mirror of
https://github.com/bspeice/itcs3146-project
synced 2024-12-22 06:38:23 -05:00
Merge branch 'master' of https://github.com/DjBushido/itcs3146-project
This commit is contained in:
commit
0928f69c77
@ -4,6 +4,8 @@
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this class sets up a First Fit memory scheme
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*/
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import java.lang.reflect.*;
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//this section sets up the Car class
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class FirstFit implements baseAlgorithm
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{
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@ -15,20 +17,21 @@ class FirstFit implements baseAlgorithm
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startLoc,
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endLoc,
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blkSize,
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memSize,
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memSize = memoryManagement.MEMORYSIZE,
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active,
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noJobs=0,
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s1=0,
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compMemTest=0,
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jobLoaded=0,
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tableEntries=1;
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private int[] tempVal = new int[6];
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private int[][] memTable = new int[memSize+2][6];
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private int[] memory = new int[memSize];
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private Job[] jobArray = new Job[memoryManagement.JOBAMOUNT+10];
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//this is a no argument constructor
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public FirstFit(int memSize)
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public FirstFit()
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{
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this.memSize = memSize;
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memTable[0][0]=0; //job number
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memTable[0][1]=0; //job size
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memTable[0][2]=0; //start location in memory
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@ -47,6 +50,12 @@ class FirstFit implements baseAlgorithm
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noJobs++;
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s1=0;
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//Bradlee's code ***********************************************************************************
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try
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{
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Method deallocateMethod = this.getClass().getMethod("deallocate", new Class[]{int.class, int.class});
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//checks to see if the job will fit in memory
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if(jobSize>memSize)
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{
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@ -56,6 +65,15 @@ class FirstFit implements baseAlgorithm
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System.exit(0);
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}
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//this will loop until job is loaded into memory
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do
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{
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//this section looks for a place to put the new job
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do
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{
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@ -70,7 +88,10 @@ class FirstFit implements baseAlgorithm
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memTable[s1][3] = jobSize-1;
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memTable[s1][4] = memTable[0][3]-memTable[0][2]+1;
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memTable[s1][5] = 1;
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Job newJob = new Job(jobTime, jobId, jobSize, memTable[s1][2], deallocateMethod, this);
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fillMemory(jobId, jobSize, memTable[s1][2]);
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jobArray[jobId - 1] = newJob;
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newJob.start();
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memTable[s1+1][0] = 0;
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memTable[s1+1][1] = 0;
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memTable[s1+1][2] = memTable[s1][3]+1;
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@ -78,6 +99,8 @@ class FirstFit implements baseAlgorithm
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memTable[s1+1][4] = memSize-memTable[s1+1][2];
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memTable[s1+1][5] = -1;
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tableEntries++;
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jobLoaded=1;
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System.out.println("add job "+jobId+toString());
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s1=memSize*2;
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}
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//runs after the first job and if the only available slot is at the end of memory
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@ -89,7 +112,10 @@ class FirstFit implements baseAlgorithm
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memTable[s1][3] = jobSize+memTable[s1][2]-1;
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memTable[s1][4] = memTable[s1][3]-memTable[s1][2]+1;
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memTable[s1][5] = 1;
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Job newJob = new Job(jobTime, jobId, jobSize, memTable[s1][2], deallocateMethod, this);
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fillMemory(jobId, jobSize, memTable[s1][2]);
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jobArray[jobId - 1] = newJob;
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newJob.start();
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memTable[s1+1][0] = 0;
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memTable[s1+1][1] = 0;
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memTable[s1+1][2] = memTable[s1][3]+1;
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@ -97,6 +123,8 @@ class FirstFit implements baseAlgorithm
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memTable[s1+1][4] = memSize-memTable[s1+1][2];
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memTable[s1+1][5] = -1;
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tableEntries++;
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jobLoaded=1;
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System.out.println("add job "+jobId+toString());
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s1=memSize*2;
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}
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}
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@ -106,7 +134,12 @@ class FirstFit implements baseAlgorithm
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memTable[s1][0] = jobId;
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memTable[s1][1] = jobSize;
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memTable[s1][5] = 1;
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Job newJob = new Job(jobTime, jobId, jobSize, memTable[s1][2], deallocateMethod, this);
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fillMemory(jobId, jobSize, memTable[s1][2]);
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jobArray[jobId - 1] = newJob;
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newJob.start();
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jobLoaded=1;
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System.out.println("add job "+jobId+toString());
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s1=memSize*2;
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}
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else
