Added functional methods (map, filter and reduce)
This commit is contained in:
54
README.md
54
README.md
@@ -24,24 +24,64 @@ At its simplest, you can use this library as follows:
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/*
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* Compile with: gcc main.c src/vector.c
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* Output: First element: 5
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* Head of vector: 6, size is now: 1
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* Output: First element: 1
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* Head of vector: 16, size is now: 1
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*/
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vector_order_t cmp_int_asc(const void *x, const void *y) {
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int x_int = *(const int*)x;
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int y_int = *(const int*)y;
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if (x_int < y_int) return VECTOR_ORDER_LT;
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if (x_int > y_int) return VECTOR_ORDER_GT;
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return VECTOR_ORDER_EQ;
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}
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void square(void *element, void *env) {
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(void)(env);
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int *value = (int*)element;
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*value = (*value) * (*value);
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}
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int is_even(const void *element, void *env) {
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(void)(env);
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int value = *(int*)element;
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return (value % 2) == 0;
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}
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void add(void *accumulator, const void *element, void *env) {
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(void)(env);
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*(int*)accumulator += *(int*)element;
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}
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int main(void) {
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// Create an integer vector of initial capacity equal to 5
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vector_t *vec = vector_new(5, sizeof(int)).value.vector;
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// Add two numbers
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int val = 5;
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vector_push(vec, &val);
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// Equivalent as above
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vector_push(vec, &(int){6});
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// Add some elements
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vector_push(vec, &(int){1}); // Equivalent as below
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int nums[] = {5, 2, 4, 3};
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for (int idx = 0; idx < 4; idx++) { vector_push(vec, &nums[idx]); }
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// Sort array in ascending order: [1, 2, 3, 4, 5]
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vector_sort(vec, cmp_int_asc);
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// Print 1st element
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const int first = *(int*)vector_get(vec, 0).value.element;
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printf("First element: %d\n", first);
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// Square elements: [1, 2, 3, 4, 5] -> [1, 4, 9, 16, 25]
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vector_map(vec, square, NULL);
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// Filter even elements: [1, 4, 9, 16, 25] -> [4, 16]
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vector_filter(vec, is_even, NULL);
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// Sume elements: [4, 16] -> 20
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int sum = 0;
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vector_reduce(vec, &sum, add, NULL);
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// Pop second element using LIFO policy
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const int head = *(int*)vector_pop(vec).value.element;
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printf("Head of vector: %d, size is now: %zu\n", head, vector_size(vec));
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@@ -31,8 +31,10 @@ At the time being, `Vector` supports the following methods:
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- `vector_result_t vector_get(vector, index)`: return the value indexed by `index` if it exists;
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- `map_result_t vector_sort(map, cmp)`: sort array using `cmp` function;
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- `vector_result_t vector_pop(vector)`: pop last element from the vector following the LIFO policy;
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- `vector_result_t vector_clear(vector)`: logically reset the vector. That is, new pushes
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will overwrite the memory;
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- `vector_result_t vector_map(vector, callback, env)`: apply `callback` function to vector (in-place);
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- `vector_result_t vector_filter(vector, callback, env)`: filter vector using `callback` (in-place);
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- `vector_result_t vector_reduce(vector, accumulator, callback, env)`: fold/reduce vector using `callback`;
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- `vector_result_t vector_clear(vector)`: logically reset the vector. That is, new pushes will overwrite the memory;
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- `vector_result_t vector_destroy(vector)`: delete the vector;
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- `size_t vector_size(vector)`: return vector size (i.e., the number of elements);
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- `size_t vector_capacity(vector)`: return vector capacity (i.e., vector total size).
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@@ -66,5 +68,21 @@ field. If the operation was successful (that is, `status == VECTOR_OK`), you can
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move on with the rest of the program or read the returned value from the sum data type. Of course, you can choose to
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ignore the return value (if you're brave enough :D) as illustrated in the first part of the README.
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The documentation for the `vector_sort(map, cmp)` method can be found
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in [the following document](/docs/sort.md).
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## Functional methods
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`Vector` provides three functional methods called `map`, `filter` and `reduce` which allow the caller to apply a computation to the vector,
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filter the vector according to a function and fold the vector to a single value according to a custom function, respectively.
