Initial Commit

This commit is contained in:
2026-08-17 04:16:46 -05:00
commit 83bd4a3492
9 changed files with 1708 additions and 0 deletions
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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: containers
gpid: malunal
semv: 1.0.0
requires:
- remote: git@git.erasit.com:malunal/allocators
branch: v1.0.0
- remote: git@git.erasit.com:malunal/types
branch: v1.0.0
targets:
- name: malunal.containers
type: archive
deps:
- malunal.allocators
- malunal.types
srcs:
- ./sources/container.c
- ./sources/vector.c
tests:
- name: vector_tests
type: program
deps:
- malunal.containers
srcs:
- ./tests/vector_container.c
exports:
- malunal.containers
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/**
* @file container.h
* @brief Contains the base definition of a container, to include its structures
* and function pointers.
* @author John Christman (sorakatadzuma@gmail.com)
* @copyright Malunal Studios, LLC.
*/
#include "malunal/allocators.h"
#include "malunal/types.h"
#ifndef MALUNAL_CONTAINERS_HEADER
#define MALUNAL_CONTAINERS_HEADER
#ifdef CONTAINER_SIZE
#undef CONTAINER_SIZE
#endif /* CONTAINER_SIZE */
/**
* @def CONTAINER_SIZE
* @brief Defines the size of containers such that it can exist on the stack
* without the need to heap allocate it.
* @details This is defined based on the number of bytes of a pointer for the
* system and the number of members within the internal container
* implementation. It is statically asserted during compile to assure
* it is not wrong.
*/
#define CONTAINER_SIZE sizeof(malunal_size_t) * 6
/**
* @brief Defines an abstract class type for containers.
* @details Containers are objects which simply store data. They provide ways to
* @c append, @c remove, @c find, and @c clear the container. Being an
* abstract class like object, it provides some useful member variables
* and a virtual function table for container specific functions.
*/
typedef struct {
malunal_uint8_t __opaque[CONTAINER_SIZE];
} container_t;
/**
* @brief A pointer to a mutable container.
* @details This is provided to simplify type declarations for functions
* requiring containers that are meant to be mutable.
*/
typedef container_t* container_mptr_t;
/**
* @brief A pointer to an immutable container.
* @details This is provided to simplify type declarations for functions
* requiring containers that are meant to be immutable.
*/
typedef const container_t* container_iptr_t;
/**
* @brief Defines a set of exception that a container may throw.
* @details These are extremely useful for debugging an container or catching
* runtime issues that can be fixed.
*/
typedef enum {
CONTAINER_ERROR_SUCCESS,
CONTAINER_ERROR_FAILURE,
CONTAINER_ERROR_NULL_CONTAINER,
CONTAINER_ERROR_NULL_ALLOCATOR,
CONTAINER_ERROR_NULL_CONTEXT,
CONTAINER_ERROR_OUT_OF_BOUNDS,
CONTAINER_ERROR_OUT_OF_MEMORY,
} container_exception_t;
/**
* @brief Obtains the allocator for the given container.
* @param container A pointer to the container to obtain the allocator from.
* @param out A pointer to where to store the obtained allocator pointer.
* @returns An exception if the given container could not provide the allocator
* pointer; otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_allocator(
container_iptr_t container,
allocator_mptr_t* out
);
/**
* @brief Obtains the stride for the given container.
* @param container A pointer to the container to obtain the stride from.
* @param out A pointer to where to store the obtained stride.
* @returns An exception if the given container could not provide the stride;
* otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_stride(
container_iptr_t container,
malunal_size_t* out
);
/**
* @brief Obtains the count for the given container.
* @param container A pointer to the container to obtain the count from.
* @param out A pointer to where to store the obtained count.
* @returns An exception if the given container could not provide the count;
* otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_count(
container_iptr_t container,
malunal_size_t* out
);
/**
* @brief Obtains the capacity for the given container.
* @param container A pointer to the container to obtain the capacity from.
* @param out A pointer to where to store the obtained capacity.
* @returns An exception if the given container could not provide the capacity;
* otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_capacity(
container_iptr_t container,
malunal_size_t* out
);
/**
* @brief Initializes a container, by setting some necessary variables and
* acquiring its memory.
* @param container A pointer to the container to initialize.
* @param allocator A pointer to the allocator to use for initialization.
* @param stride The size of the elements that will be stored in the memory
* region of the container.
* @param capacity The maximum number of elements the container can store in
* the memory region it has acquired.
* @returns An exception if the given container could not be initialized;
* otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_initialize(
container_mptr_t container,
allocator_mptr_t allocator,
malunal_size_t stride,
malunal_size_t capacity
);
/**
* @brief Finalizes a container, by releasing its acquired memory.
* @param container A pointer to the container to finalize.
* @returns An exception if the given container could not be finalized;
* otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_finalize(
container_mptr_t container
);
/**
* @brief Clears the container, removing all elements from it.
* @param container A pointer to the container to clear.
* @returns An exception describing if the container could be cleared or an
* exact error for why the container could not be cleared.
* @remarks Generally speaking, if the container can be cleared successfully,
* The most common response should be @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_clear(
container_mptr_t container
);
/**
* @brief Appends a new element to the container.
* @param container A pointer to the container to append the element to.
* @param element A pointer to the data of the element to append to the
* given container.
* @returns An exception describing if the element was appended to the container
* or an exact error for why it could not be appended.
*/
container_exception_t
container_append(
container_mptr_t container,
malunal_iptr_t element
);
/**
* @brief Removes the specified element from the container.