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@ -115,69 +148,61 @@ class FirstFit implements baseAlgorithm
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}
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}while(s1<tableEntries);
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//if job will not fit this section will compress memory and try placing the job again
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//if job will not fit this section will compress memory
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if(s1==tableEntries)
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{
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noJobs=noJobs-1;
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compMem();
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allocate(ID, size, jobTime);
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}
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}
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//this method is used if you want to deallocate a job by jobId
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public void removeJob(int ID)
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{
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jobId = ID;
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}while(jobLoaded==0);
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s1=0;
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do
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jobLoaded=0;
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} catch (Exception e)
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{
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if(memTable[s1][0] == jobId)
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{
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jobSize = memTable[s1][1];
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startLoc = memTable[s1][2];
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s1=memSize*2;
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System.out.println("Could not allocate job with ID " + jobId);
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}
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else
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{
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s1++;
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}
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}while (s1<tableEntries);
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deallocate(jobSize, startLoc);
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}
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//this method removes a job it does not check to see if the job exisits
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public void deallocate(int jobSize, int beginningLocation)
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//public void removeJob(int ID)
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public void deallocate(int jSize, int beginningLocation)
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{
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jobId = 0;
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jobSize = jobSize;
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jobSize = jSize;
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startLoc = beginningLocation;
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s1=0;
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do
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{
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if(memTable[s1][2] == startLoc)
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{
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System.out.println(startLoc+" removed job "+memTable[s1][0]);
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memTable[s1][0] = 0;
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memTable[s1][1] = 0;
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memTable[s1][5] = 0;
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s1=memSize*2;
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jobId=-1;
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System.out.println(memTable[s1][0]+" "+memTable[s1][1]+" "+memTable[s1][5]);
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System.out.println(toString());
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noJobs--;
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s1=memSize*2;
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}
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else
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{
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s1++;
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}
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}while (s1<tableEntries);
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}
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//this method compacts the memory
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public void compMem()
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{
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//System.out.println("Compacting Memory");
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compMemTest=tableEntries;
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for(int c=0; c<=compMemTest; c++)
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{
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24
NextFit.java
24
NextFit.java
@ -4,6 +4,8 @@
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this class sets up a First Fit memory scheme
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*/
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import java.lang.reflect.*;
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//this section sets up the Car class
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class NextFit implements baseAlgorithm
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{
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@ -50,6 +52,12 @@ class NextFit implements baseAlgorithm
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s1=0;
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loopCount=0;
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//Bradlee's code ***********************************************************************************
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try
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{
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Method deallocateMethod = this.getClass().getMethod("deallocate", new Class[]{int.class, int.class});
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//checks to see if the job will fit in memory
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if(jobSize>memSize)
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{
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@ -74,7 +82,9 @@ class NextFit implements baseAlgorithm
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memTable[currentPosition][3] = jobSize-1;
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memTable[currentPosition][4] = memTable[0][3]-memTable[0][2]+1;
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memTable[currentPosition][5] = 1;
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Job newJob = new Job(jobTime, jobId, jobSize, memTable[currentPosition][2], deallocateMethod, this);
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fillMemory(jobId, jobSize, memTable[currentPosition][2]);
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newJob.start();
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memTable[currentPosition+1][0] = 0;
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memTable[currentPosition+1][1] = 0;
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memTable[currentPosition+1][2] = memTable[currentPosition][3]+1;
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@ -95,7 +105,9 @@ class NextFit implements baseAlgorithm
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memTable[currentPosition][3] = jobSize+memTable[currentPosition][2]-1;
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memTable[currentPosition][4] = memTable[currentPosition][3]-memTable[currentPosition][2]+1;
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memTable[currentPosition][5] = 1;
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Job newJob = new Job(jobTime, jobId, jobSize, memTable[currentPosition][2], deallocateMethod, this);
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fillMemory(jobId, jobSize, memTable[currentPosition][2]);
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newJob.start();
