OF_MEMORY
};
} else {
result = (allocator_acquire_res_t) {
.threw = 0,
.address = addr
};
}
return result;
}
static
allocator_acquire_res_t
win32_reacquire(allocator_reacquire_req_t request) {
allocator_acquire_res_t result =
win32_acquire((allocator_acquire_req_t) {
.allocator = request.allocator,
.size = request.newsz
});
if (result.threw)
return result;
result.address = memcpy(
result.address,
request.prev,
request.oldsz
);
win32_release((allocator_release_req_t) {
.allocator = request.allocator,
.address = request.prev,
.size = request.oldsz
});
return result;
}
static
allocator_exception_t
win32_release(allocator_release_req_t request) {
VirtualFree(
request.address,
request.size,
MEM_RELEASE
);
return ALLOCATOR_EXCEPTION_SUCCESS;
}
allocator_t
win32_allocator() {
return (allocator_t) {
.vtable = {
.acquire = &win32_acquire,
.reacquire = &win32_reacquire,
.release = &win32_release
},
.context = NULL_ADDRESS
};
}
#endif /* Platform specific allocators */
+180
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#include <memory.h>
#include "malunal/allocators/arena.h"
#include "malunal/assert.h"
allocator_acquire_res_t
create_page(allocator_acquire_req_t request) {
if (request.allocator == NULL_ADDRESS) {
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_NULL_UPSTREAM
};
}
allocator_acquire_res_t result =
allocator_acquire(request);
if (result.threw)
return result;
arena_page_mptr_t page = result.address;
page->size = request.size;
page->used = sizeof(arena_page_t);
page->next = NULL_ADDRESS;
return result;
}
allocator_exception_t
delete_page(
allocator_mptr_t allocator,
arena_page_mptr_t page
) {
if (allocator == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_NULL_UPSTREAM;
if (page == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_FAILURE;
delete_page(allocator, page->next);
return allocator_release((allocator_release_req_t) {
.allocator = allocator,
.address = page,
.size = page->size
});
}
allocator_acquire_res_t
page_acquire(allocator_acquire_req_t request) {
arena_page_mptr_t page = request.allocator->context;
if (page == NULL_ADDRESS) {
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_NULL_CONTEXT
};
}
malunal_uint32_t offset = page->used - sizeof(arena_page_t);
malunal_mptr_t result = page->data + offset;
page->used += request.size;
return (allocator_acquire_res_t) {
.threw = 0,
.address = result
};
}
allocator_t
arena_allocator(
allocator_mptr_t upstream,
malunal_size_t size
) {
allocator_acquire_req_t request =
(allocator_acquire_req_t) {
.allocator = upstream,
.size = platform_page_size()
};
allocator_acquire_res_t result = create_page(request);
arena_page_mptr_t currpage =
!result.threw ? result.address : NULL_ADDRESS;
malunal_size_t reserved = 0;
if (currpage != NULL_ADDRESS) {
reserved += currpage->size;
while (reserved > size) {
result = create_page(request);
if (result.threw)
break;
currpage = currpage->next = result.address;
reserved += currpage->size;
}
}
return (allocator_t) {
.vtable = {
.acquire = (allocator_acquire_pfn_t)&arena_acquire,
.reacquire = (allocator_reacquire_pfn_t)&arena_reacquire,
.release = (allocator_release_pfn_t)&arena_release
},
.upstream = upstream,
.context = currpage
};
}
allocator_acquire_res_t
arena_acquire(allocator_acquire_req_t request) {
if (request.allocator == NULL_ADDRESS) {
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_NULL_ALLOCATOR
};
}
if (request.size > platform_page_size()) {
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_OUT_OF_MEMORY
};
}
arena_page_mptr_t page = request.allocator->context;
while (page != NULL_ADDRESS) {
malunal_uint32_t remaining = page->size - page->used;
if (request.size <= remaining)
return page_acquire(request);
page = page->next;
continue;
}
allocator_acquire_res_t result =
create_page((allocator_acquire_req_t) {
.allocator = request.allocator->upstream,
.size = platform_page_size()
});
page = page->next = !result.threw
? result.address
: NULL_ADDRESS;
return page != NULL_ADDRESS
? page_acquire(request)
: (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_OUT_OF_MEMORY
};
}
allocator_acquire_res_t
arena_reacquire(allocator_reacquire_req_t request) {
return arena_acquire((allocator_acquire_req_t) {
.allocator = request.allocator,
.size = request.newsz
