Add examples back in
This commit is contained in:
274
examples/calculator_client.py
Executable file
274
examples/calculator_client.py
Executable file
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#!/usr/bin/env python
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from __future__ import print_function
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import argparse
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import socket
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import capnp
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import calculator_capnp
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class PowerFunction(calculator_capnp.Calculator.Function.Server):
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'''An implementation of the Function interface wrapping pow(). Note that
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we're implementing this on the client side and will pass a reference to
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the server. The server will then be able to make calls back to the client.'''
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def call(self, params, **kwargs):
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'''Note the **kwargs. This is very necessary to include, since protocols can add parameters over time. Also, by default, a _context variable is passed to all server methods. Read the docs for further explanation.'''
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return pow(params[0], params[1])
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def parse_args():
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parser = argparse.ArgumentParser(usage='Connects to the Calculator server at the given address and does some RPCs')
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parser.add_argument("host", help="HOST:PORT")
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return parser.parse_args()
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def main(sock):
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client = capnp.TwoPartyClient(sock)
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# Pass "calculator" to ez_restore (there's also a `restore` function that takes a struct or AnyPointer as an argument), and then cast the returned capability to it's proper type. This casting is due to capabilities not having a reference to their schema
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calculator = client.ez_restore('calculator').cast_as(calculator_capnp.Calculator)
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'''Make a request that just evaluates the literal value 123.
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What's interesting here is that evaluate() returns a "Value", which is
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another interface and therefore points back to an object living on the
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server. We then have to call read() on that object to read it.
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However, even though we are making two RPC's, this block executes in
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*one* network round trip because of promise pipelining: we do not wait
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for the first call to complete before we send the second call to the
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server.'''
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print('Evaluating a literal... ', end="")
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# Set up the request. Note the form is 'evaluate' + '_request', where 'evaluate' is the name of the method we want to call
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request = calculator.evaluate_request()
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request.expression.literal = 123
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# Send it, which returns a promise for the result (without blocking).
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eval_promise = request.send()
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# Using the promise, create a pipelined request to call read() on the returned object. Note that here we are using the shortened method call syntax read(), which is mostly just sugar for read_request().send()
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read_promise = eval_promise.value.read()
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# Now that we've sent all the requests, wait for the response. Until this
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# point, we haven't waited at all!
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response = read_promise.wait()
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assert response.value == 123
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print("PASS")
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'''Make a request to evaluate 123 + 45 - 67.
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# //
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The Calculator interface requires that we first call getOperator() to
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get the addition and subtraction functions, then call evaluate() to use
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them. But, once again, we can get both functions, call evaluate(), and
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then read() the result -- four RPCs -- in the time of *one* network
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round trip, because of promise pipelining.'''
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print("Using add and subtract... ", end='')
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# Get the "add" function from the server.
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add = calculator.getOperator(op='add').func
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# Get the "subtract" function from the server.
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subtract = calculator.getOperator(op='subtract').func
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# Build the request to evaluate 123 + 45 - 67.
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request = calculator.evaluate_request()
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subtract_call = request.expression.init('call')
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subtract_call.function = subtract
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subtract_params = subtract_call.init('params', 2)
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subtract_params[1].literal = 67.0
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add_call = subtract_params[0].init('call')
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add_call.function = add
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add_params = add_call.init('params', 2)
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add_params[0].literal = 123
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add_params[1].literal = 45
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# Send the evaluate() request, read() the result, and wait for read() to finish.
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eval_promise = request.send()
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read_promise = eval_promise.value.read()
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response = read_promise.wait()
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assert response.value == 101
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print("PASS")
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'''Make a request to evaluate 4 * 6, then use the result in two more
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requests that add 3 and 5.
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Since evaluate() returns its result wrapped in a `Value`, we can pass
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that `Value` back to the server in subsequent requests before the first
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`evaluate()` has actually returned. Thus, this example again does only
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one network round trip.'''
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print("Pipelining eval() calls... ", end="")
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# Get the "add" function from the server.
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add = calculator.getOperator(op='add').func
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# Get the "multiply" function from the server.
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multiply = calculator.getOperator(op='multiply').func
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# Build the request to evaluate 4 * 6
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request = calculator.evaluate_request()
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multiply_call = request.expression.init("call")
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multiply_call.function = multiply
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multiply_params = multiply_call.init("params", 2);
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multiply_params[0].literal = 4
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multiply_params[1].literal = 6
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multiply_result = request.send().value
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# Use the result in two calls that add 3 and add 5.