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memTable[currentPosition+1][0] = 0;
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memTable[currentPosition+1][1] = 0;
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memTable[currentPosition+1][2] = memTable[currentPosition][3]+1;
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@ -114,7 +126,9 @@ class NextFit implements baseAlgorithm
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memTable[currentPosition][0] = jobId;
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memTable[currentPosition][1] = jobSize;
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memTable[currentPosition][5] = 1;
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Job newJob = new Job(jobTime, jobId, jobSize, memTable[currentPosition][2], deallocateMethod, this);
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fillMemory(jobId, jobSize, memTable[currentPosition][2]);
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newJob.start();
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currentPosition++;
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positionToCompress=currentPosition;
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s1=memSize*2;
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@ -142,8 +156,17 @@ class NextFit implements baseAlgorithm
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positionToCompress=0;
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allocate(ID, size, jobTime);
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}
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} catch (Exception e)
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{
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System.out.println("Could not allocate job with ID " + jobId);
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}
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}
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//this method is used if you want to deallocate a job by jobId
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public void removeJob(int ID)
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{
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@ -197,7 +220,6 @@ class NextFit implements baseAlgorithm
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//this method compacts the memory
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public void compMem()
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{
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System.out.println("***********************enter compress************************");
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compMemTest=tableEntries;
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for(int c=0; c<=compMemTest; c++)
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{
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@ -87,7 +87,6 @@ public class jobThread extends Thread {
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Object[] deallocateArgs = {this.jobSize, this.beginningLocation};
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//We're done, go ahead and notify our algorithm to clean us up
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parentAlgorithmDeallocate.invoke(parentAlgorithm, deallocateArgs);
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} catch (Exception e) {
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return;
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}
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@ -9,8 +9,8 @@ import java.util.StringTokenizer;
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public class memoryManagement{
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static final int JOBAMOUNT = 1000;
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static final int MEMORYSIZE = 10000;
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static final int JOBAMOUNT = 200;
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static final int MEMORYSIZE = 100;
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public static void main(String args[])throws Exception{
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@ -32,6 +32,8 @@ public class memoryManagement{
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//******Add your algorithm class here******//
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//baseAlgorithm alg = new dummyAlgorithm(MEMORYSIZE);
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threadedAllocation Bradlee_Speice = new threadedAllocation(MEMORYSIZE);
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//FirstFit David01 = new FirstFit();
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//NextFit David02 = new NextFit();
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//Gets a file name, else creates five random jobs
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do{
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@ -48,8 +50,8 @@ public class memoryManagement{
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jobLength = JOBAMOUNT;
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for(int i = 0; i < jobLength; i++){
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id[i] = i+1;
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size[i] = rand.nextInt(1000)+1;
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time[i] = rand.nextInt(1000)+1;
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size[i] = rand.nextInt(5)+1;
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time[i] = rand.nextInt(1000)+2001;
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}
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System.out.println("complete");
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}
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@ -73,6 +75,8 @@ public class memoryManagement{
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//Note that we use `jobLength - 1` to compensate for the id above
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for(int i = 0; i < jobLength - 1; i++){
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Bradlee_Speice.allocate(id[i], size[i], time[i]);
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//David01.allocate(id[i], size[i], time[i]);
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//David02.allocate(id[i], size[i], time[i]);
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}
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timeEnd = System.currentTimeMillis() - timeStart;
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System.out.println("complete");
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@ -12,11 +12,12 @@ public class threadedAllocation implements baseAlgorithm{
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* our actual operations */
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memoryBlock = new int[memorySize];
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// Set up the array of job references
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this.jobArray = new Job[memoryManagement.JOBAMOUNT + 1];
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this.garbageThread = new threadedAllocationGarbage(this.memoryBlock, 20, this.jobArray);
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this.garbageThread.start();
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// Set up the array of job references
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jobArray = new Job[memoryManagement.JOBAMOUNT];
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}
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int locateBlock(int blockSize){
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@ -26,23 +27,25 @@ public class threadedAllocation implements baseAlgorithm{
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int memoryLoc = 0;
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while (memoryLoc < this.memoryBlock.length)
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{
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if (memoryBlock[memoryLoc] != 0)
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if (memoryBlock[memoryLoc] != 0){
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memoryLoc++;
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//Block isn't free
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continue;
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}
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//One location is free, find out total size free
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//This loop breaks either when we've found the size we need, or
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//we found the beginning of the next block.