});
}
allocator_exception_t
arena_release(allocator_release_req_t request) {
if (request.allocator == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_NULL_ALLOCATOR;
if (request.allocator->context == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_NULL_CONTEXT;
}
allocator_exception_t
arena_reset(allocator_mptr_t arena) {
if (arena == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_NULL_ALLOCATOR;
arena_page_mptr_t page = arena->context;
while (page != NULL_ADDRESS) {
page->used = 0;
page = page->next;
}
}
allocator_exception_t
arena_free(allocator_mptr_t arena) {
if (arena == NULL_ADDRESS)
return ALLOCATOR_EXCEPTION_NULL_ALLOCATOR;
delete_page(arena->upstream, arena->context);
}
+11
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extern int test_libc_allocator();
extern int test_platform_allocator();
extern int test_arena_allocator();
int main(void) {
return !(
test_libc_allocator() &&
test_platform_allocator() &&
test_arena_allocator()
);
}
+419
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#include <stdio.h>
#include "malunal/allocators/arena.h"
const malunal_size_t page_bytes = 4096;
const malunal_size_t init_bytes = sizeof(malunal_int32_t) * 4;
const malunal_size_t final_bytes = sizeof(malunal_int32_t) * 8;
static
allocator_acquire_res_t
test_arena_acquires(allocator_mptr_t arena) {
allocator_acquire_res_t result =
allocator_acquire((allocator_acquire_req_t) {
.allocator = arena,
.size = init_bytes
});
if (result.threw)
return result;
// Upstream checks.
if (arena->upstream->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->reserved);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
if (arena->upstream->allocated != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->allocated != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->allocated);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
if (arena->upstream->acquires != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->acquires != 1, actual == %d";
fprintf(stderr, format, arena->upstream->acquires);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
if (arena->upstream->releases != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->releases != 0, actual == %d";
fprintf(stderr, format, arena->upstream->releases);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
// Arena checks.
if (arena->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->reserved);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
if (arena->allocated != init_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->allocated != %d, actual == %d";
fprintf(stderr, format, init_bytes, arena->allocated);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
if (arena->acquires != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->acquires != 1, actual == %d";
fprintf(stderr, format, arena->acquires);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
if (arena->releases != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->releases != 0, actual == %d";
fprintf(stderr, format, arena->releases);
return (allocator_acquire_res_t) {
.threw = 1,
.exception = ALLOCATOR_EXCEPTION_FAILURE
};
}
return result;
}
static int
test_arena_reacquire(
allocator_mptr_t arena,
malunal_mptr_t address
) {
malunal_int32_t index;
malunal_int32_t* vector;
vector = address;
for (index = 0; index < 4; index++)
vector[index] = index + 1;
allocator_acquire_res_t result =
allocator_reacquire((allocator_reacquire_req_t) {
.allocator = arena,
.prev = result.address,
.oldsz = init_bytes,
.newsz = final_bytes
});
if (result.threw)
return result.exception;
// Upstream checks.
if (arena->upstream->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->reserved);
return 1;
}
if (arena->upstream->allocated != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->allocated != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->allocated);
return 1;
}
if (arena->upstream->acquires != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->acquires != 1, actual == %d";
fprintf(stderr, format, arena->upstream->acquires);
return 1;
}
if (arena->upstream->releases != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->releases != 0, actual == %d";
fprintf(stderr, format, arena->upstream->releases);
return 1;
}
// Arena checks.