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The caller is responsible to define a custom `callback` function that satisfy the following constraints:
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```c
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typedef void (*map_callback_fn)(void *element, void *env);
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typedef int (*vector_filter_fn)(const void *element, void *env);
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typedef void (*vector_reduce_fn)(void *accumulator, const void *element, void *env);
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```
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In particular, you should be aware of the following design choices:
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- The `vector_reduce` callback method requires the caller to initialize an _"accumulator"_ variable before calling this method;
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- The `vector_filter` callback method is expected to return non-zero to keep the element and zero to filter it out.
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The documentation for the `vector_sort(map, cmp)` method can be found in [the following document](/docs/sort.md).
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137
src/vector.c
137
src/vector.c
@@ -383,6 +383,143 @@ vector_result_t vector_pop(vector_t *vector) {
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return result;
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}
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/**
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* vector_map
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* @vector: a non-null vector
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* @callback: callback function
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* @env: optional captured environment
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*
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* Transforms each element of @vector in place by applying @callback
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*
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* Returns a vector_result_t data type
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*/
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vector_result_t vector_map(vector_t *vector, map_callback_fn callback, void *env) {
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vector_result_t result = {0};
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if (vector == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid vector");
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return result;
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}
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if (callback == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid callback function");
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return result;
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}
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for (size_t idx = 0; idx < vector->size; idx++) {
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void *element = (uint8_t*)vector->elements + (idx * vector->data_size);
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callback(element, env);
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}
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result.status = VECTOR_OK;
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SET_MSG(result, "Vector successfully mapped");
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return result;
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}
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/**
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* vector_filter
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* @vector: a non-null vector
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* @callback: callback function
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* @env: optional captured environment
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*
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* Filters elements from @vector using @callback.
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* Elements are shifted in place, vector size is updated.
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*
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* Returns a vector_result_t data type
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*/
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vector_result_t vector_filter(vector_t *vector, vector_filter_fn callback, void *env) {
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vector_result_t result = {0};
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if (vector == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid vector");
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return result;
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}
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if (callback == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid callback function");
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return result;
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}
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size_t write_idx = 0;
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for (size_t read_idx = 0; read_idx < vector->size; read_idx++) {
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void *element = (uint8_t*)vector->elements + (read_idx * vector->data_size);
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// Remove elements from @vector for which @callback returns zero
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// If @callback returns non-zero, element is kept
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if (callback(element, env)) {
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if (read_idx != write_idx) {
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void *dest = (uint8_t*)vector->elements + (write_idx * vector->data_size);
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memcpy(dest, element, vector->data_size);
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}
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write_idx++;
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}
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}
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// Update vector size
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vector->size = write_idx;
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result.status = VECTOR_OK;
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SET_MSG(result, "Vector successfully filtered");
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return result;
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}
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/**
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* vecto_reduce
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* @vector: a non-null vector
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* @accumulator: pointer to accumulator value
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* @callback: callback function
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* @env: optional captured environment
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*
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* Reduces @vector to a single value by repeatedly applying @callback
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* The @accumulator value should be initialized by the caller before invoking this function
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*
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* Returns a vector_result_t data type
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*/
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vector_result_t vector_reduce(const vector_t *vector, void *accumulator, vector_reduce_fn callback, void *env) {
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vector_result_t result = {0};
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if (vector == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid vector");
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return result;
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}
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if (accumulator == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid accumulator");
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return result;
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}
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if (callback == NULL) {
