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128
doubly_linked_list.c
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128
doubly_linked_list.c
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#include <stdbool.h>
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#include "scheduler.h"
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#include "doubly_linked_list.h"
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/**
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* \brief Checks whether a run_queue is empty
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*
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* \param rq Pointer to the run_queue
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*
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* \returns `true` iff the run_queue is empty
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*/
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bool stud_rq_empty(struct run_queue const *rq) {
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return false;
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}
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/**
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* \brief Creates a task
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*
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* \param pid The pid of the new task
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* \param state Default state of the task
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*
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* \return A pointer to the new task, `NULL` if failed
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*/
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struct task *stud_task_create(int pid, enum states state) {
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return NULL;
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}
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/**
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* \brief Frees/destroys a task This function assumes the task has already been
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* removed from any run queue. It does not handle linked list operations
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* or modifications to the run queue.
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*
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* \param task Pointer to the task to-be-destroyed
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*/
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void stud_task_free(struct task *task) {
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return;
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}
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/**
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* \brief Frees all the elements of the `run_queue` and empties it.
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* `rq` itself should NOT be freed. After calling this function,
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* `rq` must simply be an empty `run_queue`.
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*
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* \param rq Pointer to the run_queue to-be-destroyed
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*/
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void stud_rq_destroy(struct run_queue *rq) {
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return;
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}
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/**
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* \brief Tries to find a task in a run_queue by its PID
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*
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* \param rq Pointer to the run_queue
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* \param pid PID of the wanted task
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*
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* \returns Pointer to the task, `NULL` if failed
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*/
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struct task *stud_rq_find(struct run_queue *rq, int pid) {
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return NULL;
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}
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/**
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* \brief Returns the head of the `run_queue`.
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*
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* \param rq Pointer to the run_queue
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*/
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struct task *stud_rq_head(struct run_queue *rq) {
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return NULL;
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}
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/**
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* \brief Returns the tail of the `run_queue`.
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*
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* \param rq Pointer to the run_queue
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*/
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struct task *stud_rq_tail(struct run_queue *rq) {
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return NULL;
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}
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/**
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* \brief Enqueues a task on the given run_queue. The head stays where it is
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* and the new task is put at the END of the list.
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*
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* \param rq Pointer to the run_queue
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* \param task The task to-be-enqueued
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*
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* \returns `true` iff successful
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*/
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bool stud_rq_enqueue(struct run_queue *rq, struct task *task) {
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return false;
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}
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/**
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* \brief Enqueues a task into the run_queue sorted by ascending runtime.
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*
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* \param rq Pointer to the run_queue
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* \param task The task to be inserted
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*
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* \returns `true` if successful
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*/
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bool stud_rq_enqueue_sorted(struct run_queue* rq, struct task* task){
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return false;
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}
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/**
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* \brief Prepends a task on the given run_queue. The head of the list MUST be
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* moved to the new task!
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*
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* \param rq Pointer the run_queue
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* \param task The task to-be-prepended
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*
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* \returns `true` iff successful
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*/
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bool stud_rq_prepend(struct run_queue *rq, struct task *task) {
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return false;
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}
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/**
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* \brief Computes the length of a `run_queue`
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*
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* \param rq The run_queue
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*
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* \return The length of `rq`
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*/
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size_t stud_rq_length(struct run_queue *rq) {
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return false;
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}
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5
fcfs.c
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5
fcfs.c
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#include "fcfs.h"
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void sched_fcfs(struct proc *list, int *schedule) {
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return;
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}
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40
scheduler.h
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40
scheduler.h
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#ifndef SCHEDULER_H__
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#define SCHEDULER_H__
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#include <stddef.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <stdbool.h>
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#define QUANTUM 10
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enum states {
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BLOCKED = 0,
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RUNNING,
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READY,
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TERMINATED,
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};
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enum events {
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start = 0,
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wait,
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wake_up,
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terminate,
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clock_tick,
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};
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struct task {
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int pid;
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enum states state;
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struct task* prev;
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struct task* next;
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int runtime;
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};
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struct run_queue {
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struct task* head;
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size_t n_tasks;
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int time_counter;
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};
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#endif // SCHEDULER_H__
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101
scheduler_round_robin.c
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101
scheduler_round_robin.c
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#include "scheduler.h"
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#include "scheduler_round_robin.h"
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#include "doubly_linked_list.h"
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/**
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* \brief Enqueues a process in READY state
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*
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* \param rq The scheduler's run queue
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* \param pid The process to be enqueued
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*/
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void stud_RR_start(struct run_queue* rq, int pid) {
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return;
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}
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/**
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* \brief Elects and starts a process from the run queue. The running process MUST be placed
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* at the head of `rq` if it is not already there.
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*
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* \param rq The scheduler's run queue
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*/
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void stud_RR_elect(struct run_queue* rq) {
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return;
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}
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/**
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* \brief Terminates the current running process (i.e. rq->head) and places it at the BACK
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* of the run_queue.
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*
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* \param rq The scheduler's run queue
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*/
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void stud_RR_terminate(struct run_queue* rq) {
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return;
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}
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/**
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* \brief Performs a clock tick as specified by RR.
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*
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* \param rq The scheduler's run queue
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*/
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void stud_RR_clock_tick(struct run_queue* rq) {
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return;
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}
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/**
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* \brief Sets the state of the running process to BLOCKED, moves it to the BACK of the
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* run_queue, and elects and runs a new process.
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*
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* \param rq The scheduler's run queue
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*/
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void stud_RR_wait(struct run_queue* rq) {
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return;
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}
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/**
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* \brief Sets the state of `pid` to READY, if it exists, and moves it to the BACK
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* of the run_queue
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*
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* \param rq The scheduler's run queue
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* \param pid The process to be woken up
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*/
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void stud_RR_wake_up(struct run_queue* rq, int pid) {
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return;
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}
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/**
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* \brief Event handler for RR
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*
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* \param rq The scheduler's run queue
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* \param event The event to be handled
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* \param pid Depending on `event`, the `pid` of the target process.
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* If the `event` doesn't need this, it is ignored.
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*/
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void stud_RR(struct run_queue* rq, enum events event, int pid) {
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switch(event) {
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case start: {
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stud_RR_start(rq, pid);
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break;
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}
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case terminate: {
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stud_RR_terminate(rq);
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break;
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}
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case clock_tick: {
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stud_RR_clock_tick(rq);
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break;
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}
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case wait: {
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stud_RR_wait(rq);
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break;
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}
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case wake_up: {
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stud_RR_wake_up(rq, pid);
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break;
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}
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}
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}
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5
sjf.c
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5
sjf.c
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#include "sjf.h"
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void sched_sjf(struct proc *list, int *schedule) {
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return;
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}
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