* @param container A pointer to the container to remove the element from.
* @param element A pointer to the data of the element to remove from the
* given container.
* @returns An exception describing if the element was removed from the container
* or an exact error for why it could not be removed.
* @remarks Generally speaking, if an element does not exist in the container,
* the most common response should be @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_remove(
container_mptr_t container,
malunal_iptr_t element
);
/**
* @brief Checks the container for the given element.
* @param container A pointer to the container to find the element within.
* @param element A pointer to the data of the element to find within the
* given container.
* @returns An exception describing if the element is contained within the
* container or an exact error for why it could not find the element.
* @remarks Generally speaking, if the element does exist in the container, the
* most common response should be @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
container_contains(
container_iptr_t container,
malunal_iptr_t element
);
#endif /* MALUNAL_CONTAINERS_HEADER */
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/**
* @file vector.h
* @brief Contains the structures and functions necessary to utilize a vector
* container implementation.
* @author John Christman (sorakatadzuma@gmail.com)
* @copyright Malunal Studios, LLC.
*/
#include "../container.h"
#ifndef MALUNAL_VECTOR_HEADER
#define MALUNAL_VECTOR_HEADER
/**
* @brief Defines an class type for vectors.
* @details Vectors store their data contiguously in memory. They extend the
* functionality of containers, so they maybe used in container
* functions.
* @remarks The purpose of defining a separate type definition from @c container
* is to make it physically distinct from a container. This also makes
* it so other containers cannot accidentally be used in operations
* meant for vectors.
*/
typedef struct {
malunal_uint8_t __opaque[sizeof(container_t)];
} vector_t;
/**
* @brief A pointer to a mutable vector.
* @details This is provided to simplify type declarations for functions
* requiring vectors that are meant to be mutable.
*/
typedef vector_t* vector_mptr_t;
/**
* @brief A pointer to an immutable vector.
* @details This is provided to simplify type declarations for functions
* requiring vectors that are meant to be immutable.
*/
typedef const vector_t* vector_iptr_t;
/**
* @brief Gets the element at the given index from the given vector, copying
* the data into the memory region of the @c outptr address.
* @param vector A pointer to the vector to get the element from.
* @param index The index of the element to get from the given vector.
* @param outptr A pointer to the memory region to copy the element to.
* @returns An exception if the given vector can not provide the element at the
* given index; otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
vector_get(
vector_iptr_t vector,
malunal_size_t index,
malunal_mptr_t outptr
);
/**
* @brief Sets the element at the given index into the given vector, copying
* the data from the memory region of the @c element.
* @param vector A pointer to the vector to set the element into.
* @param index The index of the element to set in the given vector.
* @param element A pointer to the data of the element to set in the vector.
* @returns An exception if the given vector can not set the element at the
* given index; otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
vector_set(
vector_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
);
/**
* @brief Inserts the given element at the given index of the given vector,
* copying the data from the memory region of the @c element.
* @param vector A pointer to the vector to insert the element into.
* @param index The index within the vector to insert the element.
* @param element A pointer to the data of the element to insert into the
* vector at the given index; otherwise, @c CONTAINER_ERROR_SUCCESS.
* @returns An exception if the given vector can not insert the element at the
* given index; otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
vector_insert_at(
vector_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
);
/**
* @brief Removes the element at the given index from the given vector.
* @param vector A pointer to the vector to remove the element from.
* @param index The index of the element to remove from the given vector.
* @returns An exception if the given vector can not remove the element at the
* given index; otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
vector_remove_at(
vector_mptr_t vector,
malunal_size_t index
);
/**
* @brief Finds the index of the given element within the given vector.
* @param vector A pointer to the vector to find the index of the element.
* @param element A pointer to the data of the element to find the index of
* within the vector.
* @param outidx A pointer to where the index should be stored.
* @returns An exception if the given vector can not provide the index of the
* element within it; otherwise, @c CONTAINER_ERROR_SUCCESS.
*/
container_exception_t
vector_index_of(
vector_mptr_t vector,
malunal_iptr_t element,
malunal_size_t* outidx
);
/**
* @brief Provides an vector container.
* @details This will provide appropriate vector container functions when the
* instance is created.
* @returns An container instance that is populated to be an vector.
*/
vector_t
vector_container();
#endif /* MALUNAL_VECTOR_HEADER */
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#include "malunal/container.h"
typedef container_exception_t
(*container_initialize_pfn_t)(
container_mptr_t container,
allocator_mptr_t allocator,
malunal_size_t stride,
malunal_size_t capacity
);
typedef container_exception_t
(*container_finalize_pfn_t)(
container_mptr_t container
);
typedef container_exception_t
(*container_clear_pfn_t)(
container_mptr_t container
);
typedef container_exception_t
(*container_append_pfn_t)(
container_mptr_t container,
malunal_iptr_t element
);
typedef container_exception_t
(*container_remove_pfn_t)(
container_mptr_t container,
malunal_iptr_t element
);
typedef container_exception_t
(*container_contains_pfn_t)(
container_iptr_t container,
malunal_iptr_t element
);
typedef struct {
container_initialize_pfn_t const initialize;
container_finalize_pfn_t const finalize;
container_clear_pfn_t const clear;
container_append_pfn_t const append;
container_remove_pfn_t const remove;
container_contains_pfn_t const contains;
} virtual_table_t;
typedef virtual_table_t* base_vtable_mptr_t;
typedef const virtual_table_t* vtable_iptr_t;
typedef struct {
vtable_iptr_t const vtable;
allocator_mptr_t allocator;
malunal_mptr_t context;
malunal_size_t stride;
malunal_size_t count;
malunal_size_t capacity;
} implementation_t;
typedef implementation_t* impl_mptr_t;
typedef const implementation_t* impl_iptr_t;
// Verify these are the same.