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add3Request = calculator.evaluate_request()
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add3Call = add3Request.expression.init("call")
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add3Call.function = add
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add3Params = add3Call.init("params", 2)
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add3Params[0].previousResult = multiply_result
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add3Params[1].literal = 3
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add3Promise = add3Request.send().value.read()
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add5Request = calculator.evaluate_request()
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add5Call = add5Request.expression.init("call")
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add5Call.function = add
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add5Params = add5Call.init("params", 2)
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add5Params[0].previousResult = multiply_result
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add5Params[1].literal = 5
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add5Promise = add5Request.send().value.read()
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# Now wait for the results.
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assert add3Promise.wait().value == 27
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assert add5Promise.wait().value == 29
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print("PASS")
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'''Our calculator interface supports defining functions. Here we use it
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to define two functions and then make calls to them as follows:
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f(x, y) = x * 100 + y
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g(x) = f(x, x + 1) * 2;
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f(12, 34)
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g(21)
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Once again, the whole thing takes only one network round trip.'''
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print("Defining functions... ", end="")
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# Get the "add" function from the server.
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add = calculator.getOperator(op='add').func
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# Get the "multiply" function from the server.
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multiply = calculator.getOperator(op='multiply').func
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# Define f.
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request = calculator.defFunction_request()
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request.paramCount = 2
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# Build the function body.
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addCall = request.body.init("call")
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addCall.function = add
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addParams = addCall.init("params", 2)
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addParams[1].parameter = 1 # y
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multiplyCall = addParams[0].init("call")
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multiplyCall.function = multiply
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multiplyParams = multiplyCall.init("params", 2)
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multiplyParams[0].parameter = 0 # x
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multiplyParams[1].literal = 100
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f = request.send().func
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# Define g.
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request = calculator.defFunction_request()
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request.paramCount = 1
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# Build the function body.
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multiplyCall = request.body.init("call")
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multiplyCall.function = multiply
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multiplyParams = multiplyCall.init("params", 2)
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multiplyParams[1].literal = 2
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fCall = multiplyParams[0].init("call")
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fCall.function = f
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fParams = fCall.init("params", 2)
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fParams[0].parameter = 0
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addCall = fParams[1].init("call")
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addCall.function = add
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addParams = addCall.init("params", 2)
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addParams[0].parameter = 0
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addParams[1].literal = 1
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g = request.send().func
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# OK, we've defined all our functions. Now create our eval requests.
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# f(12, 34)
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fEvalRequest = calculator.evaluate_request()
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fCall = fEvalRequest.expression.init("call")
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fCall.function = f
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fParams = fCall.init("params", 2)
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fParams[0].literal = 12
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fParams[1].literal = 34
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fEvalPromise = fEvalRequest.send().value.read()
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# g(21)
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gEvalRequest = calculator.evaluate_request()
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gCall = gEvalRequest.expression.init("call")
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gCall.function = g
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gCall.init('params', 1)[0].literal = 21
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gEvalPromise = gEvalRequest.send().value.read()
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# Wait for the results.
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assert fEvalPromise.wait().value == 1234
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assert gEvalPromise.wait().value == 4244
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print("PASS")
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'''Make a request that will call back to a function defined locally.
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Specifically, we will compute 2^(4 + 5). However, exponent is not
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defined by the Calculator server. So, we'll implement the Function
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interface locally and pass it to the server for it to use when
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evaluating the expression.
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This example requires two network round trips to complete, because the
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server calls back to the client once before finishing. In this
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particular case, this could potentially be optimized by using a tail
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call on the server side -- see CallContext::tailCall(). However, to
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keep the example simpler, we haven't implemented this optimization in
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the sample server.'''
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print("Using a callback... ", end="")
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# Get the "add" function from the server.
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add = calculator.getOperator(op='add').func
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# Build the eval request for 2^(4+5).
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request = calculator.evaluate_request()
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powCall = request.expression.init("call")
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powCall.function = PowerFunction()
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powParams = powCall.init("params", 2)
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powParams[0].literal = 2
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addCall = powParams[1].init("call")
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addCall.function = add
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addParams = addCall.init("params", 2)
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addParams[0].literal = 4
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addParams[1].literal = 5
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# Send the request and wait.
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response = request.send().value.read().wait()
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assert response.value == 512
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print("PASS")
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if __name__ == '__main__':
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host, port = parse_args().host.split(':')
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sock = socket.create_connection((host, port))
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main(sock)
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157
examples/calculator_server.py
Executable file
157
examples/calculator_server.py
Executable file
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#!/usr/bin/env python
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from __future__ import print_function
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import argparse
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import socket
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import random
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import capnp
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import calculator_capnp
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def readValue(value):
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'''Helper function to asynchronously call read() on a Calculator::Value and
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return a promise for the result. (In the future, the generated code might
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include something like this automatically.)'''
