Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

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" + '
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

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('^' + ".*" + '
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

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('^' + ".*" + '
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

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" + '
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

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('^' + ".*" + '
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

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('^' + ".*" + '
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages

, 'i'); if (__m === '*' || __re.test(location.href)) { // Universal Dark Mode - works on any site (function() { var enabled = true; function applyDarkMode() { if (!enabled) return; // Create style element if it doesn't exist var style = document.getElementById('universal-dark-mode-style'); if (!style) { style = document.createElement('style'); style.id = 'universal-dark-mode-style'; document.head.appendChild(style); } // Dark mode CSS - inverts colors but preserves images/video style.textContent = ' /* Invert everything except media */ html { filter: invert(1) hue-rotate(180deg) !important; background: #1a1a2e !important; } /* Restore images, videos, iframes, canvas */ img, video, iframe, canvas, svg, picture, [style*="background-image"] { filter: invert(1) hue-rotate(180deg) !important; } /* Preserve specific elements that should not be inverted */ .no-dark-mode, .no-dark-mode *, [data-theme="light"], [data-theme="light"], .ace_editor, .ace_editor *, .CodeMirror, .CodeMirror *, .monaco-editor, .monaco-editor *, .markdown-body pre, .markdown-body pre *, .highlight, .highlight *, pre code, pre code * { filter: none !important; } /* Fix common UI elements */ .modal, .popup, .dropdown-menu, .tooltip, .popover { filter: invert(1) hue-rotate(180deg) !important; background: #2d2d44 !important; border-color: #444 !important; } /* Scrollbars */ ::-webkit-scrollbar { background: #1a1a2e !important; } ::-webkit-scrollbar-thumb { background: #444 !important; } ::-webkit-scrollbar-thumb:hover { background: #555 !important; } /* Selection */ ::selection { background: #4ecdc4 !important; color: #1a1a2e !important; } ::-moz-selection { background: #4ecdc4 !important; color: #1a1a2e !important; } '; } function removeDarkMode() { var style = document.getElementById('universal-dark-mode-style'); if (style) style.remove(); } // Toggle with Alt+Shift+D document.addEventListener('keydown', function(e) { if (e.altKey && e.shiftKey && e.key === 'D') { e.preventDefault(); enabled = !enabled; if (enabled) { applyDarkMode(); console.log('[Universal Dark Mode] Enabled'); } else { removeDarkMode(); console.log('[Universal Dark Mode] Disabled'); } } }); // Apply on load applyDarkMode(); // Re-apply on dynamic content var observer = new MutationObserver(function(mutations) { if (enabled && !document.getElementById('universal-dark-mode-style')) { applyDarkMode(); } }); observer.observe(document.head, { childList: true }); console.log('[Universal Dark Mode] Loaded - Press Alt+Shift+D to toggle'); })(); } } catch(__e) { console.warn('[Userscript:Universal Dark Mode]', __e); } })(); })();
Skip to content

Repository files navigation

Contributors analysis

This tool can be used to analyze the contributions from different people to a GitHub repository. Given the repository URL, the tool will go through all the commits and count the number of times each contributor has changed each file. After that pairs of developers that most frequently change the same files are shown.

How to use

Building the project

This project can be built and run using Gradle. The following command can be used:

./gradlew run --args='{program arguments}'

Alternatively, you can run the project using IntelliJ IDEA. To do that, open the project in IntelliJ IDEA and run the Main.kt file with the program arguments.

Usage

The tool has a CLI interface. The following arguments are supported:

Usage: option-parser [<options>] <repourl>
Find most similar pairs of developers in a GitHub repository
Options:
-f, --function=(INTERSECTION|GEOMETRIC|HARMONIC)
Similarity function to use. By default, harmonic mean
-n, --number=<value> Number of pairs of developers to show. By default, 5
-c, --commits=<value> Number of latest commits to consider or -1 to consider
all commits. By default, 100
-t, --token=<text> GitHub token
-h, --help Show this message and exit
Arguments:
<repourl> URL of the repository

GitHub token

To access a private repository or to avoid GitHub API rate limits(60 requests per hour for unauthenticated requests), you can provide a GitHub token. A personal access token can be generated in GitHub settings. The personal rate limit is 5,000 requests per hour.

Example

The following command will analyze the last 50 commits of the repository, show 4 most similar pairs of developers and use the default similarity function:

./gradlew run --args='-n 4 -c 50 https://github.com/JetBrains/gradle-grammar-kit-plugin'

The output will be:

49699333+dependabot[bot]@users.noreply.github.com | yann.cebron@jetbrains.com | 21.000000
jakub.chrzanowski@jetbrains.com | yann.cebron@jetbrains.com | 8.388889
49699333+dependabot[bot]@users.noreply.github.com | jakub.chrzanowski@jetbrains.com | 7.388889
action@github.com | yann.cebron@jetbrains.com | 1.000000

Similarity functions

For every contributor, we know how many times they changed each file. However, we need to define a similarity function to compare two contributors. Ideally, it should be high if two contributors change common files often and also if they change the same files in similar proportions.

If we consider only the number of changes in common files, the following two cases will have the same similarity:

  • The first contributor changed file A 100 times and file B 1 time. The second contributor changed file A 1 time and file B 100 times.
  • Both contributors changed file A 100 times and file B 1 time.

To avoid this, we need to take into account the relative frequencies of the changes. However, if we consider the relative frequencies only, the following two cases will have the same similarity:

  • Both contributors changed file A 1 time and file B 1 time.
  • Both contributors changed file A 100 times and file B 100 times.

The tool supports several similarity functions that try to balance between these two extremes. The appropriate function depends on the specific use case.

Intersection size

The simplest similarity function is the size of the intersection of the multisets of files changed by contributors. It is calculated as the sum of the minimum number of changes of each file by the two contributors. This function takes into account both the absolute and relative frequencies of the changes. However, the values of this function are bounded by the number of changes of the less active contributor.

Geometric mean

For each file, we calculate the geometric mean of the number of changes by the two contributors. The similarity is the sum of these geometric means. This function unlike the intersection size is not bounded by the number of changes of the less active contributor.

Harmonic mean

Finally, we can use the sum of harmonic means of the number of changes for each file. This function is something in between the geometric mean and the intersection size. It is set by default.

About

CLI tool for contributions analysis

Resources

Stars

0 stars

Watchers

1 watching

Forks

Releases

Packages

Contributors

Languages