_Static_assert(
CONTAINER_SIZE == sizeof(implementation_t),
"container_t must be the same size as its implementation"
);
container_exception_t
container_allocator(
container_iptr_t container,
allocator_mptr_t* out
) {
impl_iptr_t implementation = (impl_iptr_t)container;
if (implementation == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTAINER;
*out = implementation->allocator;
return CONTAINER_ERROR_SUCCESS;
}
container_exception_t
container_stride(
container_iptr_t container,
malunal_size_t* out
) {
impl_iptr_t implementation = (impl_iptr_t)container;
if (implementation == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTAINER;
*out = implementation->stride;
return CONTAINER_ERROR_SUCCESS;
}
container_exception_t
container_count(
container_iptr_t container,
malunal_size_t* out
) {
impl_iptr_t implementation = (impl_iptr_t)container;
if (implementation == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTAINER;
*out = implementation->count;
return CONTAINER_ERROR_SUCCESS;
}
container_exception_t
container_capacity(
container_iptr_t container,
malunal_size_t* out
) {
impl_iptr_t implementation = (impl_iptr_t)container;
if (implementation == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTAINER;
*out = implementation->capacity;
return CONTAINER_ERROR_SUCCESS;
}
container_exception_t
container_initialize(
container_mptr_t container,
allocator_mptr_t allocator,
malunal_size_t stride,
malunal_size_t capacity
) {
impl_mptr_t implementation = (impl_mptr_t)container;
return implementation != NULL_ADDRESS
? implementation->vtable->initialize(container, allocator, stride, capacity)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
container_finalize(container_mptr_t container) {
impl_mptr_t implementation = (impl_mptr_t)container;
return implementation != NULL_ADDRESS
? implementation->vtable->finalize(container)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
container_clear(container_mptr_t container) {
impl_mptr_t implementation = (impl_mptr_t)container;
return implementation != NULL_ADDRESS
? implementation->vtable->clear(container)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
container_append(
container_mptr_t container,
malunal_iptr_t element
) {
impl_mptr_t implementation = (impl_mptr_t)container;
return implementation != NULL_ADDRESS
? implementation->vtable->append(container, element)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
container_remove(
container_mptr_t container,
malunal_iptr_t element
) {
impl_mptr_t implementation = (impl_mptr_t)container;
return implementation != NULL_ADDRESS
? implementation->vtable->remove(container, element)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
container_contains(
container_iptr_t container,
malunal_iptr_t element
) {
impl_iptr_t implementation = (impl_iptr_t)container;
return implementation != NULL_ADDRESS
? implementation->vtable->contains(container, element)
: CONTAINER_ERROR_NULL_CONTAINER;
}
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#include <memory.h>
#include "malunal/containers/vector.h"
typedef container_exception_t
(*vector_initialize_pfn_t)(
vector_mptr_t vector,
allocator_mptr_t allocator,
malunal_size_t stride,
malunal_size_t capacity
);
typedef container_exception_t
(*vector_finalize_pfn_t)(
vector_mptr_t vector
);
typedef container_exception_t
(*vector_clear_pfn_t)(
vector_mptr_t vector
);
typedef container_exception_t
(*vector_append_pfn_t)(
vector_mptr_t vector,
malunal_iptr_t element
);
typedef container_exception_t
(*vector_remove_pfn_t)(
vector_mptr_t vector,
malunal_iptr_t element
);
typedef container_exception_t
(*vector_contains_pfn_t)(
vector_iptr_t vector,
malunal_iptr_t element
);
typedef container_exception_t
(*vector_get_pfn_t)(
vector_iptr_t vector,
malunal_size_t index,
malunal_mptr_t outptr
);
typedef container_exception_t
(*vector_set_pfn_t)(
vector_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
);
typedef container_exception_t
(*vector_insert_at_pfn_t)(
vector_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
);
typedef container_exception_t
(*vector_remove_at_pfn_t)(
vector_mptr_t vector,
malunal_size_t index
);
typedef container_exception_t
(*vector_index_of_pfn_t)(
vector_iptr_t vector,
malunal_iptr_t element,
malunal_size_t* outidx
);
typedef struct VectorVTable {
// Container generic.
vector_initialize_pfn_t const initialize;
vector_finalize_pfn_t const finalize;
vector_clear_pfn_t const clear;
vector_append_pfn_t const append;
vector_remove_pfn_t const remove;
vector_contains_pfn_t const contains;
// Vector specific.
vector_get_pfn_t const get;
vector_set_pfn_t const set;
vector_insert_at_pfn_t const insert_at;
vector_remove_at_pfn_t const remove_at;
vector_index_of_pfn_t const index_of;
} virtual_table_t;
typedef virtual_table_t* vtable_mptr_t;
typedef const virtual_table_t* vtable_iptr_t;
// Identical to container.