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result.status = VECTOR_ERR_INVALID;
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SET_MSG(result, "Invalid callback function");
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return result;
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}
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for (size_t idx = 0; idx < vector->size; idx++) {
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const void *element = (uint8_t*)vector->elements + (idx * vector->data_size);
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callback(accumulator, element, env);
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}
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result.status = VECTOR_OK;
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SET_MSG(result, "Vector successfully reduced");
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return result;
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}
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/**
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* vector_clear
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* @vector: a non-null vector
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@@ -36,7 +36,11 @@ typedef enum {
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VECTOR_ORDER_GT
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} vector_order_t;
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// Callback functions
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typedef vector_order_t (*vector_cmp_fn)(const void *x, const void *y);
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typedef void (*map_callback_fn)(void *element, void *env);
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typedef int (*vector_filter_fn)(const void *element, void *env);
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typedef void (*vector_reduce_fn)(void *accumulator, const void *element, void *env);
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#ifdef __cplusplus
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extern "C" {
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@@ -49,6 +53,9 @@ vector_result_t vector_set(vector_t *vector, size_t index, void *value);
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vector_result_t vector_get(vector_t *vector, size_t index);
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vector_result_t vector_sort(vector_t *vector, vector_cmp_fn cmp);
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vector_result_t vector_pop(vector_t *vector);
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vector_result_t vector_map(vector_t *vector, map_callback_fn callback, void *env);
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vector_result_t vector_filter(vector_t *vector, vector_filter_fn callback, void *env);
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vector_result_t vector_reduce(const vector_t *vector, void *accumulator, vector_reduce_fn callback, void *env);
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vector_result_t vector_clear(vector_t *vector);
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vector_result_t vector_destroy(vector_t *vector);
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@@ -312,6 +312,114 @@ void test_vector_sort_struct_by_name(void) {
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vector_destroy(people);
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}
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// Map vector elements
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void square(void *element, void *env) {
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(void)(env);
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int *value = (int*)element;
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*value = (*value) * (*value);
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}
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void test_vector_map(void) {
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vector_result_t res = vector_new(5, sizeof(int));
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assert(res.status == VECTOR_OK);
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vector_t *v = res.value.vector;
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int values[] = { 25, 4, 3, 12, 19, 45 };
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for (size_t idx = 0; idx < 6; idx++) {
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vector_push(v, &values[idx]);
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}
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vector_result_t square_res = vector_map(v, square, NULL);
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assert(square_res.status == VECTOR_OK);
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const int expected[] = { 625, 16, 9, 144, 361, 2025 };
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const size_t sz = vector_size(v);
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for (size_t idx = 0; idx < sz; idx++) {
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int *val = (int*)vector_get(v, idx).value.element;
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assert(*val == expected[idx]);
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}
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vector_destroy(v);
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}
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// Filter vector elements
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typedef struct {
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double temperature;
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uint64_t timestamp;
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} weather_record_t;
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typedef struct {
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double min_temp;
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double max_temp;
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} temp_threshold_t;
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int is_temp_in_range(const void *element, void *env) {
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const weather_record_t *weather = (const weather_record_t*)element;
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temp_threshold_t *threshold = (temp_threshold_t*)env;
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return weather->temperature >= threshold->min_temp &&
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weather->temperature <= threshold->max_temp;
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}
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void test_vector_filter(void) {
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vector_result_t res = vector_new(5, sizeof(weather_record_t));
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assert(res.status == VECTOR_OK);
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vector_t *v = res.value.vector;
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for (size_t idx = 0; idx < 10; idx++) {
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weather_record_t record = {
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.temperature = 20.0 + (idx * 2.5), // between 20.0C and 42.5C
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.timestamp = 1234567890 + idx
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};
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vector_push(v, &record);
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}
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// Filter elements outside the threshold
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temp_threshold_t threshold = {
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.min_temp = 15.0,
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.max_temp = 40.0
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};
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vector_result_t filter_res = vector_filter(v, is_temp_in_range, &threshold);
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assert(filter_res.status == VECTOR_OK);
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for (size_t idx = 0; idx < vector_size(v); idx++) {
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double *val = (double*)vector_get(v, idx).value.element;
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assert((*val >= 20.0) && (*val <= 40));
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}
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vector_destroy(v);
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}
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// Test reduce
