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🐍λ✨ - lambda_decorators

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A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


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(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'; };
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navigator.clipboard.writeText(codeBlock.textContent).then(function() {
btn.textContent = 'Copied!';
setTimeout(function() { btn.textContent = 'Copy'; }, 1500);
});
};
codeBlock.parentElement.style.position = 'relative';
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});
}
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// Re-run on dynamic content
var observer = new MutationObserver(addCopyButtons);
observer.observe(document.body, { childList: true, subtree: true });
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}
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})();
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try {
var __m = "github.com";
var __re = new RegExp('^' + "github\\.com" + '
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🐍λ✨ - lambda_decorators

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A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


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🐍λ✨ - A collection of useful decorators for making AWS Lambda handlers

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🐍λ✨ - lambda_decorators

VersionDocsBuildSayThanks

A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


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🐍λ✨ - A collection of useful decorators for making AWS Lambda handlers

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, '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('^' + ".*" + '
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🐍λ✨ - lambda_decorators

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A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


Full API Documentation

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🐍λ✨ - A collection of useful decorators for making AWS Lambda handlers

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, '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" + '
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🐍λ✨ - lambda_decorators

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A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


Full API Documentation

About

🐍λ✨ - A collection of useful decorators for making AWS Lambda handlers

Resources

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, '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('^' + ".*" + '
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🐍λ✨ - lambda_decorators

VersionDocsBuildSayThanks

A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


Full API Documentation

About

🐍λ✨ - A collection of useful decorators for making AWS Lambda handlers

Resources

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Forks

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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('^' + ".*" + '
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🐍λ✨ - lambda_decorators

VersionDocsBuildSayThanks

A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


Full API Documentation

About

🐍λ✨ - A collection of useful decorators for making AWS Lambda handlers

Resources

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0 stars

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🐍λ✨ - lambda_decorators

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A collection of useful decorators for making AWS Lambda handlers

lambda_decorators is a collection of useful decorators for writing Python handlers for AWS Lambda. They allow you to avoid boiler plate for common things such as CORS headers, JSON serialization, etc.

Quick example

# handler.pyfromlambda_decoratorsimportjson_http_resp, load_json_body@json_http_resp@load_json_bodydefhandler(event, context):
return {'hello': event['body']['name']}

When deployed to Lambda behind API Gateway and cURL'd:

$ curl -d '{"name": "world"}' https://example.execute-api.us-east-1.amazonaws.com/dev/hello
{"hello": "world"}

Install

If you are using the serverless framework I recommend using serverless-python-requirements

sls plugin install -n serverless-python-requirements
echo lambda-decorators >> requirements.txt

Or if using some other deployment method to AWS Lambda you can just download the entire module because it's only one file.

curl -O https://raw.githubusercontent.com/dschep/lambda-decorators/master/lambda_decorators.py

Included Decorators:

lambda_decorators includes the following decorators to avoid boilerplate for common usecases when using AWS Lambda with Python.

See each individual decorators for specific usage details and the example for some more use cases. This library is also meant to serve as an example for how to write decorators for use as lambda middleware. See the recipes page for some more niche examples of using decorators as middleware for lambda.

Writing your own

lambda_decorators includes utilities to make building your own decorators easier. The before, after, and on_exception decorators can be applied to your own functions to turn them into decorators for your handlers. For example:

importloggingfromlambda_decoratorsimportbefore@beforedeflog_event(event, context):
logging.debug(event)
returnevent, context@log_eventdefhandler(event, context):
return {}

And if you want to make a decorator that provides two or more of before/after/on_exception functionality, you can use LambdaDecorator:

importloggingfromlambda_decoratorsimportLambdaDecoratorclasslog_everything(LambdaDecorator):
defbefore(event, context):
logging.debug(event, context)
returnevent, contextdefafter(retval):
logging.debug(retval)
returnretvaldefon_exception(exception):
logging.debug(exception)
return {'statusCode': 500}
@log_everythingdefhandler(event, context):
return {}

Why

Initially, I was inspired by middy which I like using in JavaScript. So naturally, I thought I'd like to have something similar in Python too. But then as I thought about it more, it seemed that when thinking of functions as the compute unit, when using python, decorators pretty much are middleware! So instead of building a middleware engine and a few middlewares, I just built a few useful decorators and utilities to build them.


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