typedef struct {
vtable_iptr_t const vtable;
allocator_mptr_t allocator;
malunal_mptr_t context;
malunal_size_t stride;
malunal_size_t count;
malunal_size_t capacity;
} implementation_t;
typedef implementation_t* impl_mptr_t;
typedef const implementation_t* impl_iptr_t;
static
container_exception_t
vector_initialize_impl(
impl_mptr_t vector,
allocator_mptr_t allocator,
malunal_size_t stride,
malunal_size_t capacity
) {
malunal_size_t bytes = capacity * stride;
allocation_result_t result = allocator_acquire(allocator, bytes);
if (!result.threw) {
vector->allocator = allocator;
vector->context = result.address;
vector->stride = stride;
vector->capacity = capacity;
return CONTAINER_ERROR_SUCCESS;
}
switch (result.error) {
case ALLOCATION_ERROR_NULL_ALLOCATOR:
case ALLOCATION_ERROR_NULL_CONTEXT:
case ALLOCATION_ERROR_NULL_UPSTREAM:
return CONTAINER_ERROR_NULL_ALLOCATOR;
case ALLOCATION_ERROR_OUT_OF_MEMORY:
return CONTAINER_ERROR_OUT_OF_MEMORY;
}
}
static
container_exception_t
vector_finalize_impl(impl_mptr_t vector) {
malunal_size_t bytes = vector->capacity * vector->stride;
allocation_error_t error = allocator_release(
vector->allocator,
vector->context,
bytes
);
switch (error) {
case ALLOCATION_ERROR_SUCCESS:
return CONTAINER_ERROR_SUCCESS;
case ALLOCATION_ERROR_NULL_ALLOCATOR:
case ALLOCATION_ERROR_NULL_CONTEXT:
case ALLOCATION_ERROR_NULL_UPSTREAM:
return CONTAINER_ERROR_NULL_ALLOCATOR;
case ALLOCATION_ERROR_LEAKY_MEMORY:
case ALLOCATION_ERROR_NOT_MY_ADDRESS:
case ALLOCATION_ERROR_FAILURE:
return CONTAINER_ERROR_FAILURE;
}
}
static
container_exception_t
vector_clear_impl(impl_mptr_t vector) {
vector->count = 0;
return CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_append_impl(
impl_mptr_t vector,
malunal_iptr_t element
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
if (vector->count < vector->capacity)
goto copy_element;
malunal_size_t doubled = vector->capacity * 2;
allocation_result_t result = allocator_reacquire(
vector->allocator,
vector->context,
vector->capacity * vector->stride,
doubled * vector->stride
);
if (!result.threw) {
vector->context = result.address;
vector->capacity = doubled;
goto copy_element;
}
switch (result.error) {
case ALLOCATION_ERROR_NULL_ALLOCATOR:
case ALLOCATION_ERROR_NULL_UPSTREAM:
case ALLOCATION_ERROR_NULL_CONTEXT:
return CONTAINER_ERROR_NULL_ALLOCATOR;
case ALLOCATION_ERROR_LEAKY_MEMORY:
case ALLOCATION_ERROR_NOT_MY_ADDRESS:
case ALLOCATION_ERROR_FAILURE:
return CONTAINER_ERROR_FAILURE;
}
copy_element:
malunal_uint8_t* buffer = vector->context;
buffer = buffer + vector->stride * vector->count;
memcpy(buffer, element, vector->stride);
vector->count++;
return CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_remove_impl(
impl_mptr_t vector,
malunal_iptr_t element
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
malunal_size_t index = 0;
vector_mptr_t erased = (vector_mptr_t)vector;
container_exception_t error = vector_index_of(erased, element, &index);
if (error != CONTAINER_ERROR_SUCCESS)
return error;
return index != -1
? vector_remove_at(erased, index)
: CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_contains_impl(
impl_iptr_t vector,
malunal_iptr_t element
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
malunal_size_t index = 0;
vector_mptr_t erased = (vector_mptr_t)vector;
container_exception_t error = vector_index_of(erased, element, &index);
if (error != CONTAINER_ERROR_SUCCESS)
return error;
return index != -1
? CONTAINER_ERROR_SUCCESS
: CONTAINER_ERROR_FAILURE;
}
static
container_exception_t
vector_get_def_impl(
impl_iptr_t vector,
malunal_size_t index,
malunal_mptr_t outptr
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
if (index < 0 || index >= vector->count)
return CONTAINER_ERROR_OUT_OF_BOUNDS;
malunal_uint8_t* buffer = vector->context;
buffer = buffer + vector->stride * index;
memcpy(outptr, buffer, vector->stride);
return CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_set_def_impl(
impl_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
if (index < 0 || index >= vector->count)
return CONTAINER_ERROR_OUT_OF_BOUNDS;
malunal_uint8_t* buffer = vector->context;
buffer = buffer + vector->stride * index;
memcpy(buffer, element, vector->stride);
return CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_insert_at_def_impl(
impl_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
if (index < 0 || index > vector->count)
return CONTAINER_ERROR_OUT_OF_BOUNDS;
if (vector->count < vector->capacity)
goto insert_element;
malunal_size_t doubled = vector->capacity * 2;
allocation_result_t result = allocator_reacquire(
vector->allocator,
vector->context,
vector->capacity * vector->stride,
doubled * vector->stride
);
if (!result.threw) {
vector->context = result.address;
vector->capacity = doubled;
goto insert_element;
}
switch (result.error) {
case ALLOCATION_ERROR_NULL_ALLOCATOR:
case ALLOCATION_ERROR_NULL_UPSTREAM:
case ALLOCATION_ERROR_NULL_CONTEXT:
return CONTAINER_ERROR_NULL_ALLOCATOR;
case ALLOCATION_ERROR_LEAKY_MEMORY:
case ALLOCATION_ERROR_NOT_MY_ADDRESS:
case ALLOCATION_ERROR_FAILURE:
return CONTAINER_ERROR_FAILURE;
}
insert_element:
malunal_size_t offset = vector->stride * index;
malunal_uint8_t* orig = vector->context;
orig = orig + offset;
malunal_size_t window = vector->count - index;
malunal_size_t bytes = vector->stride * window;
malunal_uint8_t* dest = orig + vector->stride;
memmove(dest, orig, bytes);
memcpy(orig, element, vector->stride);
vector->count++;
return CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_remove_at_def_impl(
impl_mptr_t vector,
malunal_size_t index
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
