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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Add copy buttons to all
 blocks
(function() {
function addCopyButtons() {
document.querySelectorAll('pre code').forEach(function(codeBlock) {
if (codeBlock.parentElement.hasAttribute('data-copy-added')) return;
codeBlock.parentElement.setAttribute('data-copy-added', 'true');
var btn = document.createElement('button');
btn.textContent = 'Copy';
btn.style.cssText = 'position:absolute;top:4px;right:4px;padding:2px 8px;font-size:11px;background:#4ecdc4;border:none;border-radius:4px;color:#1a1a2e;cursor:pointer;opacity:0.7;transition:opacity 0.2s;';
btn.onmouseover = function() { this.style.opacity = '1'; };
btn.onmouseout = function() { this.style.opacity = '0.7'; };
btn.onclick = function() {
navigator.clipboard.writeText(codeBlock.textContent).then(function() {
btn.textContent = 'Copied!';
setTimeout(function() { btn.textContent = 'Copy'; }, 1500);
});
};
codeBlock.parentElement.style.position = 'relative';
codeBlock.parentElement.appendChild(btn);
});
}
addCopyButtons();
// Re-run on dynamic content
var observer = new MutationObserver(addCopyButtons);
observer.observe(document.body, { childList: true, subtree: true });
})();
}
} catch(__e) { console.warn('[Userscript:Add Copy Buttons to Code Blocks]', __e); }
})();
(function(){
try {
var __m = "github.com";
var __re = new RegExp('^' + "github\\.com" + '
GitHub - chanioxaris/virtual-memory: Virtual memory operation simulator · GitHub
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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Force GitHub README to respect dark mode (function() { var style = document.createElement('style'); style.textContent = ' .markdown-body { color-scheme: dark light; } .markdown-body pre { background: #161b22 !important; } .markdown-body code { background: rgba(110, 118, 129, 0.4) !important; } .markdown-body table th, .markdown-body table td { border-color: #30363d !important; } .markdown-body img { background: #0d1117; } .markdown-body blockquote { border-left-color: #8b949e; } .markdown-body hr { border-color: #30363d; } '; document.head.appendChild(style); })(); } } catch(__e) { console.warn('[Userscript:GitHub Dark Mode README Fix]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + ' GitHub - chanioxaris/virtual-memory: Virtual memory operation simulator · GitHub
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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Highlight search terms from Google/DuckDuckGo/Bing referrer (function() { var ref = document.referrer; var terms = []; if (ref.includes('google.com') || ref.includes('duckduckgo.com') || ref.includes('bing.com')) { var url = new URL(ref); var q = url.searchParams.get('q') || url.searchParams.get('p'); if (q) { terms = q.split(/\s+/).filter(function(t) { return t.length > 2; }); } } if (terms.length === 0) return; var style = document.createElement('style'); style.textContent = '.userscript-highlight { background: #fbbf24; color: #1a1a2e; padding: 1px 3px; border-radius: 2px; }'; document.head.appendChild(style); function highlight(node) { if (node.nodeType === 3) { // text node var text = node.textContent; var found = false; terms.forEach(function(term) { var regex = new RegExp('(' + term.replace(/[.*+?^${}()|[\]\\]/g, '\\') + ')', 'gi'); if (regex.test(text)) { found = true; var frag = document.createDocumentFragment(); var parts = text.split(regex); parts.forEach(function(part, i) { if (i % 2 === 0) { frag.appendChild(document.createTextNode(part)); } else { var span = document.createElement('span'); span.className = 'userscript-highlight'; span.textContent = part; frag.appendChild(span); } }); node.parentNode.replaceChild(frag, node); } }); } else if (node.nodeType === 1 && node.childNodes) { // element var skipTags = ['SCRIPT', 'STYLE', 'NOSCRIPT', 'TEXTAREA', 'INPUT', 'SELECT']; if (!skipTags.includes(node.tagName)) { Array.from(node.childNodes).forEach(highlight); } } } highlight(document.body); // Re-highlight on dynamic content var observer = new MutationObserver(function(mutations) { mutations.forEach(function(m) { m.addedNodes.forEach(function(node) { if (node.nodeType === 1 || node.nodeType === 3) highlight(node); }); }); }); observer.observe(document.body, { childList: true, subtree: true }); })(); } } catch(__e) { console.warn('[Userscript:Highlight Search Terms]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + ' GitHub - chanioxaris/virtual-memory: Virtual memory operation simulator · GitHub
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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Strip utm_, fbclid, gclid, etc. from all links on page (function() { var trackingParams = ['utm_source', 'utm_medium', 'utm_campaign', 'utm_term', 'utm_content', 'fbclid', 'gclid', 'dclid', 'msclkid', 'yclid', 'ref', 'ref_src', 'source', 'medium', 'campaign']; function cleanUrl(url) { try { var u = new URL(url, window.location.origin); var changed = false; trackingParams.forEach(function(p) { if (u.searchParams.has(p)) { u.searchParams.delete(p); changed = true; } }); return changed ? u.toString() : url; } catch (e) { return url; } } function cleanLinks() { document.querySelectorAll('a[href]').forEach(function(a) { var clean = cleanUrl(a.href); if (clean !== a.href) a.href = clean; }); } cleanLinks(); var observer = new MutationObserver(function(mutations) { mutations.forEach(function(m) { m.addedNodes.forEach(function(node) { if (node.nodeType === 1) { if (node.tagName === 'A') cleanLinks(); node.querySelectorAll('a[href]').forEach(function(a) { var clean = cleanUrl(a.href); if (clean !== a.href) a.href = clean; }); } }); }); }); observer.observe(document.body, { childList: true, subtree: true }); })(); } } catch(__e) { console.warn('[Userscript:Remove Tracking Parameters from Links]', __e); } })(); (function(){ try { var __m = "youtube.com"; var __re = new RegExp('^' + "youtube\\.com" + ' GitHub - chanioxaris/virtual-memory: Virtual memory operation simulator · GitHub
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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Auto-enable theater mode on YouTube (function() { function tryTheater() { var btn = document.querySelector('button[aria-label="Theater mode"], ytd-player #player button[title="Theater mode"]'); if (btn && !btn.classList.contains('activated')) { btn.click(); } } // Try immediately tryTheater(); // Try after navigation (SPA) var lastUrl = location.href; setInterval(function() { if (location.href !== lastUrl) { lastUrl = location.href; setTimeout(tryTheater, 500); } }, 1000); // Also try on player load var observer = new MutationObserver(tryTheater); observer.observe(document.body, { childList: true, subtree: true }); })(); } } catch(__e) { console.warn('[Userscript:YouTube Theater Mode Default]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + ' GitHub - chanioxaris/virtual-memory: Virtual memory operation simulator · GitHub
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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Remove or un-stick sticky/fixed headers that block content (function() { function unstick() { document.querySelectorAll('header, nav, [role="banner"], .header, .navbar, .sticky, .fixed-top, [style*="position: fixed"], [style*="position:sticky"]').forEach(function(el) { if (el.style.position === 'fixed' || el.style.position === 'sticky' || getComputedStyle(el).position === 'fixed' || getComputedStyle(el).position === 'sticky') { el.style.position = 'static'; el.style.top = 'auto'; el.style.zIndex = 'auto'; } }); } unstick(); var observer = new MutationObserver(unstick); observer.observe(document.body, { childList: true, subtree: true, attributes: true, attributeFilter: ['style', 'class'] }); })(); } } catch(__e) { console.warn('[Userscript:Kill Sticky Headers]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + ' GitHub - chanioxaris/virtual-memory: Virtual memory operation simulator · GitHub
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Folders and files