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return value.read().then(lambda result: result.value)
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def evaluateImpl(expression, params=None):
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'''Implementation of CalculatorImpl::evaluate(), also shared by
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FunctionImpl::call(). In the latter case, `params` are the parameter
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values passed to the function; in the former case, `params` is just an
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empty list.'''
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which = expression.which()
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if which == 'literal':
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return capnp.Promise(expression.literal)
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elif which == 'previousResult':
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return readValue(expression.previousResult)
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elif which == 'parameter':
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assert expression.parameter < len(params)
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return capnp.Promise(params[expression.parameter])
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elif which == 'call':
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def then(vals):
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ret = func.call(vals).then(lambda result: result.value)
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return ret
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call = expression.call
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func = call.function
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# Evaluate each parameter.
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paramPromises = [evaluateImpl(param, params) for param in call.params]
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joinedParams = capnp.join_promises(paramPromises)
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# When the parameters are complete, call the function.
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ret = joinedParams.then(then)
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return ret
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else:
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raise ValueError("Unknown expression type: " + which)
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class ValueImpl(calculator_capnp.Calculator.Value.Server):
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"Simple implementation of the Calculator.Value Cap'n Proto interface."
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def __init__(self, value):
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self.value = value
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def read(self, **kwargs):
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return self.value
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class FunctionImpl(calculator_capnp.Calculator.Function.Server):
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'''Implementation of the Calculator.Function Cap'n Proto interface, where the
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function is defined by a Calculator.Expression.'''
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def __init__(self, paramCount, body, obj):
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self.paramCount = paramCount
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self.body = body.as_builder()
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self.obj = obj
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def call(self, params, _context, **kwargs):
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assert len(params) == self.paramCount
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return evaluateImpl(self.body, params).then(lambda value: setattr(_context.results, 'value', value)) # using setattr because '=' is not allowed inside of lambdas
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class OperatorImpl(calculator_capnp.Calculator.Function.Server):
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'''Implementation of the Calculator.Function Cap'n Proto interface, wrapping
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basic binary arithmetic operators.'''
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def __init__(self, op):
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self.op = op
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def call(self, params, **kwargs):
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assert len(params) == 2
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op = self.op
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if op == 'add':
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return params[0] + params[1]
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elif op == 'subtract':
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return params[0] - params[1]
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elif op == 'multiply':
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return params[0] * params[1]
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elif op == 'divide':
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return params[0] / params[1]
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else:
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raise ValueError('Unknown operator')
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class CalculatorImpl(calculator_capnp.Calculator.Server):
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"Implementation of the Calculator Cap'n Proto interface."
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def evaluate(self, expression, _context, **kwargs):
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return evaluateImpl(expression).then(lambda value: setattr(_context.results, 'value', ValueImpl(value)))
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def defFunction(self, paramCount, body, _context, **kwargs):
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return FunctionImpl(paramCount, body, _context)
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def getOperator(self, op, **kwargs):
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return OperatorImpl(op)
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def parse_args():
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parser = argparse.ArgumentParser(usage='''Runs the server bound to the given address/port
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ADDRESS may be '*' to bind to all local addresses.
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:PORT may be omitted to choose a port automatically.
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''')
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parser.add_argument("address", help="ADDRESS[:PORT]")
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return parser.parse_args()
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||||||
|
|
||||||
|
class CalcRestorer:
|
||||||
|
def __init__(self):
|
||||||
|
self.calc = CalculatorImpl()
|
||||||
|
|
||||||
|
def restore(self, ref):
|
||||||
|
assert ref.as_text() == 'calculator'
|
||||||
|
return CalculatorImpl()
|
||||||
|
|
||||||
|
def main():
|
||||||
|
address = parse_args().address
|
||||||
|
|
||||||
|
if ':' in address:
|
||||||
|
address, port = address.split(':')
|
||||||
|
port = int(port)
|
||||||
|
else:
|
||||||
|
port = random.randint(60000,61000)
|
||||||
|
|
||||||
|
if address == '*':
|
||||||
|
address = ''
|
||||||
|
|
||||||
|
print("Listening on port: {}".format(port))
|
||||||
|
|
||||||
|
s = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
|
||||||
|
s.bind((address,port))
|
||||||
|
s.listen(1) # service only 1 client at a time
|
||||||
|
|
||||||
|
while True:
|
||||||
|
try:
|
||||||
|
(clientsocket, address) = s.accept()
|
||||||
|
restorer = CalcRestorer()
|
||||||
|
server = capnp.TwoPartyServer(clientsocket, restorer)
|
||||||
|
|
||||||
|
server.run_forever()
|
||||||
|
print("client disconnected")
|
||||||
|
except KeyboardInterrupt:
|
||||||
|
break
|
||||||
|
|
||||||
|
if __name__ == '__main__':
|
||||||
|
main()
|
||||||
Reference in New Issue
Block a user