if (index < 0 || index >= vector->count)
return CONTAINER_ERROR_OUT_OF_BOUNDS;
malunal_size_t offset = vector->stride * index;
malunal_uint8_t* dest = vector->context;
dest = dest + offset;
malunal_size_t window = vector->count - index;
malunal_size_t bytes = vector->stride * window;
malunal_uint8_t* orig = dest + vector->stride;
memmove(dest, orig, bytes);
vector->count--;
return CONTAINER_ERROR_SUCCESS;
}
static
container_exception_t
vector_index_of_def_impl(
impl_mptr_t vector,
malunal_iptr_t element,
malunal_size_t* outidx
) {
if (vector->context == NULL_ADDRESS)
return CONTAINER_ERROR_NULL_CONTEXT;
malunal_size_t index = 0;
malunal_uint8_t* buffer = vector->context;
while (index < vector->count) {
if (memcmp(buffer, element, vector->stride) == 0) {
*outidx = index;
return CONTAINER_ERROR_SUCCESS;
}
index += 1;
buffer += vector->stride;
}
*outidx = -1;
return CONTAINER_ERROR_SUCCESS;
}
container_exception_t
vector_get(
vector_iptr_t vector,
malunal_size_t index,
malunal_mptr_t outptr
) {
impl_iptr_t implementation = (impl_iptr_t)vector;
return implementation != NULL_ADDRESS
? implementation->vtable->get(vector, index, outptr)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
vector_set(
vector_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
) {
impl_iptr_t implementation = (impl_iptr_t)vector;
return implementation != NULL_ADDRESS
? implementation->vtable->set(vector, index, element)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
vector_insert_at(
vector_mptr_t vector,
malunal_size_t index,
malunal_iptr_t element
) {
impl_iptr_t implementation = (impl_iptr_t)vector;
return implementation != NULL_ADDRESS
? implementation->vtable->insert_at(vector, index, element)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
vector_remove_at(
vector_mptr_t vector,
malunal_size_t index
) {
impl_iptr_t implementation = (impl_iptr_t)vector;
return implementation != NULL_ADDRESS
? implementation->vtable->remove_at(vector, index)
: CONTAINER_ERROR_NULL_CONTAINER;
}
container_exception_t
vector_index_of(
vector_mptr_t vector,
malunal_iptr_t element,
malunal_size_t* outidx
) {
impl_iptr_t implementation = (impl_iptr_t)vector;
return implementation != NULL_ADDRESS
? implementation->vtable->index_of(vector, element, outidx)
: CONTAINER_ERROR_NULL_CONTAINER;
}
static const
virtual_table_t vector_vtable = {
.initialize = (vector_initialize_pfn_t)&vector_initialize_impl,
.finalize = (vector_finalize_pfn_t)&vector_finalize_impl,
.clear = (vector_clear_pfn_t)&vector_clear_impl,
.append = (vector_append_pfn_t)&vector_append_impl,
.remove = (vector_remove_pfn_t)&vector_remove_impl,
.contains = (vector_contains_pfn_t)&vector_contains_impl,
.get = (vector_get_pfn_t)&vector_get_def_impl,
.set = (vector_set_pfn_t)&vector_set_def_impl,
.insert_at = (vector_insert_at_pfn_t)&vector_insert_at_def_impl,
.remove_at = (vector_remove_at_pfn_t)&vector_remove_at_def_impl,
.index_of = (vector_index_of_pfn_t)&vector_index_of_def_impl
};
vector_t
vector_container() {
implementation_t implementation = {
.vtable = &vector_vtable,
.allocator = NULL_ADDRESS,
.context = NULL_ADDRESS,
.stride = 0,
.count = 0,
.capacity = 0,
};
vector_t result;
memcpy(
&result,
&implementation,
sizeof(implementation_t)
);
return result;
}
+7
View File
@@ -0,0 +1,7 @@
#include <stdio.h>
#include "malunal/vector.h"
int main(int argc, char** argv) {
printf("Hello, World!\n");
return 0;
}
+634
View File
@@ -0,0 +1,634 @@
#define _DEFAULT_SOURCE /* strsignal() is only declared under this with -std=c11 */
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <unistd.h>
#include <sys/wait.h>
#include "malunal/container.h"
#include "malunal/containers/vector.h"
#include "malunal/allocators.h"
/* ------------------------------------------------------------------ */
/* Minimal assertion + test-registration harness (no framework) */
/* ------------------------------------------------------------------ */
#define CHECK(cond, msg) \
do { \
if (!(cond)) { \
fprintf(stderr, " assertion failed: %s (%s:%d)\n", \
(msg), __FILE__, __LINE__); \
_exit(1); /* fail fast within the child: state is unreliable */ \
} \
} while (0)
#define CHECK_EQ_SZ(actual, expected, msg) \
do { \
malunal_size_t _a = (malunal_size_t)(actual); \
malunal_size_t _e = (malunal_size_t)(expected); \
if (_a != _e) { \
fprintf(stderr, \
" assertion failed: %s (%s:%d) got=%llu want=%llu\n", \
(msg), __FILE__, __LINE__, \
(unsigned long long)_a, (unsigned long long)_e); \
_exit(1); \
} \
} while (0)
#define CHECK_EQ_INT(actual, expected, msg) \
do { \
int _a = (int)(actual); \
int _e = (int)(expected); \
if (_a != _e) { \
fprintf(stderr, " assertion failed: %s (%s:%d) got=%d want=%d\n", \
(msg), __FILE__, __LINE__, _a, _e); \
_exit(1); \
} \
} while (0)
typedef void (*test_fn_t)(void);
typedef struct {
const char* name;
test_fn_t fn;
} test_case_t;
#define MAX_TESTS 64
static test_case_t g_tests[MAX_TESTS];
static int g_test_count = 0;
static void register_test(const char* name, test_fn_t fn) {
g_tests[g_test_count].name = name;
g_tests[g_test_count].fn = fn;
g_test_count++;
}
#define TEST(name) \
static void name(void); \
static void name##_register(void) __attribute__((constructor)); \
static void name##_register(void) { register_test(#name, name); } \
static void name(void)
/* Runs a single test in a forked child so a crash can't take out the
* rest of the suite. Returns 1 for pass, 0 for fail/crash. */
static int run_isolated(test_fn_t fn) {
pid_t pid = fork();
if (pid < 0) {
perror("fork");
return 0;
}
if (pid == 0) {
/* child */
fn();
_exit(0); /* reached only if no CHECK failed */
}
int status = 0;
waitpid(pid, &status, 0);
if (WIFEXITED(status) && WEXITSTATUS(status) == 0)