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int beginningLoc = memoryLoc;
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int free = 0;
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while (free < blockSize && memoryBlock[memoryLoc] == 0)
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while (free < blockSize && memoryLoc < this.memoryBlock.length && memoryBlock[memoryLoc] == 0)
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{
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memoryLoc += 1;
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free += 1;
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}
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if (free >= blockSize){
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System.out.println("Found a block of size " + blockSize + " at " + beginningLoc);
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//System.out.println("Found a block of size " + blockSize + " at " + beginningLoc);
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return beginningLoc;
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}
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}
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@ -53,7 +56,6 @@ public class threadedAllocation implements baseAlgorithm{
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public void allocate(int jobID, int jobSize, int jobLength ){
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/* Over-rides allocate() of baseAlgorithm */
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try{
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System.err.println("Allocating job with ID " + jobID);
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Method deallocateMethod = this.getClass().getMethod("deallocate", new Class[]{int.class, int.class});
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//Loop until we get a block big enough for our job
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@ -62,29 +64,36 @@ public class threadedAllocation implements baseAlgorithm{
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while (beginningLocation == -1)
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beginningLocation = locateBlock( jobSize );
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//We've got a location, mark it as filled, and start the job.
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synchronized(memoryBlock){
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for (int x = 0; x < jobSize; x++)
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{
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memoryBlock[beginningLocation + x] = jobID;
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}
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}
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Job newJob = new Job(jobLength, jobID, jobSize, beginningLocation, deallocateMethod, this);
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jobArray[jobID - 1] = newJob;
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jobArray[jobID] = newJob;
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newJob.start();
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} catch (Exception e){
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System.out.println("Could not allocate job with ID " + jobID);
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e.printStackTrace();
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System.exit(-1);
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}
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}
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public void deallocate(int jobSize, int beginningLocation){
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/* Over-rides deallocate() of baseAlgorithm */
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//System.err.println("Deallocation job with ID " + memoryBlock[beginningLocation] + " at time " + System.currentTimeMillis());
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//Simple algorithm, basically just mark the memory as cleared.
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synchronized(memoryBlock){
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for (int x = 0; x < jobSize; x++)
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{
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memoryBlock[beginningLocation + x] = 0;
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}
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}
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}
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}
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|
@ -70,6 +70,7 @@ class threadedAllocationGarbage extends Thread
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*/
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int[] largestBlockInfo = largestBlock();
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int maxFreeBeginning = largestBlockInfo[0];
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int maxFreeSize = largestBlockInfo[1];
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@ -97,13 +98,14 @@ class threadedAllocationGarbage extends Thread
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//Pause the job, and then relocate it
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//Note that we need to lock out the allocation to prevent a race
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int memoryLoc = maxFreeBeginning;
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synchronized (this.memoryBlock) {
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//Pause the job operation
|
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System.out.println("Job ID about to pause: " + jobID );
|
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jobArray[jobID - 1].pause();
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try{
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//Pause the job operation - note that we use a try-catch, as the job may disappear on us,
|
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//but is not a fatal error.
|
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jobArray[jobID].pause();
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//Write the job into the free space
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int memoryLoc = maxFreeBeginning;
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counter = 0;
|
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while (counter < jobSize){
|
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memoryBlock[memoryLoc] = jobID;
|
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@ -111,15 +113,19 @@ class threadedAllocationGarbage extends Thread
|
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}
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|
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//Inform the job of its new beginning location
|
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jobArray[jobID - 1].setBeginningLocation(maxFreeBeginning);
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jobArray[jobID].setBeginningLocation(maxFreeBeginning);
|
||||
|
||||
//Restart the job
|
||||
jobArray[jobID - 1].resume();
|
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jobArray[jobID].resume();
|
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} catch (Exception e){
|
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//Job ended before we could clean it up, proceed as if nothing happened.
|
||||
}
|
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|
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//Write the remaining memory as free
|
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counter = 0;
|
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while (counter < maxFreeSize){
|
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memoryBlock[memoryLoc] = 0;
|
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counter++;
|
||||
}
|
||||
|
||||
}
|
||||
|
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