if (arena->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->reserved);
return 1;
}
malunal_int32_t all_bytes = init_bytes + final_bytes;
if (arena->allocated != all_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->allocated != %d, actual == %d";
fprintf(stderr, format, all_bytes, arena->allocated);
return 1;
}
if (arena->acquires != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->acquires != 2, actual == %d";
fprintf(stderr, format, arena->acquires);
return 1;
}
if (arena->releases != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->releases != 1, actual == %d";
fprintf(stderr, format, arena->releases);
return 1;
}
return ALLOCATOR_EXCEPTION_SUCCESS;
}
static int
test_arena_release(
allocator_mptr_t arena,
malunal_mptr_t address
) {
malunal_int32_t index;
malunal_int32_t* vector;
vector = address;
for (index = 0; index < 4; index++)
if (vector[index] != index + 1)
return 1;
allocator_exception_t relexc =
allocator_release((allocator_release_req_t) {
.allocator = arena,
.address = address,
.size = final_bytes
});
if (relexc != ALLOCATOR_EXCEPTION_SUCCESS)
return relexc;
// Upstream checks.
if (arena->upstream->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->reserved);
return 1;
}
if (arena->upstream->allocated != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->allocated != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->allocated);
return 1;
}
if (arena->upstream->acquires != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->acquires != 1, actual == %d";
fprintf(stderr, format, arena->upstream->acquires);
return 1;
}
if (arena->upstream->releases != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->releases != 0, actual == %d";
fprintf(stderr, format, arena->upstream->releases);
return 1;
}
// Arena checks.
if (arena->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->reserved);
return 1;
}
malunal_int32_t all_bytes = init_bytes + final_bytes;
if (arena->allocated != all_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->allocated != %d, actual == %d";
fprintf(stderr, format, all_bytes, arena->allocated);
return 1;
}
if (arena->acquires != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->acquires != 2, actual == %d";
fprintf(stderr, format, arena->acquires);
return 1;
}
if (arena->releases != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->releases != 2, actual == %d";
fprintf(stderr, format, arena->releases);
return 1;
}
return ALLOCATOR_EXCEPTION_SUCCESS;
}
static int
test_arena_reset(allocator_mptr_t arena) {
arena_reset(arena);
// Upstream checks.
if (arena->upstream->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->reserved);
return 1;
}
if (arena->upstream->allocated != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->allocated != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->upstream->allocated);
return 1;
}
if (arena->upstream->acquires != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->acquires != 1, actual == %d";
fprintf(stderr, format, arena->upstream->acquires);
return 1;
}
if (arena->upstream->releases != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->releases != 0, actual == %d";
fprintf(stderr, format, arena->upstream->releases);
return 1;
}
// Arena checks.
if (arena->reserved != page_bytes) {
const malunal_cstr_t format =
"[arena_allocator]: arena->reserved != %d, actual == %d";
fprintf(stderr, format, page_bytes, arena->reserved);
return 1;
}
if (arena->allocated != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->allocated != 0, actual == %d";
fprintf(stderr, format, arena->allocated);
return 1;
}
if (arena->acquires != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->acquires != 2, actual == %d";
fprintf(stderr, format, arena->acquires);
return 1;
}
if (arena->releases != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->releases != 2, actual == %d";
fprintf(stderr, format, arena->releases);
return 1;
}
return ALLOCATOR_EXCEPTION_SUCCESS;
}
static int
test_arena_free(allocator_mptr_t arena) {
arena_free(arena);
// Upstream checks.