return 1;
if (WIFSIGNALED(status)) {
int sig = WTERMSIG(status);
fprintf(stderr, " CRASHED: terminated by signal %d (%s)\n", sig, strsignal(sig));
}
return 0;
}
/* ------------------------------------------------------------------ */
/* Shared setup helper */
/* ------------------------------------------------------------------ */
/* Initializes a fresh vector-as-container with a libc-backed allocator.
* `allocator_out` is filled in because callers need to keep the
* allocator alive (by value) for the container's lifetime. */
static container_mptr_t setup_container(
vector_t* vector,
allocator_t* allocator_out,
malunal_size_t stride,
malunal_size_t capacity
) {
*vector = vector_container();
*allocator_out = libc_allocator();
container_mptr_t container = (container_mptr_t)vector;
container_exception_t rc = container_initialize(
container, allocator_out, stride, capacity);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_initialize should succeed");
return container;
}
/* ------------------------------------------------------------------ */
/* vector_container() -- construction */
/* ------------------------------------------------------------------ */
TEST(construct_then_uninitialized_accessors_are_zero) {
vector_t vector = vector_container();
container_iptr_t container = (container_iptr_t)&vector;
malunal_size_t value = 123; /* sentinel so we know it was actually written */
container_exception_t rc = container_stride(container, &value);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_stride should succeed pre-initialize");
CHECK_EQ_SZ(value, 0, "stride should start at 0");
rc = container_count(container, &value);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_count should succeed pre-initialize");
CHECK_EQ_SZ(value, 0, "count should start at 0");
rc = container_capacity(container, &value);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_capacity should succeed pre-initialize");
CHECK_EQ_SZ(value, 0, "capacity should start at 0");
}
TEST(vector_t_and_container_t_are_same_size) {
CHECK_EQ_SZ(sizeof(vector_t), sizeof(container_t), "vector_t must match container_t size");
}
/* ------------------------------------------------------------------ */
/* container_initialize / container_finalize */
/* ------------------------------------------------------------------ */
TEST(initialize_allocates_backing_storage) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
allocator_mptr_t allocator = &libc_alloc;
malunal_size_t value = 0;
container_mptr_t container = (container_mptr_t)&vector;
container_exception_t error = container_initialize(
container, allocator, sizeof(int), 4);
CHECK(error == CONTAINER_ERROR_SUCCESS, "Container failed to initialize");
error = container_stride(container, &value);
CHECK(error == CONTAINER_ERROR_SUCCESS, "Container failed to provide stride");
CHECK(value == sizeof(int), "Stride should match requested element size");
error = container_count(container, &value);
CHECK(error == CONTAINER_ERROR_SUCCESS, "Container failed to provide count");
CHECK(value == 0, "Count should be 0 right after initialize");
error = container_capacity(container, &value);
CHECK(error == CONTAINER_ERROR_SUCCESS, "Container failed to provide capacity");
CHECK(value == 4, "Capacity should match requested capacity");
error = container_finalize(container);
CHECK(error == CONTAINER_ERROR_SUCCESS, "Container failed to finalize");
}
TEST(allocator_accessor_returns_the_allocator_used) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = (container_mptr_t)&vector;
container_initialize(container, &libc_alloc, sizeof(int), 4);
allocator_mptr_t got = NULL;
container_exception_t rc = container_allocator(container, &got);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_allocator should succeed");
CHECK(got == &libc_alloc, "container_allocator should return the allocator passed to initialize");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* container_append + vector_get */
/* ------------------------------------------------------------------ */
TEST(append_then_get_round_trips_value) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int value = 42;
container_exception_t rc = container_append(container, &value);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_append should succeed");
int out = 0;
rc = vector_get(&vector, 0, &out);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "vector_get should succeed for freshly appended element");
CHECK_EQ_INT(out, 42, "vector_get should return the value that was appended");
container_finalize(container);
}
TEST(append_increments_count) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 2;
container_append(container, &a);
container_append(container, &b);
malunal_size_t count = 0;
container_count(container, &count);
CHECK_EQ_SZ(count, 2, "count should track number of appends");
int out0 = 0, out1 = 0;
vector_get(&vector, 0, &out0);
vector_get(&vector, 1, &out1);
CHECK_EQ_INT(out0, 1, "first appended element preserved");
CHECK_EQ_INT(out1, 2, "second appended element preserved");
container_finalize(container);
}
TEST(append_past_capacity_grows_and_preserves_data) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 2);
int vals[5] = { 10, 20, 30, 40, 50 };
for (int i = 0; i < 5; i++) {
container_exception_t rc = container_append(container, &vals[i]);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "append should succeed while growing");
}
malunal_size_t capacity = 0, count = 0;
container_capacity(container, &capacity);
container_count(container, &count);
CHECK(capacity >= 5, "capacity should have grown to fit 5 elements");
CHECK_EQ_SZ(count, 5, "count should be 5 after 5 appends");