NameName
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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

Releases

Packages

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Overview

In computer operating systems, virtual memory is a management technique to handle the computer's primary memory. A page, memory page or virtual page is a fixed-length contiguous block of virtual memory and in similar a page frame is the smallest fixed-length contiguous block of physical memory. Virtual memory maps the virtual addresses (organized in pages) used by a program into physical addresses (organized in page frames) in computer memory, using a page table, which is a data structure to store this mapping.

Inverted page table

This program simulates the function of an operation system that uses paging for virtual memory management, alongside with Inverted page table and Flush When Full (FWF) as a page replacement algorithm. Round-robin algorithm is used for scheduling between the reference traces of two processes.

Inverted page table (IPT)

Inverted page table is a advanced type of page table. In contrast with classical (where each process has it's own), inverted page table is global and maintained by the operating system for all the processes. There is just one page table in the entire system, implying that additional information needs to be stored in the page table to identify page table entries corresponding to each process.
The page table stores the frame number into an array indexed by page number: given the page number, the frame number is achieved by a simple indexed load. An inverted page table stores the page number in an array indexed by frame number. Given the page number, you search for the entry with that page number: the entry number specifies the frame.

Flush When Full (FTW)

Flush When Full algorithm allows up to k page faults to occur for a single process. When the k+1 page fault appears, all pages from the specific process in page table are evicted (flush).

Round-robin algorithm (RR)

Round-robin (RR) is one of the algorithms employed by process schedulers. To schedule processes fairly, a round-robin scheduler generally employs time-sharing, giving each job a time slot or quantum (its allowance of CPU time), and interrupting the job if it is not completed by then. The job is resumed next time a time slot is assigned to that process. The scheduler selects the first process in the ready queue to execute, thus handling all processes without priority.

Statistics

After the simulation is over, some statistics are printed which are:

  • Number of Page Faults occured
  • Number of writes back on disk for the dirty traces
  • Number of reads from disk
  • Number of total traces

The below table includes the results of the simulation for different numbers of input argument k (FWF parameter)

Page FaultsPT FramesReadsWritesTraces
k = 10817208175062000
k = 25582505823612000
k = 504961004963182000
k = 1004392004392802000
k = 2503995003992552000

Compile

./makefile

Usage

./simulation -k [parameter of FWF algorithm] -q [round-robin quantum] -m [number of traces to examine]

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