if (arena->upstream->reserved != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->reserved != 0, actual == %d";
fprintf(stderr, format, arena->upstream->reserved);
return 1;
}
if (arena->upstream->allocated != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->allocated != %d, actual == %d";
fprintf(stderr, format, arena->upstream->allocated);
return 1;
}
if (arena->upstream->acquires != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->acquires != 1, actual == %d";
fprintf(stderr, format, arena->upstream->acquires);
return 1;
}
if (arena->upstream->releases != 1) {
const malunal_cstr_t format =
"[arena_allocator]: arena->upstream->releases != 1, actual == %d";
fprintf(stderr, format, arena->upstream->releases);
return 1;
}
// Arena checks.
if (arena->reserved != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->reserved != %d, actual == %d";
fprintf(stderr, format, arena->reserved);
return 1;
}
if (arena->allocated != 0) {
const malunal_cstr_t format =
"[arena_allocator]: arena->allocated != 0, actual == %d";
fprintf(stderr, format, arena->allocated);
return 1;
}
if (arena->acquires != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->acquires != 2, actual == %d";
fprintf(stderr, format, arena->acquires);
return 1;
}
if (arena->releases != 2) {
const malunal_cstr_t format =
"[arena_allocator]: arena->releases != 2, actual == %d";
fprintf(stderr, format, arena->releases);
return 1;
}
return ALLOCATOR_EXCEPTION_SUCCESS;
}
int test_arena_allocator() {
allocator_t upstream = platform_allocator();
allocator_t arena = arena_allocator(&upstream, page_bytes);
allocator_acquire_res_t result =
test_arena_acquires(&arena);
return !(
!result.threw &&
test_arena_reacquire(result.address, &arena) &&
test_arena_release(result.address, &arena) &&
test_arena_reset(&arena) &&
test_arena_free(&arena)
);
}
+134
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@@ -0,0 +1,134 @@
#include <stdio.h>
#include "malunal/allocators.h"
int test_libc_allocator() {
const malunal_size_t init_bytes = sizeof(malunal_int32_t) * 4;
const malunal_size_t final_bytes = sizeof(malunal_int32_t) * 8;
allocator_acquire_res_t result;
allocator_t allocator = libc_allocator();
result = allocator_acquire((allocator_acquire_req_t) {
.allocator = &allocator,
.size = init_bytes
});
if (result.threw)
return result.exception;
if (allocator.reserved != init_bytes) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.reserved != %d, actual == %d";
fprintf(stderr, format, init_bytes, allocator.reserved);
return 1;
}
if (allocator.allocated != init_bytes) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.allocated != %d, actual == %d";
fprintf(stderr, format, init_bytes, allocator.allocated);
return 1;
}
if (allocator.acquires != 1) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.acquires != 1, actual == %d";
fprintf(stderr, format, allocator.acquires);
return 1;
}
if (allocator.releases != 0) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.releases != 0, actual == %d";
fprintf(stderr, format, allocator.releases);
return 1;
}
malunal_int32_t index;
malunal_int32_t* vector;
vector = result.address;
for (index = 0; index < 4; index++)
vector[index] = index + 1;
result = allocator_reacquire((allocator_reacquire_req_t) {
.allocator = &allocator,
.prev = result.address,
.oldsz = init_bytes,
.newsz = final_bytes
});
if (result.threw)
return result.exception;
if (allocator.reserved != final_bytes) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.reserved != %d, actual == %d";
fprintf(stderr, format, final_bytes, allocator.reserved);
return 1;
}
if (allocator.allocated != final_bytes) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.allocator != %d, actual == %d";
fprintf(stderr, format, final_bytes, allocator.reserved);
return 1;
}
if (allocator.acquires != 2) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.acquires != 2, actual == %d";
fprintf(stderr, format, allocator.acquires);
return 1;
}
if (allocator.releases != 1) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.releases != 1, actual == %d";
fprintf(stderr, format, allocator.releases);
return 1;
}
vector = result.address;
for (index = 0; index < 4; index++)