for (int i = 0; i < 5; i++) {
int out = 0;
vector_get(&vector, i, &out);
CHECK_EQ_INT(out, vals[i], "element should survive a growth reallocation");
}
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* container_clear */
/* ------------------------------------------------------------------ */
TEST(clear_resets_count_but_keeps_capacity) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 2;
container_append(container, &a);
container_append(container, &b);
container_exception_t rc = container_clear(container);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_clear should succeed");
malunal_size_t count = 99, capacity = 0;
container_count(container, &count);
container_capacity(container, &capacity);
CHECK_EQ_SZ(count, 0, "clear should reset count to 0");
CHECK_EQ_SZ(capacity, 4, "clear should not release/shrink capacity");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* vector_set */
/* ------------------------------------------------------------------ */
TEST(set_overwrites_existing_element) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 2, replacement = 99;
container_append(container, &a);
container_append(container, &b);
container_exception_t rc = vector_set(&vector, 0, &replacement);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "vector_set should succeed for an in-range index");
int out = 0;
vector_get(&vector, 0, &out);
CHECK_EQ_INT(out, 99, "vector_set should overwrite the element at the given index");
container_finalize(container);
}
TEST(get_set_report_out_of_bounds_at_count) {
/* Per container.h/vector.h, get/set should fail once the index
* reaches or exceeds the number of *live* elements. Capacity may
* still have room, but reading/writing an unset slot is out of
* bounds. */
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1;
container_append(container, &a); /* count == 1, capacity == 4 */
int out = 0;
container_exception_t rc = vector_get(&vector, 1, &out);
CHECK_EQ_INT(rc, CONTAINER_ERROR_OUT_OF_BOUNDS,
"get(index == count) should be out of bounds, not read uninitialized capacity");
container_finalize(container);
}
TEST(get_set_report_out_of_bounds_at_capacity) {
/* index == capacity is one past the last valid slot. */
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1;
container_append(container, &a);
int out = 0;
container_exception_t rc = vector_get(&vector, 4, &out);
CHECK_EQ_INT(rc, CONTAINER_ERROR_OUT_OF_BOUNDS,
"get(index == capacity) should be out of bounds");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* vector_index_of */
/* ------------------------------------------------------------------ */
TEST(index_of_finds_present_element) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 5, b = 6, c = 7;
container_append(container, &a);
container_append(container, &b);
container_append(container, &c);
malunal_size_t idx = (malunal_size_t)-1;
int needle = 6;
container_exception_t rc = vector_index_of(&vector, &needle, &idx);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "index_of should succeed when element is present");
CHECK_EQ_SZ(idx, 1, "index_of should report the correct index of the matching element");
container_finalize(container);
}
TEST(index_of_reports_missing_element) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 5;
container_append(container, &a);
malunal_size_t idx = 0;
int needle = 999;
vector_index_of(&vector, &needle, &idx);
/* Documented contract: outidx should be set to a not-found sentinel
* (-1) when the element isn't found. */
CHECK_EQ_SZ(idx, (malunal_size_t)-1, "index_of should report a not-found sentinel");
container_finalize(container);
}
TEST(index_of_actually_compares_against_the_search_element) {
/* vector_index_of_def_impl's loop does
* memcmp(buffer, buffer + stride, stride)
* i.e. it compares each element to its *neighbor*, and never touches
* the `element` argument at all. So it doesn't search for the given
* value -- it finds the first position holding two equal adjacent
* elements, whatever the caller was actually looking for. This test
* makes that failure mode concrete and unambiguous: [1, 1, 2],
* searching for 2, should report index 2 -- not index 0. */
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 1, c = 2;
container_append(container, &a);
container_append(container, &b);
container_append(container, &c); /* [1, 1, 2] */
malunal_size_t idx = 0;
int needle = 2;
vector_index_of(&vector, &needle, &idx);
CHECK_EQ_SZ(idx, 2, "index_of should find the index of the *searched* value, not an adjacent duplicate pair");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* vector_insert_at */
/* ------------------------------------------------------------------ */
TEST(insert_at_end_appends_value) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 2, c = 3;
container_append(container, &a);
container_append(container, &b);
container_exception_t rc = vector_insert_at(&vector, 2, &c);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "insert_at(count) should succeed");
int out = 0;
vector_get(&vector, 2, &out);
CHECK_EQ_INT(out, 3, "inserted value should be readable back at the target index");
container_finalize(container);
}
TEST(insert_at_middle_shifts_later_elements) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 8);
int a = 1, b = 3, mid = 2;
container_append(container, &a);
container_append(container, &b); /* [1, 3] */
container_exception_t rc = vector_insert_at(&vector, 1, &mid); /* -> [1, 2, 3] */
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "insert_at(1) should succeed");
int out0 = 0, out1 = 0, out2 = 0;
vector_get(&vector, 0, &out0);
vector_get(&vector, 1, &out1);
vector_get(&vector, 2, &out2);
