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Copy pathpriority_np.cpp
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132 lines (106 loc) · 3.94 KB
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//Priority Non-Preemptive Scheduling
//Input File name :- "input.dat" (see reference input file)
//Output File name :- "priority_non_preemptive_out.dat"
//Compile:- g++ priority_np.cpp -o priority_np
//Run:- ./priority_np
//Assuming processes in file are in sorted arrival time manner
#include<bits/stdc++.h>
using namespace std;
int main()
{
string line;
int n,pid,arrival=0,burst=0,priority,prev=-1,start=0,count=0,tsched=0, turn_around_time, response_time, waiting_time,tat_sum=0,rt_sum=0;
ifstream infile("input.dat");
ofstream outfile("priority_non_preemptive_out.dat");
if(!infile)
{
cerr << "Datafile does not exist" << endl;
exit(-1);
}
getline(infile,line);
stringstream str(line);
str >> n; //no. of processes
vector<tuple<int,int,int,int>> process(n); //tuple = <priority,pid,arrival_time,burst_time>
map<int,pair<int,int>> proc_count; //(arrival,(index,count))
for(int i=0; i < n; i++)
{
getline(infile,line);
stringstream str(line);
str >> arrival;
str >> burst;
str >> priority;
if(arrival == prev)
count++;
else
{
if(i!=0)
{
sort(process.begin()+start,process.begin()+start+count); //sorting based on priority for same arrival time
proc_count.insert({prev,{start,count}});
}
count = 1; prev = arrival;
start = i;
}
process[i] = make_tuple(priority,i+1,arrival,burst);
}
sort(process.begin()+start,process.begin()+start+count);
proc_count.insert({prev,{start,count}});
infile.close(); //read complete
//Priority-Non Preemptive scheduling calculations
tuple<int,int,int,int> curr_process;
pair<int,int> st_ct;
vector<tuple<int,int,int,int>> proc_queue;
int time = -1;
outfile << "PID\tTurnaround\tResponse\tWaiting" << endl;
cout << "PID\tTurnaround\tResponse\tWaiting" << endl;
count = 0; //no. of completed processes
while(count != n)
{
if(!proc_queue.empty())
{
curr_process = proc_queue[0];
burst = get<3>(curr_process);
arrival = get<2>(curr_process);
pid = get<1>(curr_process);
proc_queue.erase(proc_queue.begin());
count++;
tsched = time;
time += burst;
turn_around_time = tsched + burst - arrival; //calculations
tat_sum += turn_around_time;
response_time = tsched - arrival;
rt_sum += response_time;
waiting_time = response_time;
outfile << pid << "\t\t" << turn_around_time << "\t\t " << response_time << "\t\t\t" << waiting_time << endl;
cout << pid << "\t" << turn_around_time << "\t\t" << response_time << "\t\t" << waiting_time << endl;
}
else
{
tsched = time;
time++;
}
for(int i=tsched+1; i <= time; i++)
{
auto itr = proc_count.find(i);
if(itr != proc_count.end())
{
st_ct = itr->second;
start = st_ct.first;
for(int j=start; j < start+st_ct.second; j++)
proc_queue.push_back(process[j]);
}
}
if(!proc_queue.empty())
sort(proc_queue.begin(),proc_queue.end());
}
outfile << endl;
cout << endl;
outfile << "Average Turnaround Time = " << (float)tat_sum/n << endl;
outfile << "Average Response Time = " << (float)rt_sum/n << endl;
outfile << "Average Waiting Time = " << (float)rt_sum/n << endl;
cout << "Average Turnaround Time = " << (float)tat_sum/n << endl;
cout << "Average Response Time = " << (float)rt_sum/n << endl;
cout << "Average Waiting Time = " << (float)rt_sum/n << endl;
outfile.close();
return 0;
}