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void add(void *accumulator, const void *element, void *env) {
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(void)(env);
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*(int*)accumulator += *(int*)element;
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}
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void test_vector_reduce(void) {
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vector_result_t res = vector_new(5, sizeof(int));
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assert(res.status == VECTOR_OK);
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vector_t *v = res.value.vector;
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int values[] = { 1, 2, 3, 4, 5, 6, 7, 8, 9, 10 };
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for (size_t idx = 0; idx < 10; idx++) {
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vector_push(v, &values[idx]);
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}
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int sum = 0;
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vector_result_t reduce_res = vector_reduce(v, &sum, add, NULL);
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assert(reduce_res.status == VECTOR_OK);
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assert(sum == ((10 * 11) / 2));
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vector_destroy(v);
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}
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// Set vector element
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void test_vector_set(void) {
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vector_result_t res = vector_new(5, sizeof(int));
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@@ -491,6 +599,9 @@ int main(void) {
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TEST(vector_sort_string);
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TEST(vector_sort_struct_by_age);
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TEST(vector_sort_struct_by_name);
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TEST(vector_map);
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TEST(vector_filter);
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TEST(vector_reduce);
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TEST(vector_set);
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TEST(vector_set_ofb);
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TEST(vector_pop);
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101
usage.c
101
usage.c
@@ -16,6 +16,8 @@
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puts("\n"); \
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} while(0)
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#define UNUSED(X) (void)(X)
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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@@ -30,6 +32,9 @@ static int bigint_usage(void);
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static vector_order_t cmp_int_asc(const void *x, const void *y);
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static vector_order_t cmp_int_desc(const void *x, const void *y);
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static void square(void *element, void *env);
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static int is_even(const void *element, void *env);
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static void adder(void *accumulator, const void *element, void *env);
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int main(void) {
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int st;
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@@ -64,6 +69,24 @@ vector_order_t cmp_int_desc(const void *x, const void *y) {
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return cmp_int_asc(y, x);
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}
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void square(void *element, void *env) {
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UNUSED(env);
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int *value = (int*)element;
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*value = (*value) * (*value);
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}
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int is_even(const void *element, void *env) {
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UNUSED(env);
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int value = *(int*)element;
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return (value % 2) == 0;
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}
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void adder(void *accumulator, const void *element, void *env) {
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UNUSED(env);
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*(int*)accumulator += *(int*)element;
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}
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int vector_usage(void) {
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// Create a vector of 3 integers
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vector_result_t res = vector_new(3, sizeof(int));
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@@ -197,6 +220,84 @@ int vector_usage(void) {
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}
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printf("\n\n");
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vector_result_t map_clear_res = vector_clear(vector);
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if (map_clear_res.status != VECTOR_OK) {
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printf("Cannot clear vector: %s\n", map_clear_res.message);
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return 1;
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}
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// Map vector elements
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for (size_t idx = 1; idx <= 5; idx++) {
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vector_result_t map_push_res = vector_push(vector, &idx);
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if (map_push_res.status != VECTOR_OK) {
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printf("Error while adding elements: %s\n", map_push_res.message);
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return 1;
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}
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}
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sz = vector_size(vector);
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||||
|
||||
// Square vector elements: [1, 2, 3, 4, 5] -> [1, 4, 9, 16, 25]
|
||||
vector_result_t map_res = vector_map(vector, square, NULL);
|
||||
if (map_res.status != VECTOR_OK) {
|
||||
printf("Error while mapping vector: %s\n", map_res.message);
|
||||
|
||||
return 1;
|
||||
}
|
||||
|
||||
printf("Squared vector: ");
|
||||
for (size_t idx = 0; idx < sz; idx++) {
|
||||
vector_result_t map_get_res = vector_get(vector, idx);
|
||||
if (map_get_res.status != VECTOR_OK) {
|
||||
printf("Cannot retrieve vec[%zu]: %s\n", idx, map_get_res.message);
|
||||
|
||||
return 1;
|
||||
} else {
|
||||
int *val = (int*)map_get_res.value.element;
|
||||
printf("%d ", *val);
|
||||
}
|
||||
}
|
||||
|
||||
printf("\n");
|
||||
|
||||
// Filter vector elements: [1, 4, 9, 16, 25] -> [4, 16]
|
||||
vector_result_t filter_res = vector_filter(vector, is_even, NULL);
|
||||
if (filter_res.status != VECTOR_OK) {
|
||||
printf("Error while filtering vector: %s\n", filter_res.message);
|
||||
|
||||
return 1;
|
||||
}
|
||||
|
||||
sz = vector_size(vector);
|
||||
|
||||
printf("Filtered vector: ");
|
||||
for (size_t idx = 0; idx < sz; idx++) {
|
||||
vector_result_t map_get_res = vector_get(vector, idx);
|
||||
if (map_get_res.status != VECTOR_OK) {
|
||||
printf("Cannot retrieve vec[%zu]: %s\n", idx, map_get_res.message);
|
||||
|
||||
return 1;
|
||||
} else {
|
||||
int *val = (int*)map_get_res.value.element;
|
||||
printf("%d ", *val);
|
||||
}
|
||||
}
|
||||
|
||||
printf("\n");
|
||||
|
||||
// Reduce vector elements: [4, 16] -> 20
|
||||
int sum = 0;
|
||||
vector_result_t reduce_res = vector_reduce(vector, &sum, adder, NULL);
|
||||
if (reduce_res.status != VECTOR_OK) {
|
||||
printf("Error while reducing vector: %s\n", reduce_res.message);
|
||||
|
||||
return 1;
|
||||
}
|
||||
|
||||
printf("Sum of vector: %d\n\n", sum);
|
||||
|
||||
// Free vector
|
||||
vector_result_t del_res = vector_destroy(vector);
|
||||
if (del_res.status != VECTOR_OK) {
|
||||
|
||||
Reference in New Issue
Block a user