CHECK_EQ_INT(out0, 1, "element before insertion point unchanged");
CHECK_EQ_INT(out1, 2, "inserted element lands at requested index");
CHECK_EQ_INT(out2, 3, "element after insertion point shifted right");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* vector_remove_at */
/* ------------------------------------------------------------------ */
TEST(remove_at_last_leaves_earlier_elements_untouched) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 8);
int a = 1, b = 2, c = 3;
container_append(container, &a);
container_append(container, &b);
container_append(container, &c); /* [1, 2, 3] */
container_exception_t rc = vector_remove_at(&vector, 2); /* remove the '3' */
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "remove_at(last) should succeed");
malunal_size_t count = 0;
container_count(container, &count);
CHECK_EQ_SZ(count, 2, "count should drop by one after removal");
int out0 = 0, out1 = 0;
vector_get(&vector, 0, &out0);
vector_get(&vector, 1, &out1);
CHECK_EQ_INT(out0, 1, "element 0 should be unaffected by removing the last element");
CHECK_EQ_INT(out1, 2, "element 1 should be unaffected by removing the last element");
container_finalize(container);
}
TEST(remove_at_middle_shifts_later_elements_left) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 8);
int a = 1, b = 2, c = 3;
container_append(container, &a);
container_append(container, &b);
container_append(container, &c); /* [1, 2, 3] */
container_exception_t rc = vector_remove_at(&vector, 0); /* -> [2, 3] */
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "remove_at(0) should succeed");
int out0 = 0, out1 = 0;
vector_get(&vector, 0, &out0);
vector_get(&vector, 1, &out1);
CHECK_EQ_INT(out0, 2, "elements after the removed index should shift left");
CHECK_EQ_INT(out1, 3, "elements after the removed index should shift left");
container_finalize(container);
}
TEST(remove_at_on_empty_vector_is_out_of_bounds) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
container_exception_t rc = vector_remove_at(&vector, 0);
CHECK_EQ_INT(rc, CONTAINER_ERROR_OUT_OF_BOUNDS,
"remove_at on an empty vector should be rejected as out of bounds");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* container_remove */
/* ------------------------------------------------------------------ */
TEST(container_remove_removes_the_first_matching_element) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 8);
int a = 10, b = 20, c = 30;
container_append(container, &a);
container_append(container, &b);
container_append(container, &c); /* [10, 20, 30] */
container_exception_t rc = container_remove(container, &a); /* remove the leading '10' */
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "container_remove should succeed for a present element");
malunal_size_t count = 0;
container_count(container, &count);
CHECK_EQ_SZ(count, 2, "count should drop by one after container_remove");
int out0 = 0;
vector_get(&vector, 0, &out0);
CHECK_EQ_INT(out0, 20, "removing the first element should shift the rest left");
container_finalize(container);
}
TEST(container_remove_of_absent_element_is_success) {
/* container.h: "if an element does not exist in the container, the
* most common response should be CONTAINER_ERROR_SUCCESS." */
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1;
container_append(container, &a);
int missing = 404;
container_exception_t rc = container_remove(container, &missing);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS,
"removing an absent element should report success, per the documented contract");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* container_contains */
/* ------------------------------------------------------------------ */
TEST(container_contains_finds_a_present_element) {
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 2;
container_append(container, &a);
container_append(container, &b);
container_exception_t rc = container_contains(container, &b);
CHECK_EQ_INT(rc, CONTAINER_ERROR_SUCCESS, "contains should succeed for a present element");
container_finalize(container);
}
TEST(container_contains_rejects_an_absent_element) {
/* vector_contains_impl does `index > 0 ? SUCCESS : FAILURE`. But
* vector_index_of's not-found sentinel is (malunal_size_t)-1, i.e.
* SIZE_MAX, which is also > 0 -- so an absent element is reported as
* *found*. (Combined with index_of's separate bug of comparing
* adjacent elements instead of the search value, this vector has no
* adjacent duplicates, so index_of legitimately reports "not
* found" via the -1 sentinel here -- and contains still says yes.) */
vector_t vector = vector_container();
allocator_t libc_alloc = libc_allocator();
container_mptr_t container = setup_container(&vector, &libc_alloc, sizeof(int), 4);
int a = 1, b = 2;
container_append(container, &a);
container_append(container, &b); /* [1, 2], no adjacent duplicates */
int missing = 999;
container_exception_t rc = container_contains(container, &missing);
CHECK_EQ_INT(rc, CONTAINER_ERROR_FAILURE, "contains should report failure for an absent element");
container_finalize(container);
}
/* ------------------------------------------------------------------ */
/* runner */
/* ------------------------------------------------------------------ */
int main(void) {
int passed = 0;
printf("running %d tests\n\n", g_test_count);
for (int i = 0; i < g_test_count; i++) {
printf("[ RUN ] %s\n", g_tests[i].name);
int ok = run_isolated(g_tests[i].fn);
printf("[%s] %s\n\n", ok ? " PASS " : " FAIL ", g_tests[i].name);
passed += ok;
}
printf("---------------------------------------------\n");
printf("%d / %d tests passed\n", passed, g_test_count);
return passed == g_test_count ? 0 : 1;
}