if (vector[index] != index + 1)
return 1;
allocator_exception_t relexc =
allocator_release((allocator_release_req_t) {
.allocator = &allocator,
.address = result.address,
.size = final_bytes
});
if (allocator.reserved != 0) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.reserved != 0, actual == %d";
fprintf(stderr, format, allocator.reserved);
return 1;
}
if (allocator.allocated != 0) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.allocator != 0, actual == %d";
fprintf(stderr, format, allocator.reserved);
return 1;
}
if (allocator.acquires != 2) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.acquires != 2, actual == %d";
fprintf(stderr, format, allocator.acquires);
return 1;
}
if (allocator.releases != 2) {
const malunal_cstr_t format =
"[libc_allocator]: allocator.releases != 2, actual == %d";
fprintf(stderr, format, allocator.releases);
return 1;
}
return relexc == ALLOCATOR_EXCEPTION_SUCCESS;
}
+134
View File
@@ -0,0 +1,134 @@
#include <stdio.h>
#include "malunal/allocators.h"
int test_platform_allocator() {
const malunal_size_t init_bytes = sizeof(malunal_int32_t) * 4;
const malunal_size_t final_bytes = sizeof(malunal_int32_t) * 8;
allocator_acquire_res_t result;
allocator_t allocator = platform_allocator();
result = allocator_acquire((allocator_acquire_req_t) {
.allocator = &allocator,
.size = init_bytes
});
if (result.threw)
return result.exception;
if (allocator.reserved != init_bytes) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.reserved != %d, actual == %d";
fprintf(stderr, format, init_bytes, allocator.reserved);
return 1;
}
if (allocator.allocated != init_bytes) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.allocated != %d, actual == %d";
fprintf(stderr, format, init_bytes, allocator.allocated);
return 1;
}
if (allocator.acquires != 1) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.acquires != 1, actual == %d";
fprintf(stderr, format, allocator.acquires);
return 1;
}
if (allocator.releases != 0) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.releases != 0, actual == %d";
fprintf(stderr, format, allocator.releases);
return 1;
}
malunal_int32_t index;
malunal_int32_t* vector;
vector = result.address;
for (index = 0; index < 4; index++)
vector[index] = index + 1;
result = allocator_reacquire((allocator_reacquire_req_t) {
.allocator = &allocator,
.prev = result.address,
.oldsz = init_bytes,
.newsz = final_bytes
});
if (result.threw)
return result.exception;
if (allocator.reserved != final_bytes) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.reserved != %d, actual == %d";
fprintf(stderr, format, final_bytes, allocator.reserved);
return 1;
}
if (allocator.allocated != final_bytes) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.allocator != %d, actual == %d";
fprintf(stderr, format, final_bytes, allocator.reserved);
return 1;
}
if (allocator.acquires != 2) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.acquires != 2, actual == %d";
fprintf(stderr, format, allocator.acquires);
return 1;
}
if (allocator.releases != 1) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.releases != 1, actual == %d";
fprintf(stderr, format, allocator.releases);
return 1;
}
vector = result.address;
for (index = 0; index < 4; index++)
if (vector[index] != index + 1)
return 1;
allocator_exception_t relexc =
allocator_release((allocator_release_req_t) {
.allocator = &allocator,
.address = result.address,
.size = final_bytes
});
if (allocator.reserved != 0) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.reserved != 0, actual == %d";
fprintf(stderr, format, allocator.reserved);
return 1;
}
if (allocator.allocated != 0) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.allocator != 0, actual == %d";
fprintf(stderr, format, allocator.reserved);
return 1;
}
if (allocator.acquires != 2) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.acquires != 2, actual == %d";
fprintf(stderr, format, allocator.acquires);
return 1;
}
if (allocator.releases != 2) {
const malunal_cstr_t format =
"[platform_allocator]: allocator.releases != 2, actual == %d";
fprintf(stderr, format, allocator.releases);
return 1;
}
return relexc == ALLOCATOR_EXCEPTION_SUCCESS;
}